Merge remote-tracking branch 'origin/master' into CoolDeathAnimation

# Conflicts:
#	include/Engine/Rendering/DrawScenePass.h
#	include/Engine/Rendering/RenderQueue.h
#	include/Engine/Rendering/RenderQueueFactory.h
#	include/Engine/Rendering/Renderer.h
#	include/Game/Game.h
#	resources/Schema/Components.xsd
#	resources/Schema/Entities/Test.xml
#	resources/Schema/Types/Entity.xsd
#	src/Engine/Rendering/DrawScenePass.cpp
#	src/Engine/Rendering/RenderQueueFactory.cpp
#	src/Engine/Rendering/Renderer.cpp
#	src/Game/Game.cpp
This commit is contained in:
Ayumiwii
2016-01-18 16:02:43 +01:00
212 changed files with 7177 additions and 2731 deletions
+25 -3
View File
@@ -9,8 +9,8 @@ find_package(ZLIB REQUIRED)
find_package(PNG REQUIRED)
find_package(Xerces REQUIRED)
# Because FindOpenAL is retarded
#set(CMAKE_INCLUDE_PATH ${CMAKE_INCLUDE_PATH} "${CMAKE_SOURCE_DIR}/deps/include/AL")
#find_package(OpenAL REQUIRED)
set(CMAKE_INCLUDE_PATH ${CMAKE_INCLUDE_PATH} "${CMAKE_SOURCE_DIR}/deps/include/OpenAL")
find_package(OpenAL REQUIRED)
if(UNIX)
find_package(X11 REQUIRED)
endif()
@@ -52,6 +52,12 @@ file(GLOB SOURCE_FILES_Network
)
source_group(Network FILES ${SOURCE_FILES_Network})
file(GLOB SOURCE_FILES_Sound
"${INCLUDE_PATH}/Sound/*.h"
"Sound/*.cpp"
)
source_group(Sound FILES ${SOURCE_FILES_Sound})
file(GLOB SOURCE_FILES_Rendering
"${INCLUDE_PATH}/Rendering/*.h"
"Rendering/*.cpp"
@@ -86,16 +92,32 @@ set(SOURCE_FILES
${SOURCE_FILES_Core_Util}
${SOURCE_FILES_Input}
${SOURCE_FILES_Network}
${SOURCE_FILES_Sound}
${SOURCE_FILES_GUI}
${SOURCE_FILES_Rendering}
${SOURCE_FILES_Rendering_Util}
${SOURCE_FILES_Collision}
${SOURCE_FILES_Editor}
${CMAKE_SOURCE_DIR}/deps/include/imgui/imgui.cpp
${CMAKE_SOURCE_DIR}/deps/include/imgui/imgui_draw.cpp
${CMAKE_SOURCE_DIR}/deps/include/imgui/imgui_demo.cpp
${SOURCE_FILES_Editor}
${CMAKE_SOURCE_DIR}/deps/include/nativefiledialog/nfd_common.c
)
# nativefiledialog
if(WIN32)
set(SOURCE_FILES ${SOURCE_FILES}
${CMAKE_SOURCE_DIR}/deps/include/nativefiledialog/nfd_win.cpp
)
endif()
if(UNIX)
set(SOURCE_FILES ${SOURCE_FILES}
${CMAKE_SOURCE_DIR}/deps/include/nativefiledialog/nfd_gtk.c
# TODO: Link with GTK+ here!
)
endif()
set(LIBRARIES
${OPENGL_LIBRARIES}
${GLEW_LIBRARIES}
@@ -0,0 +1,18 @@
#include "Collision/CollidableOctreeSystem.h"
void CollidableOctreeSystem::Update(World* world, double dt)
{
m_Octree->ClearDynamicObjects();
}
void CollidableOctreeSystem::UpdateComponent(World* world, EntityWrapper& entity, ComponentWrapper& component, double dt)
{
if (entity.HasComponent("AABB")) {
boost::optional<AABB> absoluteAABB = Collision::EntityAbsoluteAABB(entity);
if (absoluteAABB) {
m_Octree->AddDynamicObject(*absoluteAABB);
}
} else if (entity.HasComponent("Model")) {
// TODO: Derive AABB from model
}
}
+234 -216
View File
@@ -8,202 +8,242 @@
namespace Collision
{
//note: this one hasnt been delta adjusted like RayVsAABB has
bool RayAABBIntr(const Ray& ray, const AABB& box)
{
glm::vec3 w = 75.0f * ray.Direction();
glm::vec3 v = glm::abs(w);
glm::vec3 c = ray.Origin() - box.Center() + w;
glm::vec3 half = box.HalfSize();
//note: this one hasnt been delta adjusted like RayVsAABB has
bool RayAABBIntr(const Ray& ray, const AABB& box)
{
glm::vec3 w = 75.0f * ray.Direction();
glm::vec3 v = glm::abs(w);
glm::vec3 c = ray.Origin() - box.Origin() + w;
glm::vec3 half = box.HalfSize();
if (abs(c.x) > v.x + half.x) {
return false;
}
if (abs(c.y) > v.y + half.y) {
return false;
}
if (abs(c.z) > v.z + half.z) {
return false;
}
if (abs(c.y*w.z - c.z*w.y) > half.y*v.z + half.z*v.y) {
return false;
}
if (abs(c.x*w.z - c.z*w.x) > half.x*v.z + half.z*v.x) {
return false;
}
return !(abs(c.x*w.y - c.y*w.x) > half.x*v.y + half.y*v.x);
if (abs(c.x) > v.x + half.x) {
return false;
}
bool RayVsAABB(const Ray& ray, const AABB& box)
{
float dummy;
return RayVsAABB(ray, box, dummy);
if (abs(c.y) > v.y + half.y) {
return false;
}
bool RayVsAABB(const Ray& ray, const AABB& box, float& outDistance)
{
glm::vec3 invdir = 1.0f / ray.Direction();
glm::vec3 origin = ray.Origin();
float t1 = (box.MinCorner().x - origin.x)*invdir.x;
float t2 = (box.MaxCorner().x - origin.x)*invdir.x;
float t3 = (box.MinCorner().y - origin.y)*invdir.y;
float t4 = (box.MaxCorner().y - origin.y)*invdir.y;
float t5 = (box.MinCorner().z - origin.z)*invdir.z;
float t6 = (box.MaxCorner().z - origin.z)*invdir.z;
float tmin = std::max(std::max(std::min(t1, t2), std::min(t3, t4)), std::min(t5, t6));
float tmax = std::min(std::min(std::max(t1, t2), std::max(t3, t4)), std::max(t5, t6));
//if (tmax < 0 || tmin > tmax)
//if tmin,tmax are almost the same (i.e. hitting exactly in the corner) then tmin might be slightly
//greater than tmax becuase of floating-precision problems. fixed by adding a small delta to tmax
if (tmax < 0 || tmin>(tmax + 0.0001f))
return false;
outDistance = (tmin > 0) ? tmin : tmax;
return true;
}
bool AABBVsAABB(const AABB& a, const AABB& b)
{
const glm::vec3& aCenter = a.Center();
const glm::vec3& bCenter = b.Center();
const glm::vec3& aHSize = a.HalfSize();
const glm::vec3& bHSize = b.HalfSize();
//Test will probably exit because of the X and Z axes more often, so test them first.
if (abs(aCenter[0] - bCenter[0]) > (aHSize[0] + bHSize[0])) {
return false;
}
if (abs(aCenter[2] - bCenter[2]) > (aHSize[2] + bHSize[2])) {
return false;
}
return (abs(aCenter[1] - bCenter[1]) <= (aHSize[1] + bHSize[1]));
}
bool AABBVsAABB(const AABB& a, const AABB& b, glm::vec3& minimumTranslation)
{
minimumTranslation = glm::vec3(0, 0, 0);
const glm::vec3& aMax = a.MaxCorner();
const glm::vec3& bMax = b.MaxCorner();
const glm::vec3& aMin = a.MinCorner();
const glm::vec3& bMin = b.MinCorner();
const glm::vec3& bSize = b.Size();
const glm::vec3& aSize = a.Size();
float minOffset = INFINITY;
float off;
auto axisesIntersecting = glm::tvec3<bool, glm::highp>(false, false, false);
for (int i = 0; i < 3; ++i) {
off = bMax[i] - aMin[i];
if (off > 0 && off < bSize[i] + aSize[i]) {
if (off < minOffset) {
minimumTranslation = glm::vec3();
minimumTranslation[i] = minOffset = off;
}
axisesIntersecting[i] = true;
}
off = aMax[i] - bMin[i];
if (off > 0 && off < bSize[i] + aSize[i]) {
if (off < minOffset) {
minOffset = off;
minimumTranslation = glm::vec3();
minimumTranslation[i] = -off;
}
axisesIntersecting[i] = true;
}
}
return glm::all(axisesIntersecting);
}
bool RayVsModel(const Ray& ray,
const std::vector<RawModel::Vertex>& modelVertices,
const std::vector<unsigned int>& modelIndices)
{
for (int i = 0; i < modelIndices.size(); ++i) {
glm::vec3 v0 = modelVertices[modelIndices[i]].Position;
glm::vec3 e1 = modelVertices[modelIndices[++i]].Position - v0; //v1 - v0
glm::vec3 e2 = modelVertices[modelIndices[++i]].Position - v0; //v2 - v0
glm::vec3 m = ray.Origin() - v0;
glm::vec3 MxE1 = glm::cross(m, e1);
glm::vec3 DxE2 = glm::cross(ray.Direction(), e2);
float DetInv = glm::dot(e1, DxE2);
if (std::abs(DetInv) < FLT_EPSILON) {
continue;
}
DetInv = 1.0f / DetInv;
float u = glm::dot(m, DxE2) * DetInv;
float v = glm::dot(ray.Direction(), MxE1) * DetInv;
//u,v can be very close to 0 but still negative sometimes. added a deltafactor to compensate for that problem
if ((u + 0.001f) < 0 || (v + 0.001f) < 0 || 1 < u + v) {
continue;
}
//Here, u and v are positive, u+v <= 1, and if distance is positive - triangle is hit.
if (0 <= glm::dot(e2, MxE1) * DetInv) {
return true;
}
}
if (abs(c.z) > v.z + half.z) {
return false;
}
bool RayVsModel(const Ray& ray,
const std::vector<RawModel::Vertex>& modelVertices,
const std::vector<unsigned int>& modelIndices,
float& outDistance,
float& outUCoord,
float& outVCoord)
{
outDistance = INFINITY;
bool hit = false;
for (int i = 0; i < modelIndices.size(); ++i) {
glm::vec3 v0 = modelVertices[modelIndices[i]].Position;
glm::vec3 e1 = modelVertices[modelIndices[++i]].Position - v0; //v1 - v0
glm::vec3 e2 = modelVertices[modelIndices[++i]].Position - v0; //v2 - v0
glm::vec3 m = ray.Origin() - v0;
glm::vec3 MxE1 = glm::cross(m, e1);
glm::vec3 DxE2 = glm::cross(ray.Direction(), e2);//pVec
float DetInv = glm::dot(e1, DxE2);
if (std::abs(DetInv) < FLT_EPSILON) {
continue;
}
DetInv = 1.0f / DetInv;
float dist = glm::dot(e2, MxE1) * DetInv;
if (dist >= outDistance) {
continue;
}
float u = glm::dot(m, DxE2) * DetInv;
float v = glm::dot(ray.Direction(), MxE1) * DetInv;
if (abs(c.y*w.z - c.z*w.y) > half.y*v.z + half.z*v.y) {
return false;
}
if (abs(c.x*w.z - c.z*w.x) > half.x*v.z + half.z*v.x) {
return false;
}
return !(abs(c.x*w.y - c.y*w.x) > half.x*v.y + half.y*v.x);
}
//u,v can be very close to 0 but still negative sometimes. added a deltafactor to compensate for that problem
//If u and v are positive, u+v <= 1, dist is positive, and less than closest.
if (0 <= (u + 0.001f) && 0 <= (v + 0.001f) && u + v <= 1 && 0 <= dist) {
outDistance = dist;
outUCoord = u;
outVCoord = v;
hit = true;
bool RayVsAABB(const Ray& ray, const AABB& box)
{
float dummy;
return RayVsAABB(ray, box, dummy);
}
bool RayVsAABB(const Ray& ray, const AABB& box, float& outDistance)
{
glm::vec3 invdir = 1.0f / ray.Direction();
glm::vec3 origin = ray.Origin();
float t1 = (box.MinCorner().x - origin.x)*invdir.x;
float t2 = (box.MaxCorner().x - origin.x)*invdir.x;
float t3 = (box.MinCorner().y - origin.y)*invdir.y;
float t4 = (box.MaxCorner().y - origin.y)*invdir.y;
float t5 = (box.MinCorner().z - origin.z)*invdir.z;
float t6 = (box.MaxCorner().z - origin.z)*invdir.z;
float tmin = std::max(std::max(std::min(t1, t2), std::min(t3, t4)), std::min(t5, t6));
float tmax = std::min(std::min(std::max(t1, t2), std::max(t3, t4)), std::max(t5, t6));
//if (tmax < 0 || tmin > tmax)
//if tmin,tmax are almost the same (i.e. hitting exactly in the corner) then tmin might be slightly
//greater than tmax becuase of floating-precision problems. fixed by adding a small delta to tmax
if (tmax < 0 || tmin>(tmax + 0.0001f))
return false;
outDistance = (tmin > 0) ? tmin : tmax;
return true;
}
bool AABBVsAABB(const AABB& a, const AABB& b)
{
const glm::vec3& aCenter = a.Origin();
const glm::vec3& bCenter = b.Origin();
const glm::vec3& aHSize = a.HalfSize();
const glm::vec3& bHSize = b.HalfSize();
//Test will probably exit because of the X and Z axes more often, so test them first.
if (abs(aCenter[0] - bCenter[0]) > (aHSize[0] + bHSize[0])) {
return false;
}
if (abs(aCenter[2] - bCenter[2]) > (aHSize[2] + bHSize[2])) {
return false;
}
return (abs(aCenter[1] - bCenter[1]) <= (aHSize[1] + bHSize[1]));
}
bool AABBVsAABB(const AABB& a, const AABB& b, glm::vec3& minimumTranslation)
{
minimumTranslation = glm::vec3(0, 0, 0);
const glm::vec3& aMax = a.MaxCorner();
const glm::vec3& bMax = b.MaxCorner();
const glm::vec3& aMin = a.MinCorner();
const glm::vec3& bMin = b.MinCorner();
const glm::vec3& bSize = b.Size();
const glm::vec3& aSize = a.Size();
float minOffset = INFINITY;
float off;
auto axisesIntersecting = glm::tvec3<bool, glm::highp>(false, false, false);
for (int i = 0; i < 3; ++i) {
off = bMax[i] - aMin[i];
if (off > 0 && off < bSize[i] + aSize[i]) {
if (off < minOffset) {
minimumTranslation = glm::vec3();
minimumTranslation[i] = minOffset = off;
}
axisesIntersecting[i] = true;
}
return hit;
off = aMax[i] - bMin[i];
if (off > 0 && off < bSize[i] + aSize[i]) {
if (off < minOffset) {
minOffset = off;
minimumTranslation = glm::vec3();
minimumTranslation[i] = -off;
}
axisesIntersecting[i] = true;
}
}
return glm::all(axisesIntersecting);
}
bool RayVsModel(const Ray& ray,
const std::vector<RawModel::Vertex>& modelVertices,
const std::vector<unsigned int>& modelIndices)
{
for (int i = 0; i < modelIndices.size(); ++i) {
glm::vec3 v0 = modelVertices[modelIndices[i]].Position;
glm::vec3 e1 = modelVertices[modelIndices[++i]].Position - v0; //v1 - v0
glm::vec3 e2 = modelVertices[modelIndices[++i]].Position - v0; //v2 - v0
glm::vec3 m = ray.Origin() - v0;
glm::vec3 MxE1 = glm::cross(m, e1);
glm::vec3 DxE2 = glm::cross(ray.Direction(), e2);
float DetInv = glm::dot(e1, DxE2);
if (std::abs(DetInv) < FLT_EPSILON) {
continue;
}
DetInv = 1.0f / DetInv;
float u = glm::dot(m, DxE2) * DetInv;
float v = glm::dot(ray.Direction(), MxE1) * DetInv;
//u,v can be very close to 0 but still negative sometimes. added a deltafactor to compensate for that problem
if ((u + 0.001f) < 0 || (v + 0.001f) < 0 || 1 < u + v) {
continue;
}
//Here, u and v are positive, u+v <= 1, and if distance is positive - triangle is hit.
if (0 <= glm::dot(e2, MxE1) * DetInv) {
return true;
}
}
return false;
}
bool RayVsModel(const Ray& ray,
const std::vector<RawModel::Vertex>& modelVertices,
const std::vector<unsigned int>& modelIndices,
float& outDistance,
float& outUCoord,
float& outVCoord)
{
outDistance = INFINITY;
bool hit = false;
for (int i = 0; i < modelIndices.size(); ++i) {
glm::vec3 v0 = modelVertices[modelIndices[i]].Position;
glm::vec3 e1 = modelVertices[modelIndices[++i]].Position - v0; //v1 - v0
glm::vec3 e2 = modelVertices[modelIndices[++i]].Position - v0; //v2 - v0
glm::vec3 m = ray.Origin() - v0;
glm::vec3 MxE1 = glm::cross(m, e1);
glm::vec3 DxE2 = glm::cross(ray.Direction(), e2);//pVec
float DetInv = glm::dot(e1, DxE2);
if (std::abs(DetInv) < FLT_EPSILON) {
continue;
}
DetInv = 1.0f / DetInv;
float dist = glm::dot(e2, MxE1) * DetInv;
if (dist >= outDistance) {
continue;
}
float u = glm::dot(m, DxE2) * DetInv;
float v = glm::dot(ray.Direction(), MxE1) * DetInv;
//u,v can be very close to 0 but still negative sometimes. added a deltafactor to compensate for that problem
//If u and v are positive, u+v <= 1, dist is positive, and less than closest.
if (0 <= (u + 0.001f) && 0 <= (v + 0.001f) && u + v <= 1 && 0 <= dist) {
outDistance = dist;
outUCoord = u;
outVCoord = v;
hit = true;
}
}
return hit;
}
bool RayVsModel(const Ray& ray,
const std::vector<RawModel::Vertex>& modelVertices,
const std::vector<unsigned int>& modelIndices,
glm::vec3& outHitPosition)
{
float u;
float v;
float dist;
bool hit = RayVsModel(ray, modelVertices, modelIndices, dist, u, v);
outHitPosition = ray.Origin() + dist * ray.Direction();
return hit;
}
bool AABBvsTriangles(const AABB& box, const std::vector<RawModel::Vertex>& modelVertices, const std::vector<unsigned int>& modelIndices, const glm::mat4& modelMatrix, glm::vec3& outResolutionVector)
{
bool hit = false;
const glm::vec3& origin = box.Origin();
const glm::vec3& min = box.MinCorner();
const glm::vec3& max = box.MaxCorner();
outResolutionVector.x = INFINITY;
for (int i = 0; i < modelIndices.size(); ++i) {
glm::vec3 p = modelVertices[i].Position;
p = glm::vec3(modelMatrix * glm::vec4(p.x, p.y, p.z, 1));
float distFromOrigin = glm::abs(origin.x - p.x);
float penetration = box.HalfSize().x - distFromOrigin;
if (penetration > 0 && penetration < glm::abs(outResolutionVector.x)) {
if (p.x > origin.x) {
outResolutionVector.x = -penetration;
} else {
outResolutionVector.x = penetration;
}
hit = true;
}
//glm::vec3 pLocal = origin - p;
//for (int axis = 0; axis < 3; ++axis) {
// if (p[axis] < min[axis] || p[axis] > max[axis]) {
// continue;
// }
// if (glm::abs(pLocal[axis]) < box.HalfSize()[axis]) {
// outResolutionVector[axis] = (glm::sign(pLocal[axis]) * box.HalfSize()[axis]) - pLocal[axis];
// hit = true;
// }
//}
}
bool RayVsModel(const Ray& ray,
const std::vector<RawModel::Vertex>& modelVertices,
const std::vector<unsigned int>& modelIndices,
glm::vec3& outHitPosition)
{
float u;
float v;
float dist;
bool hit = RayVsModel(ray, modelVertices, modelIndices, dist, u, v);
outHitPosition = ray.Origin() + dist * ray.Direction();
return hit;
}
return hit;
}
bool IsSameBoxProbably(const AABB& first, const AABB& second, const float epsilon)
{
const glm::vec3& ma1 = first.MaxCorner();
const glm::vec3& ma2 = first.MaxCorner();
const glm::vec3& mi1 = second.MinCorner();
const glm::vec3& ma2 = second.MaxCorner();
const glm::vec3& mi1 = first.MinCorner();
const glm::vec3& mi2 = second.MinCorner();
return (std::abs(ma1.x - ma2.x) < epsilon) &&
(std::abs(mi1.x - mi2.x) < epsilon) &&
@@ -225,11 +265,11 @@ bool attachAABBComponentFromModel(World* world, EntityID id)
return false;
}
glm::mat4 modelMatrix = modelRes->m_Matrix;
glm::mat4 modelMatrix = modelRes->Matrix();
glm::vec3 mini = glm::vec3(INFINITY, INFINITY, INFINITY);
glm::vec3 maxi = glm::vec3(-INFINITY, -INFINITY, -INFINITY);
for (const auto& v : modelRes->m_Vertices) {
for (const auto& v : modelRes->Vertices()) {
const auto& wPos = modelMatrix * glm::vec4(v.Position.x, v.Position.y, v.Position.z, 1);
maxi.x = std::max(wPos.x, maxi.x);
maxi.y = std::max(wPos.y, maxi.y);
@@ -238,45 +278,23 @@ bool attachAABBComponentFromModel(World* world, EntityID id)
mini.y = std::min(wPos.y, mini.y);
mini.z = std::min(wPos.z, mini.z);
}
collision["BoxCenter"] = 0.5f * (maxi + mini);
collision["BoxSize"] = maxi - mini;
collision["Origin"] = 0.5f * (maxi + mini);
collision["Size"] = maxi - mini;
return true;
}
bool GetEntityBox(World* world, ComponentWrapper& AABBComponent, AABB& outBox)
boost::optional<AABB> EntityAbsoluteAABB(EntityWrapper& entity)
{
ComponentWrapper& cTrans = world->GetComponent(AABBComponent.EntityID, "Transform");
ComponentWrapper model = world->GetComponent(AABBComponent.EntityID, "Model");
Model* modelRes = ResourceManager::Load<Model>(model["Resource"]);
outBox.CreateFromCenter(AABBComponent["BoxCenter"], AABBComponent["BoxSize"]);
glm::vec3 mini = outBox.MinCorner();
glm::vec3 maxi = outBox.MaxCorner();
if (modelRes == nullptr) {
return false;
}
glm::mat4 modelMatrix = modelRes->m_Matrix *
glm::translate(glm::mat4(), (glm::vec3)cTrans["Position"]) *
glm::scale((glm::vec3)cTrans["Scale"]);
outBox = AABB(modelMatrix * glm::vec4(mini.x, mini.y, mini.z, 1),
modelMatrix * glm::vec4(maxi.x, maxi.y, maxi.z, 1));
return true;
}
bool GetEntityBox(World* world, EntityID entity, AABB& outBox, bool forceBoxFromModel)
{
if (!world->HasComponent(entity, "AABB")) {
if (forceBoxFromModel) {
if (!attachAABBComponentFromModel(world, entity))
return false;
} else {
return false;
}
if (!entity.HasComponent("AABB")) {
return boost::none;
}
ComponentWrapper& cBox = world->GetComponent(entity, "AABB");
return GetEntityBox(world, cBox, outBox);
ComponentWrapper& cAABB = entity["AABB"];
glm::vec3 absPosition = Transform::AbsolutePosition(entity.World, entity.ID);
glm::vec3 absScale = Transform::AbsoluteScale(entity.World, entity.ID);
glm::vec3 origin = absPosition + (glm::vec3)cAABB["Origin"];
glm::vec3 size = (glm::vec3)cAABB["Size"] * absScale;
return AABB::FromOriginSize(origin, size);
}
}
+43 -18
View File
@@ -2,35 +2,60 @@
#include "Collision/CollisionSystem.h"
#include "Core/AABB.h"
void CollisionSystem::UpdateComponent(World * world, ComponentWrapper & cAABB, double dt)
void CollisionSystem::UpdateComponent(World* world, EntityWrapper& entity, ComponentWrapper& component, double dt)
{
//TODO: Update CollisionSystem system after PlayerSystem.
//Right now, cAABB is a component attached to any entity that should be collideable.
AABB thisBox;
if (!Collision::GetEntityBox(world, cAABB, thisBox)) {
if (!entity.HasComponent("Physics")) {
return;
}
ComponentWrapper& cPhysics = entity["Physics"];
boost::optional<AABB> boundingBox = Collision::EntityAbsoluteAABB(entity);
if (!boundingBox) {
return;
}
ComponentWrapper& cTransform = entity["Transform"];
AABB& boxA = *boundingBox;
//Press 'Z' to enable/disable collision.
if (zPress) {
return;
}
//Here, mover should be an object that moves, currently only players.
for (auto& mover : *world->GetComponents("Player")) {
if (cAABB.EntityID == mover.EntityID) {
// Collide against octree
std::vector<AABB> octreeResult;
m_Octree->BoxesInSameRegion(*boundingBox, octreeResult);
for (auto& boxB : octreeResult) {
glm::vec3 resolutionVector;
if (Collision::IsSameBoxProbably(boxA, boxB)) {
continue;
}
AABB otherBox;
if (!Collision::GetEntityBox(world, mover.EntityID, otherBox)) {
continue;
}
glm::vec3 resolveTranslation;
if (Collision::AABBVsAABB(otherBox, thisBox, resolveTranslation)) {
ComponentWrapper& trans = world->GetComponent(mover.EntityID, "Transform");
//TODO: Special treatment if both are movers.
trans["Position"] = (glm::vec3)trans["Position"] + resolveTranslation;
if (Collision::AABBVsAABB(boxA, boxB, resolutionVector)) {
(glm::vec3&)cTransform["Position"] += resolutionVector;
cPhysics["Velocity"] = glm::vec3(0, 0, 0);
}
}
// HACK: Temporarily collide against all collidable models since they're not in the octree yet
//auto otherCollidables = world->GetComponents("Model");
//for (auto& cModel : *otherCollidables) {
// if (cModel.EntityID == entity) {
// continue;
// }
// if (!world->HasComponent(cModel.EntityID, "Collidable")) {
// continue;
// }
// auto absPosition = RenderQueueFactory::AbsolutePosition(world, cModel.EntityID);
// auto absOrientation = RenderQueueFactory::AbsoluteOrientation(world, cModel.EntityID);
// auto absScale = RenderQueueFactory::AbsoluteScale(world, cModel.EntityID);
// glm::mat4 modelMatrix = glm::translate(absPosition); // *glm::toMat4(absOrientation) * glm::scale(absScale);
// auto model = ResourceManager::Load<Model>(cModel["Resource"]);
// glm::vec3 resolutionVector;
// if (Collision::AABBvsTriangles(boxA, model->m_Vertices, model->m_Indices, modelMatrix, resolutionVector)) {
// (glm::vec3&)cTransform["Position"] += resolutionVector;
// }
//}
}
bool CollisionSystem::OnKeyUp(const Events::KeyUp & event)
+27 -11
View File
@@ -3,27 +3,27 @@
#include "Core/AABB.h"
#include "Rendering/Model.h"
void TriggerSystem::UpdateComponent(World* world, ComponentWrapper& trigger, double dt)
void TriggerSystem::UpdateComponent(World* world, EntityWrapper& entity, ComponentWrapper& component, double dt)
{
//Currently only players can trigger things.
auto players = world->GetComponents("Player");
if (players == nullptr) {
return;
}
EntityID tId = trigger.EntityID;
AABB triggerBox;
EntityID tId = component.EntityID;
boost::optional<AABB> triggerBox = Collision::EntityAbsoluteAABB(entity);
//The trigger *should* have a bounding box, or something, to test against so it can be triggered.
if (!Collision::GetEntityBox(world, tId, triggerBox, true)) {
if (!triggerBox) {
return;
}
for (auto& pc : *players) {
EntityID pId = pc.EntityID;
AABB playerBox;
boost::optional<AABB> playerBox = Collision::EntityAbsoluteAABB(EntityWrapper(world, pId));
//The player can't trigger anything without an AABB.
if (!Collision::GetEntityBox(world, pId, playerBox, true)) {
if (!playerBox) {
continue;
}
if (!Collision::AABBVsAABB(triggerBox, playerBox)) {
if (!Collision::AABBVsAABB(*triggerBox, *playerBox)) {
//Entity is not touching the trigger,
//Throw event if it was previously.
if (throwLeaveIfWasInTrigger(m_EntitiesTouchingTrigger[tId], pId, tId)) {
@@ -34,10 +34,9 @@ void TriggerSystem::UpdateComponent(World* world, ComponentWrapper& trigger, dou
throwLeaveIfWasInTrigger(m_EntitiesCompletelyInTrigger[tId], pId, tId);
} else {
//Entity is at least touching the trigger.
AABB completelyInsideBox;
completelyInsideBox.CreateFromCenter(triggerBox.Center(), triggerBox.Size() - 2.0f * playerBox.Size());
if (Collision::AABBVsAABB(completelyInsideBox, playerBox) &&
glm::all(glm::greaterThan(triggerBox.Size(), playerBox.Size()))) {
AABB completelyInsideBox = AABB::FromOriginSize((*triggerBox).Origin(), (*triggerBox).Size() - 2.0f * (*playerBox).Size());
if (Collision::AABBVsAABB(completelyInsideBox, *playerBox) &&
glm::all(glm::greaterThan((*triggerBox).Size(), (*playerBox).Size()))) {
//Entity is completely inside the trigger.
//If it was only touching before, it is erased.
m_EntitiesTouchingTrigger[tId].erase(pId);
@@ -79,3 +78,20 @@ bool TriggerSystem::throwLeaveIfWasInTrigger(std::unordered_set<EntityID>& trigg
return false;
}
bool TriggerSystem::OnTouch(const Events::TriggerTouch &event)
{
LOG_INFO("Player entity %i touched trigger entity %i.", event.Entity, event.Trigger);
return true;
}
bool TriggerSystem::OnEnter(const Events::TriggerEnter &event)
{
LOG_INFO("Player entity %i entered trigger entity %i.", event.Entity, event.Trigger);
return true;
}
bool TriggerSystem::OnLeave(const Events::TriggerLeave &event)
{
LOG_INFO("Player entity %i left trigger entity %i.", event.Entity, event.Trigger);
return true;
}
+5 -8
View File
@@ -4,7 +4,7 @@
AABB::AABB(const glm::vec3& minPos, const glm::vec3& maxPos)
: m_MinCorner(minPos)
, m_MaxCorner(maxPos)
, m_Center(0.5f * (maxPos + minPos))
, m_Origin(0.5f * (maxPos + minPos))
, m_HalfSize(0.5f * (maxPos - minPos))
{
DEBUG_IF(glm::any(glm::lessThan(m_MaxCorner, m_MinCorner))) {
@@ -20,15 +20,12 @@ AABB::AABB(const glm::vec3& minPos, const glm::vec3& maxPos)
AABB::AABB(const glm::vec4& minPos, const glm::vec4& maxPos)
: AABB(glm::vec3(minPos), glm::vec3(maxPos))
{}
{ }
void AABB::CreateFromCenter(const glm::vec3& center, const glm::vec3& size)
AABB AABB::FromOriginSize(const glm::vec3& origin, const glm::vec3& size)
{
m_Center = center;
m_HalfSize = 0.5f * size;
m_MinCorner = m_Center - m_HalfSize;
m_MaxCorner = m_Center + m_HalfSize;
return AABB(origin - (size/2.f), origin + (size/2.f));
}
AABB::~AABB()
{}
{ }
+274
View File
@@ -0,0 +1,274 @@
#include "Core/EntityFile.h"
EntityFile::EntityFile(boost::filesystem::path path)
: m_FilePath(path)
{
using namespace xercesc;
XMLPlatformUtils::Initialize();
m_GrammarPool = new XMLGrammarPoolImpl();
m_SAX2XMLReader = XMLReaderFactory::createXMLReader(XMLPlatformUtils::fgMemoryManager, m_GrammarPool);
}
EntityFile::~EntityFile()
{
delete m_SAX2XMLReader;
delete m_GrammarPool;
xercesc::XMLPlatformUtils::Terminate();
}
void EntityFile::Parse(const EntityFileHandler* handler) const
{
using namespace xercesc;
EntityFileSAXHandler saxHandler(handler, nullptr);
setReaderFeatures(m_SAX2XMLReader);
m_SAX2XMLReader->setContentHandler(&saxHandler);
m_SAX2XMLReader->setErrorHandler(&saxHandler);
m_SAX2XMLReader->setDeclarationHandler(&saxHandler);
m_SAX2XMLReader->parse(m_FilePath.string().c_str());
}
void EntityFile::setReaderFeatures(xercesc::SAX2XMLReader* reader)
{
using namespace xercesc;
reader->setFeature(XMLUni::fgXercesCacheGrammarFromParse, true);
reader->setFeature(XMLUni::fgXercesUseCachedGrammarInParse, true);
reader->setFeature(XMLUni::fgSAX2CoreValidation, true);
reader->setFeature(XMLUni::fgSAX2CoreNameSpaces, true);
reader->setFeature(XMLUni::fgXercesSchema, true);
reader->setFeature(XMLUni::fgXercesSchemaFullChecking, true);
}
std::size_t EntityFile::GetTypeStride(std::string typeName)
{
std::map<std::string, size_t> typeStrides{
{ "bool", sizeof(bool) },
{ "int", sizeof(int) },
{ "float", sizeof(float) },
{ "double", sizeof(double) },
{ "string", sizeof(std::string) },
{ "enum", sizeof(int) },
{ "Vector", sizeof(glm::vec3) },
{ "Quaternion", sizeof(glm::quat) },
{ "Color", sizeof(glm::vec4) }
};
auto it = typeStrides.find(typeName);
return (it != typeStrides.end()) ? it->second : 0;
}
void EntityFile::WriteAttributeData(char* outData, const ComponentInfo::Field_t& field, const std::map<std::string, std::string>& attributes)
{
if (field.Type == "Vector") {
glm::vec3 vec;
vec.x = boost::lexical_cast<float>(attributes.at("X"));
vec.y = boost::lexical_cast<float>(attributes.at("Y"));
vec.z = boost::lexical_cast<float>(attributes.at("Z"));
memcpy(outData, reinterpret_cast<char*>(&vec), field.Stride);
} else if (field.Type == "Color") {
glm::vec4 vec;
vec.r = boost::lexical_cast<float>(attributes.at("R"));
vec.g = boost::lexical_cast<float>(attributes.at("G"));
vec.b = boost::lexical_cast<float>(attributes.at("B"));
vec.a = boost::lexical_cast<float>(attributes.at("A"));
memcpy(outData, reinterpret_cast<char*>(&vec), field.Stride);
} else if (field.Type == "Quaternion") {
glm::quat q;
q.x = boost::lexical_cast<float>(attributes.at("X"));
q.y = boost::lexical_cast<float>(attributes.at("Y"));
q.z = boost::lexical_cast<float>(attributes.at("Z"));
q.w = boost::lexical_cast<float>(attributes.at("W"));
memcpy(outData, reinterpret_cast<char*>(&q), field.Stride);
} else if (!attributes.empty()) {
LOG_WARNING("%i attributes not handled by any type conversion!", attributes.size());
}
}
void EntityFile::WriteValueData(char* outData, const ComponentInfo::Field_t& field, const char* valueData)
{
if (field.Type == "int" || field.Type == "enum") {
int value = boost::lexical_cast<int>(valueData);
memcpy(outData, reinterpret_cast<char*>(&value), field.Stride);
} else if (field.Type == "float") {
float value = boost::lexical_cast<float>(valueData);
memcpy(outData, reinterpret_cast<char*>(&value), field.Stride);
} else if (field.Type == "double") {
double value = boost::lexical_cast<double>(valueData);
memcpy(outData, reinterpret_cast<char*>(&value), field.Stride);
} else if (field.Type == "bool") {
bool value = (valueData[0] == 't'); // Lazy bool evaluation
memcpy(outData, reinterpret_cast<char*>(&value), field.Stride);
} else if (field.Type == "string") {
new (outData) std::string(valueData);
} else {
LOG_WARNING("Unknown value data type: %s", field.Type.c_str());
}
}
EntityFileSAXHandler::EntityFileSAXHandler(const EntityFileHandler* handler, xercesc::SAX2XMLReader* reader) : m_Handler(handler)
, m_Reader(reader)
{
// 0 is imaginary base parent
m_EntityStack.push(0);
m_StateStack.push(State::Unknown);
}
void EntityFileSAXHandler::startElement(const XMLCh* const _uri, const XMLCh* const _localName, const XMLCh* const _qname, const xercesc::Attributes& attrs)
{
std::string name = XS::ToString(_localName);
if (m_StateStack.top() == State::Unknown || m_StateStack.top() == State::Entity) {
if (name == "Entity") {
m_StateStack.push(State::Entity);
onStartEntity(attrs);
return;
}
if (name == "EntityRef") {
onStartEntityRef(attrs);
return;
}
}
std::string uri = XS::ToString(_uri);
if (m_StateStack.top() == State::Entity) {
if (uri == "components") {
m_StateStack.push(State::Component);
onStartComponent(name);
return;
}
}
if (m_StateStack.top() == State::Component) {
m_StateStack.push(State::ComponentField);
onStartComponentField(name, attrs);
return;
}
}
void EntityFileSAXHandler::endElement(const XMLCh* const _uri, const XMLCh* const _localName, const XMLCh* const _qname)
{
std::string name = XS::ToString(_localName);
if (m_StateStack.top() == State::Entity) {
if (name == "Entity") {
m_StateStack.pop();
onEndEntity();
return;
}
}
std::string uri = XS::ToString(_uri);
if (m_StateStack.top() == State::Component) {
//if (uri == "components") {
m_StateStack.pop();
onEndComponent(name);
return;
//}
}
if (m_StateStack.top() == State::ComponentField) {
m_StateStack.pop();
onEndComponentField(name);
return;
}
}
void EntityFileSAXHandler::characters(const XMLCh* const chars, const XMLSize_t length)
{
if (m_StateStack.top() == State::ComponentField) {
char* transcoded = xercesc::XMLString::transcode(chars);
onFieldData(transcoded);
}
}
void EntityFileSAXHandler::fatalError(const xercesc::SAXParseException& e)
{
XS::ToString s(e.getMessage());
LOG_ERROR("SAXParseException: %s", ((std::string)s).c_str());
//throw e;
}
void EntityFileSAXHandler::error(const xercesc::SAXParseException& e)
{
XS::ToString s(e.getMessage());
LOG_ERROR("SAXParseException: %s", ((std::string)s).c_str());
}
void EntityFileSAXHandler::warning(const xercesc::SAXParseException& e)
{
XS::ToString s(e.getMessage());
LOG_ERROR("SAXParseException: %s", ((std::string)s).c_str());
}
void EntityFileSAXHandler::onStartEntity(const xercesc::Attributes& attrs)
{
EntityID parent = m_EntityStack.top();
if (m_Handler->m_OnStartEntityCallback) {
std::string name;
auto xName = attrs.getValue(XS::ToXMLCh("name"));
if (xName != nullptr) {
name = XS::ToString(xName);
}
m_Handler->m_OnStartEntityCallback(m_NextEntityID, parent, name);
}
m_EntityStack.push(m_NextEntityID);
m_NextEntityID++;
}
void EntityFileSAXHandler::onEndEntity()
{
m_EntityStack.pop();
}
void EntityFileSAXHandler::onStartEntityRef(const xercesc::Attributes& attrs)
{
std::string path = XS::ToString(attrs.getValue(XS::ToXMLCh("file")));
xercesc::SAX2XMLReader* reader = xercesc::XMLReaderFactory::createXMLReader();
EntityFile::setReaderFeatures(reader);
reader->setContentHandler(this);
reader->setErrorHandler(this);
reader->parse(path.c_str());
delete reader;
}
void EntityFileSAXHandler::onStartComponentField(const std::string& field, const xercesc::Attributes& attrs)
{
//LOG_DEBUG(" Field: %s", field.c_str());
m_CurrentField = field;
m_CurrentAttributes.clear();
for (int i = 0; i < attrs.getLength(); i++) {
auto name = attrs.getQName(i);
auto value = attrs.getValue(name);
//LOG_DEBUG(" %s = %s", (char*)XS::ToString(name), (char*)XS::ToString(value));
m_CurrentAttributes[XS::ToString(name).operator std::string()] = XS::ToString(value).operator std::string();
}
if (m_Handler->m_OnStartFieldCallback) {
m_Handler->m_OnStartFieldCallback(m_EntityStack.top(), m_CurrentComponent, field, m_CurrentAttributes);
}
}
void EntityFileSAXHandler::onEndComponent(const std::string& name) { }
void EntityFileSAXHandler::onStartComponent(const std::string& name)
{
//LOG_DEBUG(" Component: %s", name.c_str());
m_CurrentComponent = name;
if (m_Handler->m_OnStartComponentCallback) {
m_Handler->m_OnStartComponentCallback(m_EntityStack.top(), name);
}
}
void EntityFileSAXHandler::onEndComponentField(const std::string& field) { }
void EntityFileSAXHandler::onFieldData(char* data)
{
//LOG_DEBUG(" Data: %s", data);
if (m_Handler->m_OnStartFieldDataCallback) {
m_Handler->m_OnStartFieldDataCallback(m_EntityStack.top(), m_CurrentComponent, m_CurrentField, data);
}
xercesc::XMLString::release(&data);
}
+74
View File
@@ -0,0 +1,74 @@
#include "Core/EntityFileParser.h"
EntityFileParser::EntityFileParser(const EntityFile* entityFile)
: m_EntityFile(entityFile)
{
m_Handler.SetStartEntityCallback(std::bind(&EntityFileParser::onStartEntity, this, std::placeholders::_1, std::placeholders::_2, std::placeholders::_3));
m_Handler.SetStartComponentCallback(std::bind(&EntityFileParser::onStartComponent, this, std::placeholders::_1, std::placeholders::_2));
m_Handler.SetStartFieldCallback(std::bind(&EntityFileParser::onStartComponentField, this, std::placeholders::_1, std::placeholders::_2, std::placeholders::_3, std::placeholders::_4));
m_Handler.SetStartFieldDataCallback(std::bind(&EntityFileParser::onFieldData, this, std::placeholders::_1, std::placeholders::_2, std::placeholders::_3, std::placeholders::_4));
}
EntityID EntityFileParser::MergeEntities(World* world, EntityID baseParent /*= EntityID_Invalid */)
{
m_World = world;
m_EntityIDMapper[0] = baseParent;
m_EntityFile->Parse(&m_Handler);
return m_FirstEntity;
}
void EntityFileParser::onStartEntity(EntityID entity, EntityID parent, const std::string& name)
{
EntityID realParent = m_EntityIDMapper.at(parent);
EntityID realEntity = m_World->CreateEntity(realParent);
if (m_FirstEntity == EntityID_Invalid) {
m_FirstEntity = realEntity;
}
if (!name.empty()) {
m_World->SetName(realEntity, name);
}
m_EntityIDMapper[entity] = realEntity;
LOG_DEBUG("Created entity #%i (%i) with parent %i (%i)", entity, realEntity, parent, realParent);
}
void EntityFileParser::onStartComponent(EntityID entity, const std::string& component)
{
EntityID realEntity = m_EntityIDMapper.at(entity);
m_World->AttachComponent(realEntity, component);
LOG_DEBUG("Attached component of type \"%s\" to entity #%i (%i)", component.c_str(), entity, realEntity);
}
void EntityFileParser::onStartComponentField(EntityID entity, const std::string& componentType, const std::string& fieldName, const std::map<std::string, std::string>& attributes)
{
EntityID realEntity = m_EntityIDMapper.at(entity);
ComponentWrapper component = m_World->GetComponent(realEntity, componentType);
auto fieldIt = component.Info.Fields.find(fieldName);
if (fieldIt == component.Info.Fields.end()) {
LOG_ERROR("Tried to set unknown field \"%s\" of component type \"%s\"! Ignoring.", fieldName.c_str(), componentType.c_str());
return;
}
auto& field = fieldIt->second;
LOG_DEBUG("Field \"%s\" type \"%s\"", fieldName.c_str(), field.Type.c_str());
LOG_DEBUG("Attributes:");
for (auto& kv : attributes) {
LOG_DEBUG("\t%s = %s", kv.first.c_str(), kv.second.c_str());
}
char* data = component.Data + field.Offset;
EntityFile::WriteAttributeData(data, field, attributes);
}
void EntityFileParser::onFieldData(EntityID entity, const std::string& componentType, const std::string& fieldName, const char* fieldData)
{
EntityID realEntity = m_EntityIDMapper.at(entity);
ComponentWrapper component = m_World->GetComponent(realEntity, componentType);
auto fieldIt = component.Info.Fields.find(fieldName);
if (fieldIt == component.Info.Fields.end()) {
return;
}
auto& field = fieldIt->second;
char* data = component.Data + field.Offset;
EntityFile::WriteValueData(data, field, fieldData);
}
+281
View File
@@ -0,0 +1,281 @@
#include "Core/EntityFilePreprocessor.h"
EntityFilePreprocessor::EntityFilePreprocessor(const EntityFile* entityFile)
: m_EntityFile(entityFile)
{
EntityFileHandler handler;
handler.SetStartComponentCallback(std::bind(&EntityFilePreprocessor::onStartComponent, this, std::placeholders::_1, std::placeholders::_2));
m_EntityFile->Parse(&handler);
LOG_DEBUG("___ COMPONENT DEFINITIONS ___");
for (auto& kv : m_ComponentCounts) {
LOG_DEBUG("%s: %i", kv.first.c_str(), kv.second);
}
parseComponentInfo();
for (auto& kv : m_ComponentInfo) {
auto& info = kv.second;
LOG_DEBUG("Component: %s (%s)", info.Name.c_str(), info.Meta->Annotation.c_str());
LOG_DEBUG("Stride: %i", info.Stride);
LOG_DEBUG("Allocation: %i", info.Meta->Allocation);
for (auto& kv : info.Fields) {
auto& field = kv.second;
LOG_DEBUG("\t%i\t%s %s", field.Offset, field.Type.c_str(), kv.first.c_str());
}
}
parseDefaults();
}
void EntityFilePreprocessor::RegisterComponents(World* world)
{
for (auto& kv : m_ComponentInfo) {
world->RegisterComponent(kv.second);
}
}
void EntityFilePreprocessor::onStartComponent(EntityID entity, std::string type)
{
//LOG_DEBUG("Component: %s", type.c_str());
m_ComponentCounts[type]++;
}
void EntityFilePreprocessor::parseComponentInfo()
{
using namespace xercesc;
EntityFileXMLErrorHandler errorHandler;
auto grammarPool = m_EntityFile->GrammarPool();
bool whateverTheFuckThisIs;
auto xsModel = grammarPool->getXSModel(whateverTheFuckThisIs);
// Find component xsd element declarations
std::cout << "Enumerating components..." << std::endl;
// <xs:element name="ComponentName">
auto topLevelElements = xsModel->getComponents(XSConstants::ELEMENT_DECLARATION);
for (unsigned int i = 0; i < topLevelElements->getLength(); ++i) {
auto element = static_cast<XSElementDeclaration*>(topLevelElements->item(i));
std::string nameSpace = XS::ToString(element->getNamespace());
if (nameSpace != "components") {
continue;
}
ComponentInfo compInfo;
compInfo.Meta = std::make_shared<ComponentInfo::Meta_t>();
// Name
compInfo.Name = XS::ToString(element->getName());
// Known allocation
compInfo.Meta->Allocation = m_ComponentCounts[compInfo.Name];
// Annotation
auto componentAnnotation = element->getAnnotation();
if (componentAnnotation != nullptr) {
compInfo.Meta->Annotation = parseAnnotationXML(componentAnnotation->getAnnotationString());
} else {
LOG_WARNING("Component \"%s\" is missing an annotation!", compInfo.Name.c_str());
}
// <xs:complexType>
auto typeDefinition = element->getTypeDefinition();
// Allow empty components
if (typeDefinition == nullptr) {
continue;
}
if (typeDefinition->getTypeCategory() != XSTypeDefinition::COMPLEX_TYPE) {
LOG_ERROR("Failed to parse component definition for \"%s\": Type definition wasn't COMPLEX_TYPE!", compInfo.Name.c_str());
continue;
}
auto complexTypeDefinition = dynamic_cast<XSComplexTypeDefinition*>(typeDefinition);
// <xs:all>
auto modelGroupParticle = complexTypeDefinition->getParticle();
if (modelGroupParticle == nullptr || modelGroupParticle->getTermType() != XSParticle::TERM_MODELGROUP) {
LOG_ERROR("Failed to parse component definition for \"%s\": Model group particle was null or wasn't TERM_MODELGROUP!", compInfo.Name.c_str());
continue;
}
auto modelGroup = modelGroupParticle->getModelGroupTerm();
// <xs:element...
// <xs:attribute...
unsigned int fieldOffset = 0;
auto particles = modelGroup->getParticles();
for (unsigned int i = 0; i < particles->size(); ++i) {
auto particle = particles->elementAt(i);
if (particle->getTermType() != XSParticle::TERM_ELEMENT) {
LOG_ERROR("Failed to parse a field definition in component \"%s\": Particle wasn't TERM_ELEMENT! Skipping.", compInfo.Name.c_str());
continue;
}
auto elementDeclaration = particle->getElementTerm();
std::string name = XS::ToString(elementDeclaration->getName());
std::string type = XS::ToString(elementDeclaration->getTypeDefinition()->getName());
std::string typeNamespace = XS::ToString(elementDeclaration->getTypeDefinition()->getNamespace());
std::string baseType = XS::ToString(elementDeclaration->getTypeDefinition()->getBaseType()->getName());
std::string effectiveType = type;
size_t stride = EntityFile::GetTypeStride(type);
if (stride == 0) {
stride = EntityFile::GetTypeStride(baseType);
if (stride == 0) {
LOG_WARNING("Field \"%s\" in component \"%s\" uses unexpected field type \"%s\" with base type \"%s\". Skipping.", name.c_str(), compInfo.Name.c_str(), type.c_str(), baseType.c_str());
continue;
}
effectiveType = baseType;
}
// Annotation
auto fieldAnnotation = elementDeclaration->getAnnotation();
if (fieldAnnotation != nullptr) {
compInfo.Meta->FieldAnnotations[name] = parseAnnotationXML(fieldAnnotation->getAnnotationString());
} else {
LOG_WARNING("Component field \"%s.%s\" is missing an annotation!", compInfo.Name.c_str(), name.c_str());
}
if (effectiveType == "enum") {
// Parse potential enum type definition for field type
if (compInfo.Meta->FieldEnumDefinitions.count(name) == 0) {
auto enumTypeDefinition = xsModel->getTypeDefinition(XS::ToXMLCh(type), XS::ToXMLCh("components"));
auto xsComplexType = dynamic_cast<XSComplexTypeDefinition*>(enumTypeDefinition);
auto xsComplexContent = xsComplexType->getParticle();
auto xsExtension = xsComplexContent->getModelGroupTerm();
auto xsExtensionParticles = xsExtension->getParticles();
auto xsChoice = xsExtensionParticles->elementAt(0)->getModelGroupTerm();
auto xsChoiceParticles = xsChoice->getParticles();
for (int i = 0; i < xsChoiceParticles->size(); ++i) {
auto enumElement = xsChoiceParticles->elementAt(i)->getElementTerm();
std::string enumName = XS::ToString(enumElement->getName());
std::string enumValue = XS::ToString(enumElement->getConstraintValue());
compInfo.Meta->FieldEnumDefinitions[name][enumName] = boost::lexical_cast<int>(enumValue);
LOG_DEBUG("ENUM %s = %s", enumName.c_str(), enumValue.c_str());
}
}
}
auto& field = compInfo.Fields[name];
field.Name = name;
field.Type = effectiveType;
field.Offset = fieldOffset;
field.Stride = stride;
compInfo.FieldsInOrder.push_back(name);
fieldOffset += stride;
}
compInfo.Stride = fieldOffset;
m_ComponentInfo[compInfo.Name] = compInfo;
}
}
void EntityFilePreprocessor::parseDefaults()
{
using namespace xercesc;
EntityFileXMLErrorHandler errorHandler;
for (auto& ci : m_ComponentInfo) {
// Allocate memory for default values
ci.second.Defaults = std::shared_ptr<char>(new char[ci.second.Stride]);
memset(ci.second.Defaults.get(), 0, ci.second.Stride);
std::string componentName = ci.first;
XercesDOMParser parser(nullptr, XMLPlatformUtils::fgMemoryManager);
parser.setDoSchema(true);
parser.setDoNamespaces(true);
parser.setErrorHandler(&errorHandler);
parser.setValidationScheme(XercesDOMParser::Val_Always);
parser.setValidationSchemaFullChecking(true);
//parser.setDoNamespaces(true);
//boost::filesystem::path schemaLocation = "Schema/Components/" + componentName + ".xsd";
//std::string namespaceSchema = schemaLocation.string();
//parser.setExternalNoNamespaceSchemaLocation("Teamasdasdasdasd.xsd");
LOG_DEBUG("Parsing defaults for component %s", componentName.c_str());
boost::filesystem::path defaultsFile = "Schema/Components/" + componentName + ".xml";
parser.parse(defaultsFile.string().c_str());
auto doc = parser.getDocument();
if (doc == nullptr) {
LOG_ERROR("%s not found! Skipping.", defaultsFile.string().c_str());
continue;
}
// Find the node in the components namespace matching the component name
std::string tagName = componentName;
auto rootNodes = doc->getElementsByTagName(XS::ToXMLCh(tagName));
if (rootNodes->getLength() == 0) {
LOG_ERROR("Couldn't find defaults for component \"%s\"! Skipping.", componentName.c_str());
continue;
}
auto componentElement = dynamic_cast<DOMElement*>(rootNodes->item(0));
// Fill the default value buffer with values
for (auto& kv : ci.second.Fields) {
std::string fieldName = kv.first;
auto& field = kv.second;
auto fieldNodes = componentElement->getElementsByTagName(XS::ToXMLCh(fieldName));
auto fieldNode = fieldNodes->item(0);
if (fieldNode == nullptr) {
LOG_ERROR("Defaults for component \"%s\" is missing field \"%s\"!", componentName.c_str(), fieldName.c_str());
continue;
}
auto fieldElement = dynamic_cast<DOMElement*>(fieldNode);
char* data = ci.second.Defaults.get() + field.Offset;
// Handle potential field attributes
if (fieldElement->hasAttributes()) {
std::map<std::string, std::string> attributes;
auto attributeMap = fieldElement->getAttributes();
for (int i = 0; i < attributeMap->getLength(); ++i) {
auto attribItem = attributeMap->item(i);
attributes[XS::ToString(attribItem->getNodeName())] = XS::ToString(attribItem->getNodeValue());
}
EntityFile::WriteAttributeData(data, field, attributes);
}
auto childNode = fieldElement->getFirstChild();
if (childNode == nullptr) {
continue;
}
// An enum will either have an element node with a text node inside,
// or contain a text node directly.
if (childNode->getNodeType() == DOMNode::ELEMENT_NODE) {
childNode = childNode->getFirstChild();
}
// Handle potential field values
if (childNode->getNodeType() == DOMNode::TEXT_NODE) {
char* cstrValue = XMLString::transcode(childNode->getNodeValue());
EntityFile::WriteValueData(data, field, cstrValue);
XMLString::release(&cstrValue);
}
}
}
}
std::string EntityFilePreprocessor::parseAnnotationXML(const XMLCh* xml)
{
using namespace xercesc;
// Parse annotation XML
char* annotationString = XMLString::transcode(xml);
MemBufInputSource annotationInput(reinterpret_cast<const XMLByte*>(annotationString), strlen(annotationString), "MemBuf: Annotation String");
XercesDOMParser parser(nullptr, XMLPlatformUtils::fgMemoryManager);
//parser.setErrorHandler(&errorHandler);
parser.parse(annotationInput);
XMLString::release(&annotationString);
auto doc = parser.getDocument();
// Save documentation string
auto documentationTags = doc->getElementsByTagName(XS::ToXMLCh("xs:documentation"));
if (documentationTags->getLength() != 0) {
auto child = documentationTags->item(0)->getFirstChild();
if (child != nullptr) {
return XS::ToString(child->getNodeValue());
}
}
return std::string();
}
+140
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#include "Core/EntityFileWriter.h"
#define X(str) XS::ToXMLCh(str)
void EntityFileWriter::WriteWorld(World* world)
{
WriteEntity(world, 0);
}
void EntityFileWriter::WriteEntity(World* world, EntityID entity)
{
using namespace xercesc;
DOMDocument* doc = m_DOMImplementation->createDocument(nullptr, X("Entity"), nullptr);
DOMElement* root = doc->getDocumentElement();
root->setAttribute(X("xmlns:xsi"), X("http://www.w3.org/2001/XMLSchema-instance"));
root->setAttribute(X("xsi:noNamespaceSchemaLocation"), X("../Types/Entity.xsd"));
root->setAttribute(X("xmlns:c"), X("components"));
const std::string& name = world->GetName(entity);
if (!name.empty()) {
root->setAttribute(X("name"), X(name));
}
DOMElement* componentsElement = doc->createElement(X("Components"));
root->appendChild(componentsElement);
appentEntityComponents(componentsElement, world, entity);
DOMElement* childrenElement = doc->createElement(X("Children"));
root->appendChild(childrenElement);
appendEntityChildren(childrenElement, world, entity);
try {
LocalFileFormatTarget* target = new LocalFileFormatTarget(X(m_FilePath.string()));
DOMLSOutput* output = static_cast<DOMImplementationLS*>(m_DOMImplementation)->createLSOutput();
output->setByteStream(target);
m_DOMLSSerializer->write(doc, output);
delete target;
} catch (const std::runtime_error& e) {
LOG_ERROR("Failed to save \"%s\": %s", m_FilePath.c_str(), e.what());
}
doc->release();
}
void EntityFileWriter::appendEntityChildren(xercesc::DOMElement* parentElement, const World* world, EntityID entity)
{
using namespace xercesc;
DOMDocument* doc = parentElement->getOwnerDocument();
auto childrenRange = world->GetEntityChildren().equal_range(entity);
for (auto it = childrenRange.first; it != childrenRange.second; ++it) {
EntityID childEntity = it->second;
DOMElement* entityElement = doc->createElement(X("Entity"));
const std::string& name = world->GetName(childEntity);
if (!name.empty()) {
entityElement->setAttribute(X("name"), X(name));
}
parentElement->appendChild(entityElement);
DOMElement* componentsElement = doc->createElement(X("Components"));
entityElement->appendChild(componentsElement);
appentEntityComponents(componentsElement, world, childEntity);
DOMElement* childrenElement = doc->createElement(X("Children"));
entityElement->appendChild(childrenElement);
appendEntityChildren(childrenElement, world, childEntity);
}
}
void EntityFileWriter::appentEntityComponents(xercesc::DOMElement* parentElement, const World* world, EntityID entity)
{
using namespace xercesc;
DOMDocument* doc = parentElement->getOwnerDocument();
auto& componentPools = world->GetComponentPools();
// Step through all component pools to get an entity's components
// HACK: This is sloooow.
for (auto& kv : componentPools) {
const std::string& componentName = kv.first;
if (!world->HasComponent(entity, componentName)) {
continue;
}
std::string qualifiedComponentName = "c:" + componentName;
DOMElement* componentElement = doc->createElement(X(qualifiedComponentName));
parentElement->appendChild(componentElement);
ComponentWrapper c = kv.second->GetByEntity(entity);
for (auto& kv : c.Info.Fields) {
std::string fieldName = kv.first;
auto& field = kv.second;
// Ignore fields that are equal to the default
// HACK: This is probably sloooooow, but it's okay.
if (memcmp(c.Data + field.Offset, c.Info.Defaults.get() + field.Offset, field.Stride) == 0) {
continue;
}
DOMElement* fieldElement = doc->createElement(X(fieldName));
componentElement->appendChild(fieldElement);
if (field.Type == "Vector") {
const glm::vec3& vec = c[fieldName];
fieldElement->setAttribute(X("X"), X(boost::lexical_cast<std::string>(vec.x)));
fieldElement->setAttribute(X("Y"), X(boost::lexical_cast<std::string>(vec.y)));
fieldElement->setAttribute(X("Z"), X(boost::lexical_cast<std::string>(vec.z)));
} else if (field.Type == "Color") {
const glm::vec4& vec = c[fieldName];
fieldElement->setAttribute(X("R"), X(boost::lexical_cast<std::string>(vec.r)));
fieldElement->setAttribute(X("G"), X(boost::lexical_cast<std::string>(vec.g)));
fieldElement->setAttribute(X("B"), X(boost::lexical_cast<std::string>(vec.b)));
fieldElement->setAttribute(X("A"), X(boost::lexical_cast<std::string>(vec.a)));
} else if (field.Type == "Quaternion") {
const glm::quat& q = c[fieldName];
fieldElement->setAttribute(X("X"), X(boost::lexical_cast<std::string>(q.x)));
fieldElement->setAttribute(X("Y"), X(boost::lexical_cast<std::string>(q.y)));
fieldElement->setAttribute(X("Z"), X(boost::lexical_cast<std::string>(q.z)));
fieldElement->setAttribute(X("W"), X(boost::lexical_cast<std::string>(q.w)));
} else if (field.Type == "int" || field.Type == "enum") {
const int& value = c[fieldName];
fieldElement->appendChild(doc->createTextNode(X(boost::lexical_cast<std::string>(value))));
} else if (field.Type == "float") {
const float& value = c[fieldName];
fieldElement->appendChild(doc->createTextNode(X(boost::lexical_cast<std::string>(value))));
} else if (field.Type == "double") {
const double& value = c[fieldName];
fieldElement->appendChild(doc->createTextNode(X(boost::lexical_cast<std::string>(value))));
} else if (field.Type == "bool") {
const bool& value = c[fieldName];
if (value) {
fieldElement->appendChild(doc->createTextNode(X("true")));
} else {
fieldElement->appendChild(doc->createTextNode(X("false")));
}
} else if (field.Type == "string") {
const std::string& value = c[fieldName];
fieldElement->appendChild(doc->createTextNode(X(value)));
}
}
}
}
+30
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#include "Core/EntityWrapper.h"
#include "Core/World.h"
const EntityWrapper EntityWrapper::Invalid = EntityWrapper(nullptr, EntityID_Invalid);
bool EntityWrapper::operator==(const EntityWrapper& e)
{
return (this->World == e.World) && (this->ID == e.ID);
}
bool EntityWrapper::HasComponent(const std::string& componentName)
{
return World->HasComponent(ID, componentName);
}
ComponentWrapper EntityWrapper::operator[](const std::string& componentName)
{
if (World->HasComponent(ID, componentName)) {
return World->GetComponent(ID, componentName);
} else {
LOG_WARNING("EntityWrapper implicitly attached \"%s\" component to #%i as a result of a fetch request!", componentName.c_str(), ID);
return World->AttachComponent(ID, componentName);
}
}
EntityWrapper::operator EntityID()
{
return this->ID;
}
-495
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@@ -1,495 +0,0 @@
#include "Core/EntityXMLFile.h"
#include "Core/World.h"
unsigned int EntityXMLFile::InstanceCount = 0;
EntityXMLFile::EntityXMLFile(std::string path)
: m_EntityFile(path)
{
using namespace xercesc;
if (InstanceCount == 0) {
XMLPlatformUtils::Initialize();
}
InstanceCount++;
m_GrammarPool = new XMLGrammarPoolImpl();
m_ErrorHandler = new EntityParserXMLErrorHandler();
m_DOMParser = new XercesDOMParser(nullptr, XMLPlatformUtils::fgMemoryManager, m_GrammarPool);
m_DOMParser->setErrorHandler(m_ErrorHandler);
m_DOMParser->setDoNamespaces(true);
m_DOMParser->setDoXInclude(true);
m_DOMParser->setDoSchema(true);
m_DOMParser->setValidationSchemaFullChecking(true);
m_DOMParser->setValidationScheme(xercesc::XercesDOMParser::Val_Auto);
m_DOMParser->setValidationSchemaFullChecking(true);
m_DOMParser->setValidationConstraintFatal(false);
m_DOMParser->setIncludeIgnorableWhitespace(false);
// Make sure schema grammar is kept after validation
m_DOMParser->cacheGrammarFromParse(true);
// HACK: Use Sax2 parser instead so the entire DOM doesn't have to reside in memory
m_DOMParser->parse(m_EntityFile.c_str());
m_DOMDocument = m_DOMParser->getDocument();
// 1. Fill in ComponentInfo name, fields, default values and metadata from PSVI
parseComponentInfo();
// 2. Parse default value files for those components
parseDefaults();
// 3. Allocate component structures
predictComponentAllocation();
}
EntityXMLFile::~EntityXMLFile()
{
using namespace xercesc;
if (m_DOMParser != nullptr) {
delete m_DOMParser;
}
if (m_ErrorHandler != nullptr) {
delete m_ErrorHandler;
}
if (m_GrammarPool != nullptr) {
delete m_GrammarPool;
}
InstanceCount--;
if (InstanceCount == 0) {
XMLPlatformUtils::Terminate();
}
}
void EntityXMLFile::PopulateWorld(World* world)
{
for (auto& pair : m_ComponentInfo) {
world->RegisterComponent(pair.second);
}
// 4. Parse entity hierarchy
auto root = m_DOMDocument->getDocumentElement();
parseEntityGraph(world, root, 0);
}
void EntityXMLFile::preprocess(std::string inPath, std::string outPath)
{
using namespace xercesc;
static const XMLCh gLS[] = { 'L', 'S', '\0' };
DOMImplementationLS* di = static_cast<DOMImplementationLS*>(DOMImplementationRegistry::getDOMImplementation(gLS));
// Parse the file
DOMLSParser* parser = di->createLSParser(DOMImplementationLS::MODE_SYNCHRONOUS, nullptr);
DOMConfiguration* config = parser->getDomConfig();
config->setParameter(XMLUni::fgDOMNamespaces, true);
config->setParameter(XMLUni::fgXercesSchema, true);
config->setParameter(XMLUni::fgXercesHandleMultipleImports, true);
config->setParameter(XMLUni::fgXercesSchemaFullChecking, true);
config->setParameter(XMLUni::fgXercesDoXInclude, true);
auto errHandler = new EntityPreprocessorXMLErrorHandler();
config->setParameter(XMLUni::fgDOMErrorHandler, errHandler);
auto source = new LocalFileInputSource(XSTR(inPath.c_str()));
Wrapper4InputSource* domSourceWrapper = new Wrapper4InputSource(source);
DOMDocument* doc = parser->parse(dynamic_cast<DOMLSInput*>(domSourceWrapper));
// Serialize and output the new XML
DOMLSSerializer* writer = di->createLSSerializer();
DOMLSOutput* output = di->createLSOutput();
XMLFormatTarget* formatTarget = new LocalFileFormatTarget(outPath.c_str());
// TODO: MemBufFormatTarget* formatTarget = new MemBufFormatTarget()
output->setByteStream(formatTarget);
writer->write(doc, output);
delete formatTarget;
output->release();
writer->release();
parser->release();
}
void EntityXMLFile::parseComponentInfo()
{
using namespace xercesc;
bool wasChanged;
XSModel* xsModel = m_GrammarPool->getXSModel(wasChanged);
// Find component xsd element declarations
std::cout << "Enumerating components..." << std::endl;
// <xs:element name="ComponentName">
auto topLevelElements = xsModel->getComponents(XSConstants::ELEMENT_DECLARATION);
for (unsigned int i = 0; i < topLevelElements->getLength(); ++i) {
auto element = static_cast<XSElementDeclaration*>(topLevelElements->item(i));
std::string nameSpace(XSTR(element->getNamespace()));
if (nameSpace != "components") {
continue;
}
ComponentInfo compInfo;
// Name
compInfo.Name = XSTR(element->getName());
// Annotation
auto componentAnnotation = element->getAnnotation();
if (componentAnnotation != nullptr) {
// Parse annotation XML
char* annotationString = XMLString::transcode(componentAnnotation->getAnnotationString());
MemBufInputSource annotationInput(reinterpret_cast<const XMLByte*>(annotationString), strlen(annotationString), "MemBuf: Annotation String");
XercesDOMParser parser(nullptr, XMLPlatformUtils::fgMemoryManager, m_GrammarPool);
parser.setErrorHandler(m_ErrorHandler);
parser.parse(annotationInput);
XMLString::release(&annotationString);
auto doc = parser.getDocument();
// Add allocation estimation(s)
auto allocationTags = doc->getElementsByTagName(XSTR("meta:allocation"));
for (int i = 0; i < allocationTags->getLength(); ++i) {
auto allocation = dynamic_cast<DOMElement*>(allocationTags->item(i));
auto child = allocation->getFirstChild();
if (child == nullptr) {
continue;
}
XSValue::Status status;
XSValue* val = XSValue::getActualValue(child->getNodeValue(), XSValue::dt_integer, status);
compInfo.Meta.Allocation += val->fData.fValue.f_int;
}
// Save documentation string
auto documentationTags = doc->getElementsByTagName(XSTR("xs:documentation"));
if (documentationTags->getLength() != 0) {
auto child = documentationTags->item(0)->getFirstChild();
if (child != nullptr) {
compInfo.Meta.Annotation = XSTR(child->getNodeValue());
}
}
// TODO: Parse annotation string XML
// compInfo.Meta.Allocation = ...
} else {
std::cout << "Warning: Component is missing an annotation!" << std::endl;
}
// <xs:complexType>
auto typeDefinition = element->getTypeDefinition();
if (typeDefinition->getTypeCategory() != XSTypeDefinition::COMPLEX_TYPE) {
std::cerr << "Error: Type definition wasn't COMPLEX_TYPE! Skipping." << std::endl;
continue;
}
auto complexTypeDefinition = dynamic_cast<XSComplexTypeDefinition*>(typeDefinition);
// <xs:all>
auto modelGroupParticle = complexTypeDefinition->getParticle();
if (modelGroupParticle->getTermType() != XSParticle::TERM_MODELGROUP) {
std::cerr << "Error: Model group particle wasn't TERM_MODELGROUP! Skipping." << std::endl;
continue;
}
auto modelGroup = modelGroupParticle->getModelGroupTerm();
// <xs:element...
// <xs:attribute...
unsigned int fieldOffset = 0;
auto particles = modelGroup->getParticles();
for (unsigned int i = 0; i < particles->size(); ++i) {
auto particle = particles->elementAt(i);
if (particle->getTermType() != XSParticle::TERM_ELEMENT) {
std::cerr << "Error: Particle wasn't TERM_ELEMENT! Skipping." << std::endl;
continue;
}
auto elementDeclaration = particle->getElementTerm();
std::string name = XSTR(elementDeclaration->getName());
std::string type = XSTR(elementDeclaration->getTypeDefinition()->getName());
size_t stride = getTypeStride(type);
if (stride == 0) {
std::cout << "Warning: Field \"" << name << "\" in component \"" << compInfo.Name << "\" uses unexpected field type \"" << type << "\". Skipping." << std::endl;
continue;
}
compInfo.FieldTypes[name] = type;
compInfo.FieldOffsets[name] = fieldOffset;
fieldOffset += getTypeStride(type);
}
compInfo.Meta.Stride = fieldOffset;
m_ComponentInfo[compInfo.Name] = compInfo;
}
}
void EntityXMLFile::parseDefaults()
{
using namespace xercesc;
for (auto& ci : m_ComponentInfo) {
// Allocate memory for default values
ci.second.Defaults = std::shared_ptr<char>(new char[ci.second.Meta.Stride]);
memset(ci.second.Defaults.get(), 0, ci.second.Meta.Stride);
XercesDOMParser parser(nullptr, XMLPlatformUtils::fgMemoryManager);
parser.setErrorHandler(m_ErrorHandler);
std::string componentName = ci.first;
LOG_DEBUG("Parsing defaults for component %s", componentName.c_str());
boost::filesystem::path defaultsFile = "Schema/Components/" + componentName + ".xml";
parser.parse(defaultsFile.string().c_str());
auto doc = parser.getDocument();
if (doc == nullptr) {
LOG_ERROR("%s not found! Skipping.", defaultsFile.string().c_str());
continue;
}
// Find the node in the components namespace matching the component name
std::string tagName = "c:" + componentName;
auto rootNodes = doc->getElementsByTagName(XSTR(tagName.c_str()));
if (rootNodes->getLength() == 0) {
LOG_ERROR("Couldn't find defaults for component \"%s\"! Skipping.", componentName.c_str());
continue;
}
auto componentElement = dynamic_cast<DOMElement*>(rootNodes->item(0));
// Fill the default value buffer with values
for (auto& field : ci.second.FieldOffsets) {
std::string fieldName = field.first;
auto fieldNodes = componentElement->getElementsByTagName(XSTR(fieldName.c_str()));
auto fieldNode = fieldNodes->item(0);
if (fieldNode == nullptr) {
LOG_ERROR("Defaults for component \"%s\" is missing field \"%s\"!", componentName.c_str(), fieldName.c_str());
continue;
}
auto fieldElement = dynamic_cast<DOMElement*>(fieldNode);
std::string fieldType = ci.second.FieldTypes.at(fieldName);
unsigned int fieldOffset = ci.second.FieldOffsets.at(fieldName);
writeData(fieldElement, fieldType, ci.second.Defaults.get() + fieldOffset);
}
}
}
void EntityXMLFile::predictComponentAllocation()
{
using namespace xercesc;
auto root = m_DOMDocument->getDocumentElement();
// Count static instances of components present in entity hierarchy
auto components = m_DOMDocument->getElementsByTagNameNS(XSTR("components"), XSTR("*"));
for (int i = 0; i < components->getLength(); ++i) {
auto component = dynamic_cast<DOMElement*>(components->item(i));
std::string componentName = XSTR(component->getLocalName());
auto& compInfo = m_ComponentInfo.at(componentName);
compInfo.Meta.Allocation += 1;
}
std::cout << "COMPONENT INFO" << std::endl;
for (auto& pair : m_ComponentInfo) {
ComponentInfo& ci = pair.second;
std::cout << "Component: " << ci.Name << " (" << ci.Meta.Annotation << ")" << std::endl;
std::cout << " Allocation: " << ci.Meta.Allocation << std::endl;
std::cout << " Fields:" << std::endl;
// Calculate component size
std::size_t stride = 0;
// Add size of fields
for (auto& field : ci.FieldTypes) {
std::cout << " " << field.second << " " << field.first << " (" << getTypeStride(field.second) << " byte)" << std::endl;
stride += getTypeStride(field.second);
}
std::cout << " Stride: " << ci.Meta.Stride << std::endl;
}
}
void EntityXMLFile::parseEntityGraph(World* world, xercesc::DOMElement* element, EntityID parentEntity)
{
using namespace xercesc;
// Create entity
EntityID entity = world->CreateEntity(parentEntity);
LOG_DEBUG("Created entity %i, parent %i", entity, parentEntity);
// Add components
auto components = m_DOMDocument->evaluate(XSTR("Components/*"), element, nullptr, DOMXPathResult::ORDERED_NODE_SNAPSHOT_TYPE, nullptr);
for (int i = 0; i < components->getSnapshotLength(); i++) {
components->snapshotItem(i);
auto componentElement = dynamic_cast<DOMElement*>(components->getNodeValue());
std::string componentName = XSTR(componentElement->getLocalName());
auto& ci = m_ComponentInfo.at(componentName);
// Attach the component
auto c = world->AttachComponent(entity, componentName);
LOG_DEBUG("Attached %s component", componentName.c_str());
// Write field data
auto fields = componentElement->getChildNodes();
for (int j = 0; j < fields->getLength(); ++j) {
auto fieldNode = fields->item(j);
auto nodeType = fieldNode->getNodeType();
if (nodeType != DOMNode::ELEMENT_NODE) {
continue;
}
auto field = dynamic_cast<DOMElement*>(fields->item(j));
//const XMLCh* value = fields->item(j)->getTextContent();
std::string fieldName(XSTR(field->getLocalName()));
if (ci.FieldTypes.find(fieldName) == ci.FieldTypes.end()) {
std::cout << "Warning: Component \"" << componentName << "\" contains invalid field \"" << fieldName << "\". Skipping." << std::endl;
continue;
}
std::string fieldType = ci.FieldTypes.at(fieldName);
unsigned int fieldOffset = ci.FieldOffsets.at(fieldName);
std::string fieldValue(XSTR(field->getTextContent()));
LOG_DEBUG(" %s %s = %s", fieldType.c_str(), fieldName.c_str(), fieldValue.c_str());
writeData(field, fieldType, c.Data + fieldOffset);
}
}
// Recurse children
auto children = m_DOMDocument->evaluate(XSTR("Children/Entity"), element, nullptr, DOMXPathResult::ORDERED_NODE_SNAPSHOT_TYPE, nullptr);
for (int i = 0; i < children->getSnapshotLength(); i++) {
children->snapshotItem(i);
parseEntityGraph(world, dynamic_cast<DOMElement*>(children->getNodeValue()), entity);
}
//auto components = m_DOMDocument->getElementsByTagNameNS(XSTR("components"), XSTR("*"));
//for (int i = 0; i < components->getLength(); ++i) {
// auto component = dynamic_cast<DOMElement*>(components->item(i));
// std::string componentName = XSTR(component->getLocalName());
// auto& compStore = m_ComponentStore.at(componentName);
// auto& compInfo = compStore.Info;
// char* data = &compStore.Data[compStore.Size*compStore.Stride];
// compStore.Size += 1;
// auto fields = component->getChildNodes();
// for (int j = 0; j < fields->getLength(); ++j) {
// auto field = fields->item(j);
// auto nodeType = field->getNodeType();
// if (nodeType != DOMNode::ELEMENT_NODE) {
// continue;
// }
// //auto field = dynamic_cast<DOMElement*>(fields->item(j));
// //const XMLCh* value = fields->item(j)->getTextContent();
// std::string fieldName = XSTR(field->getLocalName());
// if (compInfo.FieldTypes.find(fieldName) == compInfo.FieldTypes.end()) {
// std::cout << "Warning: Component \"" << componentName << "\" contains invalid field \"" << fieldName << "\". Skipping." << std::endl;
// continue;
// }
// std::string fieldType = compInfo.FieldTypes.at(fieldName);
// unsigned int fieldOffset = compInfo.FieldOffsets.at(fieldName);
// XSValue::DataType dataType = XSValue::getDataType(XSTR(fieldType.c_str()));
// if (dataType == XSValue::DataType::dt_MAXCOUNT) {
// // TODO:
// continue;
// }
// if (dataType == XSValue::DataType::dt_string) {
// char* str = XMLString::transcode(field->getTextContent());
// std::string standardString(str);
// XMLString::release(&str);
// memcpy(&data[fieldOffset], reinterpret_cast<char*>(&standardString), getTypeStride(fieldType));
// } else {
// XSValue::Status status;
// XSValue* val = XSValue::getActualValue(field->getTextContent(), dataType, status);
// memcpy(&data[fieldOffset], reinterpret_cast<char*>(&val->fData.fValue), getTypeStride(fieldType));
// }
// }
//}
//auto entities = m_DOMDocument->getElementsByTagName(XSTR("Entity"));
//for (int i = 0; i < entities->getLength(); ++i) {
// auto entity = dynamic_cast<DOMElement*>(entities->item(i));
// //entity->setIdAttribute()
// std::cout << "ENTITY " << i + 1 << std::endl;
//}
}
std::size_t EntityXMLFile::getTypeStride(std::string typeName)
{
std::map<std::string, size_t> typeStrides{
{ "bool", sizeof(bool) },
{ "int", sizeof(int) },
{ "float", sizeof(float) },
{ "double", sizeof(double) },
{ "string", sizeof(std::string) },
{ "Vector", sizeof(glm::vec3) },
{ "Quaternion", sizeof(glm::quat) },
{ "Color", sizeof(glm::vec4) }
};
auto it = typeStrides.find(typeName);
return (it != typeStrides.end()) ? it->second : 0;
}
float EntityXMLFile::getFloatAttribute(const xercesc::DOMElement* element, const char* attribute) const
{
using namespace xercesc;
XSValue::Status status;
XSValue* val = XSValue::getActualValue(element->getAttribute(XSTR(attribute)), xercesc::XSValue::DataType::dt_double, status);
if (val == nullptr) {
LOG_ERROR("Element \"%s\" doesn't have an \"%s\" attribute!", XSTR(element->getTagName()), attribute);
return 0.f;
} else {
return static_cast<float>(val->fData.fValue.f_double);
}
}
void EntityXMLFile::writeData(const xercesc::DOMElement* element, std::string typeName, char* outData)
{
using namespace xercesc;
if (typeName == "Vector") {
glm::vec3 vec;
vec.x = getFloatAttribute(element, "X");
vec.y = getFloatAttribute(element, "Y");
vec.z = getFloatAttribute(element, "Z");
memcpy(outData, reinterpret_cast<char*>(&vec), getTypeStride(typeName));
} else if (typeName == "Color") {
glm::vec4 vec;
vec.r = getFloatAttribute(element, "R");
vec.g = getFloatAttribute(element, "G");
vec.b = getFloatAttribute(element, "B");
vec.a = getFloatAttribute(element, "A");
memcpy(outData, reinterpret_cast<char*>(&vec), getTypeStride(typeName));
} else if (typeName == "Quaternion") {
glm::quat q;
q.x = getFloatAttribute(element, "X");
q.y = getFloatAttribute(element, "Y");
q.z = getFloatAttribute(element, "Z");
q.w = getFloatAttribute(element, "W");
memcpy(outData, reinterpret_cast<char*>(&q), getTypeStride(typeName));
} else if (typeName == "float") {
XSValue::Status status;
XSValue* val = XSValue::getActualValue(element->getTextContent(), xercesc::XSValue::DataType::dt_float, status);
memcpy(outData, reinterpret_cast<char*>(&val->fData.fValue.f_float), getTypeStride(typeName));
} else if (typeName == "double") {
XSValue::Status status;
XSValue* val = XSValue::getActualValue(element->getTextContent(), xercesc::XSValue::DataType::dt_double, status);
memcpy(outData, reinterpret_cast<char*>(&val->fData.fValue.f_double), getTypeStride(typeName));
} else if (typeName == "bool") {
XSValue::Status status;
XSValue* val = XSValue::getActualValue(element->getTextContent(), xercesc::XSValue::DataType::dt_boolean, status);
memcpy(outData, reinterpret_cast<char*>(&val->fData.fValue.f_bool), getTypeStride(typeName));
} else {
XSValue::DataType dataType = XSValue::getDataType(XSTR(typeName.c_str()));
if (dataType == XSValue::DataType::dt_string) {
char* str = XMLString::transcode(element->getTextContent());
std::string standardString(str);
new (outData) std::string(str);
XMLString::release(&str);
//memcpy(outData, reinterpret_cast<char*>(&standardString), getTypeStride(typeName));
} else {
//XSValue::Status status;
//XSValue* val = XSValue::getActualValue(element->getTextContent(), dataType, status);
//memcpy(outData, reinterpret_cast<char*>(&val->fData.fValue), getTypeStride(typeName));
LOG_WARNING("Unknown native data type: %s", typeName.c_str());
}
}
}
+26 -19
View File
@@ -2,21 +2,24 @@
BaseEventRelay::~BaseEventRelay()
{
if (m_Broker != nullptr) {
if (m_Broker != nullptr) {
m_Broker->Unsubscribe(*this);
}
}
}
void EventBroker::Unsubscribe(BaseEventRelay &relay) // ?
void EventBroker::Unsubscribe(BaseEventRelay& relay) // ?
{
if (m_IsProcessing) {
m_RelaysToUnsubscribe.push_back(&relay);
} else {
unsubscribeImmediate(relay);
}
auto identifier = std::make_tuple(relay.m_EventID, relay.m_ContextTypeName, relay.m_EventTypeName);
relay.m_Broker = nullptr;
if (m_IsProcessing) {
m_RelaysToUnsubscribe.push_back(identifier);
} else {
unsubscribeImmediate(identifier);
}
}
void EventBroker::Subscribe(BaseEventRelay &relay)
void EventBroker::Subscribe(BaseEventRelay& relay)
{
if (m_IsProcessing) {
m_RelaysToSubscribe.push_back(&relay);
@@ -38,12 +41,11 @@ int EventBroker::Process(std::string contextTypeName)
int eventsProcessed = 0;
for (auto &pair : *m_EventQueueRead) {
std::string &eventTypeName = pair.first;
std::string& eventTypeName = pair.first;
std::shared_ptr<Event> event = pair.second;
auto itpair = relays.equal_range(eventTypeName);
for (auto it2 = itpair.first; it2 != itpair.second; it2++)
{
for (auto it2 = itpair.first; it2 != itpair.second; it2++) {
std::string name = it2->first;
BaseEventRelay* relay = it2->second;
relay->Receive(event);
@@ -60,8 +62,8 @@ int EventBroker::Process(std::string contextTypeName)
m_RelaysToSubscribe.clear();
// Process pending unsubscriptions
for (auto& r : m_RelaysToUnsubscribe) {
unsubscribeImmediate(*r);
for (auto& identifier : m_RelaysToUnsubscribe) {
unsubscribeImmediate(identifier);
}
m_RelaysToUnsubscribe.clear();
@@ -81,21 +83,26 @@ void EventBroker::Clear()
void EventBroker::subscribeImmediate(BaseEventRelay& relay)
{
relay.m_Broker = this;
relay.m_EventID = m_NextEventID++;
m_ContextRelays[relay.m_ContextTypeName].insert(std::make_pair(relay.m_EventTypeName, &relay));
}
void EventBroker::unsubscribeImmediate(BaseEventRelay& relay)
void EventBroker::unsubscribeImmediate(std::tuple<EventID, ContextTypeName_t, EventTypeName_t> identifier)
{
auto contextIt = m_ContextRelays.find(relay.m_ContextTypeName);
EventID eventID;
ContextTypeName_t contextTypeName;
EventTypeName_t eventTypeName;
std::tie(eventID, contextTypeName, eventTypeName) = identifier;
auto contextIt = m_ContextRelays.find(contextTypeName);
if (contextIt == m_ContextRelays.end()) {
return;
}
auto eventRelays = contextIt->second;
auto itpair = eventRelays.equal_range(relay.m_EventTypeName);
auto itpair = eventRelays.equal_range(eventTypeName);
for (auto it = itpair.first; it != itpair.second; ++it) {
if (it->second == &relay) {
relay.m_Broker = nullptr;
if (it->second->m_EventID == eventID) {
eventRelays.erase(it);
break;
}
+5
View File
@@ -0,0 +1,5 @@
#include "Core/MemoryPool.h"
namespace DisableMemoryPool
{
bool Value = false;
}
@@ -2,7 +2,7 @@
#include <algorithm>
#include <bitset>
#include "Core/OctTree.h"
#include "Core/Octree.h"
#include "Collision/Collision.h"
namespace
@@ -21,65 +21,61 @@ bool isFirstLower(const ChildInfo& first, const ChildInfo& second)
}
OctTree::OctTree()
: OctTree(AABB(), 0)
{}
OctTree::OctTree(const AABB& octTreeBounds, int subDivisions)
: m_Root(new OctChild(octTreeBounds, subDivisions, m_StaticObjects, m_DynamicObjects))
Octree::Octree(const AABB& octTreeBounds, int subDivisions)
: m_Root(new Child(octTreeBounds, subDivisions, m_StaticObjects, m_DynamicObjects))
, m_UpdatedOnce(false)
{}
{ }
OctTree::~OctTree()
Octree::~Octree()
{
delete m_Root;
}
void OctTree::AddDynamicObject(const AABB& box)
void Octree::AddDynamicObject(const AABB& box)
{
m_Root->AddDynamicObject(box);
m_DynamicObjects.push_back(box);
}
void OctTree::AddStaticObject(const AABB& box)
void Octree::AddStaticObject(const AABB& box)
{
m_Root->AddStaticObject(box);
m_StaticObjects.push_back(box);
}
void OctTree::BoxesInSameRegion(const AABB& box, std::vector<AABB>& outBoxes)
void Octree::BoxesInSameRegion(const AABB& box, std::vector<AABB>& outBoxes)
{
falsifyObjectChecks();
m_Root->BoxesInSameRegion(box, outBoxes);
}
void OctTree::ClearObjects()
void Octree::ClearObjects()
{
m_StaticObjects.clear();
m_DynamicObjects.clear();
m_Root->ClearObjects();
}
void OctTree::ClearDynamicObjects()
void Octree::ClearDynamicObjects()
{
m_DynamicObjects.clear();
m_Root->ClearDynamicObjects();
}
bool OctTree::RayCollides(const Ray& ray, Output& data)
bool Octree::RayCollides(const Ray& ray, Output& data)
{
falsifyObjectChecks();
data.CollideDistance = -1;
return m_Root->RayCollides(ray, data);
}
bool OctTree::BoxCollides(const AABB& boxToTest, AABB& outBoxIntersected)
bool Octree::BoxCollides(const AABB& boxToTest, AABB& outBoxIntersected)
{
falsifyObjectChecks();
return m_Root->BoxCollides(boxToTest, outBoxIntersected);
}
void OctTree::falsifyObjectChecks()
void Octree::falsifyObjectChecks()
{
for (auto& obj : m_StaticObjects) {
obj.Checked = false;
@@ -89,7 +85,7 @@ void OctTree::falsifyObjectChecks()
}
}
OctTree::OctChild::OctChild(const AABB& octTreeBounds,
Octree::Child::Child(const AABB& octTreeBounds,
int subDivisions,
std::vector<ContainedObject>& staticObjects,
std::vector<ContainedObject>& dynamicObjects)
@@ -98,7 +94,7 @@ OctTree::OctChild::OctChild(const AABB& octTreeBounds,
, m_DynamicObjectsRef(dynamicObjects)
{
if (subDivisions == 0) {
for (OctChild*& c : m_Children) {
for (Child*& c : m_Children) {
c = nullptr;
}
} else {
@@ -107,7 +103,7 @@ OctTree::OctChild::OctChild(const AABB& octTreeBounds,
glm::vec3 minPos, maxPos;
const glm::vec3& parentMin = m_Box.MinCorner();
const glm::vec3& parentMax = m_Box.MaxCorner();
const glm::vec3& parentCenter = m_Box.Center();
const glm::vec3& parentCenter = m_Box.Origin();
std::bitset<3> bits(i);
//If child is 4,5,6,7.
if (bits.test(2)) {
@@ -134,14 +130,14 @@ OctTree::OctChild::OctChild(const AABB& octTreeBounds,
minPos.z = parentMin.z;
maxPos.z = parentCenter.z;
}
m_Children[i] = new OctChild(AABB(minPos, maxPos), subDivisions, m_StaticObjectsRef, m_DynamicObjectsRef);
m_Children[i] = new Child(AABB(minPos, maxPos), subDivisions, m_StaticObjectsRef, m_DynamicObjectsRef);
}
}
}
OctTree::OctChild::~OctChild()
Octree::Child::~Child()
{
for (OctChild*& c : m_Children) {
for (Child*& c : m_Children) {
if (c != nullptr) {
delete c;
c = nullptr;
@@ -149,7 +145,7 @@ OctTree::OctChild::~OctChild()
}
}
bool OctTree::OctChild::BoxCollides(const AABB& boxToTest, AABB& outBoxIntersected) const
bool Octree::Child::BoxCollides(const AABB& boxToTest, AABB& outBoxIntersected) const
{
if (hasChildren()) {
for (int i : childIndicesContainingBox(boxToTest)) {
@@ -182,7 +178,7 @@ bool OctTree::OctChild::BoxCollides(const AABB& boxToTest, AABB& outBoxIntersect
return false;
}
bool OctTree::OctChild::RayCollides(const Ray& ray, Output& data) const
bool Octree::Child::RayCollides(const Ray& ray, Output& data) const
{
//If the node AABB is missed, everything it contains is missed.
if (Collision::RayAABBIntr(ray, m_Box)) {
@@ -192,7 +188,7 @@ bool OctTree::OctChild::RayCollides(const Ray& ray, Output& data) const
std::vector<ChildInfo> childInfos;
childInfos.reserve(8);
for (int i = 0; i < 8; ++i) {
childInfos.push_back({ i, glm::distance(ray.Origin(), m_Children[i]->m_Box.Center()) });
childInfos.push_back({ i, glm::distance(ray.Origin(), m_Children[i]->m_Box.Origin()) });
}
std::sort(childInfos.begin(), childInfos.end(), isFirstLower);
//Loop through the children, starting with the one closest to the ray origin. I.e the first to be hit.
@@ -234,7 +230,7 @@ bool OctTree::OctChild::RayCollides(const Ray& ray, Output& data) const
}
void OctTree::OctChild::AddDynamicObject(const AABB& box)
void Octree::Child::AddDynamicObject(const AABB& box)
{
if (hasChildren()) {
for (auto i : childIndicesContainingBox(box)) {
@@ -246,7 +242,7 @@ void OctTree::OctChild::AddDynamicObject(const AABB& box)
}
}
void OctTree::OctChild::AddStaticObject(const AABB& box)
void Octree::Child::AddStaticObject(const AABB& box)
{
if (hasChildren()) {
for (auto i : childIndicesContainingBox(box)) {
@@ -258,7 +254,7 @@ void OctTree::OctChild::AddStaticObject(const AABB& box)
}
}
void OctTree::OctChild::BoxesInSameRegion(const AABB& box, std::vector<AABB>& outBoxes) const
void Octree::Child::BoxesInSameRegion(const AABB& box, std::vector<AABB>& outBoxes) const
{
if (hasChildren()) {
for (auto i : childIndicesContainingBox(box)) {
@@ -292,10 +288,10 @@ void OctTree::OctChild::BoxesInSameRegion(const AABB& box, std::vector<AABB>& ou
}
}
void OctTree::OctChild::ClearObjects()
void Octree::Child::ClearObjects()
{
if (hasChildren()) {
for (OctChild*& c : m_Children) {
for (Child*& c : m_Children) {
c->ClearObjects();
}
} else {
@@ -304,10 +300,10 @@ void OctTree::OctChild::ClearObjects()
}
}
void OctTree::OctChild::ClearDynamicObjects()
void Octree::Child::ClearDynamicObjects()
{
if (hasChildren()) {
for (OctChild*& c : m_Children) {
for (Child*& c : m_Children) {
c->ClearObjects();
}
} else {
@@ -327,13 +323,13 @@ void OctTree::OctChild::ClearDynamicObjects()
// x : - - - - + + + +
// y : - - + + - - + +
// z : - + - + - + - +
int OctTree::OctChild::childIndexContainingPoint(const glm::vec3& point) const
int Octree::Child::childIndexContainingPoint(const glm::vec3& point) const
{
const glm::vec3& c = m_Box.Center();
const glm::vec3& c = m_Box.Origin();
return (1 << 2) * (point.x >= c.x) | (1 << 1) * (point.y >= c.y) | (point.z >= c.z);
}
std::vector<int> OctTree::OctChild::childIndicesContainingBox(const AABB& box) const
std::vector<int> Octree::Child::childIndicesContainingBox(const AABB& box) const
{
int minInd = childIndexContainingPoint(box.MinCorner());
int maxInd = childIndexContainingPoint(box.MaxCorner());
@@ -371,7 +367,7 @@ std::vector<int> OctTree::OctChild::childIndicesContainingBox(const AABB& box) c
}
}
inline bool OctTree::OctChild::hasChildren() const
inline bool Octree::Child::hasChildren() const
{
return m_Children[0] != nullptr;
}
+56 -48
View File
@@ -1,4 +1,7 @@
#include "Core/ResourceManager.h"
#include "boost/thread/thread.hpp"
#include "boost/thread/mutex.hpp"
#include "boost/thread/lock_guard.hpp"
std::unordered_map<std::string, std::string> ResourceManager::m_CompilerTypenameToResourceType;
std::unordered_map<std::string, std::function<Resource*(std::string)>> ResourceManager::m_FactoryFunctions;
@@ -6,10 +9,13 @@ std::unordered_map<std::pair<std::string, std::string>, Resource*> ResourceManag
std::unordered_map<std::string, Resource*> ResourceManager::m_ResourceFromName;
std::unordered_map<Resource*, Resource*> ResourceManager::m_ResourceParents;
unsigned int ResourceManager::m_CurrentResourceTypeID = 0;
bool ResourceManager::UseThreading = false;
std::unordered_map<std::string, unsigned int> ResourceManager::m_ResourceTypeIDs;
std::unordered_map<unsigned int, unsigned int> ResourceManager::m_ResourceCount;
bool ResourceManager::m_Preloading = false;
FileWatcher ResourceManager::m_FileWatcher;
std::unordered_map<std::pair<std::string, std::string>, boost::thread> ResourceManager::m_LoadingThreads;
std::unordered_map<std::pair<std::string, std::string>, std::exception_ptr> ResourceManager::m_LoadingThreadExceptions;
boost::recursive_mutex ResourceManager::m_Mutex;
unsigned int ResourceManager::GetTypeID(std::string resourceType)
{
@@ -74,63 +80,65 @@ void ResourceManager::Update()
m_FileWatcher.Check();
}
void ResourceManager::Preload(std::string resourceType, std::string resourceName)
{
if (IsResourceLoaded(resourceType, resourceName)) {
//LOG_WARNING("Attempted to preload resource \"%s\" multiple times!", resourceName.c_str());
return;
}
m_Preloading = true;
LOG_INFO("Preloading resource \"%s\"", resourceName.c_str());
CreateResource(resourceType, resourceName, nullptr);
m_Preloading = false;
}
Resource* ResourceManager::Load(std::string resourceType, std::string resourceName, Resource* parent /*= nullptr*/)
{
auto it = m_ResourceCache.find(std::make_pair(resourceType, resourceName));
if (it != m_ResourceCache.end()) {
return it->second;
}
if (m_Preloading) {
LOG_INFO("Preloading resource \"%s\"", resourceName.c_str());
} else {
LOG_WARNING("Hot-loading resource \"%s\"", resourceName.c_str());
}
return CreateResource(resourceType, resourceName, parent);
}
Resource* ResourceManager::CreateResource(std::string resourceType, std::string resourceName, Resource* parent)
Resource* ResourceManager::createResource(const std::string& resourceType, const std::string& resourceName, Resource* parent, std::exception_ptr& exception)
{
auto facIt = m_FactoryFunctions.find(resourceType);
if (facIt == m_FactoryFunctions.end()) {
LOG_ERROR("Failed to load resource \"%s\" of type \"%s\": type not registered", resourceName.c_str(), resourceType.c_str());
return nullptr;
cacheResource(nullptr, resourceType, resourceName, parent);
//This basically throws an exception.
exception = std::make_exception_ptr(Resource::FailedLoadingException()); return nullptr;
}
// Call the factory function
Resource* resource;
try {
resource = facIt->second(resourceName);
return cacheResource(facIt->second(resourceName), resourceType, resourceName, parent);
} catch (const Resource::StillLoadingException&) {
exception = std::current_exception(); return nullptr;
} catch (const std::exception& e) {
LOG_ERROR("Failed to load resource \"%s\" of type \"%s\": %s", resourceName.c_str(), resourceType.c_str(), e.what());
cacheResource(nullptr, resourceType, resourceName, parent);
exception = std::current_exception(); return nullptr;
}
}
Resource* ResourceManager::createResourceThrowing(const std::string& resourceType, const std::string& resourceName, Resource* parent)
{
std::exception_ptr exception;
Resource* res = createResource(resourceType, resourceName, parent, exception);
if (exception) {
std::rethrow_exception(exception);
}
return res;
}
Resource* ResourceManager::cacheResource(Resource* resource, const std::string& resourceType, const std::string& resourceName, Resource* parent)
{
//Lock the mutex immediately, and unlock it when leaving the code block.
boost::lock_guard<decltype(m_Mutex)> guard(m_Mutex);
if (resource != nullptr) {
// Store IDs
resource->TypeID = GetTypeID(resourceType);
resource->ResourceID = GetNewResourceID(resource->TypeID);
} catch (const std::exception& e) {
resource = nullptr;
LOG_ERROR("Failed to load resource \"%s\" of type \"%s\": %s", resourceName.c_str(), resourceType.c_str(), e.what());
}
// Cache
m_ResourceCache[std::make_pair(resourceType, resourceName)] = resource;
m_ResourceFromName[resourceName] = resource;
if (parent != nullptr) {
m_ResourceParents[resource] = parent;
}
if (!boost::filesystem::is_directory(resourceName)) {
LOG_DEBUG("Adding watch for %s", resourceName.c_str());
m_FileWatcher.AddWatch(resourceName, fileWatcherCallback);
}
return resource;
// Cache
m_ResourceCache[std::make_pair(resourceType, resourceName)] = resource;
m_ResourceFromName[resourceName] = resource;
if (parent != nullptr) {
m_ResourceParents[resource] = parent;
}
//if (!boost::filesystem::is_directory(resourceName)) {
// LOG_DEBUG("Adding watch for %s", resourceName.c_str());
// m_FileWatcher.AddWatch(resourceName, fileWatcherCallback);
//}
return resource;
}
bool ResourceManager::IsMainThread()
{
static boost::thread::id MainThreadId = boost::this_thread::get_id();
return boost::this_thread::get_id() == MainThreadId;
}
+52
View File
@@ -0,0 +1,52 @@
#include "Core/Transform.h"
glm::vec3 Transform::AbsolutePosition(World* world, EntityID entity)
{
glm::vec3 position;
while (entity != EntityID_Invalid) {
ComponentWrapper transform = world->GetComponent(entity, "Transform");
EntityID parent = world->GetParent(entity);
position += Transform::AbsoluteOrientation(world, parent) * (glm::vec3)transform["Position"];
entity = parent;
}
return position;
}
glm::quat Transform::AbsoluteOrientation(World* world, EntityID entity)
{
glm::quat orientation;
while (entity != EntityID_Invalid) {
ComponentWrapper transform = world->GetComponent(entity, "Transform");
orientation = glm::quat((glm::vec3)transform["Orientation"]) * orientation;
entity = world->GetParent(entity);
}
return orientation;
}
glm::vec3 Transform::AbsoluteScale(World* world, EntityID entity)
{
glm::vec3 scale(1.f);
while (entity != EntityID_Invalid) {
ComponentWrapper transform = world->GetComponent(entity, "Transform");
scale *= (glm::vec3)transform["Scale"];
entity = world->GetParent(entity);
}
return scale;
}
glm::mat4 Transform::ModelMatrix(EntityID entity, World* world)
{
glm::vec3 position = Transform::AbsolutePosition(world, entity);
glm::quat orientation = Transform::AbsoluteOrientation(world, entity);
glm::vec3 scale = Transform::AbsoluteScale(world, entity);
glm::mat4 modelMatrix = glm::translate(glm::mat4(), position) * glm::toMat4(orientation) * glm::scale(scale);
return modelMatrix;
}
+46 -12
View File
@@ -10,12 +10,15 @@ World::~World()
EntityID World::CreateEntity(EntityID parent /*= 0*/)
{
EntityID newEntity = generateEntityID();
if (newEntity == parent) {
LOG_WARNING("Invalid parent #%i of Entity#%i", newEntity, parent);
parent = EntityID_Invalid;
}
m_EntityParents[newEntity] = parent;
m_EntityChildren.insert(std::make_pair(parent, newEntity));
return newEntity;
}
void World::DeleteEntity(EntityID entity)
{
// Delete components
@@ -46,60 +49,67 @@ void World::DeleteEntity(EntityID entity)
break;
}
}
// Erase potential name
m_EntityNames.erase(entity);
}
bool World::ValidEntity(EntityID entity) const
{
return m_EntityParents.find(entity) != m_EntityParents.end();
}
void World::RegisterComponent(ComponentInfo& ci)
{
m_ComponentPools[ci.Name] = new ComponentPool(ci);
if (m_ComponentPools.find(ci.Name) == m_ComponentPools.end()) {
m_ComponentPools[ci.Name] = new ComponentPool(ci);
}
}
ComponentWrapper World::AttachComponent(EntityID entity, std::string componentType)
ComponentWrapper World::AttachComponent(EntityID entity, const std::string& componentType)
{
// TODO: Allocate dynamic pool if component isn't registered
ComponentPool* pool = m_ComponentPools.at(componentType);
const ComponentInfo& ci = pool->ComponentInfo();
// Allocate space for the component
ComponentWrapper c = pool->Allocate(entity);
// Write default values
memcpy(c.Data, ci.Defaults.get(), ci.Meta.Stride);
memcpy(c.Data, ci.Defaults.get(), ci.Stride);
return c;
}
bool World::HasComponent(EntityID entity, std::string componentType)
bool World::HasComponent(EntityID entity, const std::string& componentType) const
{
ComponentPool* pool = m_ComponentPools.at(componentType);
return pool->KnowsEntity(entity);
}
ComponentWrapper World::GetComponent(EntityID entity, std::string componentType)
ComponentWrapper World::GetComponent(EntityID entity, const std::string& componentType)
{
ComponentPool* pool = m_ComponentPools.at(componentType);
return pool->GetByEntity(entity);
}
void World::DeleteComponent(EntityID entity, std::string componentType)
void World::DeleteComponent(EntityID entity, const std::string& componentType)
{
ComponentPool* pool = m_ComponentPools.at(componentType);
ComponentWrapper c = pool->GetByEntity(entity);
return pool->Delete(c);
}
const ComponentPool* World::GetComponents(std::string componentType)
const ComponentPool* World::GetComponents(const std::string& componentType)
{
auto it = m_ComponentPools.find(componentType);
return (it != m_ComponentPools.end()) ? it->second : nullptr;
}
EntityID World::GetParent(EntityID entity)
{
return m_EntityParents.at(entity);
}
void World::SetParent(EntityID entity, EntityID parent)
{
EntityID lastParent = m_EntityParents.at(entity);
@@ -115,6 +125,30 @@ void World::SetParent(EntityID entity, EntityID parent)
m_EntityChildren.insert(std::make_pair(parent, entity));
}
const std::pair<std::unordered_multimap<EntityID, EntityID>::const_iterator, std::unordered_multimap<EntityID, EntityID>::const_iterator> World::GetChildren(EntityID entity)
{
return m_EntityChildren.equal_range(entity);
}
void World::SetName(EntityID entity, const std::string& name)
{
m_EntityNames[entity] = name;
}
std::string World::GetName(EntityID entity) const
{
if (entity == EntityID_Invalid) {
return "EntityID_Invalid";
}
auto it = m_EntityNames.find(entity);
if (it != m_EntityNames.end()) {
return it->second;
} else {
return std::string();
}
}
EntityID World::generateEntityID()
{
// TODO: Make EntityID generation smarter
+264 -122
View File
@@ -3,12 +3,14 @@
#include <imgui/imgui_internal.h>
EditorSystem::EditorSystem(EventBroker* eventBroker, IRenderer* renderer)
: ImpureSystem(eventBroker)
: System(eventBroker)
, ImpureSystem()
, m_Renderer(renderer)
{
auto config = ResourceManager::Load<ConfigFile>("Config.ini");
m_Enabled = config->Get<bool>("Debug.EditorEnabled", false);
m_Visible = m_Enabled;
m_DefaultEntityDir = boost::filesystem::path("Schema") / boost::filesystem::path("Entities");
if (!m_Enabled) {
return;
@@ -18,7 +20,6 @@ EditorSystem::EditorSystem(EventBroker* eventBroker, IRenderer* renderer)
EVENT_SUBSCRIBE_MEMBER(m_EMousePress, &EditorSystem::OnMousePress);
EVENT_SUBSCRIBE_MEMBER(m_EMouseRelease, &EditorSystem::OnMouseRelease);
EVENT_SUBSCRIBE_MEMBER(m_EMouseMove, &EditorSystem::OnMouseMove);
EVENT_SUBSCRIBE_MEMBER(m_EPicking, &EditorSystem::OnPicking);
EVENT_SUBSCRIBE_MEMBER(m_EFileDropped, &EditorSystem::OnFileDropped);
}
@@ -33,7 +34,7 @@ void EditorSystem::Update(World* world, double dt)
if (!m_Visible) {
return;
}
Picking();
updateWidget();
drawUI(world, dt);
@@ -44,6 +45,35 @@ void EditorSystem::Update(World* world, double dt)
}
}
boost::filesystem::path EditorSystem::openDialog(boost::filesystem::path defaultPath)
{
namespace bfs = boost::filesystem;
auto absolutePath = bfs::absolute(defaultPath);
nfdchar_t* outPath = nullptr;
nfdresult_t result = NFD_OpenDialog(NULL, absolutePath.string().c_str(), &outPath);
if (result == NFD_ERROR) {
LOG_ERROR("NFD Error: %s", NFD_GetError());
return bfs::path();
}
return bfs::absolute(outPath);
}
boost::filesystem::path EditorSystem::saveDialog(boost::filesystem::path defaultPath)
{
namespace bfs = boost::filesystem;
auto absolutePath = bfs::absolute(defaultPath);
nfdchar_t* outPath = nullptr;
nfdresult_t result = NFD_SaveDialog(NULL, absolutePath.string().c_str(), &outPath);
if (result == NFD_ERROR) {
LOG_ERROR("NFD Error: %s", NFD_GetError());
return bfs::path();
}
return bfs::absolute(outPath);
}
bool EditorSystem::OnInputCommand(const Events::InputCommand& e)
{
if (e.Command == "ToggleEditor" && e.Value > 0) {
@@ -81,17 +111,27 @@ bool EditorSystem::OnMousePress(const Events::MousePress& e)
bool EditorSystem::OnMouseMove(const Events::MouseMove& e)
{
if (m_Widget == 0) {
if (m_Widget == EntityID_Invalid) {
return false;
}
if (m_Selection == EntityID_Invalid) {
return false;
}
if (m_Selection == m_Widget) {
return false;
}
// TODO: No widgets for root entity until widgets reside in thier own world,
// or the widgets will move relative to the root entity being moved, which is WEEEIRD.
if (m_Selection == 0) {
return false;
}
if (m_Camera == nullptr) {
return false;
}
auto widgetTransform = m_World->GetComponent(m_Widget, "Transform");
glm::vec3 widgetOrientation = widgetTransform["Orientation"];
glm::quat totalOrientation = m_Renderer->Camera()->Orientation() * glm::inverse(glm::quat(widgetOrientation));
glm::quat totalOrientation = m_Camera->Orientation() * glm::inverse(glm::quat(widgetOrientation));
int width;
int height;
@@ -103,14 +143,14 @@ bool EditorSystem::OnMouseMove(const Events::MouseMove& e)
delta2,
m_WidgetPickingDepth,
res,
m_Renderer->Camera()->ProjectionMatrix(),
m_Camera->ProjectionMatrix(),
glm::toMat4(glm::inverse(totalOrientation))
);
glm::vec3 origin = ScreenCoords::ToWorldPos(
glm::vec2(res.Width / 2.f, res.Height / 2.f),
m_WidgetPickingDepth,
res,
m_Renderer->Camera()->ProjectionMatrix(),
m_Camera->ProjectionMatrix(),
glm::toMat4(glm::inverse(totalOrientation))
);
deltaWorld = deltaWorld - origin;
@@ -122,9 +162,9 @@ bool EditorSystem::OnMouseMove(const Events::MouseMove& e)
if (m_WidgetSpace == WidgetSpace::Global) {
EntityID parent = m_World->GetParent(m_Selection);
glm::quat inverseParentOrientation;
if (parent != 0) {
inverseParentOrientation = glm::inverse(RenderQueueFactory::AbsoluteOrientation(m_World, parent));
}
//if (parent != 0) {
inverseParentOrientation = glm::inverse(Transform::AbsoluteOrientation(m_World, parent));
//}
(glm::vec3&)m_World->GetComponent(m_Selection, "Transform")["Position"] += inverseParentOrientation * movement;
} else if (m_WidgetSpace == WidgetSpace::Local) {
auto selectionTransform = m_World->GetComponent(m_Selection, "Transform");
@@ -138,12 +178,12 @@ bool EditorSystem::OnMouseMove(const Events::MouseMove& e)
if (m_WidgetSpace == WidgetSpace::Global) {
EntityID parent = m_World->GetParent(m_Selection);
glm::quat parentOrientation;
if (parent != 0) {
parentOrientation = RenderQueueFactory::AbsoluteOrientation(m_World, parent);
}
//if (parent != 0) {
// parentOrientation = RenderSystem::AbsoluteOrientation(m_World, parent);
//}
glm::vec3& selectionOrientation = m_World->GetComponent(m_Selection, "Transform")["Orientation"];
//glm::quat currentOrientation = RenderQueueFactory::AbsoluteOrientation(m_World, m_Selection);
glm::quat currentOrientation = parentOrientation * glm::quat(selectionOrientation);
glm::quat currentOrientation = Transform::AbsoluteOrientation(m_World, m_Selection);
//glm::quat currentOrientation = parentOrientation * glm::quat(selectionOrientation);
glm::quat deltaOrientation(finalMovement);
selectionOrientation = glm::eulerAngles(glm::inverse(parentOrientation) * (deltaOrientation * currentOrientation));
} else if (m_WidgetSpace == WidgetSpace::Local) {
@@ -198,16 +238,18 @@ bool EditorSystem::OnMouseRelease(const Events::MouseRelease& e)
return true;
}
bool EditorSystem::OnPicking(const Events::Picking& e)
void EditorSystem::Picking()
{
for (auto& pos : m_PickingQueue) {
auto result = e.Pick(pos);
auto result = m_Renderer->Pick(pos);
EntityID entity = result.Entity;
if (glm::length2(m_WidgetCurrentAxis) > 0.f) {
// ???
} else {
LOG_INFO("Selected %i", entity);
if (entity != 0) {
if (entity != EntityID_Invalid) {
EntityID parent = m_World->GetParent(entity);
m_Camera = result.Camera;
if (parent == m_Widget) {
m_WidgetCurrentAxis = glm::vec3(
(entity == m_WidgetX) || (entity == m_WidgetOrigin) || (entity == m_WidgetPlaneY || entity == m_WidgetPlaneZ),
@@ -215,22 +257,21 @@ bool EditorSystem::OnPicking(const Events::Picking& e)
(entity == m_WidgetZ) || (entity == m_WidgetOrigin) || (entity == m_WidgetPlaneX || entity == m_WidgetPlaneY)
);
m_WidgetPickingDepth = result.Depth;
//auto widgetTransform = m_World->GetComponent(m_Widget, "Transform");
//auto selectionTransform = m_World->GetComponent(m_Selection, "Transform");
//widgetTransform["Position"] = (glm::vec3)selectionTransform["Position"];
} else {
ImGui::SetActiveID(0, nullptr);
m_Selection = entity;
if (m_WidgetMode == WidgetMode::None) {
m_WidgetMode = WidgetMode::Translate;
}
setWidgetMode(m_WidgetMode);
m_Selection = entity;
}
} else {
m_Selection = 0;
}
}
}
m_PickingQueue.clear();
return true;
};
bool EditorSystem::OnFileDropped(const Events::FileDropped& e)
@@ -240,9 +281,9 @@ bool EditorSystem::OnFileDropped(const Events::FileDropped& e)
return true;
}
void EditorSystem::updateWidget()
void EditorSystem::createWidget()
{
if (m_Widget == 0) {
if (m_Widget == EntityID_Invalid) {
m_Widget = m_World->CreateEntity();
m_World->AttachComponent(m_Widget, "Transform");
m_WidgetX = m_World->CreateEntity(m_Widget);
@@ -269,22 +310,32 @@ void EditorSystem::updateWidget()
m_WidgetOrigin = m_World->CreateEntity(m_Widget);
m_World->AttachComponent(m_WidgetOrigin, "Transform");
m_World->AttachComponent(m_WidgetOrigin, "Model");
setWidgetMode(WidgetMode::Translate);
setWidgetMode(WidgetMode::None);
}
}
void EditorSystem::updateWidget()
{
if (m_Widget == EntityID_Invalid) {
return;
}
if (m_Selection == m_Widget) {
return;
}
if (m_Selection != 0) {
if (m_Selection != EntityID_Invalid) {
auto widgetTransform = m_World->GetComponent(m_Widget, "Transform");
glm::vec3 selectionPosition = RenderQueueFactory::AbsolutePosition(m_World, m_Selection);
glm::vec3 selectionPosition = Transform::AbsolutePosition(m_World, m_Selection);
widgetTransform["Position"] = selectionPosition;
if (m_WidgetSpace == WidgetSpace::Local) {
widgetTransform["Orientation"] = glm::eulerAngles(RenderQueueFactory::AbsoluteOrientation(m_World, m_Selection));
widgetTransform["Orientation"] = glm::eulerAngles(Transform::AbsoluteOrientation(m_World, m_Selection));
}
}
}
void EditorSystem::setWidgetMode(WidgetMode newMode)
{
if (m_Widget == 0) {
if (m_Widget == EntityID_Invalid) {
return;
}
@@ -309,10 +360,10 @@ void EditorSystem::setWidgetMode(WidgetMode newMode)
m_World->GetComponent(m_WidgetPlaneY, "Model")["Visible"] = true;
m_World->GetComponent(m_WidgetPlaneZ, "Model")["Visible"] = true;
}
if (m_Selection != 0) {
if (m_Selection != EntityID_Invalid) {
if (m_WidgetSpace == WidgetSpace::Local) {
auto selectionTransform = m_World->GetComponent(m_Selection, "Transform");
widgetTransform["Orientation"] = glm::eulerAngles(RenderQueueFactory::AbsoluteOrientation(m_World, m_Selection));
widgetTransform["Orientation"] = glm::eulerAngles(Transform::AbsoluteOrientation(m_World, m_Selection));
}
}
} else if (newMode == WidgetMode::Scale) {
@@ -321,25 +372,24 @@ void EditorSystem::setWidgetMode(WidgetMode newMode)
m_World->GetComponent(m_WidgetZ, "Model")["Resource"] = "Models/ScaleWidgetZ.obj";
m_World->GetComponent(m_WidgetOrigin, "Model")["Visible"] = true;
m_World->GetComponent(m_WidgetOrigin, "Model")["Resource"] = "Models/ScaleWidgetOrigin.obj";
if (m_Selection != 0) {
if (m_Selection != EntityID_Invalid) {
auto selectionTransform = m_World->GetComponent(m_Selection, "Transform");
widgetTransform["Orientation"] = glm::eulerAngles(RenderQueueFactory::AbsoluteOrientation(m_World, m_Selection));
widgetTransform["Orientation"] = glm::eulerAngles(Transform::AbsoluteOrientation(m_World, m_Selection));
}
} else if (newMode == WidgetMode::Rotate) {
m_World->GetComponent(m_WidgetX, "Model")["Resource"] = "Models/RotationWidgetX.obj";
m_World->GetComponent(m_WidgetY, "Model")["Resource"] = "Models/RotationWidgetY.obj";
m_World->GetComponent(m_WidgetZ, "Model")["Resource"] = "Models/RotationWidgetZ.obj";
if (m_Selection != 0) {
if (m_Selection != EntityID_Invalid) {
auto selectionTransform = m_World->GetComponent(m_Selection, "Transform");
if (m_WidgetSpace == WidgetSpace::Local) {
widgetTransform["Orientation"] = glm::eulerAngles(RenderQueueFactory::AbsoluteOrientation(m_World, m_Selection));
widgetTransform["Orientation"] = glm::eulerAngles(Transform::AbsoluteOrientation(m_World, m_Selection));
}
}
}
m_WidgetMode = newMode;
}
void EditorSystem::setWidgetSpace(WidgetSpace space)
{
m_WidgetSpace = space;
@@ -348,16 +398,23 @@ void EditorSystem::setWidgetSpace(WidgetSpace space)
void EditorSystem::drawUI(World* world, double dt)
{
namespace bfs = boost::filesystem;
ImGui::ShowTestWindow();
//ImGui::ShowStyleEditor();
if (ImGui::BeginMainMenuBar()) {
if (ImGui::BeginMenu("File")) {
if (ImGui::MenuItem("New")) { }
if (ImGui::MenuItem("Open", "Ctrl+O")) { }
if (ImGui::MenuItem("Save", "Ctrl+S")) { }
if (ImGui::MenuItem("Save As...", "Ctrl+Shift+S")) { }
//if (ImGui::MenuItem("New")) { }
if (ImGui::MenuItem("Import", "Ctrl+O")) {
fileImport(world);
}
if (ImGui::MenuItem("Save", "Ctrl+S")) {
fileSave(world);
}
if (ImGui::MenuItem("Save As...", "Ctrl+Shift+S")) {
fileSaveAs(world);
}
ImGui::Separator();
if (ImGui::MenuItem("Close Editor", "F1")) { }
@@ -392,7 +449,7 @@ void EditorSystem::drawUI(World* world, double dt)
std::string title = std::string("Components #") + std::to_string(m_Selection) + std::string("###Components");
if (ImGui::Begin(title.c_str())) {
if (m_Selection != 0) {
if (m_Selection != EntityID_Invalid) {
auto& pools = world->GetComponentPools();
std::vector<const char*> componentTypes;
@@ -427,21 +484,22 @@ void EditorSystem::drawUI(World* world, double dt)
}
if (ImGui::CollapsingHeader(componentType.c_str())) {
if (!ci.Meta.Annotation.empty()) {
ImGui::Text(ci.Meta.Annotation.c_str());
if (!ci.Meta->Annotation.empty()) {
ImGui::Text(ci.Meta->Annotation.c_str());
}
auto& component = world->GetComponent(m_Selection, componentType);
for (auto& pair : ci.FieldTypes) {
const std::string& field = pair.first;
const std::string& type = pair.second;
for (auto& kv : ci.Fields) {
const std::string& fieldName = kv.first;
auto& field = kv.second;
ImGui::PushID(field.c_str());
if (type == "Vector") {
auto& val = component.Property<glm::vec3>(field);
if (field == "Scale") {
std::string uniqueID = componentType + fieldName;
ImGui::PushID(uniqueID.c_str());
if (field.Type == "Vector") {
auto& val = component.Field<glm::vec3>(fieldName);
if (fieldName == "Scale") {
ImGui::DragFloat3("", glm::value_ptr(val), 0.1f, 0.f, std::numeric_limits<float>::max());
} else if (field == "Orientation") {
} else if (fieldName == "Orientation") {
glm::vec3 tempVal = glm::fmod(val, glm::vec3(glm::two_pi<float>()));
if (ImGui::SliderFloat3("", glm::value_ptr(tempVal), 0.f, glm::two_pi<float>())) {
val = tempVal;
@@ -449,16 +507,16 @@ void EditorSystem::drawUI(World* world, double dt)
} else {
ImGui::DragFloat3("", glm::value_ptr(val), 0.1f, std::numeric_limits<float>::lowest(), std::numeric_limits<float>::max());
}
} else if (type == "Color") {
auto& val = component.Property<glm::vec4>(field);
} else if (field.Type == "Color") {
auto& val = component.Field<glm::vec4>(fieldName);
ImGui::ColorEdit4("", glm::value_ptr(val), true);
} else if (type == "string") {
std::string& val = component.Property<std::string>(field);
} else if (field.Type == "string") {
std::string& val = component.Field<std::string>(fieldName);
char tempString[1024];
memcpy(tempString, val.c_str(), std::min(val.length() + 1, sizeof(tempString)));
if (ImGui::InputText("", tempString, sizeof(tempString))) {
val = std::string(tempString);
LOG_DEBUG("%s::%s changed!", componentType.c_str(), field.c_str());
LOG_DEBUG("%s::%s changed!", componentType.c_str(), fieldName.c_str());
}
// DROP STUFF
if (ImGui::IsItemHovered() && !m_LastDroppedFile.empty()) {
@@ -466,21 +524,41 @@ void EditorSystem::drawUI(World* world, double dt)
m_LastDroppedFile = "";
}
} else if (type == "double") {
float tempVal = static_cast<float>(component.Property<double>(field));
} else if (field.Type == "double") {
float tempVal = static_cast<float>(component.Field<double>(fieldName));
if (ImGui::InputFloat("", &tempVal, 0.01f, 1.f)) {
component.SetProperty(field, static_cast<double>(tempVal));
component.SetField(fieldName, static_cast<double>(tempVal));
}
} else if (type == "bool") {
auto& val = component.Property<bool>(field);
} else if (field.Type == "int") {
int val = component.Field<int>(fieldName);
ImGui::InputInt("", &val);
} else if (field.Type == "enum") {
int currentValue = component.Field<int>(fieldName);
int item = -1;
std::stringstream enumKeys;
std::vector<int> enumValues;
int i = 0;
for (auto& kv : ci.Meta->FieldEnumDefinitions.at(fieldName)) {
enumKeys << kv.first << " (" << kv.second << ")" << '\0';
enumValues.push_back(kv.second);
if (currentValue == kv.second) {
item = i;
}
i++;
}
if (ImGui::Combo("", &item, enumKeys.str().c_str())) {
component.SetField(fieldName, enumValues.at(item));
}
} else if (field.Type == "bool") {
auto& val = component.Field<bool>(fieldName);
ImGui::Checkbox("", &val);
} else {
ImGui::TextDisabled(type.c_str());
ImGui::TextDisabled(field.Type.c_str());
}
ImGui::PopID();
ImGui::SameLine();
ImGui::Text(field.c_str());
ImGui::Text(fieldName.c_str());
if (ImGui::IsItemHovered()) {
ImGui::SetTooltip("field annotation goes here");
}
@@ -492,74 +570,93 @@ void EditorSystem::drawUI(World* world, double dt)
}
ImGui::End();
if (ImGui::Begin("Entitites")) {
static EntityID draggingEntity = 0;
if (ImGui::Begin("Entities")) {
auto entityChildren = world->GetEntityChildren();
std::function<void(EntityID)> recurse = [&](EntityID parent) {
auto range = entityChildren.equal_range(parent);
for (auto it = range.first; it != range.second; it++) {
ImVec2 pos = ImGui::GetCursorScreenPos();
float width = ImGui::GetContentRegionAvailWidth();
ImRect bb(pos + ImVec2(20, 0), pos + ImVec2(width, 13));
auto window = ImGui::GetCurrentWindow();
if (m_Selection == it->second) {
const ImU32 col = window->Color(ImGuiCol_HeaderActive);
window->DrawList->AddRectFilled(bb.Min, bb.Max, col);
}
ImGuiID id = window->GetID((std::string("#SelectButton") + std::to_string(it->second)).c_str());
bool hovered = false;
bool held = false;
if (ImGui::ButtonBehavior(bb, id, &hovered, &held)) {
m_Selection = it->second;
}
if (held) {
ImVec2 entityDragDelta = ImGui::GetMouseDragDelta(0);
if (std::abs(entityDragDelta.x) > 0 && std::abs(entityDragDelta.y) > 0) {
if (draggingEntity == 0) {
draggingEntity = it->second;
LOG_DEBUG("Started drag of entity %i", draggingEntity);
}
ImGui::SetNextWindowPos(ImGui::GetIO().MousePos + ImVec2(20, 0));
ImGui::Begin("Change parent", nullptr, ImVec2(0, 0), 0.3f, ImGuiWindowFlags_NoTitleBar|ImGuiWindowFlags_NoResize|ImGuiWindowFlags_NoMove|ImGuiWindowFlags_NoSavedSettings);
ImGui::Text("#%i", draggingEntity);
ImGui::End();
}
}
ImGui::SetNextTreeNodeOpened(true, ImGuiSetCond_Once);
if (ImGui::TreeNode((std::string("#") + std::to_string(it->second)).c_str())) {
if (draggingEntity != 0 && ImGui::IsItemHoveredRect() && ImGui::IsMouseReleased(0)) {
LOG_DEBUG("Changed parent of %i to %i", draggingEntity, it->second);
changeParent(draggingEntity, it->second);
draggingEntity = 0;
}
if (ImGui::BeginPopupContextItem("item context menu")) {
if (ImGui::Button("Add")) {
EntityID entity = world->CreateEntity(it->second);
world->AttachComponent(entity, "Transform");
}
ImGui::SameLine();
if (ImGui::Button("Delete")) {
world->DeleteEntity(it->second);
ImGui::CloseCurrentPopup();
if (m_Selection == it->second) {
m_Selection = 0;
}
}
ImGui::EndPopup();
}
if (createEntityNode(world, it->second)) {
recurse(it->second);
ImGui::TreePop();
}
}
};
recurse(0);
recurse(EntityID_Invalid);
}
ImGui::End();
}
bool EditorSystem::createEntityNode(World* world, EntityID entity)
{
// HACK: Don't show the widget entities in the entity tree
if (entity == m_Widget) {
return false;
}
ImVec2 pos = ImGui::GetCursorScreenPos();
float width = ImGui::GetContentRegionAvailWidth();
ImRect bb(pos + ImVec2(20, 0), pos + ImVec2(width, 13));
auto window = ImGui::GetCurrentWindow();
if (m_Selection == entity) {
const ImU32 col = window->Color(ImGuiCol_HeaderActive);
window->DrawList->AddRectFilled(bb.Min, bb.Max, col);
}
ImGuiID id = window->GetID((std::string("#SelectButton") + std::to_string(entity)).c_str());
bool hovered = false;
bool held = false;
if (ImGui::ButtonBehavior(bb, id, &hovered, &held)) {
m_Selection = entity;
}
if (held) {
ImVec2 entityDragDelta = ImGui::GetMouseDragDelta(0);
if (std::abs(entityDragDelta.x) > 0 && std::abs(entityDragDelta.y) > 0) {
if (m_UIDraggingEntity == EntityID_Invalid) {
m_UIDraggingEntity = entity;
LOG_DEBUG("Started drag of entity %i", m_UIDraggingEntity);
}
ImGui::SetNextWindowPos(ImGui::GetIO().MousePos + ImVec2(20, 0));
ImGui::Begin("Change parent", nullptr, ImVec2(0, 0), 0.3f, ImGuiWindowFlags_NoTitleBar|ImGuiWindowFlags_NoResize|ImGuiWindowFlags_NoMove|ImGuiWindowFlags_NoSavedSettings);
ImGui::Text("#%i", m_UIDraggingEntity);
ImGui::End();
}
}
ImGui::SetNextTreeNodeOpened(true, ImGuiSetCond_Once);
std::string nodeTitle;
const std::string& entityName = world->GetName(entity);
if (!entityName.empty()) {
nodeTitle = entityName;
} else {
nodeTitle = std::string("#") + std::to_string(entity);
}
if (ImGui::TreeNode(nodeTitle.c_str())) {
if (m_UIDraggingEntity != EntityID_Invalid && ImGui::IsItemHoveredRect() && ImGui::IsMouseReleased(0)) {
LOG_DEBUG("Changed parent of %i to %i", m_UIDraggingEntity, entity);
changeParent(m_UIDraggingEntity, entity);
m_UIDraggingEntity = EntityID_Invalid;
}
if (ImGui::BeginPopupContextItem("item context menu")) {
if (ImGui::Button("Add")) {
EntityID newEntity = world->CreateEntity(entity);
world->AttachComponent(newEntity, "Transform");
}
ImGui::SameLine();
if (ImGui::Button("Delete")) {
world->DeleteEntity(entity);
ImGui::CloseCurrentPopup();
if (!world->ValidEntity(m_Selection)) {
m_Selection = EntityID_Invalid;
}
}
ImGui::EndPopup();
}
return true;
} else {
return false;
}
}
bool EditorSystem::createDeleteButton(std::string componentType)
{
float width = ImGui::GetContentRegionAvailWidth();
@@ -594,3 +691,48 @@ void EditorSystem::changeParent(EntityID entity, EntityID newParent)
m_World->SetParent(entity, newParent);
}
void EditorSystem::fileImport(World* world)
{
m_CurrentFile = openDialog(m_DefaultEntityDir);
auto file = ResourceManager::Load<EntityFile>(m_CurrentFile.string());
EntityFilePreprocessor fpp(file);
fpp.RegisterComponents(world);
EntityFileParser fp(file);
fp.MergeEntities(world);
createWidget();
updateWidget();
}
void EditorSystem::fileSave(World* world)
{
if (boost::filesystem::exists(m_CurrentFile)) {
// HACK: Delete the widgets so they don't appear in the saved file
world->DeleteEntity(m_Widget);
m_Widget = EntityID_Invalid;
EntityFileWriter writer(m_CurrentFile.string());
writer.WriteWorld(world);
createWidget();
} else {
fileSaveAs(world);
}
}
void EditorSystem::fileSaveAs(World* world)
{
auto filePath = saveDialog(m_DefaultEntityDir);
if (filePath.empty()) {
return;
}
// HACK: Delete the widgets so they don't appear in the saved file
world->DeleteEntity(m_Widget);
m_Widget = EntityID_Invalid;
EntityFileWriter writer(filePath.string());
writer.WriteWorld(world);
createWidget();
}
+12 -11
View File
@@ -20,15 +20,16 @@ void InputProxy::LoadBindings(std::string file)
for (auto& origin : config->GetAll<std::string>("Bindings")) {
Events::BindOrigin e;
e.Origin = origin.first;
e.Command = origin.second;
e.Value = 1.f;
if (!e.Command.empty()) {
char prefix = e.Command.at(0);
if (prefix == '+' || prefix == '-') {
e.Command = e.Command.substr(1);
if (prefix == '-') {
e.Value *= -1.f;
}
const std::string& command = origin.second;
if (!command.empty()) {
boost::char_separator<char> separator(", ");
boost::tokenizer<decltype(separator)> tokenizer(command, separator);
auto token = tokenizer.begin();
e.Command = *token;
if (++token != tokenizer.end()) {
e.Value = boost::lexical_cast<float>(*token);
} else {
e.Value = 1.f;
}
OnBindOrigin(e);
}
@@ -62,7 +63,7 @@ void InputProxy::Process()
e.Command = command;
e.Value = currentValue;
m_EventBroker->Publish(e);
LOG_DEBUG("Input: Published command %s=%f for player %i", e.Command.c_str(), e.Value, e.PlayerID);
//LOG_DEBUG("Input: Published command %s=%f for player %i", e.Command.c_str(), e.Value, e.PlayerID);
m_LastCommandValues[command] = currentValue;
}
}
@@ -78,7 +79,7 @@ void InputProxy::Process()
}
//e.Value = std::max(-1.f, std::min(e.Value, 1.f));
m_EventBroker->Publish(e);
LOG_DEBUG("Input: Published command %s=%f for player %i", e.Command.c_str(), e.Value, e.PlayerID);
//LOG_DEBUG("Input: Published command %s=%f for player %i", e.Command.c_str(), e.Value, e.PlayerID);
}
m_CommandQueue.clear();
}
+50 -47
View File
@@ -17,7 +17,6 @@ Client::Client(ConfigFile* config) : m_Socket(m_IOService)
Client::~Client()
{
}
void Client::Start(World* world, EventBroker* eventBroker)
@@ -27,14 +26,8 @@ void Client::Start(World* world, EventBroker* eventBroker)
m_World = world;
// Subscribe to events
m_EInputCommand = decltype(m_EInputCommand)(std::bind(&Client::OnInputCommand, this, std::placeholders::_1));
m_EventBroker->Subscribe(m_EInputCommand);
EVENT_SUBSCRIBE_MEMBER(m_EInputCommand, &Client::OnInputCommand);
//while (m_PlayerName.size() > 7) {
// LOG_INFO("Please enter your name (No longer than 7 characters):");
// std::cin >> m_PlayerName;
//}
m_Socket.connect(m_ReceiverEndpoint);
LOG_INFO("I am client. BIP BOP");
}
@@ -44,18 +37,9 @@ void Client::Update()
readFromServer();
}
void Client::Close()
{
if (m_WasStarted) {
disconnect();
m_ThreadIsRunning = false;
m_EventBroker->Unsubscribe(m_EInputCommand);
}
}
void Client::readFromServer()
{
if (m_Socket.available()) {
while (m_Socket.available()) {
bytesRead = receive(readBuf, INPUTSIZE);
if (bytesRead > 0) {
Packet packet(readBuf, bytesRead);
@@ -65,7 +49,7 @@ void Client::readFromServer()
std::clock_t currentTime = std::clock();
if (snapshotInterval < (1000 * (currentTime - previousSnapshotMessage) / (double)CLOCKS_PER_SEC)) {
if (isConnected()) {
sendSnapshotToServer();
//sendSnapshotToServer();
}
previousSnapshotMessage = currentTime;
}
@@ -73,13 +57,12 @@ void Client::readFromServer()
void Client::sendSnapshotToServer()
{
// Reset previouse key state in snapshot.
// Reset previous key state in snapshot.
m_NextSnapshot.InputForward = "";
m_NextSnapshot.InputRight = "";
auto player = m_World->GetComponent(m_PlayerDefinitions[m_PlayerID].EntityID, "Player");
// See if any movement keys are down
// We dont care if it's overwritten by later
// if statement. Watcha gonna do, right!
@@ -125,6 +108,8 @@ void Client::parseMessageType(Packet& packet)
// Read packet ID
m_PreviousPacketID = m_PacketID; // Set previous packet id
m_PacketID = packet.ReadPrimitive<int>(); //Read new packet id
if (m_PacketID <= m_PreviousPacketID)
return;
//IdentifyPacketLoss();
switch (static_cast<MessageType>(messageType)) {
@@ -184,33 +169,51 @@ void Client::parseEventMessage(Packet& packet)
}
}
void Client::updateFields(Packet& packet, const ComponentInfo& componentInfo, const EntityID& entityID, const std::string& componentType)
{
for (auto field : componentInfo.FieldsInOrder) {
ComponentInfo::Field_t fieldInfo = componentInfo.Fields.at(field);
if (fieldInfo.Type == "string") {
std::string& value = packet.ReadString();
m_World->GetComponent(entityID, componentType)[fieldInfo.Name] = value;
} else {
memcpy(m_World->GetComponent(entityID, componentType).Data + fieldInfo.Offset, packet.ReadData(fieldInfo.Stride), fieldInfo.Stride);
}
}
}
// Field parse
void Client::parseSnapshot(Packet& packet)
{
std::string tempName;
for (size_t i = 0; i < MAXCONNECTIONS; i++) {
// We're checking for empty name for now. This might not be the best way,
// but it is to avoid sending redundant data.
tempName = packet.ReadString();
// Apply the position data read to the player entity
// New player connected on the server side
if (m_PlayerDefinitions[i].Name == "" && tempName != "") {
m_PlayerDefinitions[i].Name = tempName;
m_PlayerDefinitions[i].EntityID = createPlayer();
} else if (m_PlayerDefinitions[i].Name != "" && tempName == "") {
// Someone disconnected
// TODO: Insert code here
break;
} else if (m_PlayerDefinitions[i].Name == "" && tempName == "") {
// Not a connected player
break;
}
if (m_PlayerDefinitions[i].EntityID != -1) {
// Move player to server position
int dataSize = m_World->GetComponent(m_PlayerDefinitions[i].EntityID, "Transform").Info.Meta.Stride;
memcpy(m_World->GetComponent(m_PlayerDefinitions[i].EntityID, "Transform").Data, packet.ReadData(dataSize), dataSize);
std::string componentType = packet.ReadString();
while (packet.DataReadSize() < packet.Size()) {
EntityID entityID = packet.ReadPrimitive<EntityID>();
ComponentInfo componentInfo = m_World->GetComponents(componentType)->ComponentInfo();
if (m_World->ValidEntity(entityID)) {
if (m_World->HasComponent(entityID, componentType)) {
// If the entity and the component exists update it
updateFields(packet, componentInfo, entityID, componentType);
// if entity exists but not the component
} else {
// Create component
m_World->AttachComponent(entityID, componentType);
// Copy data to newly created component
updateFields(packet, componentInfo, entityID, componentType);
}
// If the entity dosent exist nor the component
} else {
//Create Entity
// If entity dosen't exist
EntityID newEntityID = m_World->CreateEntity();
// Check if EntityIDs are out of sync
if (newEntityID != entityID) {
LOG_INFO("Client::parseSnapshot(Packet& packet): Newly created EntityID is not the \
same as the one sent by server (EntityIDs are out of sync)");
}
// Create component
m_World->AttachComponent(newEntityID, componentType);
// Copy data to newly created component
updateFields(packet, componentInfo, newEntityID, componentType);
}
}
}
@@ -225,7 +228,7 @@ int Client::receive(char* data, size_t length)
0, error);
if (error) {
//LOG_ERROR("receive: %s", error.message().c_str());
LOG_ERROR("receive: %s", error.message().c_str());
}
return bytesReceived;
+40 -11
View File
@@ -3,13 +3,7 @@
Packet::Packet(MessageType type, unsigned int& packetID)
{
m_Data = new char[m_MaxPacketSize];
// Create message header
// Add message type
int messageType = static_cast<int>(type);
Packet::WritePrimitive<int>(messageType);
packetID = packetID % 1000; // Packet id modulos
Packet::WritePrimitive<int>(packetID);
packetID++;
Init(type, packetID);
}
// Create message
@@ -28,12 +22,26 @@ Packet::~Packet()
delete[] m_Data;
}
void Packet::WriteString(std::string str)
void Packet::Init(MessageType type, unsigned int & packetID)
{
m_ReturnDataOffset = 0;
m_Offset = 0;
// Create message header
// Add message type
int messageType = static_cast<int>(type);
Packet::WritePrimitive<int>(messageType);
packetID = packetID % 1000; // Packet id modulos
Packet::WritePrimitive<int>(packetID);
packetID++;
}
void Packet::WriteString(const std::string& str)
{
// Message, add one extra byte for null terminator
int sizeOfString = str.size() + 1;
if (m_Offset + sizeOfString > m_MaxPacketSize) {
LOG_WARNING("Package::WriteString(): Data size in packet exceeded maximum package size.\n");
LOG_WARNING("Package::WriteString(): Data size in packet exceeded maximum package size. New size is %i bytes\n", m_MaxPacketSize*2);
resizeData();
}
memcpy(m_Data + m_Offset, str.data(), sizeOfString * sizeof(char));
m_Offset += sizeOfString * sizeof(char);
@@ -42,7 +50,8 @@ void Packet::WriteString(std::string str)
void Packet::WriteData(char * data, int sizeOfData)
{
if (m_Offset + sizeOfData > m_MaxPacketSize) {
LOG_WARNING("Packet::WriteData(): Data size in packet exceeded maximum packet size.\n");
LOG_WARNING("Packet::WriteData(): Data size in packet exceeded maximum packet size. New size is %i bytes\n", m_MaxPacketSize*2);
resizeData();
}
memcpy(m_Data + m_Offset, data, sizeOfData);
m_Offset += sizeOfData;
@@ -69,4 +78,24 @@ char * Packet::ReadData(int SizeOfData)
unsigned int oldReturnDataOffset = m_ReturnDataOffset;
m_ReturnDataOffset += SizeOfData;
return (m_Data + oldReturnDataOffset);
}
}
void Packet::resizeData()
{
// Allocate memory to store our data in
char* holdData = new char[m_MaxPacketSize];
// Copy our data to the newly allocated memory
memcpy(holdData, m_Data, m_Offset);
// Increase max packet size
m_MaxPacketSize = m_MaxPacketSize * 2;
// Delete our data
delete m_Data;
// Allocate twice the memory we had before
m_Data = new char[m_MaxPacketSize];
// Copy our data to new location
memcpy(m_Data, holdData, m_Offset);
// Delete the memory allocated to hold our data
// while we resized the old data container.
delete holdData;
}
+29 -28
View File
@@ -4,7 +4,9 @@ Server::Server() : m_Socket(m_IOService, boost::asio::ip::udp::endpoint(boost::a
{ }
Server::~Server()
{ }
{
}
void Server::Start(World* world, EventBroker* eventBroker)
@@ -22,18 +24,9 @@ void Server::Update()
readFromClients();
}
void Server::Close()
{
m_ThreadIsRunning = false;
}
void Server::readFromClients()
{
// m_ThreadIsRunning might be unnecessary but the
// program crashed if it executed m_Socket.available()
// when closing the program.
if (m_Socket.available()) {
while (m_Socket.available()) {
try {
bytesRead = receive(readBuffer, INPUTSIZE);
Packet packet(readBuffer, bytesRead);
@@ -41,7 +34,6 @@ void Server::readFromClients()
} catch (const std::exception& err) {
//LOG_ERROR("%i: Read from client crashed %s", m_PacketID, err.what());
}
}
std::clock_t currentTime = std::clock();
// Send snapshot
@@ -58,7 +50,7 @@ void Server::readFromClients()
// Time out logic
if (checkTimeOutInterval < (1000 * (currentTime - timOutTimer) / (double)CLOCKS_PER_SEC)) {
checkForTimeOuts();
//checkForTimeOuts();
timOutTimer = currentTime;
}
}
@@ -108,7 +100,7 @@ int Server::receive(char * data, size_t length)
void Server::send(Packet& packet, int playerID)
{
m_Socket.send_to(
int bytesSent = m_Socket.send_to(
boost::asio::buffer(packet.Data(), packet.Size()),
m_PlayerDefinitions[playerID].Endpoint,
0);
@@ -150,22 +142,32 @@ void Server::broadcast(Packet& packet)
}
}
// Send snapshot fields
void Server::sendSnapshot()
{
Packet packet(MessageType::Snapshot, m_SendPacketID);
for (size_t i = 0; i < MAXCONNECTIONS; i++) {
// Should time this
std::unordered_map<std::string, ComponentPool*> worldComponentPools = m_World->GetComponentPools();
for (auto& it : worldComponentPools) {
Packet packet(MessageType::Snapshot, m_SendPacketID);
std::string componentType = it.first;
ComponentPool* componentPool = it.second;
ComponentInfo componentInfo = componentPool->ComponentInfo();
packet.WriteString(componentInfo.Name);
// Send an empty name if there is no player connected on this position.
packet.WriteString(m_PlayerDefinitions[i].Name);
if (m_PlayerDefinitions[i].EntityID == -1) {
continue;
for (auto& componentWrapper : *componentPool) {
packet.WritePrimitive(componentWrapper.EntityID);
for (auto& componentField : componentWrapper.Info.FieldsInOrder) {
ComponentInfo::Field_t fieldInfo = componentInfo.Fields.at(componentField);
if (fieldInfo.Type == "string") {
std::string& value = componentWrapper[componentField];
packet.WriteString(value);
} else {
packet.WriteData(componentWrapper.Data + fieldInfo.Offset, fieldInfo.Stride);
}
}
}
// Pack transfrom component into data packet
auto transform = m_World->GetComponent(m_PlayerDefinitions[i].EntityID, "Transform");
packet.WriteData(transform.Data, transform.Info.Meta.Stride);
broadcast(packet);
}
broadcast(packet);
}
void Server::sendPing()
@@ -174,10 +176,9 @@ void Server::sendPing()
for (size_t i = 0; i < MAXCONNECTIONS; i++) {
if (m_PlayerDefinitions[i].Endpoint.address() != boost::asio::ip::address()) {
int ping = 1000 * (m_StopTimes[i] - m_StartPingTime) / static_cast<double>(CLOCKS_PER_SEC);
LOG_INFO("%i: Player %i's ping: %i", m_PacketID, i, ping);
LOG_INFO("Last packetID received %i: Player %i's ping: %i", m_PacketID, i, ping);
}
}
// Create ping message
Packet packet(MessageType::ServerPing, m_SendPacketID);
packet.WriteString("Ping from server");
@@ -271,7 +272,7 @@ void Server::parseConnect(Packet& packet)
m_StopTimes[i] = std::clock();
LOG_INFO("Player \"%s\" connected on IP: %s", m_PlayerDefinitions[i].Name, m_PlayerDefinitions[i].Endpoint.address().to_string());
LOG_INFO("Player \"%s\" connected on IP: %s", m_PlayerDefinitions[i].Name.c_str(), m_PlayerDefinitions[i].Endpoint.address().to_string().c_str());
Packet packet(MessageType::Connect, m_SendPacketID);
packet.WritePrimitive<int>(i); // Player ID
+12 -9
View File
@@ -50,6 +50,18 @@ void Camera::SetOrientation(glm::quat val)
UpdateViewMatrix();
}
void Camera::SetProjectionMatrix(glm::mat4 val)
{
m_ProjectionMatrix = val;
}
void Camera::SetViewMatrix(glm::mat4 val)
{
m_ViewMatrix = val;
}
//void Camera::Pitch(float val)
//{
// m_Pitch = val;
@@ -64,15 +76,6 @@ void Camera::SetOrientation(glm::quat val)
void Camera::UpdateProjectionMatrix()
{
// m_ProjectionMatrix = glm::ortho(
// -16.f,
// 16.f,
// -9.f,
// 9.f,
// m_NearClip,
// m_FarClip
// );
m_ProjectionMatrix = glm::perspective(m_FOV, m_AspectRatio, m_NearClip, m_FarClip);
}
+66
View File
@@ -0,0 +1,66 @@
#include "Rendering/DrawFinalPass.h"
DrawFinalPass::DrawFinalPass(IRenderer* renderer, LightCullingPass* lightCullingPass)
{
m_Renderer = renderer;
m_LightCullingPass = lightCullingPass;
InitializeTextures();
InitializeShaderPrograms();
}
void DrawFinalPass::InitializeTextures()
{
m_WhiteTexture = ResourceManager::Load<Texture>("Textures/Core/Blank.png");
}
void DrawFinalPass::InitializeShaderPrograms()
{
m_ForwardPlusProgram = ResourceManager::Load<ShaderProgram>("#ForwardPlusProgram");
m_ForwardPlusProgram->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/ForwardPlus.vert.glsl")));
m_ForwardPlusProgram->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/ForwardPlus.frag.glsl")));
m_ForwardPlusProgram->Compile();
m_ForwardPlusProgram->Link();
}
void DrawFinalPass::Draw(RenderScene& scene)
{
GLERROR("DrawFinalPass::Draw: Pre");
DrawFinalPassState state;
m_ForwardPlusProgram->Bind();
GLuint shaderHandle = m_ForwardPlusProgram->GetHandle();
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 1, m_LightCullingPass->LightSSBO());
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 2, m_LightCullingPass->LightGridSSBO());
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 4, m_LightCullingPass->LightIndexSSBO());
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ProjectionMatrix()));
glUniform2f(glGetUniformLocation(shaderHandle, "ScreenDimensions"), m_Renderer->Resolution().Width, m_Renderer->Resolution().Height);
//TODO: Render: Add code for more jobs than modeljobs.
for (auto &job : scene.ForwardJobs) {
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
if(modelJob) {
//TODO: Kolla upp "header/include/common" shader saken så man slipper skicka in asmycket uniforms
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniform4fv(glGetUniformLocation(shaderHandle, "Color"), 1, glm::value_ptr(modelJob->Color));
if(modelJob->DiffuseTexture != nullptr) {
glActiveTexture(GL_TEXTURE0);
glBindTexture(GL_TEXTURE_2D, modelJob->DiffuseTexture->m_Texture);
} else {
glActiveTexture(GL_TEXTURE0);
glBindTexture(GL_TEXTURE_2D, m_WhiteTexture->m_Texture);
}
glBindVertexArray(modelJob->Model->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, modelJob->Model->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, modelJob->EndIndex - modelJob->StartIndex + 1, GL_UNSIGNED_INT, 0, modelJob->StartIndex);
continue;
}
}
GLERROR("DrawFinalPass::Draw: END");
}
@@ -0,0 +1,18 @@
#include "Rendering/DrawFinalPassState.h"
DrawFinalPassState::DrawFinalPassState()
{
BindFramebuffer(0);
Enable(GL_BLEND);
BlendFunc(GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA);
Enable(GL_DEPTH_TEST);
Enable(GL_CULL_FACE);
ClearColor(glm::vec4(200.f / 255, 0.f / 255, 200.f / 255, 0.f));
Clear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
}
DrawFinalPassState::~DrawFinalPassState()
{
}
+16 -20
View File
@@ -20,36 +20,32 @@ void DrawScenePass::InitializeShaderPrograms()
m_BasicForwardProgram->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/BasicForward.frag.glsl")));
m_BasicForwardProgram->Compile();
m_BasicForwardProgram->Link();
m_ExplosionEffectProgram = ResourceManager::Load<ShaderProgram>("#ExplosionEffectProgram");
m_ExplosionEffectProgram->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/ExplosionEffect.vert.glsl")));
m_ExplosionEffectProgram->AddShader(std::shared_ptr<Shader>(new GeometryShader("Shaders/ExplosionEffect.geom.glsl")));
m_ExplosionEffectProgram->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/ExplosionEffect.frag.glsl")));
m_ExplosionEffectProgram->Compile();
m_ExplosionEffectProgram->Link();
}
void DrawScenePass::Draw(RenderQueueCollection& rq)
void DrawScenePass::Draw(RenderScene& scene)
{
glBindFramebuffer(GL_FRAMEBUFFER, 0);
GLERROR("Renderer::Draw PickingPass");
GLERROR("DrawScenePass::Draw: Pre");
DrawScenePassState state;
DrawScenePassState state = DrawScenePassState();
m_BasicForwardProgram->Bind();
//TODO: Render: Add code for more jobs than modeljobs.
for (auto &job : rq.Forward) {
for (auto &job : scene.ForwardJobs) {
auto explosionEffectJob = std::dynamic_pointer_cast<ExplosionEffectJob>(job);
if (explosionEffectJob) {
GLuint ShaderHandle = m_ExplosionEffectProgram->GetHandle(); //---
m_ExplosionEffectProgram->Bind();
//TODO: Kolla upp "header/include/common" shader saken så man slipper skicka in asmycket uniforms
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(explosionEffectJob->ModelMatrix));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ProjectionMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(explosionEffectJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform4fv(glGetUniformLocation(ShaderHandle, "Color"), 1, glm::value_ptr(explosionEffectJob->Color));
glUniform3fv(glGetUniformLocation(ShaderHandle, "ExplosionOrigin"), 1, glm::value_ptr(explosionEffectJob->ExplosionOrigin));
glUniform1f(glGetUniformLocation(ShaderHandle, "TimeSinceDeath"), explosionEffectJob->TimeSinceDeath);
@@ -85,16 +81,15 @@ void DrawScenePass::Draw(RenderQueueCollection& rq)
}
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
if (modelJob) {
/*if (modelJob) {
GLuint ShaderHandle = m_BasicForwardProgram->GetHandle(); //---
GLERROR("1");
//---
m_BasicForwardProgram->Bind();
GLERROR("2.1");
//TODO: Kolla upp "header/include/common" shader saken så man slipper skicka in asmycket uniforms
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->ModelMatrix));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ProjectionMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform4fv(glGetUniformLocation(ShaderHandle, "Color"), 1, glm::value_ptr(modelJob->Color));
GLERROR("2");
//TODO: Renderer: bättre textur felhantering samt fler texturer stöd
@@ -110,8 +105,9 @@ void DrawScenePass::Draw(RenderQueueCollection& rq)
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, modelJob->Model->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, modelJob->EndIndex - modelJob->StartIndex + 1, GL_UNSIGNED_INT, 0, modelJob->StartIndex);
GLERROR("4");
continue;
}
//continue;
}*/
}
GLERROR("DrawScene Error");
GLERROR("DrawScenePass::Draw: End");
}
+4 -2
View File
@@ -8,8 +8,10 @@ DrawScenePassState::DrawScenePassState()
GLERROR("---");
Enable(GL_DEPTH_TEST);
Enable(GL_CULL_FACE);
ClearColor(glm::vec4(255.f / 255, 163.f / 255, 176.f / 255, 0.f));
Clear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
Enable(GL_BLEND);
glBlendFunc(GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA);
// ClearColor(glm::vec4(255.f / 255, 163.f / 255, 176.f / 255, 0.f));
// Clear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
}
DrawScenePassState::~DrawScenePassState()
+1 -8
View File
@@ -39,17 +39,10 @@ void DummyRenderer::Initialize()
exit(EXIT_FAILURE);
}
// Create default camera
m_DefaultCamera = new ::Camera((float)m_Resolution.Width / m_Resolution.Height, glm::radians(45.f), 0.01f, 5000.f);
m_DefaultCamera->SetPosition(glm::vec3(0, 0, 0));
if (m_Camera == nullptr) {
m_Camera = m_DefaultCamera;
}
glfwSwapInterval(m_VSYNC);
}
void DummyRenderer::Draw(RenderQueueCollection& rq)
void DummyRenderer::Draw(RenderFrame& rq)
{
glClearColor(255.f / 255, 163.f / 255, 176.f / 255, 0.f);
glClear(GL_COLOR_BUFFER_BIT);
+151
View File
@@ -0,0 +1,151 @@
#include "Rendering/LightCullingPass.h"
LightCullingPass::LightCullingPass(IRenderer* renderer)
{
m_Renderer = renderer;
SetSSBOSizes();
InitializeSSBOs();
InitializeShaderPrograms();
//GenerateNewFrustum(TODO);
}
LightCullingPass::~LightCullingPass()
{
}
void LightCullingPass::GenerateNewFrustum(RenderScene& scene)
{
if (scene.PointLightJobs.size() == 0)
return;
GLERROR("CalculateFrustum Error: Pre");
m_CalculateFrustumProgram->Bind();
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 0, m_FrustumSSBO);
glUniformMatrix4fv(glGetUniformLocation(m_CalculateFrustumProgram->GetHandle(), "P"), 1, false, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform2f(glGetUniformLocation(m_CalculateFrustumProgram->GetHandle(), "ScreenDimensions"), m_Renderer->Resolution().Width, m_Renderer->Resolution().Height);
glDispatchCompute((int)(m_Renderer->Resolution().Width/(TILE_SIZE*TILE_SIZE) + 1), (int)(m_Renderer->Resolution().Height/(TILE_SIZE*TILE_SIZE) + 1), 1);
GLERROR("CalculateFrustum Error: End");
}
void LightCullingPass::OnResolutionChange()
{
SetSSBOSizes();
}
void LightCullingPass::SetSSBOSizes()
{
m_NumberOfTiles = (int)(m_Renderer->Resolution().Width*m_Renderer->Resolution().Height)/TILE_SIZE;
//m_Frustums = new Frustum[s];
//m_LightGrid = new LightGrid[s];
//m_LightIndex = new float[s*200];
m_Frustums = new Frustum[m_NumberOfTiles];
m_LightGrid = new LightGrid[m_NumberOfTiles];
m_LightIndex = new float[m_NumberOfTiles*MAX_LIGHTS_PER_TILE];
}
void LightCullingPass::CullLights(RenderScene& scene)
{
GLERROR("CullLights Error: Pre");
m_LightOffset = 0;
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightOffsetSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_LightOffset), &m_LightOffset, GL_DYNAMIC_COPY);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightSSBO);
if (m_PointLights.size() > 0) {
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(PointLight) * m_PointLights.size(), &(m_PointLights[0]), GL_DYNAMIC_COPY);
} else {
GLfloat zero = 0.f;
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(GLfloat), &zero , GL_DYNAMIC_COPY);
}
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
m_LightCullProgram->Bind();
glUniform2f(glGetUniformLocation(m_LightCullProgram->GetHandle(), "ScreenDimensions"), m_Renderer->Resolution().Width, m_Renderer->Resolution().Height);
glUniformMatrix4fv(glGetUniformLocation(m_LightCullProgram->GetHandle(), "V"), 1, false, glm::value_ptr(scene.Camera->ViewMatrix()));
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 0, m_FrustumSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 1, m_LightSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 2, m_LightGridSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 3, m_LightOffsetSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 4, m_LightIndexSSBO);
glDispatchCompute(m_Renderer->Resolution().Width / TILE_SIZE, m_Renderer->Resolution().Height / TILE_SIZE, 1);
GLERROR("CullLights Error: End");
}
void LightCullingPass::FillLightList(RenderScene& scene)
{
m_PointLights.clear();
for(auto &job : scene.PointLightJobs) {
auto pointLightjob = std::dynamic_pointer_cast<PointLightJob>(job);
if (pointLightjob) {
PointLight p;
p.Color = pointLightjob->Color;
p.Falloff = pointLightjob->Falloff;
p.Intensity = pointLightjob->Intensity;
p.Position = glm::vec4(glm::vec3(pointLightjob->Position), 1.f);
p.Radius = pointLightjob->Radius;
p.Padding = 123.f;
m_PointLights.push_back(p);
continue;
}
}
}
void LightCullingPass::InitializeSSBOs()
{
glGenBuffers(1, &m_FrustumSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_FrustumSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(Frustum)*m_NumberOfTiles, m_Frustums, GL_DYNAMIC_COPY);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_FrustumSSBO");
glGenBuffers(1, &m_LightSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightSSBO);
if(m_PointLights.size() > 0) {
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(PointLight) * m_PointLights.size(), &(m_PointLights[0]), GL_DYNAMIC_COPY);
}
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightSSBO");
glGenBuffers(1, &m_LightGridSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightGridSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(LightGrid)*m_NumberOfTiles, m_LightGrid, GL_DYNAMIC_COPY);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightGridSSBO");
glGenBuffers(1, &m_LightOffsetSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightOffsetSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_LightOffset), &m_LightOffset, GL_DYNAMIC_COPY);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightOffsetSSBO");
glGenBuffers(1, &m_LightIndexSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightIndexSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(float)*m_NumberOfTiles*MAX_LIGHTS_PER_TILE, m_LightIndex, GL_DYNAMIC_COPY);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightIndexSSBO");
}
void LightCullingPass::InitializeShaderPrograms()
{
m_CalculateFrustumProgram = ResourceManager::Load<ShaderProgram>("#CalculateFrustumProgram");
m_CalculateFrustumProgram->AddShader(std::shared_ptr<Shader>(new ComputeShader("Shaders/GridFrustum.comp.glsl")));
m_CalculateFrustumProgram->Compile();
m_CalculateFrustumProgram->Link();
m_LightCullProgram = ResourceManager::Load<ShaderProgram>("#LightCullProgram");
m_LightCullProgram->AddShader(std::shared_ptr<Shader>(new ComputeShader("Shaders/CullLights.comp.glsl")));
m_LightCullProgram->Compile();
m_LightCullProgram->Link();
}
+62 -48
View File
@@ -1,60 +1,74 @@
#include "Rendering/Model.h"
Model::Model(std::string fileName)
: RawModel(fileName)
{
// Generate GL buffers
GLuint buffer;
glGenBuffers(1, &buffer);
glBindBuffer(GL_ARRAY_BUFFER, buffer);
glBufferData(GL_ARRAY_BUFFER, m_Vertices.size() * sizeof(Vertex), &m_Vertices[0], GL_STATIC_DRAW);
//Try loading the model asyncronously, if it throws any exceptions then let it propagate back to caller.
m_RawModel = ResourceManager::Load<RawModel, true>(fileName);
glGenBuffers(1, &ElementBuffer);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, ElementBuffer);
glBufferData(GL_ELEMENT_ARRAY_BUFFER, m_Indices.size() * sizeof(unsigned int), &m_Indices[0], GL_STATIC_DRAW);
for (auto& group : m_RawModel->MaterialGroups) {
if (!group.TexturePath.empty()) {
group.Texture = std::shared_ptr<Texture>(ResourceManager::Load<Texture>(group.TexturePath));
}
if (!group.NormalMapPath.empty()) {
group.NormalMap = std::shared_ptr<Texture>(ResourceManager::Load<Texture>(group.NormalMapPath));
}
if (!group.SpecularMapPath.empty()) {
group.SpecularMap = std::shared_ptr<Texture>(ResourceManager::Load<Texture>(group.SpecularMapPath));
}
}
glGenVertexArrays(1, &VAO);
glBindVertexArray(VAO);
GLERROR("GLEW: BufferFail4");
// Generate GL buffers
GLuint buffer;
glGenBuffers(1, &buffer);
glBindBuffer(GL_ARRAY_BUFFER, buffer);
glBufferData(GL_ARRAY_BUFFER, m_RawModel->m_Vertices.size() * sizeof(RawModel::Vertex), &m_RawModel->m_Vertices[0], GL_STATIC_DRAW);
glBindBuffer(GL_ARRAY_BUFFER, buffer);
std::vector<int> structSizes = { 3, 3, 3, 3, 2, 4, 4, 4, 4, 4, 4 };
int stride = 0;
for (int size : structSizes) {
stride += size;
}
stride *= sizeof(GLfloat);
int offset = 0;
{
int element = 0;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * offset)); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
}
GLERROR("GLEW: BufferFail5");
glGenBuffers(1, &ElementBuffer);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, ElementBuffer);
glBufferData(GL_ELEMENT_ARRAY_BUFFER, m_RawModel->m_Indices.size() * sizeof(unsigned int), &m_RawModel->m_Indices[0], GL_STATIC_DRAW);
glEnableVertexAttribArray(0);
glEnableVertexAttribArray(1);
glEnableVertexAttribArray(2);
glEnableVertexAttribArray(3);
glEnableVertexAttribArray(4);
glEnableVertexAttribArray(5);
glEnableVertexAttribArray(6);
glEnableVertexAttribArray(7);
glEnableVertexAttribArray(8);
glEnableVertexAttribArray(9);
glEnableVertexAttribArray(10);
GLERROR("GLEW: BufferFail5");
glGenVertexArrays(1, &VAO);
glBindVertexArray(VAO);
GLERROR("GLEW: BufferFail4");
//CreateBuffers();
glBindBuffer(GL_ARRAY_BUFFER, buffer);
std::vector<int> structSizes = { 3, 3, 3, 3, 2, 4, 4, 4, 4, 4, 4 };
int stride = 0;
for (int size : structSizes) {
stride += size;
}
stride *= sizeof(GLfloat);
int offset = 0;
{
int element = 0;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * offset)); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
glVertexAttribPointer(element, structSizes[element], GL_FLOAT, GL_FALSE, stride, (GLvoid*)(sizeof(GLfloat) * (offset += structSizes[element - 1]))); element++;
}
GLERROR("GLEW: BufferFail5");
glEnableVertexAttribArray(0);
glEnableVertexAttribArray(1);
glEnableVertexAttribArray(2);
glEnableVertexAttribArray(3);
glEnableVertexAttribArray(4);
glEnableVertexAttribArray(5);
glEnableVertexAttribArray(6);
glEnableVertexAttribArray(7);
glEnableVertexAttribArray(8);
glEnableVertexAttribArray(9);
glEnableVertexAttribArray(10);
GLERROR("GLEW: BufferFail5");
//CreateBuffers();
}
Model::~Model()
+81 -42
View File
@@ -43,70 +43,109 @@ void PickingPass::InitializeShaderPrograms()
m_PickingProgram->Link();
}
void PickingPass::Draw(RenderQueueCollection& rq)
void PickingPass::Draw(RenderScene& scene)
{
m_PickingColorsToEntity.clear();
PickingPassState* state = new PickingPassState(m_PickingBuffer.GetHandle());
int r = 0;
int g = 0;
//TODO: Render: Add code for more jobs than modeljobs.
GLuint ShaderHandle = m_PickingProgram->GetHandle();
m_PickingProgram->Bind();
std::map<EntityID, glm::vec2> entityColors;
for (auto &job : rq.Forward) {
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
m_Camera = scene.Camera;
if (modelJob) {
int pickColor[2] = { r, g };
auto color = entityColors.find(modelJob->Entity);
if (color != entityColors.end()) {
pickColor[0] = color->second[0];
pickColor[1] = color->second[1];
} else {
entityColors[modelJob->Entity] = glm::vec2(pickColor[0], pickColor[1]);
if (r + 10 > 255) {
r = 0;
g += 1;
for (auto &job : scene.ForwardJobs) {
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
if (modelJob) {
int pickColor[2] = { m_ColorCounter[0], m_ColorCounter[1] };
PickingInfo pickInfo;
pickInfo.Entity = modelJob->Entity;
pickInfo.World = modelJob->World;
pickInfo.Camera = scene.Camera;
auto color = m_EntityColors.find(std::make_tuple(pickInfo.Entity, pickInfo.World, pickInfo.Camera));
if (color != m_EntityColors.end()) {
pickColor[0] = color->second[0];
pickColor[1] = color->second[1];
} else {
r += 1;
m_EntityColors[std::make_tuple(pickInfo.Entity, pickInfo.World, pickInfo.Camera)] = glm::ivec2(pickColor[0], pickColor[1]);
if (m_ColorCounter[0] > 255) {
m_ColorCounter[0] = 0;
m_ColorCounter[1]++;;
} else {
m_ColorCounter[0]++;;
}
}
}
m_PickingColorsToEntity[glm::vec2(pickColor[0], pickColor[1])] = modelJob->Entity;
//Render picking stuff
//TODO: Kolla upp "header/include/common" shader saken så man slipper skicka in asmycket uniforms
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->ModelMatrix));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(m_Renderer->Camera()->ProjectionMatrix()));
glUniform2fv(glGetUniformLocation(ShaderHandle, "PickingColor"), 1, glm::value_ptr(glm::vec2(pickColor[0], pickColor[1])));
glBindVertexArray(modelJob->Model->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, modelJob->Model->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, modelJob->EndIndex - modelJob->StartIndex + 1, GL_UNSIGNED_INT, nullptr, modelJob->StartIndex);
m_PickingColorsToEntity[glm::ivec2(pickColor[0], pickColor[1])] = pickInfo;
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(ShaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform2fv(glGetUniformLocation(ShaderHandle, "PickingColor"), 1, glm::value_ptr(glm::vec2(pickColor[0], pickColor[1])));
glBindVertexArray(modelJob->Model->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, modelJob->Model->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, modelJob->EndIndex - modelJob->StartIndex + 1, GL_UNSIGNED_INT, nullptr, modelJob->StartIndex);
}
}
}
m_PickingBuffer.Unbind();
GLERROR("PickingPass Error");
//Publish pick event every frame with the pick data that can be picked by the event
delete state;
}
void PickingPass::ClearPicking()
{
m_PickingColorsToEntity.clear();
m_EntityColors.clear();
m_ColorCounter[0] = 1;
m_ColorCounter[1] = 0;
m_PickingBuffer.Bind();
glClearColor(0.f, 0.f, 0.f, 0.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
m_PickingBuffer.Unbind();
}
PickData PickingPass::Pick(glm::vec2 screenCoord)
{
int fbWidth;
int fbHeight;
glfwGetFramebufferSize(m_Renderer->Window(), &fbWidth, &fbHeight);
Events::Picking pickEvent = Events::Picking(
&m_PickingBuffer,
&m_DepthBuffer,
m_Renderer->Camera()->ProjectionMatrix(),
m_Renderer->Camera()->ViewMatrix(),
Rectangle(fbWidth, fbHeight),
&m_PickingColorsToEntity);
m_EventBroker->Publish(pickEvent);
Rectangle resolution = Rectangle(fbWidth, fbHeight);
PickData pickData;
// Invert screen y coordinate
screenCoord.y = resolution.Height - screenCoord.y;
ScreenCoords::PixelData data = ScreenCoords::ToPixelData(screenCoord, &m_PickingBuffer, m_DepthBuffer);
pickData.Depth = data.Depth;
delete state;
PickingInfo pickInfo;
auto it = m_PickingColorsToEntity.find(glm::ivec2(data.Color[0], data.Color[1]));
if (it != m_PickingColorsToEntity.end()) {
pickInfo = it->second;
} else {
pickData.Entity = EntityID_Invalid;
return pickData;
}
pickData.Position = ScreenCoords::ToWorldPos(screenCoord.x, screenCoord.y, data.Depth, resolution, pickInfo.Camera->ProjectionMatrix(), pickInfo.Camera->ViewMatrix());
pickData.Entity = pickInfo.Entity;
pickData.Camera = pickInfo.Camera;
pickData.World = pickInfo.World;
return pickData;
}
void PickingPass::GenerateTexture(GLuint* texture, GLenum wrapping, GLenum filtering, glm::vec2 dimensions, GLint internalFormat, GLint format, GLenum type) const
+2 -2
View File
@@ -10,8 +10,8 @@ PickingPassState::PickingPassState(GLuint frameBuffer)
Enable(GL_CULL_FACE);
glm::vec4 clearColor = glm::vec4(0.f);
ClearColor(clearColor);
Clear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
//ClearColor(clearColor);
//Clear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
}
PickingPassState::~PickingPassState()
+8 -10
View File
@@ -81,6 +81,9 @@ RawModel::RawModel(std::string fileName)
float opacity;
material->Get(AI_MATKEY_OPACITY, opacity);
desc.DiffuseVertexColor = glm::vec4(diffuse.r, diffuse.g, diffuse.b, opacity);
desc.DiffuseVertexColor = glm::vec4(diffuse.r, diffuse.g, diffuse.b, opacity);
// Material specular color
aiColor3D specular;
material->Get(AI_MATKEY_COLOR_SPECULAR, specular);
@@ -134,6 +137,7 @@ RawModel::RawModel(std::string fileName)
matGroup.EndIndex = m_Indices.size() - 1;
// Material shininess
material->Get(AI_MATKEY_SHININESS, matGroup.Shininess);
material->Get(AI_MATKEY_OPACITY, matGroup.Transparency);
//LOG_DEBUG("Shininess: %f", matGroup.Shininess);
// Diffuse texture
//LOG_DEBUG("%i diffuse textures found", material->GetTextureCount(aiTextureType_DIFFUSE));
@@ -141,9 +145,7 @@ RawModel::RawModel(std::string fileName)
aiString path;
aiTextureMapping mapping;
material->GetTexture(aiTextureType_DIFFUSE, 0, &path, &mapping);
std::string absolutePath = (boost::filesystem::path(fileName).branch_path() / path.C_Str()).string();
//LOG_DEBUG("Diffuse texture: %s", absolutePath.c_str());
matGroup.Texture = std::shared_ptr<Texture>(ResourceManager::Load<Texture>(absolutePath));
matGroup.TexturePath = (boost::filesystem::path(fileName).branch_path() / path.C_Str()).string();
}
// Normal map
//LOG_DEBUG("%i normal maps found", material->GetTextureCount(aiTextureType_HEIGHT));
@@ -151,9 +153,7 @@ RawModel::RawModel(std::string fileName)
aiString path;
aiTextureMapping mapping;
material->GetTexture(aiTextureType_HEIGHT, 0, &path, &mapping);
std::string absolutePath = (boost::filesystem::path(fileName).branch_path() / path.C_Str()).string();
//LOG_DEBUG("Normal map: %s", absolutePath.c_str());
matGroup.NormalMap = std::shared_ptr<Texture>(ResourceManager::Load<Texture>(absolutePath));
matGroup.NormalMapPath = (boost::filesystem::path(fileName).branch_path() / path.C_Str()).string();
}
// Specular map
//LOG_DEBUG("%i specular maps found", material->GetTextureCount(aiTextureType_SPECULAR));
@@ -161,11 +161,9 @@ RawModel::RawModel(std::string fileName)
aiString path;
aiTextureMapping mapping;
material->GetTexture(aiTextureType_SPECULAR, 0, &path, &mapping);
std::string absolutePath = (boost::filesystem::path(fileName).branch_path() / path.C_Str()).string();
//LOG_DEBUG("Specular map: %s", absolutePath.c_str());
matGroup.SpecularMap = std::shared_ptr<Texture>(ResourceManager::Load<Texture>(absolutePath));
matGroup.SpecularMapPath = (boost::filesystem::path(fileName).branch_path() / path.C_Str()).string();
}
TextureGroups.push_back(matGroup);
MaterialGroups.push_back(matGroup);
// Bones
std::map<int, std::vector<std::tuple<int, float>>> vertexWeights;
-176
View File
@@ -1,176 +0,0 @@
#include "Rendering/RenderQueueFactory.h"
RenderQueueFactory::RenderQueueFactory()
{
m_RenderQueues = RenderQueueCollection();
}
void RenderQueueFactory::Update(World* world)
{
m_RenderQueues.Clear();
FillModels(world, &m_RenderQueues.Forward);
FillLights(world, &m_RenderQueues.Lights);
}
glm::mat4 RenderQueueFactory::ModelMatrix(World* world, EntityID entity)
{
glm::vec3 position = AbsolutePosition(world, entity);
glm::quat orientation = AbsoluteOrientation(world, entity);
glm::vec3 scale = AbsoluteScale(world, entity);
glm::mat4 modelMatrix = glm::translate(glm::mat4(), position) * glm::toMat4(orientation) * glm::scale(scale);
return modelMatrix;
}
glm::vec3 RenderQueueFactory::AbsolutePosition(World* world, EntityID entity)
{
glm::vec3 position;
do {
ComponentWrapper transform = world->GetComponent(entity, "Transform");
EntityID parent = world->GetParent(entity);
if (parent != 0) {
position += AbsoluteOrientation(world, parent) * (glm::vec3)transform["Position"];
} else {
position += (glm::vec3)transform["Position"];
}
entity = parent;
} while (entity != 0);
return position;
}
glm::quat RenderQueueFactory::AbsoluteOrientation(World* world, EntityID entity)
{
glm::quat orientation;
do {
ComponentWrapper transform = world->GetComponent(entity, "Transform");
orientation = glm::quat((glm::vec3)transform["Orientation"]) * orientation;
entity = world->GetParent(entity);
} while (entity != 0);
return orientation;
}
glm::vec3 RenderQueueFactory::AbsoluteScale(World* world, EntityID entity)
{
glm::vec3 scale(1.f);
do {
ComponentWrapper transform = world->GetComponent(entity, "Transform");
scale *= (glm::vec3)transform["Scale"];
entity = world->GetParent(entity);
} while (entity != 0);
return scale;
}
void RenderQueueFactory::FillModels(World* world, RenderQueue* renderQueue)
{
auto models = world->GetComponents("Model");
if (models == nullptr) {
return;
}
for (auto& modelC : *models) {
bool visible = modelC["Visible"];
if (!visible) {
continue;
}
std::string resource = modelC["Resource"];
if (resource.empty()) {
continue;
}
glm::vec4 color = modelC["Color"];
Model* model = ResourceManager::Load<Model>(resource);
if (model == nullptr) {
model = ResourceManager::Load<Model>("Models/Core/Error.obj");
}
for (auto texGroup : model->TextureGroups) {
bool hasDeathComp = world->HasComponent(modelC.EntityID, "ExplosionEffect");
if (!hasDeathComp) {
ModelJob job;
job.TextureID = (texGroup.Texture) ? texGroup.Texture->ResourceID : 0;
job.DiffuseTexture = texGroup.Texture.get();
job.NormalTexture = texGroup.NormalMap.get();
job.SpecularTexture = texGroup.SpecularMap.get();
job.Model = model;
job.StartIndex = texGroup.StartIndex;
job.EndIndex = texGroup.EndIndex;
job.ModelMatrix = model->m_Matrix * ModelMatrix(world, modelC.EntityID);
job.Color = color;
//TODO: RENDERER: Not sure if the best solution for pickingColor to entity link is this
job.Entity = modelC.EntityID;
renderQueue->Add(job);
}
else {
ExplosionEffectJob job;
auto deathComp = world->GetComponent(modelC.EntityID, "ExplosionEffect");
job.ExplosionOrigin = (glm::vec3)deathComp["ExplosionOrigin"];
job.TimeSinceDeath = (double)deathComp["TimeSinceDeath"];
job.ExplosionDuration = (double)deathComp["ExplosionDuration"];
//job.Gravity = (bool)deathComp["Gravity"];
//job.GravityForce = (double)deathComp["GravityForce"];
//job.ObjectRadius = (double)deathComp["ObjectRadius"];
job.EndColor = (glm::vec4)deathComp["EndColor"];
job.Randomness = (bool)deathComp["Randomness"];
job.RandomnessScalar = (double)deathComp["RandomnessScalar"];
job.Velocity = (glm::vec2)deathComp["Velocity"];
job.ColorByDistance = (bool)deathComp["ColorByDistance"];
//job.ReverseAnimation = (bool)deathComp["ReverseAnimation"];
//job.Wireframe = (bool)deathComp["Wireframe"];
job.ExponentialAccelaration = (bool)deathComp["ExponentialAccelaration"];
job.RandomNumbers = {
0.3257552917701f,
0.07601508315467f,
0.57408909014151f,
0.0f,
0.8618231368539f,
0.074957156588769f,
0.39413607511396f,
0.54579346698979f,
0.83222648353885f,
0.83635707285086f,
0.34473986148124f,
0.98092448710507f,
0.46346380070944f,
0.7308761201477f,
0.70832470371776f,
0.28268750909841f,
0.26291620883295f,
0.07685032816457f,
0.30760929515008f,
0.2781575388639f };
job.TextureID = (texGroup.Texture) ? texGroup.Texture->ResourceID : 0;
job.DiffuseTexture = texGroup.Texture.get();
job.NormalTexture = texGroup.NormalMap.get();
job.SpecularTexture = texGroup.SpecularMap.get();
job.Model = model;
job.StartIndex = texGroup.StartIndex;
job.EndIndex = texGroup.EndIndex;
job.ModelMatrix = model->m_Matrix * ModelMatrix(world, modelC.EntityID);
job.Color = color;
//TODO: RENDERER: Not sure if the best solution for pickingColor to entity link is this
job.Entity = modelC.EntityID;
renderQueue->Add(job);
}
}
}
}
void RenderQueueFactory::FillLights(World* world, RenderQueue* renderQueue)
{
}
+1
View File
@@ -3,6 +3,7 @@
bool RenderState::Enable(GLenum cap)
{
if (glIsEnabled(cap)) {
//LOG_WARNING("Trying to enable somthing that is already enabled.");
return false;
}
m_ResetFunctions.push_back(std::bind(glDisable, cap));
+240
View File
@@ -0,0 +1,240 @@
#include "Rendering/RenderSystem.h"
RenderSystem::RenderSystem(EventBroker* eventBroker, const IRenderer* renderer, RenderFrame* renderFrame)
: System(eventBroker)
, m_Renderer(renderer)
, m_RenderFrame(renderFrame)
{
EVENT_SUBSCRIBE_MEMBER(m_ESetCamera, &RenderSystem::OnSetCamera);
EVENT_SUBSCRIBE_MEMBER(m_EInputCommand, &RenderSystem::OnInputCommand);
m_Camera = new Camera((float)m_Renderer->Resolution().Width / m_Renderer->Resolution().Height, glm::radians(45.f), 0.01f, 5000.f);
m_DebugCameraInputController = new DebugCameraInputController<RenderSystem>(eventBroker, -1);
}
RenderSystem::~RenderSystem()
{
delete m_Camera;
delete m_DebugCameraInputController;
}
bool RenderSystem::OnSetCamera(const Events::SetCamera &event)
{
auto cameras = m_World->GetComponents("Camera");
if (cameras != nullptr) {
for (auto it = cameras->begin(); it != cameras->end(); it++) {
if ((std::string)(*it)["Name"] == event.Name) {
switchCamera((*it).EntityID);
}
}
}
return true;
}
void RenderSystem::switchCamera(EntityID entity)
{
if(m_World->HasComponent(entity, "Camera")) {
if (m_CurrentCamera != EntityID_Invalid) {
if (m_World->HasComponent(m_CurrentCamera, "Model")) {
m_World->GetComponent(m_CurrentCamera, "Model")["Visible"] = true;
}
if (m_World->HasComponent(m_CurrentCamera, "Listener")) {
m_World->DeleteComponent(m_CurrentCamera, "Listener");
}
}
if (m_World->HasComponent(entity, "Model")) {
m_World->GetComponent(entity, "Model")["Visible"] = false;
}
if (!m_World->HasComponent(entity, "Listener")) {
m_World->AttachComponent(entity, "Listener");
}
m_CurrentCamera = entity;
m_SwitchCamera = false;
} else {
LOG_ERROR("Entity %i does not have a CameraComponent", entity);
m_SwitchCamera = false;
}
}
void RenderSystem::updateProjectionMatrix(ComponentWrapper& cameraComponent)
{
double fov = cameraComponent["FOV"];
double aspectRatio = (float)m_Renderer->Resolution().Width / m_Renderer->Resolution().Height;
double nearClip = cameraComponent["NearClip"];
double farClip = cameraComponent["FarClip"];
m_Camera->SetFOV(glm::radians(fov));
m_Camera->SetAspectRatio(aspectRatio);
m_Camera->SetNearClip(nearClip);
m_Camera->SetFarClip(farClip);
m_Camera->UpdateProjectionMatrix();
}
void RenderSystem::fillModels(std::list<std::shared_ptr<RenderJob>>& jobs, World* world)
{
auto models = world->GetComponents("Model");
if (models == nullptr) {
return;
}
for (auto& modelComponent : *models) {
bool visible = modelComponent["Visible"];
if (!visible) {
continue;
}
std::string resource = modelComponent["Resource"];
if (resource.empty()) {
continue;
}
Model* model;
try {
model = ResourceManager::Load<::Model, true>(resource);
} catch (const Resource::StillLoadingException&) {
//continue;
model = ResourceManager::Load<::Model>("Models/Core/UnitRaptor.obj");
} catch (const std::exception&) {
try {
model = ResourceManager::Load<::Model>("Models/Core/Error.obj");
} catch (const std::exception&) {
continue;
}
}
glm::mat4 modelMatrix = Transform::ModelMatrix(modelComponent.EntityID, world);
for (auto matGroup : model->MaterialGroups()) {
bool hasDeathComp = world->HasComponent(modelComponent.EntityID, "ExplosionEffect");
if (!hasDeathComp) {
std::shared_ptr<ModelJob> modelJob = std::shared_ptr<ModelJob>(new ModelJob(model, m_Camera, modelMatrix, matGroup, modelComponent, world));
jobs.push_back(modelJob);
} else {
auto explosionEffectComponent = world->GetComponent(modelComponent.EntityID, "ExplosionEffect");
std::shared_ptr<ExplosionEffectJob> explosionEffectJob = std::shared_ptr<ExplosionEffectJob>(new ExplosionEffectJob(explosionEffectComponent, model, m_Camera, modelMatrix, matGroup, modelComponent, world));
jobs.push_back(explosionEffectJob);
}
}
}
}
void RenderSystem::fillLight(std::list<std::shared_ptr<RenderJob>>& jobs, World* world)
{
auto pointLights = world->GetComponents("PointLight");
if (pointLights == nullptr) {
return;
}
for (auto& pointlightC : *pointLights) {
bool visible = pointlightC["Visible"];
if (!visible) {
continue;
}
auto transformC = world->GetComponent(pointlightC.EntityID, "Transform");
if (&transformC == nullptr) {
return;
}
std::shared_ptr<PointLightJob> pointLightJob = std::shared_ptr<PointLightJob>(new PointLightJob(transformC, pointlightC, m_World));
jobs.push_back(pointLightJob);
}
}
bool RenderSystem::OnInputCommand(const Events::InputCommand& e)
{
if (e.Command == "SwitchCamera" && e.Value > 0) {
m_SwitchCamera = true;
return true;
} else {
return false;
}
}
void RenderSystem::Update(World* world, double dt)
{
m_World = world;
m_EventBroker->Process<RenderSystem>();
updateCamera(world, dt);
//Only supports opaque geometry atm
m_RenderFrame->Clear();
RenderScene scene;
scene.Camera = m_Camera;
scene.Viewport = Rectangle(1280, 720);
fillModels(scene.ForwardJobs, world);
fillLight(scene.PointLightJobs, world);
m_RenderFrame->Add(scene);
}
void RenderSystem::updateCamera(World* world, double dt)
{
if (m_SwitchCamera) {
auto cameras = world->GetComponents("Camera");
if (cameras == nullptr) {
return;
}
for (auto it = cameras->begin(); it != cameras->end(); it++) {
if ((*it).EntityID == m_CurrentCamera) {
it++;
if (it != cameras->end()) {
switchCamera((*it).EntityID);
} else {
switchCamera((*cameras->begin()).EntityID);
}
break;
}
}
if (m_World->HasComponent(m_CurrentCamera, "Camera")) {
ComponentWrapper& cameraComponent = world->GetComponent(m_CurrentCamera, "Camera");
ComponentWrapper& cameraTransform = world->GetComponent(m_CurrentCamera, "Transform");
m_DebugCameraInputController->SetOrientation(glm::quat((glm::vec3)cameraTransform["Orientation"]));
m_DebugCameraInputController->SetPosition(cameraTransform["Position"]);
}
}
if (m_World->ValidEntity(m_CurrentCamera)) {
if (world->HasComponent(m_CurrentCamera, "Camera") && world->HasComponent(m_CurrentCamera, "Transform")) {
ComponentWrapper& cameraComponent = world->GetComponent(m_CurrentCamera, "Camera");
ComponentWrapper& cameraTransform = world->GetComponent(m_CurrentCamera, "Transform");
m_DebugCameraInputController->Update(dt);
(glm::vec3&)cameraTransform["Orientation"] = glm::eulerAngles(m_DebugCameraInputController->Orientation());
(glm::vec3&)cameraTransform["Position"] = m_DebugCameraInputController->Position();
glm::vec3 position = Transform::AbsolutePosition(world, m_CurrentCamera);
glm::quat orientation = Transform::AbsoluteOrientation(world, m_CurrentCamera);
m_Camera->SetPosition(position);
m_Camera->SetOrientation(orientation);
updateProjectionMatrix(cameraComponent);
}
} else {
m_Camera = m_Camera;
auto cameras = world->GetComponents("Camera");
if (cameras != nullptr) {
if (cameras->begin() != cameras->end()) {
ComponentWrapper& cameraC = *cameras->begin();
switchCamera(cameraC.EntityID);
ComponentWrapper& cameraComponent = world->GetComponent(m_CurrentCamera, "Camera");
ComponentWrapper& cameraTransform = world->GetComponent(m_CurrentCamera, "Transform");
m_DebugCameraInputController->SetOrientation(glm::quat((glm::vec3)cameraTransform["Orientation"]));
m_DebugCameraInputController->SetPosition(cameraTransform["Position"]);
}
}
}
m_Camera->UpdateViewMatrix();
}
+54 -148
View File
@@ -1,29 +1,29 @@
#include "Rendering/Renderer.h"
#include "Rendering/DebugCameraInputController.h"
void Renderer::Initialize()
{
InitializeWindow();
// Create default camera
m_DefaultCamera = new ::Camera((float)m_Resolution.Width / m_Resolution.Height, glm::radians(45.f), 0.01f, 5000.f);
m_DefaultCamera->SetPosition(glm::vec3(0, 0, 10));
if (m_Camera == nullptr) {
m_Camera = m_DefaultCamera;
}
TEMPCreateLights();
InitializeRenderPasses();
glfwSwapInterval(m_VSYNC);
InitializeShaders();
InitializeTextures();
InitializeSSBOs();
//CalculateFrustum();
m_ScreenQuad = ResourceManager::Load<Model>("Models/Core/ScreenQuad.obj");
m_UnitQuad = ResourceManager::Load<Model>("Models/Core/UnitQuad.obj");
m_UnitSphere = ResourceManager::Load<Model>("Models/Core/UnitSphere.obj");
m_ImGuiRenderPass = new ImGuiRenderPass(this, m_EventBroker);
// Create default camera
m_DefaultCamera = new ::Camera((float)m_Resolution.Width / m_Resolution.Height, glm::radians(45.f), 0.01f, 5000.f);
m_DefaultCamera->SetPosition(glm::vec3(0, 0, 10));
if (m_Camera == nullptr) {
m_Camera = m_DefaultCamera;
}
}
void Renderer::InitializeWindow()
@@ -75,7 +75,6 @@ void Renderer::InitializeShaders()
m_DrawScreenQuadProgram->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/DrawScreenQuad.frag.glsl")));
m_DrawScreenQuadProgram->Compile();
m_DrawScreenQuadProgram->Link();
m_ExplosionEffectProgram = ResourceManager::Load<ShaderProgram>("#ExplosionEffectProgram");
//m_ExplosionEffectProgram->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/ExplosionEffect.vert.glsl")));
//m_ExplosionEffectProgram->AddShader(std::shared_ptr<Shader>(new GeometryShader("Shaders/ExplosionEffect.geom.glsl")));
@@ -85,53 +84,11 @@ void Renderer::InitializeShaders()
//m_CalculateFrustumProgram = ResourceManager::Load<ShaderProgram>("#CalculateFrustumProgram");
//m_CalculateFrustumProgram.AddShader(std::shared_ptr<Shader>(new ComputeShader("Shaders/GridFrustum.comp.glsl")));
//m_CalculateFrustumProgram.Compile();
//m_CalculateFrustumProgram.Link();
//m_LightCullProgram = ResourceManager::Load<ShaderProgram>("#LightCullProgram");
//m_LightCullProgram.AddShader(std::shared_ptr<Shader>(new ComputeShader("Shaders/cullLights.comp.glsl")));
//m_LightCullProgram.Compile();
//m_LightCullProgram.Link();
}
void Renderer::InputUpdate(double dt)
{
static DebugCameraInputController<Renderer> firstPersonInputController(m_EventBroker, -1);
glm::vec3 m_Position = m_Camera->Position();
if (glfwGetKey(m_Window, GLFW_KEY_O) == GLFW_PRESS)
{
m_Position = glm::vec3(0.f, 0.f, 5.f);
}
if (glfwGetKey(m_Window, GLFW_KEY_W) == GLFW_PRESS)
{
m_Position += m_Camera->Forward() * m_CameraMoveSpeed * (float)dt;
}
if (glfwGetKey(m_Window, GLFW_KEY_S) == GLFW_PRESS)
{
m_Position -= m_Camera->Forward() * m_CameraMoveSpeed * (float)dt;
}
if (glfwGetKey(m_Window, GLFW_KEY_D) == GLFW_PRESS)
{
m_Position += m_Camera->Right() * m_CameraMoveSpeed * (float)dt;
}
if (glfwGetKey(m_Window, GLFW_KEY_A) == GLFW_PRESS)
{
m_Position -= m_Camera->Right() * m_CameraMoveSpeed * (float)dt;
}
if (glfwGetKey(m_Window, GLFW_KEY_LEFT_SHIFT) == GLFW_PRESS)
{
m_CameraMoveSpeed = 5.f;
}
else {
m_CameraMoveSpeed = 0.5f;
}
firstPersonInputController.Update(dt);
m_Camera->SetOrientation(firstPersonInputController.Orientation());
m_Camera->SetPosition(firstPersonInputController.Position());
}
void Renderer::Update(double dt)
@@ -141,20 +98,37 @@ void Renderer::Update(double dt)
m_ImGuiRenderPass->Update(dt);
}
void Renderer::Draw(RenderQueueCollection& rq)
void Renderer::Draw(RenderFrame& frame)
{
m_PickingPass->Draw(rq);
//DrawScreenQuad(m_PickingPass->PickingTexture());
//CullLights();
glClearColor(255.f / 255, 163.f / 255, 176.f / 255, 0.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
glClearColor(255.f / 255, 163.f / 255, 176.f / 255, 1.f);
m_DrawScenePass->Draw(rq);
GLERROR("Renderer::Draw m_DrawScenePass->Draw");
m_PickingPass->ClearPicking();
for (auto scene : frame.RenderScenes){
m_Camera = scene->Camera; // remove renderer camera when Editor uses the render scene cameras.
FillDepth(*scene);
m_PickingPass->Draw(*scene);
m_LightCullingPass->GenerateNewFrustum(*scene);
m_LightCullingPass->FillLightList(*scene);
m_LightCullingPass->CullLights(*scene);
m_DrawFinalPass->Draw(*scene);
//m_DrawScenePass->Draw(*scene);
GLERROR("Renderer::Draw m_DrawScenePass->Draw");
}
m_ImGuiRenderPass->Draw();
glfwSwapBuffers(m_Window);
}
PickData Renderer::Pick(glm::vec2 screenCoord)
{
return m_PickingPass->Pick(screenCoord);
}
void Renderer::DrawScreenQuad(GLuint textureToDraw)
{
glBindFramebuffer(GL_FRAMEBUFFER, 0);
@@ -172,14 +146,14 @@ void Renderer::DrawScreenQuad(GLuint textureToDraw)
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->TextureGroups[0].EndIndex - m_ScreenQuad->TextureGroups[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->TextureGroups[0].StartIndex);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].EndIndex - m_ScreenQuad->MaterialGroups()[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].StartIndex);
}
void Renderer::InitializeTextures()
{
m_ErrorTexture=ResourceManager::Load<Texture>("Textures/Core/ErrorTexture.png");
m_WhiteTexture=ResourceManager::Load<Texture>("Textures/Core/Blank.png");
m_ErrorTexture = ResourceManager::Load<Texture>("Textures/Core/ErrorTexture.png");
m_WhiteTexture = ResourceManager::Load<Texture>("Textures/Core/Blank.png");
}
void Renderer::GenerateTexture(GLuint* texture, GLenum wrapping, GLenum filtering, glm::vec2 dimensions, GLint internalFormat, GLint format, GLenum type)
@@ -190,99 +164,31 @@ void Renderer::GenerateTexture(GLuint* texture, GLenum wrapping, GLenum filterin
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_T, wrapping);
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, filtering);
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, filtering);
glTexImage2D(GL_TEXTURE_2D, 0, internalFormat, dimensions.x, dimensions.y, 0, format, type, NULL);//TODO: Renderer: Fix the precision and Resolution
glTexImage2D(GL_TEXTURE_2D, 0, internalFormat, dimensions.x, dimensions.y, 0, format, type, nullptr);//TODO: Renderer: Fix the precision and Resolution
GLERROR("Texture initialization failed");
}
void Renderer::InitializeSSBOs()
{
printf("Size: %i\n", sizeof(m_Frustums));
glGenBuffers(1, &m_FrustumSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_FrustumSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_Frustums), &m_Frustums, GL_DYNAMIC_COPY);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 0, m_FrustumSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_FrustumSSBO");
glGenBuffers(1, &m_LightSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_PointLights), &m_PointLights, GL_DYNAMIC_COPY);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 1, m_LightSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightSSBO");
glGenBuffers(1, &m_LightGridSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightGridSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_LightGrid), &m_LightGrid, GL_DYNAMIC_COPY);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 2, m_LightGridSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightGridSSBO");
glGenBuffers(1, &m_LightOffsetSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightOffsetSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_LightOffset), &m_LightOffset, GL_DYNAMIC_COPY);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 3, m_LightOffsetSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightOffsetSSBO");
glGenBuffers(1, &m_LightIndexSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightIndexSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_LightIndex), &m_LightIndex, GL_DYNAMIC_COPY);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 4, m_LightIndexSSBO);
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
GLERROR("m_LightIndexSSBO");
}
void Renderer::InitializeRenderPasses()
{
m_DrawScenePass = new DrawScenePass(this);
m_PickingPass = new PickingPass(this, m_EventBroker);
m_LightCullingPass = new LightCullingPass(this);
m_DrawFinalPass = new DrawFinalPass(this, m_LightCullingPass);
}
void Renderer::CalculateFrustum()
//Temp func
void Renderer::FillDepth(RenderScene& scene)
{
GLERROR("CalculateFrustum Error-1");
m_CalculateFrustumProgram->Bind();
GLERROR("CalculateFrustum Error1");
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 0, m_FrustumSSBO);
GLERROR("CalculateFrustum Error2");
glUniformMatrix4fv(glGetUniformLocation(m_CalculateFrustumProgram->GetHandle(), "P"), 1, false, glm::value_ptr(m_Camera->ProjectionMatrix()));
GLERROR("CalculateFrustum Error3");
glUniform2f(glGetUniformLocation(m_CalculateFrustumProgram->GetHandle(), "ScreenDimensions"), m_Resolution.Width, m_Resolution.Height);
GLERROR("CalculateFrustum Error4");
glDispatchCompute(5, 3, 1);
GLERROR("CalculateFrustum Error5");
for (auto job : scene.ForwardJobs) {
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
if(! modelJob) {
return;
}
}
void Renderer::TEMPCreateLights()
{
for (int i = 0; i < NUM_LIGHTS; i++) {
m_PointLights[i].Position = glm::vec4(i, 0.f, 0.f, 0.f);
m_PointLights[i].Color = glm::vec4(1.f, 0.5f, 0.f + i*0.1f, 1.f);
glm::vec3 abspos = Transform::AbsolutePosition(modelJob->World, modelJob->Entity);
glm::vec3 worldpos = glm::vec3(scene.Camera->ViewMatrix() * glm::vec4(abspos, 1));
modelJob->Depth = worldpos.z;
}
}
void Renderer::CullLights()
{
m_LightCullProgram->Bind();
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 0, m_FrustumSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 1, m_LightSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 2, m_LightGridSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 3, m_LightOffsetSSBO);
glBindBufferBase(GL_SHADER_STORAGE_BUFFER, 4, m_LightIndexSSBO);
glDispatchCompute(m_Resolution.Width / TILE_SIZE, m_Resolution.Height / TILE_SIZE, 1);
GLERROR("CullLights Error");
}
scene.ForwardJobs.sort(Renderer::DepthSort);
}
+32 -32
View File
@@ -2,48 +2,48 @@
Texture::Texture(std::string path)
{
PNG image(path);
PNG image(path);
if (image.Width == 0 && image.Height == 0 || image.Format == Image::ImageFormat::Unknown) {
image = PNG("Textures/Core/ErrorTexture.png");
if (image.Width == 0 && image.Height == 0 || image.Format == Image::ImageFormat::Unknown) {
LOG_ERROR("Couldn't even load the error texture. This is a dark day indeed.");
return;
}
}
if (image.Width == 0 && image.Height == 0 || image.Format == Image::ImageFormat::Unknown) {
image = PNG("Textures/Core/ErrorTexture.png");
if (image.Width == 0 && image.Height == 0 || image.Format == Image::ImageFormat::Unknown) {
LOG_ERROR("Couldn't even load the error texture. This is a dark day indeed.");
return;
}
}
this->Width = image.Width;
this->Height = image.Height;
this->Width = image.Width;
this->Height = image.Height;
GLint format;
switch (image.Format) {
case Image::ImageFormat::RGB:
format = GL_RGB;
break;
case Image::ImageFormat::RGBA:
format = GL_RGBA;
break;
}
GLint format;
switch (image.Format) {
case Image::ImageFormat::RGB:
format = GL_RGB;
break;
case Image::ImageFormat::RGBA:
format = GL_RGBA;
break;
}
// Construct the OpenGL texture
glGenTextures(1, &m_Texture);
glBindTexture(GL_TEXTURE_2D, m_Texture);
glPixelStorei(GL_UNPACK_ALIGNMENT, 1);
glTexImage2D(GL_TEXTURE_2D, 0, format, image.Width, image.Height, 0, format, GL_UNSIGNED_BYTE, image.Data);
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_S, GL_REPEAT);
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_T, GL_REPEAT);
glTexParameterf(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_LINEAR);
glTexParameterf(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, GL_LINEAR);
GLERROR("Texture load");
// Construct the OpenGL texture
glGenTextures(1, &m_Texture);
glBindTexture(GL_TEXTURE_2D, m_Texture);
glPixelStorei(GL_UNPACK_ALIGNMENT, 1);
glTexImage2D(GL_TEXTURE_2D, 0, format, image.Width, image.Height, 0, format, GL_UNSIGNED_BYTE, image.Data);
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_S, GL_REPEAT);
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_T, GL_REPEAT);
glTexParameterf(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_LINEAR);
glTexParameterf(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, GL_LINEAR);
GLERROR("Texture load");
}
Texture::~Texture()
{
glDeleteTextures(1, &m_Texture);
glDeleteTextures(1, &m_Texture);
}
void Texture::Bind(GLenum textureUnit /* = GL_TEXTURE0 */)
{
glActiveTexture(textureUnit);
glBindTexture(GL_TEXTURE_2D, m_Texture);
glActiveTexture(textureUnit);
glBindTexture(GL_TEXTURE_2D, m_Texture);
}
+304
View File
@@ -0,0 +1,304 @@
#include "Sound/SoundSystem.h"
SoundSystem::SoundSystem(World* world, EventBroker* eventBroker, bool editorMode)
{
m_EventBroker = eventBroker;
m_World = world;
m_EditorEnabled = editorMode;
initOpenAL();
alSpeedOfSound(340.29f);
alDistanceModel(AL_LINEAR_DISTANCE);
alDopplerFactor(1);
EVENT_SUBSCRIBE_MEMBER(m_EPlaySoundOnEntity, &SoundSystem::OnPlaySoundOnEntity);
EVENT_SUBSCRIBE_MEMBER(m_EPlaySoundOnPosition, &SoundSystem::OnPlaySoundOnPosition);
EVENT_SUBSCRIBE_MEMBER(m_EPlayBackgroundMusic, &SoundSystem::OnPlayBackgroundMusic);
EVENT_SUBSCRIBE_MEMBER(m_EStopSound, &SoundSystem::OnStopSound);
EVENT_SUBSCRIBE_MEMBER(m_EPauseSound, &SoundSystem::OnPauseSound);
EVENT_SUBSCRIBE_MEMBER(m_EContinueSound, &SoundSystem::OnContinueSound);
EVENT_SUBSCRIBE_MEMBER(m_ESetBGMGain, &SoundSystem::OnSetBGMGain);
EVENT_SUBSCRIBE_MEMBER(m_ESetSFXGain, &SoundSystem::OnSetSFXGain);
}
SoundSystem::~SoundSystem()
{
stopEmitters(); // Stopps emitters
deleteInactiveEmitters(); // Deletes stopped emitters
// Delete entities
std::unordered_map<EntityID, Source*>::iterator it;
for (it = m_Sources.begin(); it != m_Sources.end(); it++) {
m_World->DeleteEntity((*it).first);
}
m_Sources.clear();
alcDestroyContext(m_ALCcontext);
alcCloseDevice(m_ALCdevice);
}
void SoundSystem::stopEmitters()
{
std::unordered_map<EntityID, Source*>::iterator it;
for (it = m_Sources.begin(); it != m_Sources.end(); it++) {
if (getSourceState(it->second->ALsource) == AL_PLAYING) {
stopSound(it->second);
}
}
}
void SoundSystem::Update(double dt)
{
m_EventBroker->Process<SoundSystem>();
addNewEmitters(dt); // can be optimized with "EEntityCreated"
deleteInactiveEmitters(); // can be optimized with "EEntityDeleted"
updateEmitters( dt);
updateListener( dt);
}
void SoundSystem::deleteInactiveEmitters()
{
std::unordered_map<EntityID, Source*>::iterator it;
for (it = m_Sources.begin(); it != m_Sources.end();) {
if (m_World->ValidEntity(it->first)
&& m_World->HasComponent(it->first, "SoundEmitter")) {
if (getSourceState(it->second->ALsource) != AL_STOPPED) {
// Nothing to see here, move along
it++;
continue;
} else {
// Sound has been stopped / finished playing.
alDeleteBuffers(1, &it->second->ALsource);
alDeleteSources(1, &it->second->ALsource);
m_World->DeleteEntity(it->first);
delete it->second;
it = m_Sources.erase(it);
}
} else {
// Entity / Component has been removed
stopSound((*it).second);
alDeleteBuffers(1, &it->second->ALsource);
alDeleteSources(1, &it->second->ALsource);
delete it->second;
it = m_Sources.erase(it);
}
}
}
void SoundSystem::addNewEmitters(double dt)
{
auto emitterComponents = m_World->GetComponents("SoundEmitter");
if (emitterComponents == nullptr) {
return;
}
for (auto it = emitterComponents->begin(); it != emitterComponents->end(); it++) {
EntityID emitter = (*it).EntityID;
std::unordered_map<EntityID, Source*>::iterator source;
source = m_Sources.find(emitter);
if (source == m_Sources.end()) { // Did not exist, add it
Source* source = createSource((std::string)(*it)["FilePath"]);
m_Sources[emitter] = source;
}
}
}
void SoundSystem::updateEmitters(double dt)
{
std::unordered_map<EntityID, Source*>::iterator it;
for (it = m_Sources.begin(); it != m_Sources.end(); it++) {
// Get previous pos
glm::vec3 previousPos;
alGetSource3f(it->second->ALsource, AL_POSITION, &previousPos.x, &previousPos.y, &previousPos.z);
// Get next pos
glm::vec3 nextPos = Transform::AbsolutePosition(m_World, it->first);
// Calculate velocity
glm::vec3 velocity = glm::vec3(nextPos - previousPos) / (float)dt;
setSourcePos(it->second->ALsource, nextPos);
setSourceVel(it->second->ALsource, velocity);
float gain;
(bool)(it->second->Type) ? gain = m_SFXVolumeChannel : gain = m_BGMVolumeChannel;
auto emitter = m_World->GetComponent(it->first, "SoundEmitter");
setSoundProperties(it->second->ALsource, &emitter);
// To make an emitter play when spawned in editor mode
if (m_EditorEnabled) {
// Path changed
if (it->second->SoundResource->Path() != (std::string)emitter["FilePath"]) {
it->second->SoundResource = ResourceManager::Load<Sound>((std::string)emitter["FilePath"]);
if (it->second->SoundResource->Buffer() != 0) {
playSound(it->second);
}
}
}
}
}
void SoundSystem::updateListener(double dt)
{
// Should only be one listener.
auto listenerComponents = m_World->GetComponents("Listener");
if (listenerComponents == nullptr) {
return;
}
for (auto it = listenerComponents->begin(); it != listenerComponents->end(); it++) {
EntityID listener = (*it).EntityID;
glm::vec3 previousPos;
alGetListener3f(AL_POSITION, &previousPos.x, &previousPos.y, &previousPos.z); // Get previous pos
glm::vec3 nextPos = Transform::AbsolutePosition(m_World, listener); // Get next (current) pos
glm::vec3 velocity = glm::vec3(nextPos - previousPos) / (float)dt; // Calculate velocity
setListenerPos(nextPos);
setListenerVel(velocity);
setListenerOri(glm::eulerAngles(Transform::AbsoluteOrientation(m_World, listener)));
}
}
Source* SoundSystem::createSource(std::string filePath)
{
ALuint alSource;
alGenSources((ALuint)1, &alSource);
alSourcef(alSource, AL_REFERENCE_DISTANCE, 1.0);
alSourcef(alSource, AL_MAX_DISTANCE, FLT_MAX);
Source* source = new Source();
source->ALsource = alSource;
source->SoundResource = ResourceManager::Load<Sound>(filePath);
return source;
}
void SoundSystem::playSound(Source* source)
{
alSourcei(source->ALsource, AL_BUFFER, source->SoundResource->Buffer());
alSourcePlay(source->ALsource);
}
void SoundSystem::stopSound(Source* source)
{
alSourceStop(source->ALsource);
}
bool SoundSystem::OnPlaySoundOnEntity(const Events::PlaySoundOnEntity & e)
{
Source* source = createSource(e.FilePath);
source->Type = SoundType::SFX;
m_Sources[e.EmitterID] = source;
playSound(source);
return false;
}
bool SoundSystem::OnPlaySoundOnPosition(const Events::PlaySoundOnPosition & e)
{
Source* source = createSource(e.FilePath);
auto emitterID = m_World->CreateEntity();
auto transform = m_World->AttachComponent(emitterID, "Transform");
(glm::vec3&)transform["Position"] = e.Position;
auto emitter = m_World->AttachComponent(emitterID, "SoundEmitter");
(float&)(double)emitter["Gain"] = e.Gain;
(float&)(double)emitter["Pitch"] = e.Pitch;
(bool&)emitter["Loop"] = e.Loop;
(float&)(double)emitter["MaxDistance"] = e.MaxDistance;
(float&)(double)emitter["RollOffFactor"] = e.RollOffFactor;
(float&)(double)emitter["ReferenceDistance"] = e.ReferenceDistance;
auto model = m_World->AttachComponent(emitterID, "Model");
(std::string&)model["Resource"] = "Models/Core/UnitCube.obj";
source->Type = SoundType::SFX;
m_Sources[emitterID] = source;
playSound(source);
return true;
}
bool SoundSystem::OnPauseSound(const Events::PauseSound & e)
{
alSourcePause(m_Sources[e.EmitterID]->ALsource);
return true;
}
bool SoundSystem::OnStopSound(const Events::StopSound & e)
{
alSourceStop(m_Sources[e.EmitterID]->ALsource);
return true;
}
bool SoundSystem::OnContinueSound(const Events::ContinueSound & e)
{
alSourcePlay(m_Sources[e.EmitterID]->ALsource);
return true;
}
bool SoundSystem::OnPlayBackgroundMusic(const Events::PlayBackgroundMusic & e)
{
auto listenerComponents = m_World->GetComponents("Listener");
for (auto it = listenerComponents->begin(); it != listenerComponents->end(); it++) {
auto emitterChild = m_World->CreateEntity((*it).EntityID);
auto emitter = m_World->AttachComponent(emitterChild, "SoundEmitter");
(bool&)emitter["Loop"] = true;
(std::string&)emitter["FilePath"] = e.FilePath;
m_World->AttachComponent(emitterChild, "Transform");
Source* source = createSource(e.FilePath);
source->Type = SoundType::BGM;
m_Sources[emitterChild] = source;
playSound(source);
}
return true;
}
bool SoundSystem::OnSetBGMGain(const Events::SetBGMGain & e)
{
m_BGMVolumeChannel = e.Gain;
return true;
}
bool SoundSystem::OnSetSFXGain(const Events::SetSFXGain & e)
{
m_SFXVolumeChannel = e.Gain;
return true;
}
void SoundSystem::setListenerOri(glm::vec3 ori)
{
// Calculate forward and up vector.
glm::vec3 forward = glm::vec3(0.0, 0.0, -1.0);
forward = glm::rotateX(forward, ori.x);
forward = glm::rotateY(forward, ori.y);
forward = glm::rotateZ(forward, ori.z);
glm::normalize(forward);
glm::vec3 up = glm::vec3(0.0, 1.0, 0.0);
up = glm::rotateX(up, ori.x);
up = glm::rotateY(up, ori.y);
up = glm::rotateZ(up, ori.z);
glm::normalize(up);
ALfloat lOri[6] = { forward.x, forward.y, forward.z, up.x, up.y, up.z };
alListenerfv(AL_ORIENTATION, lOri);
}
ALenum SoundSystem::getSourceState(ALuint source)
{
ALenum state;
alGetSourcei(source, AL_SOURCE_STATE, &state);
return state;
}
void SoundSystem::setGain(Source * source, float gain)
{
alSourcef(source->ALsource, AL_GAIN, gain);
}
void SoundSystem::setSoundProperties(ALuint source, ComponentWrapper* soundComponent)
{
alSourcef(source, AL_GAIN, (float)(double)(*soundComponent)["Gain"]);
alSourcef(source, AL_PITCH, (float)(double)(*soundComponent)["Pitch"]);
alSourcei(source, AL_LOOPING, (int)(bool)(*soundComponent)["Loop"]); // YOLO
alSourcef(source, AL_MAX_DISTANCE, (float)(double)(*soundComponent)["MaxDistance"]);
alSourcef(source, AL_ROLLOFF_FACTOR, (float)(double)(*soundComponent)["RollOffFactor"]);
alSourcef(source, AL_REFERENCE_DISTANCE, (float)(double)(*soundComponent)["ReferenceDistance"]);
}
void SoundSystem::initOpenAL()
{
// Initialize OpenAL
m_ALCdevice = alcOpenDevice(nullptr);
if (m_ALCdevice != nullptr) {
m_ALCcontext = alcCreateContext(m_ALCdevice, nullptr);
alcMakeContextCurrent(m_ALCcontext);
} else {
LOG_ERROR("OpenAL failed to initialize.");
}
}