Merge branch 'master' into Shadows

# Conflicts:
#	assets
#	include/Engine/Rendering/DrawFinalPass.h
#	include/Engine/Rendering/Renderer.h
#	resources/Shaders/ForwardPlus.frag.glsl
#	resources/Shaders/ForwardPlus.vert.glsl
#	src/Engine/Rendering/DrawFinalPass.cpp
#	src/Engine/Rendering/FrameBuffer.cpp
#	src/Engine/Rendering/Renderer.cpp
This commit is contained in:
FakeShemp
2016-02-29 18:03:00 +01:00
367 changed files with 29718 additions and 3885 deletions
+50 -26
View File
@@ -13,35 +13,59 @@ void AnimationSystem::UpdateComponent(EntityWrapper& entity, ComponentWrapper& a
return;
}
Skeleton* skeleton = model->m_RawModel->m_Skeleton;
const Skeleton::Animation* animation = skeleton->GetAnimation(animationComponent["Name"]);
if(animation != nullptr) {
double animationSpeed = (double)animationComponent["Speed"];
if (animationSpeed != 0.0) {
double nextTime = (double)animationComponent["Time"] + animationSpeed * dt;
if (!(bool)animationComponent["Loop"] && glm::abs(nextTime) > animation->Duration) {
(double&)animationComponent["Time"] = glm::sign(nextTime) * animation->Duration;
(double&)animationComponent["Speed"] = 0.0;
Events::AnimationComplete e;
e.Entity = entity;
e.Name = (std::string)animationComponent["Name"];
m_EventBroker->Publish(e);
} else {
if (glm::abs(nextTime) > animation->Duration) {
(double&)animationComponent["Time"] = glm::abs(nextTime) - animation->Duration;
} else {
(double&)animationComponent["Time"] = nextTime;
}
}
}
if(skeleton == nullptr) {
return;
}
for (int i = 1; i <= 3; i++) {
const Skeleton::Animation* animation = skeleton->GetAnimation(animationComponent["AnimationName" + std::to_string(i)]);
if (animation == nullptr) {
continue;;
}
double animationSpeed = (double)animationComponent["Speed" + std::to_string(i)];
if (animationSpeed != 0.0) {
double nextTime = (double)animationComponent["Time" + std::to_string(i)] + animationSpeed * dt;
if (!(bool)animationComponent["Loop" + std::to_string(i)]) {
if (nextTime > animation->Duration) {
nextTime = animation->Duration;
Events::AnimationComplete e;
e.Entity = entity;
e.Name = (std::string)animationComponent["AnimationName" + std::to_string(i)];
m_EventBroker->Publish(e);
} else if (nextTime < 0) {
Events::AnimationComplete e;
e.Entity = entity;
e.Name = (std::string)animationComponent["AnimationName" + std::to_string(i)];
m_EventBroker->Publish(e);
nextTime = 0;
}
(double&)animationComponent["Speed" + std::to_string(i)] = 0.0;
} else {
if (nextTime > animation->Duration) {
Events::AnimationComplete e;
e.Entity = entity;
e.Name = (std::string)animationComponent["AnimationName" + std::to_string(i)];
m_EventBroker->Publish(e);
nextTime -= animation->Duration;
} else if (nextTime < 0) {
Events::AnimationComplete e;
e.Entity = entity;
e.Name = (std::string)animationComponent["AnimationName" + std::to_string(i)];
m_EventBroker->Publish(e);
nextTime += animation->Duration;
}
}
(double&)animationComponent["Time" + std::to_string(i)] = nextTime;
}
}
}
@@ -0,0 +1,100 @@
#include "Rendering/BoneAttachmentSystem.h"
void BoneAttachmentSystem::UpdateComponent(EntityWrapper& entity, ComponentWrapper& BoneAttachmentComponent, double dt)
{
if(!entity.HasComponent("Transform")) {
return;
}
auto parent = entity.FirstParentWithComponent("Animation");
if (!parent.HasComponent("Model")) {
return;
}
Model* model;
try {
model = ResourceManager::Load<::Model, true>(parent["Model"]["Resource"]);
} catch (const std::exception&) {
return;
}
if (!model->IsSkinned()) {
return;
}
Skeleton* skeleton = model->m_RawModel->m_Skeleton;
if(skeleton == nullptr) {
return;
}
int id = skeleton->GetBoneID(entity["BoneAttachment"]["BoneName"]);
if (id == -1) {
return;
}
std::vector<::Skeleton::AnimationData> Animations;
::Skeleton::AnimationOffset AnimationOffset;
glm::mat4 boneTransform;
if (parent.HasComponent("Animation")) {
for (int i = 1; i <= 3; i++) {
::Skeleton::AnimationData animationData;
animationData.animation = model->m_RawModel->m_Skeleton->GetAnimation(parent["Animation"]["AnimationName" + std::to_string(i)]);
if (animationData.animation == nullptr) {
continue;
}
animationData.time = (double)parent["Animation"]["Time" + std::to_string(i)];
animationData.weight = (double)parent["Animation"]["Weight" + std::to_string(i)];
Animations.push_back(animationData);
}
}
if (parent.HasComponent("AnimationOffset")) {
AnimationOffset.animation = model->m_RawModel->m_Skeleton->GetAnimation(parent["AnimationOffset"]["AnimationName"]);
AnimationOffset.time = (double)parent["AnimationOffset"]["Time"];
if(AnimationOffset.animation != nullptr) {
boneTransform = skeleton->GetBoneTransform(false, skeleton->Bones.at(id), Animations, AnimationOffset, glm::mat4(1));
} else {
boneTransform = skeleton->GetBoneTransform(false, skeleton->Bones.at(id), Animations, glm::mat4(1));
}
} else {
boneTransform = skeleton->GetBoneTransform(false, skeleton->Bones.at(id), Animations, glm::mat4(1));
}
glm::vec3 scale;
glm::quat rotation;
glm::vec3 translation;
glm::vec3 skew;
glm::vec4 perspective;
glm::decompose(boneTransform, scale, rotation, translation, skew, perspective);
glm::vec3 angles = glm::vec3(-glm::pitch(rotation), -glm::yaw(rotation), -glm::roll(rotation));
/*
angles.y = asin(-boneTransform[0][2]);
if (cos(angles.y) != 0) {
angles.x = atan2(boneTransform[1][2], boneTransform[2][2]);
angles.z = atan2(boneTransform[0][1], boneTransform[0][0]);
} else {
angles.x = atan2(-boneTransform[2][0], boneTransform[1][1]);
angles.z = 0;
}*/
if ((bool)entity["BoneAttachment"]["InheritPosition"]) {
(glm::vec3&)entity["Transform"]["Position"] = translation + (glm::vec3)entity["BoneAttachment"]["PositionOffset"];
}
if ((bool)entity["BoneAttachment"]["InheritOrientation"]) {
(glm::vec3&)entity["Transform"]["Orientation"] = angles + (glm::vec3)entity["BoneAttachment"]["OrientationOffset"];
}
if ((bool)entity["BoneAttachment"]["InheritScale"]) {
(glm::vec3&)entity["Transform"]["Scale"] = scale * (glm::vec3)entity["BoneAttachment"]["ScaleOffset"];
}
}
+7
View File
@@ -62,6 +62,13 @@ void Camera::SetViewMatrix(glm::mat4 val)
m_ViewMatrix = val;
}
glm::mat4 Camera::BillboardMatrix()
{
glm::mat4 matrix = glm::toMat4(m_Orientation);
return matrix;
}
//void Camera::Pitch(float val)
//{
// m_Pitch = val;
+41
View File
@@ -0,0 +1,41 @@
#include "Rendering/CubeMapPass.h"
CubeMapPass::CubeMapPass(IRenderer* renderer)
:m_Renderer(renderer)
{
LoadTextures("Nevada");
}
void CubeMapPass::LoadTextures(std::string input)
{
if (m_PreviusCubeMapTexture != input) {
m_CubeMapTextures.clear();
for (int i = 0; i < 6; i++) {
std::string str;
str = "Textures/Test/CubeMap/" + input + "/CubeMapTest0" + std::to_string(i) + ".png";
Texture* img = ResourceManager::Load<Texture>(str);
m_CubeMapTextures.push_back(img);
}
GenerateCubeMapTexture();
m_PreviusCubeMapTexture = input;
}
}
void CubeMapPass::GenerateCubeMapTexture()
{
if (m_CubeMapTexture == -1) {
glGenTextures(1, &m_CubeMapTexture);
}
glBindTexture(GL_TEXTURE_CUBE_MAP, m_CubeMapTexture);
for (int i = 0; i < 6; i++) {
glTexImage2D(GL_TEXTURE_CUBE_MAP_POSITIVE_X + i, 0, GL_RGBA32F, m_CubeMapTextures[0]->Width, m_CubeMapTextures[0]->Height, 0, GL_RGBA, GL_UNSIGNED_BYTE, m_CubeMapTextures[i]->Data);
}
glTexParameteri(GL_TEXTURE_CUBE_MAP, GL_TEXTURE_MAG_FILTER, GL_LINEAR);
glTexParameteri(GL_TEXTURE_CUBE_MAP, GL_TEXTURE_MIN_FILTER, GL_LINEAR);
glTexParameteri(GL_TEXTURE_CUBE_MAP, GL_TEXTURE_WRAP_S, GL_CLAMP_TO_EDGE);
glTexParameteri(GL_TEXTURE_CUBE_MAP, GL_TEXTURE_WRAP_T, GL_CLAMP_TO_EDGE);
glTexParameteri(GL_TEXTURE_CUBE_MAP, GL_TEXTURE_WRAP_R, GL_CLAMP_TO_EDGE);
GLERROR("Generate Cubemap");
}
+33 -23
View File
@@ -13,22 +13,26 @@ DrawBloomPass::DrawBloomPass(IRenderer* renderer)
void DrawBloomPass::InitializeTextures()
{
m_WhiteTexture = ResourceManager::Load<Texture>("Textures/Core/White.png");
m_WhiteTexture = CommonFunctions::LoadTexture("Textures/Core/White.png", false);
}
void DrawBloomPass::InitializeShaderPrograms()
{
m_GaussianProgram_horiz = ResourceManager::Load<ShaderProgram>("##GaussianProgramHoriz");
m_GaussianProgram_horiz->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/Gaussian_horiz.vert.glsl")));
m_GaussianProgram_horiz->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/Gaussian_horiz.frag.glsl")));
m_GaussianProgram_horiz->Compile();
m_GaussianProgram_horiz->Link();
if (m_GaussianProgram_horiz->GetHandle() == 0) {
m_GaussianProgram_horiz->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/Gaussian_horiz.vert.glsl")));
m_GaussianProgram_horiz->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/Gaussian_horiz.frag.glsl")));
m_GaussianProgram_horiz->Compile();
m_GaussianProgram_horiz->Link();
}
m_GaussianProgram_vert = ResourceManager::Load<ShaderProgram>("##GaussianProgramVert");
m_GaussianProgram_vert->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/Gaussian_vert.vert.glsl")));
m_GaussianProgram_vert->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/Gaussian_vert.frag.glsl")));
m_GaussianProgram_vert->Compile();
m_GaussianProgram_vert->Link();
m_GaussianProgram_vert = ResourceManager::Load<ShaderProgram>("##GaussianProgramVert");
if (m_GaussianProgram_vert->GetHandle() == 0) {
m_GaussianProgram_vert->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/Gaussian_vert.vert.glsl")));
m_GaussianProgram_vert->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/Gaussian_vert.frag.glsl")));
m_GaussianProgram_vert->Compile();
m_GaussianProgram_vert->Link();
}
}
@@ -48,6 +52,7 @@ void DrawBloomPass::InitializeBuffers()
void DrawBloomPass::ClearBuffer()
{
GLERROR("PRE");
m_GaussianFrameBuffer_horiz.Bind();
glClearColor(0.f, 0.f, 0.f, 0.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
@@ -56,6 +61,7 @@ void DrawBloomPass::ClearBuffer()
glClearColor(0.f, 0.f, 0.f, 0.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
m_GaussianFrameBuffer_vert.Unbind();
GLERROR("END");
}
void DrawBloomPass::Draw(GLuint texture)
@@ -71,15 +77,12 @@ void DrawBloomPass::Draw(GLuint texture)
//Horizontal pass, first use the given texture then save it to the horizontal framebuffer.
m_GaussianFrameBuffer_horiz.Bind();
m_GaussianProgram_horiz->Bind();
glActiveTexture(GL_TEXTURE0);
glBindTexture(GL_TEXTURE_2D, texture);
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].EndIndex - m_ScreenQuad->MaterialGroups()[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].StartIndex);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
//Iterate some times to make it more gaussian.
for (int i = 1; i < m_iterations; i++) {
//Vertical pass
@@ -90,9 +93,8 @@ void DrawBloomPass::Draw(GLuint texture)
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].EndIndex - m_ScreenQuad->MaterialGroups()[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].StartIndex);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
//horizontal pass
m_GaussianFrameBuffer_horiz.Bind();
@@ -102,8 +104,8 @@ void DrawBloomPass::Draw(GLuint texture)
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].EndIndex - m_ScreenQuad->MaterialGroups()[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].StartIndex);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
}
//final vertical gaussian after the iterations are done
@@ -112,15 +114,23 @@ void DrawBloomPass::Draw(GLuint texture)
m_GaussianProgram_vert->Bind();
glBindTexture(GL_TEXTURE_2D, m_GaussianTexture_horiz);
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].EndIndex - m_ScreenQuad->MaterialGroups()[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].StartIndex);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
GLERROR("DrawBloomPass::Draw: END");
}
void DrawBloomPass::OnWindowResize()
{
GenerateTexture(&m_GaussianTexture_vert, GL_CLAMP_TO_EDGE, GL_LINEAR, glm::vec2(m_Renderer->GetViewportSize().Width, m_Renderer->GetViewportSize().Height), GL_RGB16F, GL_RGB, GL_FLOAT);
m_GaussianFrameBuffer_vert.Generate();
GenerateTexture(&m_GaussianTexture_horiz, GL_CLAMP_TO_EDGE, GL_LINEAR, glm::vec2(m_Renderer->GetViewportSize().Width, m_Renderer->GetViewportSize().Height), GL_RGB16F, GL_RGB, GL_FLOAT);
m_GaussianFrameBuffer_horiz.Generate();
}
void DrawBloomPass::GenerateTexture(GLuint* texture, GLenum wrapping, GLenum filtering, glm::vec2 dimensions, GLint internalFormat, GLint format, GLenum type) const
{
glGenTextures(1, texture);
@@ -6,8 +6,6 @@ DrawColorCorrectionPass::DrawColorCorrectionPass(IRenderer* renderer)
m_ScreenQuad = ResourceManager::Load<Model>("Models/Core/ScreenQuad.mesh");
//m_Exposure = 0.4; //TODO: Renderer: Fixa så att denna går att ändra på genom komponent eller setting.
InitializeShaderPrograms();
}
@@ -20,14 +18,14 @@ void DrawColorCorrectionPass::InitializeShaderPrograms()
m_ColorCorrectionProgram->Link();
}
void DrawColorCorrectionPass::Draw(GLuint sceneTexture, GLuint bloomTexture, GLfloat gamma, GLfloat exposure)
void DrawColorCorrectionPass::Draw(GLuint sceneTexture, GLuint bloomTexture, GLuint sceneTextureLowRes, GLuint bloomTextureLowRes, GLfloat gamma, GLfloat exposure)
{
//glBindFramebuffer(GL_FRAMEBUFFER, 0);
GLERROR("DrawScreenQuadPass::Draw: Pre");
DrawScreenQuadPassState state = DrawScreenQuadPassState();
m_ColorCorrectionProgram->Bind();
//glClear(GL_COLOR_BUFFER_BIT);
glClear(GL_COLOR_BUFFER_BIT);
glUniform1f(glGetUniformLocation(m_ColorCorrectionProgram->GetHandle(), "Exposure"), exposure);
glUniform1f(glGetUniformLocation(m_ColorCorrectionProgram->GetHandle(), "Gamma"), gamma);
@@ -35,9 +33,13 @@ void DrawColorCorrectionPass::Draw(GLuint sceneTexture, GLuint bloomTexture, GLf
glBindTexture(GL_TEXTURE_2D, sceneTexture);
glActiveTexture(GL_TEXTURE1);
glBindTexture(GL_TEXTURE_2D, bloomTexture);
glActiveTexture(GL_TEXTURE2);
glBindTexture(GL_TEXTURE_2D, sceneTextureLowRes);
glActiveTexture(GL_TEXTURE3);
glBindTexture(GL_TEXTURE_2D, bloomTextureLowRes);
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].EndIndex - m_ScreenQuad->MaterialGroups()[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].StartIndex);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
}
File diff suppressed because it is too large Load Diff
@@ -1,6 +1,7 @@
#include "Rendering/DrawFinalPassState.h"
DrawFinalPassState::DrawFinalPassState(GLuint frameBuffer)
{
BindFramebuffer(frameBuffer);
@@ -8,6 +9,10 @@ DrawFinalPassState::DrawFinalPassState(GLuint frameBuffer)
BlendFunc(GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA);
Enable(GL_DEPTH_TEST);
Enable(GL_CULL_FACE);
Enable(GL_STENCIL_TEST);
StencilFunc(GL_NOTEQUAL, 1, 0xFF);
StencilOp(GL_KEEP, GL_KEEP, GL_REPLACE);
StencilMask(0xFF);
ClearColor(glm::vec4(0.f, 0.f, 0.f, 0.f));
}
@@ -15,3 +20,20 @@ DrawFinalPassState::~DrawFinalPassState()
{
}
DrawStencilState::DrawStencilState(GLuint frameBuffer)
{
BindFramebuffer(frameBuffer);
Enable(GL_STENCIL_TEST);
StencilOp(GL_KEEP, GL_KEEP, GL_REPLACE);
StencilFunc(GL_ALWAYS, 1, 0xFF);
StencilMask(0xFF);
Enable(GL_DEPTH_TEST);
ClearColor(glm::vec4(0.f));
}
DrawStencilState::~DrawStencilState()
{
}
+2 -2
View File
@@ -32,6 +32,6 @@ void DrawScreenQuadPass::Draw(GLuint texture)
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].EndIndex - m_ScreenQuad->MaterialGroups()[0].StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].StartIndex);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex +1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
}
+17 -3
View File
@@ -53,10 +53,13 @@ void FrameBuffer::AddResource(std::shared_ptr<BufferResource> resource)
void FrameBuffer::Generate()
{
GLERROR("PRE");
std::vector<GLenum> attachments;
glGenFramebuffers(1, &m_BufferHandle);
glBindFramebuffer(GL_FRAMEBUFFER, m_BufferHandle);
GLERROR("1");
for (auto it = m_Resources.begin(); it != m_Resources.end(); it++) {
switch ((*it)->m_ResourceType) {
@@ -75,17 +78,28 @@ void FrameBuffer::Generate()
GLERROR("FrameBuffer generate: GL_TEXTURE_2D_ARRAY");
break;
}
GLERROR("2");
if ((*it)->m_Attachment != GL_DEPTH_ATTACHMENT && (*it)->m_Attachment != GL_STENCIL_ATTACHMENT && (*it)->m_Attachment != GL_DEPTH_STENCIL_ATTACHMENT) {
GLERROR("Attachment");
}
GLERROR("3");
GLenum* bufferTextures = &attachments[0];
glDrawBuffers(attachments.size(), bufferTextures);
if (GLERROR("GLBufferAttachement error")) {
printf(": AttachmentSize %i", attachments.size());
}
if (GLenum frameBufferStatus = glCheckFramebufferStatus(GL_FRAMEBUFFER) != GL_FRAMEBUFFER_COMPLETE) {
LOG_ERROR("FrameBuffer incomplete: 0x%x\n", frameBufferStatus);
GLERROR("Framebuffer incomplete");
//LOG_ERROR("FrameBuffer incomplete: 0x%x\n", frameBufferStatus);
exit(EXIT_FAILURE);
}
GLERROR("END");
}
void FrameBuffer::Bind()
+31 -3
View File
@@ -16,7 +16,7 @@ LightCullingPass::~LightCullingPass()
void LightCullingPass::GenerateNewFrustum(RenderScene& scene)
{
if (scene.PointLightJobs.size() == 0)
if (scene.Jobs.PointLight.size() == 0)
return;
GLERROR("CalculateFrustum Error: Pre");
@@ -83,7 +83,7 @@ void LightCullingPass::FillLightList(RenderScene& scene)
{
m_LightSources.clear();
for(auto &job : scene.PointLightJobs) {
for(auto &job : scene.Jobs.PointLight) {
auto pointLightjob = std::dynamic_pointer_cast<PointLightJob>(job);
if (pointLightjob) {
LightSource p;
@@ -97,7 +97,7 @@ void LightCullingPass::FillLightList(RenderScene& scene)
m_LightSources.push_back(p);
}
}
for(auto &job : scene.DirectionalLightJobs) {
for(auto &job : scene.Jobs.DirectionalLight) {
auto directionalLightJob = std::dynamic_pointer_cast<DirectionalLightJob>(job);
if(directionalLightJob) {
LightSource p;
@@ -110,6 +110,34 @@ void LightCullingPass::FillLightList(RenderScene& scene)
}
}
void LightCullingPass::OnWindowResize()
{
SetSSBOSizes();
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_FrustumSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(Frustum)*m_NumberOfTiles, nullptr, GL_DYNAMIC_COPY);
GLERROR("m_FrustumSSBO");
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(LightSource) * 200, nullptr, GL_DYNAMIC_COPY);
GLERROR("m_LightSSBO");
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightGridSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(LightGrid)*m_NumberOfTiles, nullptr, GL_DYNAMIC_COPY);
GLERROR("m_LightGridSSBO");
glBindBuffer(GL_SHADER_STORAGE_BUFFER, m_LightOffsetSSBO);
glBufferData(GL_SHADER_STORAGE_BUFFER, sizeof(m_LightOffset), &m_LightOffset, GL_DYNAMIC_COPY);
GLERROR("m_LightOffsetSSBO");
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);
GLERROR("m_LightIndexSSBO");
glBindBuffer(GL_SHADER_STORAGE_BUFFER, 0);
}
void LightCullingPass::InitializeSSBOs()
{
glGenBuffers(1, &m_FrustumSSBO);
+62 -19
View File
@@ -5,26 +5,48 @@ Model::Model(std::string fileName)
//Try loading the model asyncronously, if it throws any exceptions then let it propagate back to caller.
m_RawModel = ResourceManager::Load<RawModel, true>(fileName);
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));
}
if (!group.IncandescenceMapPath.empty()) {
group.IncandescenceMap = std::shared_ptr<Texture>(ResourceManager::Load<Texture>(group.IncandescenceMapPath));
}
for (auto& materialProperty : m_RawModel->m_Materials) {
switch (materialProperty.type) {
case RawModel::MaterialType::SingleTextures:
{
RawModel::MaterialSingleTextures* materialSingleTexture = static_cast<RawModel::MaterialSingleTextures*>(materialProperty.material);
materialSingleTexture->ColorMap.Texture = CommonFunctions::LoadTexture(materialSingleTexture->ColorMap.TexturePath, false);
materialSingleTexture->NormalMap.Texture = CommonFunctions::LoadTexture(materialSingleTexture->NormalMap.TexturePath, false);
materialSingleTexture->SpecularMap.Texture = CommonFunctions::LoadTexture(materialSingleTexture->SpecularMap.TexturePath, false);
materialSingleTexture->IncandescenceMap.Texture = CommonFunctions::LoadTexture(materialSingleTexture->IncandescenceMap.TexturePath, false);
}
break;
case RawModel::MaterialType::SplatMapping:
{
RawModel::MaterialSplatMapping* materialSplatMapping = static_cast<RawModel::MaterialSplatMapping*>(materialProperty.material);
materialSplatMapping->SplatMap.Texture = CommonFunctions::LoadTexture(materialSplatMapping->SplatMap.TexturePath, false);
for (auto& texture : materialSplatMapping->ColorMaps)
{
texture.Texture = CommonFunctions::LoadTexture(texture.TexturePath, false);
}
for (auto& texture : materialSplatMapping->NormalMaps)
{
texture.Texture = CommonFunctions::LoadTexture(texture.TexturePath, false);
}
for (auto& texture : materialSplatMapping->SpecularMaps)
{
texture.Texture = CommonFunctions::LoadTexture(texture.TexturePath, false);
}
for (auto& texture : materialSplatMapping->IncandescenceMaps)
{
texture.Texture = CommonFunctions::LoadTexture(texture.TexturePath, false);
}
}
break;
}
}
// 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);
glBufferData(GL_ARRAY_BUFFER, m_RawModel->NumVertices() * m_RawModel->VertexSize(), m_RawModel->Vertices(), GL_STATIC_DRAW);
glGenBuffers(1, &ElementBuffer);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, ElementBuffer);
@@ -35,7 +57,13 @@ Model::Model(std::string fileName)
GLERROR("GLEW: BufferFail4");
glBindBuffer(GL_ARRAY_BUFFER, buffer);
std::vector<int> structSizes = { 3, 3, 3, 3, 2, 4, 4 };
std::vector<int> structSizes;
if (m_RawModel->IsSkinned()) {
structSizes = { 3, 3, 3, 3, 2, 4, 4 };
} else {
structSizes = { 3, 3, 3, 3, 2 };
}
int stride = 0;
for (int size : structSizes) {
stride += size;
@@ -49,8 +77,10 @@ Model::Model(std::string fileName)
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++;
if (m_RawModel->IsSkinned()) {
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");
@@ -59,11 +89,24 @@ Model::Model(std::string fileName)
glEnableVertexAttribArray(2);
glEnableVertexAttribArray(3);
glEnableVertexAttribArray(4);
glEnableVertexAttribArray(5);
glEnableVertexAttribArray(6);
if (m_RawModel->IsSkinned()) {
glEnableVertexAttribArray(5);
glEnableVertexAttribArray(6);
}
GLERROR("GLEW: BufferFail5");
//CreateBuffers();
glm::vec3 mini(INFINITY);
glm::vec3 maxi(-INFINITY);
for (unsigned int i = 0; i < m_RawModel->NumVertices(); i++) {
const auto& v = m_RawModel->Vertices()[i];
mini = glm::min(mini, v.Position);
maxi = glm::max(maxi, v.Position);
}
m_Box = AABB(mini, maxi);
}
Model::~Model()
+8 -14
View File
@@ -4,40 +4,35 @@ PNG::PNG(std::string path)
{
FILE* file = fopen(path.c_str(), "rb");
if (!file) {
LOG_ERROR("Failed to open texture file \"%s\": %s", path.c_str(), const_cast<const char*>(strerror(errno)));
return;
throw Resource::FailedLoadingException("Failed to open texture file.");
}
png_byte header[8];
fread(header, 1, 8, file);
bool isPNG = !png_sig_cmp(header, 0, 8);
if (!isPNG) {
LOG_ERROR("Failed to load texture file \"%s\": File isn't PNG", path.c_str());
fclose(file);
return;
throw Resource::FailedLoadingException("File is not PNG.");
}
// Initialize libpng
png_structp png_ptr = png_create_read_struct(PNG_LIBPNG_VER_STRING, nullptr, (png_error_ptr)&PNG::pngErrorFunction, (png_error_ptr)&PNG::pngErrorFunction);
if (!png_ptr) {
LOG_ERROR("libpng: Failed to initialze png_struct");
png_destroy_read_struct(&png_ptr, nullptr, nullptr);
fclose(file);
return;
throw Resource::FailedLoadingException("Failed to initialze png_struct.");
}
png_infop info_ptr = png_create_info_struct(png_ptr);
if (!info_ptr) {
LOG_ERROR("libpng: Failed to initialze png_info");
png_destroy_read_struct(&png_ptr, nullptr, nullptr);
fclose(file);
return;
throw Resource::FailedLoadingException("Failed to initialze png_info.");
}
png_infop info_end_ptr = png_create_info_struct(png_ptr);
if (!info_end_ptr) {
LOG_ERROR("libpng: Failed to initialze second png_info");
png_destroy_read_struct(&png_ptr, &info_ptr, nullptr);
fclose(file);
return;
throw Resource::FailedLoadingException("Failed to initialze second png_info.");
}
png_init_io(png_ptr, file);
@@ -51,8 +46,8 @@ PNG::PNG(std::string path)
unsigned int width, height;
png_get_IHDR(png_ptr, info_ptr, &width, &height, &bit_depth, &color_type, NULL, NULL, NULL);
if (bit_depth != 8) {
LOG_ERROR("libpng: Unsupported bit depth \"%i\" of image \"%s\", must be 8", bit_depth, path.c_str());
return;
throw Resource::FailedLoadingException("Unsupported bit depth. Must be 8");
}
switch (color_type) {
case PNG_COLOR_TYPE_RGB:
@@ -60,8 +55,7 @@ PNG::PNG(std::string path)
Format = Image::ImageFormat::RGBA;
break;
default:
LOG_ERROR("libpng: Unsupported color format \"%i\" of image \"%s\"", color_type, path.c_str());
return;
throw Resource::FailedLoadingException("Unsupported color format.");
}
// Convert RGB to RGBA, since DirectX rather treat them all the same way
+240 -31
View File
@@ -15,19 +15,20 @@ PickingPass::~PickingPass()
}
void PickingPass::InitializeTextures()
{
GenerateTexture(&m_PickingTexture, GL_CLAMP_TO_BORDER, GL_LINEAR,
glm::vec2(m_Renderer->GetViewportSize().Width, m_Renderer->GetViewportSize().Height), GL_RG8, GL_RG, GL_UNSIGNED_BYTE);
GenerateTexture(&m_DepthBuffer, GL_CLAMP_TO_BORDER, GL_NEAREST,
glm::vec2(m_Renderer->GetViewportSize().Width, m_Renderer->GetViewportSize().Height), GL_DEPTH24_STENCIL8, GL_DEPTH_STENCIL, GL_UNSIGNED_INT_24_8);
}
void PickingPass::InitializeFrameBuffers()
{
glGenRenderbuffers(1, &m_DepthBuffer);
glBindRenderbuffer(GL_RENDERBUFFER, m_DepthBuffer);
glRenderbufferStorage(GL_RENDERBUFFER, GL_DEPTH_COMPONENT, m_Renderer->GetViewportSize().Width, m_Renderer->GetViewportSize().Height);
m_PickingBuffer.AddResource(std::shared_ptr<BufferResource>(new RenderBuffer(&m_DepthBuffer, GL_DEPTH_ATTACHMENT)));
m_PickingBuffer.AddResource(std::shared_ptr<BufferResource>(new Texture2D(&m_DepthBuffer, GL_DEPTH_ATTACHMENT)));
m_PickingBuffer.AddResource(std::shared_ptr<BufferResource>(new Texture2D(&m_PickingTexture, GL_COLOR_ATTACHMENT0)));
m_PickingBuffer.Generate();
}
@@ -41,22 +42,34 @@ void PickingPass::InitializeShaderPrograms()
m_PickingProgram->Compile();
m_PickingProgram->BindFragDataLocation(0, "TextureFragment");
m_PickingProgram->Link();
m_PickingSkinnedProgram = ResourceManager::Load<ShaderProgram>("#PickingSkinnedProgram");
m_PickingSkinnedProgram->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/PickingSkinned.vert.glsl")));
m_PickingSkinnedProgram->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/Picking.frag.glsl")));
m_PickingSkinnedProgram->Compile();
m_PickingSkinnedProgram->BindFragDataLocation(0, "TextureFragment");
m_PickingSkinnedProgram->Link();
}
void PickingPass::Draw(RenderScene& scene)
{
GLERROR("PRE");
PickingPassState* state = new PickingPassState(m_PickingBuffer.GetHandle());
//TODO: Render: Add code for more jobs than modeljobs.
GLuint shaderHandle = m_PickingProgram->GetHandle();
GLuint shaderSkinnedHandle = m_PickingSkinnedProgram->GetHandle();
m_PickingProgram->Bind();
if (scene.ClearDepth) {
glClear(GL_DEPTH_BUFFER_BIT);
//glClear(GL_DEPTH_BUFFER_BIT);
state->Disable(GL_DEPTH_TEST);
state->DepthMask(GL_FALSE);
}
m_Camera = scene.Camera;
for (auto &job : scene.OpaqueObjects) {
for (auto &job : scene.Jobs.OpaqueObjects) {
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
if (modelJob) {
@@ -83,17 +96,29 @@ void PickingPass::Draw(RenderScene& scene)
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])));
if (modelJob->Model->IsSkinned()) {
m_PickingSkinnedProgram->Bind();
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "V"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "P"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform2fv(glGetUniformLocation(shaderSkinnedHandle, "PickingColor"), 1, glm::value_ptr(glm::vec2(pickColor[0], pickColor[1])));
if (modelJob->Model->m_RawModel->m_Skeleton != nullptr) {
if (modelJob->Model->m_RawModel->m_Skeleton != nullptr) {
if (modelJob->Animation != nullptr) {
std::vector<glm::mat4> frameBones = modelJob->Skeleton->GetFrameBones(*modelJob->Animation, modelJob->AnimationTime);
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
std::vector<glm::mat4> frameBones;
if (modelJob->AnimationOffset.animation != nullptr) {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations, modelJob->AnimationOffset);
} else {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations);
}
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
}
} else {
m_PickingProgram->Bind();
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);
@@ -102,7 +127,62 @@ void PickingPass::Draw(RenderScene& scene)
}
}
for (auto &job : scene.TransparentObjects) {
/* for (auto &job : scene.Jobs.TransparentObjects) {
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
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 {
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] += 1;
} else {
m_ColorCounter[0] += 1;
}
}
m_PickingColorsToEntity[glm::ivec2(pickColor[0], pickColor[1])] = pickInfo;
if (modelJob) {
if (modelJob->Model->IsSkinned()) {
m_PickingSkinnedProgram->Bind();
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "V"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "P"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform2fv(glGetUniformLocation(shaderSkinnedHandle, "PickingColor"), 1, glm::value_ptr(glm::vec2(pickColor[0], pickColor[1])));
std::vector<glm::mat4> frameBones;
if (modelJob->AnimationOffset.animation != nullptr) {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations, modelJob->AnimationOffset);
} else {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations);
}
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
} else {
m_PickingProgram->Bind();
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);
glDrawElements(GL_TRIANGLES, modelJob->EndIndex - modelJob->StartIndex + 1, GL_UNSIGNED_INT, (void*)(modelJob->StartIndex * sizeof(unsigned int)));
}
}*/
for (auto &job : scene.Jobs.OpaqueShieldedObjects) {
auto modelJob = std::dynamic_pointer_cast<ModelJob>(job);
if (modelJob) {
@@ -129,17 +209,27 @@ void PickingPass::Draw(RenderScene& scene)
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])));
if (modelJob->Model->IsSkinned()) {
m_PickingSkinnedProgram->Bind();
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "V"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "P"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform2fv(glGetUniformLocation(shaderSkinnedHandle, "PickingColor"), 1, glm::value_ptr(glm::vec2(pickColor[0], pickColor[1])));
if (modelJob->Model->m_RawModel->m_Skeleton != nullptr) {
if (modelJob->Animation != nullptr) {
std::vector<glm::mat4> frameBones = modelJob->Skeleton->GetFrameBones(*modelJob->Animation, modelJob->AnimationTime);
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
std::vector<glm::mat4> frameBones;
if (modelJob->AnimationOffset.animation != nullptr) {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations, modelJob->AnimationOffset);
} else {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations);
}
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
} else {
m_PickingProgram->Bind();
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);
@@ -147,26 +237,145 @@ void PickingPass::Draw(RenderScene& scene)
glDrawElements(GL_TRIANGLES, modelJob->EndIndex - modelJob->StartIndex + 1, GL_UNSIGNED_INT, (void*)(modelJob->StartIndex * sizeof(unsigned int)));
}
}
for (auto& job : scene.Jobs.SpriteJob) {
auto spriteJob = std::dynamic_pointer_cast<SpriteJob>(job);
if (!spriteJob->Pickable) {
continue;
}
RenderState jobState;
if (spriteJob) {
if (spriteJob->Depth == 0) {
jobState.Disable(GL_DEPTH_TEST);
}
int pickColor[2] = { m_ColorCounter[0], m_ColorCounter[1] };
PickingInfo pickInfo;
pickInfo.Entity = spriteJob->Entity;
pickInfo.World = spriteJob->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 {
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] += 1;
} else {
m_ColorCounter[0] += 1;
}
}
m_PickingColorsToEntity[glm::ivec2(pickColor[0], pickColor[1])] = pickInfo;
m_PickingProgram->Bind();
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(spriteJob->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(spriteJob->Model->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, spriteJob->Model->ElementBuffer);
glDrawElements(GL_TRIANGLES, spriteJob->EndIndex - spriteJob->StartIndex + 1, GL_UNSIGNED_INT, (void*)(spriteJob->StartIndex * sizeof(unsigned int)));
}
}
/* for (auto &job : scene.Jobs.TransparentShieldedObjects) {
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 {
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] += 1;
} else {
m_ColorCounter[0] += 1;
}
}
m_PickingColorsToEntity[glm::ivec2(pickColor[0], pickColor[1])] = pickInfo;
if (modelJob->Model->IsSkinned()) {
m_PickingSkinnedProgram->Bind();
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "V"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ViewMatrix()));
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "P"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix()));
glUniform2fv(glGetUniformLocation(shaderSkinnedHandle, "PickingColor"), 1, glm::value_ptr(glm::vec2(pickColor[0], pickColor[1])));
if (modelJob->Model->m_RawModel->m_Skeleton != nullptr) {
std::vector<glm::mat4> frameBones;
if (modelJob->AnimationOffset.animation != nullptr) {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations, modelJob->AnimationOffset);
} else {
frameBones = modelJob->Skeleton->GetFrameBones(modelJob->Animations);
}
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
}
} else {
m_PickingProgram->Bind();
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);
glDrawElements(GL_TRIANGLES, modelJob->EndIndex - modelJob->StartIndex + 1, GL_UNSIGNED_INT, (void*)(modelJob->StartIndex * sizeof(unsigned int)));
}
}*/
m_PickingBuffer.Unbind();
GLERROR("PickingPass Error");
delete state;
}
void PickingPass::ClearPicking()
{
GLERROR("PRE");
m_PickingColorsToEntity.clear();
m_EntityColors.clear();
m_ColorCounter[0] = 1;
m_ColorCounter[1] = 0;
m_ColorCounter[0] = 0;
m_ColorCounter[1] = 1;
m_PickingBuffer.Bind();
glClearColor(0.f, 0.f, 0.f, 0.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
m_PickingBuffer.Unbind();
GLERROR("END");
}
void PickingPass::OnWindowResize()
{
InitializeTextures();
m_PickingBuffer.Generate();
}
PickData PickingPass::Pick(glm::vec2 screenCoord)
+3 -2
View File
@@ -3,9 +3,9 @@
PickingPassState::PickingPassState(GLuint frameBuffer)
{
GLERROR("---2");
GLERROR("PRE");
BindFramebuffer(frameBuffer);
GLERROR("---3");
GLERROR("Bind Framebuffer");
Enable(GL_DEPTH_TEST);
Enable(GL_CULL_FACE);
Disable(GL_BLEND);
@@ -13,6 +13,7 @@ PickingPassState::PickingPassState(GLuint frameBuffer)
glm::vec4 clearColor = glm::vec4(0.f);
//ClearColor(clearColor);
//Clear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
GLERROR("END");
}
PickingPassState::~PickingPassState()
+1 -1
View File
@@ -271,7 +271,7 @@ RawModelAssimp::RawModelAssimp(std::string fileName)
skelAnim.Keyframes.push_back(animationFrame);
}
m_Skeleton->Animations[animationName] = skelAnim;
m_Skeleton->Animations[animationName1] = skelAnim;
}
}
+208 -101
View File
@@ -34,13 +34,20 @@ void RawModelCustom::ReadMeshFile(std::string filePath)
ReadMeshFileHeader(offset, fileData);
ReadMesh(offset, fileData, fileByteSize);
}
delete fileData;
delete[] fileData;
}
void RawModelCustom::ReadMeshFileHeader(std::size_t& offset, char* fileData)
{
#ifdef BOOST_LITTLE_ENDIAN
m_Vertices.resize(static_cast<std::size_t>(*(unsigned int*)(fileData + offset)));
hasSkin = *(bool*)(fileData + offset);
offset += sizeof(bool);
if (hasSkin) {
m_SkinedVertices.resize(static_cast<std::size_t>(*(unsigned int*)(fileData + offset)));
}
else {
m_Vertices.resize(static_cast<std::size_t>(*(unsigned int*)(fileData + offset)));
}
offset += sizeof(unsigned int);
m_Indices.resize(static_cast<std::size_t>(*(unsigned int*)(fileData + offset)));
offset += sizeof(unsigned int);
@@ -57,12 +64,19 @@ void RawModelCustom::ReadMesh(std::size_t& offset, char* fileData, const unsigne
void RawModelCustom::ReadVertices(std::size_t& offset, char* fileData, const unsigned int& fileByteSize)
{
#ifdef BOOST_LITTLE_ENDIAN
if (offset + m_Vertices.size() * sizeof(Vertex) > fileByteSize) {
throw Resource::FailedLoadingException("Reading vertices failed");
}
memcpy(&m_Vertices[0], fileData + offset, m_Vertices.size() * sizeof(Vertex));
offset += m_Vertices.size() * sizeof(Vertex);
if (hasSkin) {
if (offset + m_SkinedVertices.size() * sizeof(SkinedVertex) > fileByteSize) {
throw Resource::FailedLoadingException("Reading skined vertices failed");
}
memcpy(&m_SkinedVertices[0], fileData + offset, m_SkinedVertices.size() * sizeof(SkinedVertex));
offset += m_SkinedVertices.size() * sizeof(SkinedVertex);
} else {
if (offset + m_Vertices.size() * sizeof(Vertex) > fileByteSize) {
throw Resource::FailedLoadingException("Reading vertices failed");
}
memcpy(&m_Vertices[0], fileData + offset, m_Vertices.size() * sizeof(Vertex));
offset += m_Vertices.size() * sizeof(Vertex);
}
#else
#endif
}
@@ -102,14 +116,14 @@ void RawModelCustom::ReadMaterialFile(std::string filePath)
if (fileByteSize > 0) {
ReadMaterials(offset, fileData, fileByteSize);
}
delete fileData;
delete[] fileData;
}
void RawModelCustom::ReadMaterials(std::size_t& offset, char* fileData, const unsigned int& fileByteSize)
{
#ifdef BOOST_LITTLE_ENDIAN
unsigned int* numMaterials = (unsigned int*)(fileData);
MaterialGroups.reserve(*numMaterials);
m_Materials.reserve(*numMaterials);
offset += sizeof(unsigned int);
for (unsigned int i = 0; i < *numMaterials; i++) {
@@ -121,83 +135,150 @@ void RawModelCustom::ReadMaterials(std::size_t& offset, char* fileData, const un
void RawModelCustom::ReadMaterialSingle(std::size_t& offset, char* fileData, const unsigned int& fileByteSize)
{
MaterialGroup newMaterial;
MaterialProperties newMaterialProperty;
#ifdef BOOST_LITTLE_ENDIAN
if (offset + sizeof(unsigned int) * 4 > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material texture names length failed");
}
if (offset + sizeof(MaterialType) > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material Type failed");
}
MaterialType type = *(MaterialType*)(fileData + offset);
offset += sizeof(MaterialType);
unsigned int* nameLengths = (unsigned int*)(fileData + offset);
offset += sizeof(unsigned int) * 4;
switch (type) {
case MaterialType::Basic:
newMaterialProperty.material = new MaterialBasic();
ReadMaterialBasic(newMaterialProperty.material, offset, fileData, fileByteSize);
break;
case MaterialType::SplatMapping:
newMaterialProperty.material = new MaterialSplatMapping();
ReadMaterialSplatMapping(static_cast<MaterialSplatMapping*>(newMaterialProperty.material), offset, fileData, fileByteSize);
break;
case MaterialType::SingleTextures:
newMaterialProperty.material = new MaterialSingleTextures();
ReadMaterialSingleTexture(static_cast<MaterialSingleTextures*>(newMaterialProperty.material), offset, fileData, fileByteSize);
break;
default:
throw Resource::FailedLoadingException("Material contains an unknown MaterialType");
};
if (offset + sizeof(float) * 11 + sizeof(unsigned int) * 2 > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material specular, reflection, color and start and end index values failed");
}
newMaterial.SpecularExponent = *(float*)(fileData + offset);
offset += sizeof(float);
newMaterial.ReflectionFactor = *(float*)(fileData + offset);
offset += sizeof(float);
memcpy(&newMaterial.DiffuseColor[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
memcpy(&newMaterial.SpecularColor[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
memcpy(&newMaterial.IncandescenceColor[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
newMaterial.StartIndex = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
newMaterial.EndIndex = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
if (nameLengths[0] > 0) {
if (offset + nameLengths[0] > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material texture path failed");
}
newMaterial.TexturePath = "Textures/";
newMaterial.TexturePath += (fileData + offset);
newMaterial.TexturePath += ".png";
offset += nameLengths[0];
}
if (nameLengths[1] > 0) {
if (offset + nameLengths[1] > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material NormalMap path failed");
}
newMaterial.NormalMapPath = "Textures/";
newMaterial.NormalMapPath += (fileData + offset);
newMaterial.NormalMapPath += ".png";
offset += nameLengths[1];
}
if (nameLengths[2] > 0) {
if (offset + nameLengths[2] > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material SpecularMap path failed");
}
newMaterial.SpecularMapPath = "Textures/";
newMaterial.SpecularMapPath += (fileData + offset);
newMaterial.SpecularMapPath += ".png";
offset += nameLengths[2];
}
if (nameLengths[3] > 0) {
if (offset + nameLengths[3] > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material IncandescenceMap path failed");
}
newMaterial.IncandescenceMapPath = "Textures/";
newMaterial.IncandescenceMapPath += (fileData + offset);
newMaterial.IncandescenceMapPath += ".png";
offset += nameLengths[3];
}
newMaterialProperty.type = type;
#else
#endif
MaterialGroups.push_back(newMaterial);
m_Materials.push_back(newMaterialProperty);
}
void RawModelCustom::ReadMaterialBasic(RawModelCustom::MaterialBasic* newMaterial, std::size_t& offset, char* fileData, const unsigned int& fileByteSize)
{
if (offset + sizeof(float) * 11 + sizeof(unsigned int) * 2 > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material specular, reflection, color and start and end index values failed");
}
newMaterial->SpecularExponent = *(float*)(fileData + offset);
offset += sizeof(float);
newMaterial->ReflectionFactor = *(float*)(fileData + offset);
offset += sizeof(float);
memcpy(&newMaterial->DiffuseColor[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
memcpy(&newMaterial->SpecularColor[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
memcpy(&newMaterial->IncandescenceColor[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
newMaterial->StartIndex = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
newMaterial->EndIndex = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
}
void RawModelCustom::ReadMaterialSingleTexture(RawModelCustom::MaterialSingleTextures* newMaterial, std::size_t& offset, char* fileData, const unsigned int& fileByteSize)
{
ReadMaterialBasic(newMaterial, offset, fileData, fileByteSize);
if (offset + sizeof(unsigned char) * 4 > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material NumOfMaps failed");
}
unsigned char numberOfMaps[4];
memcpy(numberOfMaps, fileData + offset, sizeof(unsigned char) * 4);
offset += sizeof(unsigned char) * 4;
if (numberOfMaps[0] > 0)
{
ReadMaterialTextureProperties(newMaterial->ColorMap, offset, fileData, fileByteSize);
}
if (numberOfMaps[1] > 0)
{
ReadMaterialTextureProperties(newMaterial->SpecularMap, offset, fileData, fileByteSize);
}
if (numberOfMaps[2] > 0)
{
ReadMaterialTextureProperties(newMaterial->NormalMap, offset, fileData, fileByteSize);
}
if (numberOfMaps[3] > 0)
{
ReadMaterialTextureProperties(newMaterial->IncandescenceMap, offset, fileData, fileByteSize);
}
}
void RawModelCustom::ReadMaterialSplatMapping(RawModelCustom::MaterialSplatMapping* newMaterial, std::size_t& offset, char* fileData, const unsigned int& fileByteSize)
{
ReadMaterialBasic(newMaterial, offset, fileData, fileByteSize);
ReadMaterialTextureProperties(newMaterial->SplatMap, offset, fileData, fileByteSize);
if (offset + sizeof(unsigned char) * 4 > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material NumOfMaps failed");
}
unsigned char numberOfMaps[4];
memcpy(numberOfMaps, fileData + offset, sizeof(unsigned char) * 4);
offset += sizeof(unsigned char) * 4;
newMaterial->ColorMaps.resize(numberOfMaps[0]);
for (unsigned char i = 0; i < numberOfMaps[0]; i++)
{
ReadMaterialTextureProperties(newMaterial->ColorMaps[i], offset, fileData, fileByteSize);
}
newMaterial->SpecularMaps.resize(numberOfMaps[1]);
for (unsigned char i = 0; i < numberOfMaps[1]; i++)
{
ReadMaterialTextureProperties(newMaterial->SpecularMaps[i], offset, fileData, fileByteSize);
}
newMaterial->NormalMaps.resize(numberOfMaps[2]);
for (unsigned char i = 0; i < numberOfMaps[2]; i++)
{
ReadMaterialTextureProperties(newMaterial->NormalMaps[i], offset, fileData, fileByteSize);
}
newMaterial->IncandescenceMaps.resize(numberOfMaps[3]);
for (unsigned char i = 0; i < numberOfMaps[3]; i++)
{
ReadMaterialTextureProperties(newMaterial->IncandescenceMaps[i], offset, fileData, fileByteSize);
}
}
void RawModelCustom::ReadMaterialTextureProperties(RawModelCustom::TextureProperties& texture, std::size_t& offset, char* fileData, const unsigned int& fileByteSize) {
unsigned int nameLength = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
if (nameLength > 0) {
if (offset + nameLength > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material texture path failed");
}
texture.TexturePath = "Textures/";
texture.TexturePath += (fileData + offset);
texture.TexturePath += ".png";
offset += nameLength;
if (offset + sizeof(glm::vec2) > fileByteSize) {
throw Resource::FailedLoadingException("Reading Material texture UVTiling failed");
}
memcpy(&texture.UVRepeat[0], fileData + offset, sizeof(glm::vec2));
}
offset += sizeof(glm::vec2);
}
void RawModelCustom::ReadAnimationFile(std::string filePath)
@@ -207,7 +288,9 @@ void RawModelCustom::ReadAnimationFile(std::string filePath)
std::ifstream in(filePath.c_str(), std::ios_base::binary | std::ios_base::ate);
if (!in.is_open()) {
//throw Resource::FailedLoadingException("Open animation file failed");
if (hasSkin) {
throw Resource::FailedLoadingException("Open animation file for a skinned mesh failed, unknown stuff will happen");
}
return;
}
@@ -233,7 +316,7 @@ void RawModelCustom::ReadAnimationFile(std::string filePath)
ReadAnimationBindPoses(offset, fileData, fileByteSize);
ReadAnimationClips(offset, fileData, fileByteSize, numAnimations);
}
delete fileData;
delete[] fileData;
}
void RawModelCustom::ReadAnimationBindPoses(std::size_t& offset, char* fileData, const unsigned int& fileByteSize)
@@ -318,32 +401,43 @@ void RawModelCustom::ReadAnimationClipSingle(std::size_t& offset, char* fileData
if (offset + sizeof(float) > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationClip duration failed");
}
newAnimation.Duration = *(float*)(fileData + offset);
offset += sizeof(float);
if (offset + sizeof(unsigned int) > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationClip NrOfKeyframes failed");
throw Resource::FailedLoadingException("Reading AnimationClip numberOfJointFrames failed");
}
unsigned int nrOfKeyframes = *(unsigned int*)(fileData + offset);
unsigned int numberOfJointFrames = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
if (offset + sizeof(unsigned int) > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationClip NrOfJoints failed");
}
unsigned int nrOfJoints = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
for (unsigned int i = 0; i < numberOfJointFrames; i++) {
if (offset + sizeof(unsigned int) > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationClip JointID failed");
}
int jointID = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
newAnimation.Keyframes.reserve(nrOfKeyframes);
for (unsigned int i = 0; i < nrOfKeyframes; i++) {
ReadAnimationKeyFrame(offset, fileData, fileByteSize, nrOfJoints, newAnimation);
if (offset + sizeof(unsigned int) > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationClip numberOFKeyFrames failed");
}
unsigned int numberOFKeyFrames = *(unsigned int*)(fileData + offset);
offset += sizeof(unsigned int);
if (numberOFKeyFrames > 0) {
newAnimation.JointAnimations[jointID].reserve(numberOFKeyFrames);
for (unsigned int j = 0; j < numberOFKeyFrames; j++) {
ReadAnimationKeyFrame(offset, fileData, fileByteSize, newAnimation.JointAnimations[jointID]);
}
}
}
m_Skeleton->Animations[newAnimation.Name] = newAnimation;
//m_Skeleton->Animations[newAnimation.Name].KeyFrameAmount = nrOfKeyframes;
#else
#endif
}
void RawModelCustom::ReadAnimationKeyFrame(std::size_t& offset, char* fileData, const unsigned int& fileByteSize, unsigned int numberOfJoints, Skeleton::Animation& animation)
void RawModelCustom::ReadAnimationKeyFrame(std::size_t& offset, char* fileData, const unsigned int& fileByteSize, std::vector<Skeleton::Animation::Keyframe>& animation)
{
Skeleton::Animation::Keyframe newKeyFrame;
@@ -359,17 +453,27 @@ void RawModelCustom::ReadAnimationKeyFrame(std::size_t& offset, char* fileData,
newKeyFrame.Time = *(float*)(fileData + offset);
offset += sizeof(float);
if (offset + sizeof(Skeleton::Animation::Keyframe::BoneProperty) * numberOfJoints> fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationKeyFrame joints failed");
if (offset + sizeof(float) * 3 > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationKeyFrame Position failed");
}
memcpy(&newKeyFrame.BoneProperties.Position[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
Skeleton::Animation::Keyframe::BoneProperty newBone;
for (unsigned int i = 0; i < numberOfJoints; i++) {
memcpy(&newBone, (fileData + offset), sizeof(Skeleton::Animation::Keyframe::BoneProperty));
offset += sizeof(Skeleton::Animation::Keyframe::BoneProperty);
newKeyFrame.BoneProperties[newBone.ID] = newBone;
if (offset + sizeof(float) * 4 > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationKeyFrame Rotation failed");
}
animation.Keyframes.push_back(newKeyFrame);
memcpy(&newKeyFrame.BoneProperties.Rotation[0], fileData + offset, sizeof(float) * 4);
offset += sizeof(float) * 4;
if (offset + sizeof(float) * 3 > fileByteSize) {
throw Resource::FailedLoadingException("Reading AnimationKeyFrame Scale failed");
}
memcpy(&newKeyFrame.BoneProperties.Scale[0], fileData + offset, sizeof(float) * 3);
offset += sizeof(float) * 3;
animation.push_back(newKeyFrame);
}
RawModelCustom::~RawModelCustom()
@@ -377,6 +481,9 @@ RawModelCustom::~RawModelCustom()
if (m_Skeleton != nullptr) {
delete m_Skeleton;
}
for (auto material : m_Materials) {
delete material.material;
}
}
#endif
+50 -9
View File
@@ -6,9 +6,10 @@ bool RenderState::Enable(GLenum cap)
//LOG_WARNING("Trying to enable somthing that is already enabled.");
return false;
}
m_ResetFunctions.push_back(std::bind(glDisable, cap));
glEnable(cap);
return !GLERROR("RenderState::Enable");
return !GLERROR("Enable");
}
bool RenderState::Disable(GLenum cap)
@@ -16,9 +17,10 @@ bool RenderState::Disable(GLenum cap)
if (!glIsEnabled(cap)) {
return false;
}
m_ResetFunctions.push_back(std::bind(glEnable, cap));
glDisable(cap);
return !GLERROR("RenderState::Disable");
return !GLERROR("Disable");
}
bool RenderState::CullFace(GLenum mode)
@@ -32,7 +34,7 @@ bool RenderState::CullFace(GLenum mode)
glGetIntegerv(GL_CULL_FACE_MODE, &original);
m_ResetFunctions.push_back(std::bind(glCullFace, original));
glCullFace(mode);
return !GLERROR("RenderState::CullFace");
return !GLERROR("CullFace");
}
bool RenderState::ClearColor(glm::vec4 color)
@@ -41,7 +43,7 @@ bool RenderState::ClearColor(glm::vec4 color)
glGetFloatv(GL_COLOR_CLEAR_VALUE, &original[0]);
m_ResetFunctions.push_back(std::bind(glClearColor, original[0], original[1], original[2], original[3]));
glClearColor(color.r, color.g, color.b, color.a);
return !GLERROR("RenderState::ClearColor");
return !GLERROR("ClearColor");
}
bool RenderState::BindFramebuffer(GLint framebuffer)
@@ -55,7 +57,7 @@ bool RenderState::BindFramebuffer(GLint framebuffer)
glBindFramebuffer(GL_DRAW_FRAMEBUFFER, originalDraw);
});
glBindFramebuffer(GL_FRAMEBUFFER, framebuffer);
return !GLERROR("RenderState::BindBuffer");
return !GLERROR("BindBuffer");
}
@@ -67,7 +69,7 @@ bool RenderState::BlendEquation(GLenum mode)
glGetIntegerv(GL_BLEND_EQUATION_ALPHA, &originalAlpha);
m_ResetFunctions.push_back(std::bind(glBlendEquationSeparate, originalRGB, originalAlpha));
glBlendEquation(mode);
return !GLERROR("RenderState::BlendEquation");
return !GLERROR("BlendEquation");
}
bool RenderState::BlendFunc(GLenum sfactor, GLenum dfactor)
@@ -82,7 +84,46 @@ bool RenderState::BlendFunc(GLenum sfactor, GLenum dfactor)
glGetIntegerv(GL_BLEND_DST_ALPHA, &originalDestAlpha);
m_ResetFunctions.push_back(std::bind(glBlendFuncSeparate, originalSrcRGB, originalSrcAlpha, originalDestRGB, originalDestAlpha));
glBlendFunc(sfactor, dfactor);
return !GLERROR("RenderState::BlendFunc");
return !GLERROR("BlendFunc");
}
bool RenderState::StencilOp(GLenum sfail, GLenum dpfail, GLenum dppass)
{
GLint originalSFail;
glGetIntegerv(GL_STENCIL_FAIL, &originalSFail);
GLint originalDPFail;
glGetIntegerv(GL_STENCIL_PASS_DEPTH_FAIL, &originalDPFail);
GLint originalDPPass;
glGetIntegerv(GL_STENCIL_PASS_DEPTH_PASS, &originalDPPass);
m_ResetFunctions.push_back(std::bind(glStencilOp, originalSFail, originalDPFail, originalDPPass));
glStencilOp(sfail, dpfail, dppass);
return !GLERROR("StencilOp");
}
bool RenderState::StencilFunc(GLenum func, GLint ref, GLuint mask)
{
GLint originalFunc;
glGetIntegerv(GL_STENCIL_FUNC, &originalFunc);
GLint originalRef;
glGetIntegerv(GL_STENCIL_REF, &originalRef);
GLint originalMask;
glGetIntegerv(GL_STENCIL_VALUE_MASK, &originalMask);
m_ResetFunctions.push_back(std::bind(glStencilFunc, originalFunc, originalRef, originalMask));
glStencilFunc(func, ref, mask);
return !GLERROR("StencilFunc");
}
bool RenderState::StencilMask(GLuint mask)
{
GLint originalMask;
glGetIntegerv(GL_STENCIL_WRITEMASK, &originalMask);
m_ResetFunctions.push_back(std::bind(glStencilMask, mask));
glStencilMask(mask);
return !GLERROR("StencilMask");
}
bool RenderState::DepthMask(GLboolean flag)
@@ -91,12 +132,12 @@ bool RenderState::DepthMask(GLboolean flag)
glGetBooleanv(GL_DEPTH_WRITEMASK, &original);
m_ResetFunctions.push_back(std::bind(glDepthMask, original));
glDepthMask(flag);
return !GLERROR("RenderState::DepthMask");
return !GLERROR("DepthMask");
}
RenderState::~RenderState()
{
for (auto& f : m_ResetFunctions) {
for (auto& f : boost::adaptors::reverse(m_ResetFunctions)) {
f();
}
}
+233 -37
View File
@@ -1,10 +1,12 @@
#include "Rendering/RenderSystem.h"
#include "Collision/Collision.h"
#include "Core/Frustum.h"
RenderSystem::RenderSystem(World* world, EventBroker* eventBroker, const IRenderer* renderer, RenderFrame* renderFrame)
: System(world, eventBroker)
RenderSystem::RenderSystem(SystemParams params, const IRenderer* renderer, RenderFrame* renderFrame, Octree<EntityAABB>* frustumCullOctree)
: System(params)
, m_Renderer(renderer)
, m_RenderFrame(renderFrame)
, m_World(world)
, m_Octree(frustumCullOctree)
{
EVENT_SUBSCRIBE_MEMBER(m_ESetCamera, &RenderSystem::OnSetCamera);
EVENT_SUBSCRIBE_MEMBER(m_EInputCommand, &RenderSystem::OnInputCommand);
@@ -31,6 +33,160 @@ bool RenderSystem::OnSetCamera(Events::SetCamera& e)
return true;
}
void RenderSystem::fillSprites(std::list<std::shared_ptr<RenderJob>>& jobs, World* world)
{
auto sprites = world->GetComponents("Sprite");
if (sprites == nullptr) {
return;
}
for (auto& cSprite : *sprites) {
bool visible = cSprite["Visible"];
if (!visible) {
continue;
}
EntityWrapper entity(world, cSprite.EntityID);
if (!isEntityVisible(entity)) {
continue;
}
glm::mat4 modelMatrix;
// See a sprite is an SpriteIndicator
bool isIndicator = false;
if (world->HasComponent(entity.ID, "SpriteIndicator"))
{
auto indicator = entity["SpriteIndicator"];
float minScale = (float)(double)indicator["MinScale"];
bool hasTeam = indicator["VisibleForSingleTeamOnly"];
isIndicator = true;
glm::vec3 pos = Transform::AbsolutePosition(entity);
EntityWrapper entityTeam;
if (hasTeam && (entity.HasComponent("Team") || entity.FirstParentWithComponent("Team").Valid()) && m_LocalPlayer.World != nullptr) {
if (!entity.HasComponent("Team")) {
entityTeam = entity.FirstParentWithComponent("Team");
}
else {
entityTeam = entity;
}
ComponentWrapper& entityTeamComponent = entityTeam["Team"];
ComponentWrapper& localComponent = m_LocalPlayer["Team"];
int entityTeamInt = entityTeamComponent["Team"];
int localComponentInt = localComponent["Team"];
int SpectatorInt = localComponent["Team"].Enum("Spectator");
if (entityTeamInt != localComponentInt && localComponentInt != SpectatorInt) {
continue;
}
}
// Code for check if sprite is inside or outside of screen
//glm::vec4 projectedPos = m_Camera->ProjectionMatrix() * m_Camera->ViewMatrix() * glm::vec4(pos, 1.0f);
//projectedPos /= projectedPos.w;
//// Check if inside of outside of screen.
//if (projectedPos.x < -1.0f || projectedPos.x > 1.0f || projectedPos.y < -1.0f || projectedPos.y > 1.0f) {
// // is outside of screen
//} else {
// // is inside of screen
//}
glm::vec3 zAxis = glm::vec3(0.0f, 1.0f, 0.0f);
glm::vec3 normal = pos - m_Camera->Position();
//float distance = glm::length(normal);
//if (distance < minDistance) {
// pos = pos - glm::normalize(normal) * (distance - minDistance);
//} else if (distance > maxDistance) {
// pos = pos - glm::normalize(normal) * (distance - maxDistance);
//}
normal.y = 0;
normal = glm::normalize(normal);
glm::vec3 right = glm::cross(normal, zAxis);
glm::vec3 up = glm::cross(right, normal);
modelMatrix[0][0] = right.x;
modelMatrix[0][1] = right.y;
modelMatrix[0][2] = right.z;
modelMatrix[0][3] = 0.0f;
modelMatrix[1][0] = zAxis.x;
modelMatrix[1][1] = zAxis.y;
modelMatrix[1][2] = zAxis.z;
modelMatrix[1][3] = 0.0f;
modelMatrix[2][0] = normal.x;
modelMatrix[2][1] = normal.y;
modelMatrix[2][2] = normal.z;
modelMatrix[2][3] = 0.0f;
modelMatrix[3][0] = pos.x;
modelMatrix[3][1] = pos.y;
modelMatrix[3][2] = pos.z;
modelMatrix[3][3] = 1.0f;
glm::mat4 tranformationMatrix = modelMatrix * glm::scale(Transform::AbsoluteScale(entity));
glm::vec4 tmp = tranformationMatrix * glm::vec4(glm::vec3(0.5, 0.5, 0), 1.0f);
glm::vec2 projectedTopRight = m_Camera->WorldToScreen(glm::vec3(tmp), m_Renderer->GetViewportSize());
tmp = tranformationMatrix * glm::vec4(glm::vec3(-0.5, -0.5, 0), 1.0f);
glm::vec2 projectedBottomLeft = m_Camera->WorldToScreen(glm::vec3(tmp), m_Renderer->GetViewportSize());
float diag = glm::length(projectedBottomLeft - projectedTopRight);
if (diag < minScale) {
tranformationMatrix = tranformationMatrix * glm::scale(glm::vec3(minScale / diag, minScale / diag, minScale / diag));
}
modelMatrix = tranformationMatrix;
}
else {
modelMatrix = Transform::ModelMatrix(entity.ID, world);
}
std::string diffuseResource = cSprite["DiffuseTexture"];
std::string glowResource = cSprite["GlowMap"];
bool depthSorted = cSprite["DepthSort"];
if (diffuseResource.empty() && glowResource.empty()) {
continue;
}
float fillPercentage = 0.f;
glm::vec4 fillColor = glm::vec4(0);
if (world->HasComponent(entity.ID, "Fill")) {
auto fillComponent = world->GetComponent(entity.ID, "Fill");
fillPercentage = (float)(double)fillComponent["Percentage"];
fillColor = (glm::vec4)fillComponent["Color"];
}
std::shared_ptr<SpriteJob> spriteJob = std::shared_ptr<SpriteJob>(new SpriteJob(cSprite, m_Camera, modelMatrix, world, fillColor, fillPercentage, depthSorted, isIndicator));
jobs.push_back(spriteJob);
}
}
bool RenderSystem::isEntityVisible(EntityWrapper& entity)
{
// Only render children of a camera if that camera is currently active
if (isChildOfACamera(entity) && !isChildOfCurrentCamera(entity)) {
return false;
}
// Hide things parented to local player if they have the HiddenFromLocalPlayer component
bool outOfBodyExperience = ResourceManager::Load<ConfigFile>("Config.ini")->Get<bool>("Debug.OutOfBodyExperience", false);
if (
(entity.HasComponent("HiddenForLocalPlayer") || entity.FirstParentWithComponent("HiddenForLocalPlayer").Valid())
&& (entity == m_LocalPlayer || entity.IsChildOf(m_LocalPlayer))
&& !outOfBodyExperience
) {
return false;
}
return true;
}
bool RenderSystem::isChildOfACamera(EntityWrapper entity)
{
return entity.FirstParentWithComponent("Camera").Valid();
@@ -40,14 +196,15 @@ bool RenderSystem::isChildOfCurrentCamera(EntityWrapper entity)
return entity == m_CurrentCamera || entity.IsChildOf(m_CurrentCamera);
}
void RenderSystem::fillModels(std::list<std::shared_ptr<RenderJob>>& opaqueJobs, std::list<std::shared_ptr<RenderJob>>& transparentJobs)
void RenderSystem::fillModels(RenderScene::Queues &Jobs)
{
auto models = m_World->GetComponents("Model");
if (models == nullptr) {
return;
}
Frustum frustum(m_Camera->ProjectionMatrix() * m_Camera->ViewMatrix());
std::vector<EntityAABB> seenEntities;
m_Octree->ObjectsInFrustum(frustum, seenEntities);
for (auto& cModel : *models) {
for (auto& seenEntity : seenEntities) {
EntityWrapper entity = seenEntity.Entity;
ComponentWrapper cModel = entity["Model"];
bool visible = cModel["Visible"];
if (!visible) {
continue;
@@ -57,15 +214,7 @@ void RenderSystem::fillModels(std::list<std::shared_ptr<RenderJob>>& opaqueJobs,
continue;
}
EntityWrapper entity(m_World, cModel.EntityID);
// Only render children of a camera if that camera is currently active
if (isChildOfACamera(entity) && !isChildOfCurrentCamera(entity)) {
continue;
}
// Hide things parented to local player if they have the HiddenFromLocalPlayer component
if (entity.HasComponent("HiddenForLocalPlayer") && (entity == m_LocalPlayer || entity.IsChildOf(m_LocalPlayer))) {
if (!isEntityVisible(entity)) {
continue;
}
@@ -92,7 +241,9 @@ void RenderSystem::fillModels(std::list<std::shared_ptr<RenderJob>>& opaqueJobs,
}
glm::mat4 modelMatrix = Transform::ModelMatrix(cModel.EntityID, m_World);
//Loop through all materialgroups of a model
for (auto matGroup : model->MaterialGroups()) {
//If the model has an explosioneffect component, we will add an explosioneffectjob
if (m_World->HasComponent(cModel.EntityID, "ExplosionEffect")) {
auto explosionEffectComponent = m_World->GetComponent(cModel.EntityID, "ExplosionEffect");
std::shared_ptr<ExplosionEffectJob> explosionEffectJob = std::shared_ptr<ExplosionEffectJob>(new ExplosionEffectJob(
@@ -106,14 +257,33 @@ void RenderSystem::fillModels(std::list<std::shared_ptr<RenderJob>>& opaqueJobs,
fillColor,
fillPercentage
));
if(explosionEffectJob->Color.a != 1.f || explosionEffectJob->EndColor.a != 1.f || explosionEffectJob->DiffuseColor.a != 1.f) {
cModel["Transparent"] = true;
}
if (m_World->HasComponent(cModel.EntityID, "Shield")){
explosionEffectJob->CalculateHash();
Jobs.ShieldObjects.push_back(explosionEffectJob);
} else if (m_World->HasComponent(cModel.EntityID, "Shielded")
|| m_World->HasComponent(cModel.EntityID, "Player")) {
if (cModel["Transparent"]) {
transparentJobs.push_back(explosionEffectJob);
if (explosionEffectJob->Color.a != 1.f || explosionEffectJob->EndColor.a != 1.f || explosionEffectJob->DiffuseColor.a != 1.f) {
cModel["Transparent"] = true;
}
if (cModel["Transparent"]) {
Jobs.TransparentShieldedObjects.push_back(explosionEffectJob);
} else {
explosionEffectJob->CalculateHash();
Jobs.OpaqueShieldedObjects.push_back(explosionEffectJob);
}
} else {
opaqueJobs.push_back(explosionEffectJob);
if (explosionEffectJob->Color.a != 1.f || explosionEffectJob->EndColor.a != 1.f || explosionEffectJob->DiffuseColor.a != 1.f) {
cModel["Transparent"] = true;
}
if (cModel["Transparent"]) {
Jobs.TransparentObjects.push_back(explosionEffectJob);
} else {
explosionEffectJob->CalculateHash();
Jobs.OpaqueObjects.push_back(explosionEffectJob);
}
}
} else {
std::shared_ptr<ModelJob> modelJob = std::shared_ptr<ModelJob>(new ModelJob(
@@ -126,13 +296,33 @@ void RenderSystem::fillModels(std::list<std::shared_ptr<RenderJob>>& opaqueJobs,
fillColor,
fillPercentage
));
if (modelJob->Color.a != 1.f || modelJob->DiffuseColor.a != 1.f) {
cModel["Transparent"] = true;
}
if (cModel["Transparent"]) {
transparentJobs.push_back(modelJob);
if (m_World->HasComponent(cModel.EntityID, "Shield")) {
modelJob->CalculateHash();
Jobs.ShieldObjects.push_back(modelJob);
} else if (m_World->HasComponent(cModel.EntityID, "Shielded")
|| m_World->HasComponent(cModel.EntityID, "Player")) {
if (modelJob->Color.a != 1.f || modelJob->DiffuseColor.a != 1.f) {
cModel["Transparent"] = true;
}
if (cModel["Transparent"]) {
Jobs.TransparentShieldedObjects.push_back(modelJob);
} else {
modelJob->CalculateHash();
Jobs.OpaqueShieldedObjects.push_back(modelJob);
}
} else {
opaqueJobs.push_back(modelJob);
if (modelJob->Color.a != 1.f || modelJob->DiffuseColor.a != 1.f) {
cModel["Transparent"] = true;
}
if (cModel["Transparent"]) {
Jobs.TransparentObjects.push_back(modelJob);
} else {
modelJob->CalculateHash();
Jobs.OpaqueObjects.push_back(modelJob);
}
}
}
}
@@ -167,7 +357,6 @@ void RenderSystem::fillPointLights(std::list<std::shared_ptr<RenderJob>>& jobs,
}
}
void RenderSystem::fillDirectionalLights(std::list<std::shared_ptr<RenderJob>>& jobs, World* world)
{
auto directionalLights = world->GetComponents("DirectionalLight");
@@ -189,14 +378,13 @@ void RenderSystem::fillDirectionalLights(std::list<std::shared_ptr<RenderJob>>&
}
}
void RenderSystem::fillText(std::list<std::shared_ptr<RenderJob>>& jobs, World* world)
{
auto texts = world->GetComponents("Text");
if (texts == nullptr) {
return;
}
for (auto& textComponent : *texts) {
bool visible = textComponent["Visible"];
if (!visible) {
@@ -207,6 +395,11 @@ void RenderSystem::fillText(std::list<std::shared_ptr<RenderJob>>& jobs, World*
continue;
}
EntityWrapper entity(world, textComponent.EntityID);
if (!isEntityVisible(entity)) {
continue;
}
Font* font;
try {
font = ResourceManager::Load<Font>(resource);
@@ -251,10 +444,13 @@ void RenderSystem::Update(double dt)
scene.AmbientColor = (glm::vec4)(*cSceneLight->begin())["AmbientColor"];
}
fillModels(scene.OpaqueObjects, scene.TransparentObjects);
fillPointLights(scene.PointLightJobs, m_World);
fillDirectionalLights(scene.DirectionalLightJobs, m_World);
fillText(scene.TextJobs, m_World);
fillModels(scene.Jobs);
fillPointLights(scene.Jobs.PointLight, m_World);
//TODO: Make sure all objects needed are also sorted.
scene.Jobs.OpaqueObjects.sort();
fillSprites(scene.Jobs.SpriteJob, m_World);
fillDirectionalLights(scene.Jobs.DirectionalLight, m_World);
fillText(scene.Jobs.Text, m_World);
m_RenderFrame->Add(scene);
}
+96 -17
View File
@@ -1,5 +1,7 @@
#include "Rendering/Renderer.h"
std::unordered_map<GLFWwindow*, Renderer*> Renderer::m_WindowToRenderer;
void Renderer::Initialize()
{
InitializeWindow();
@@ -12,7 +14,6 @@ void Renderer::Initialize()
m_TextPass = new TextPass();
m_TextPass->Initialize();
/* 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");*/
@@ -20,6 +21,18 @@ void Renderer::Initialize()
m_ImGuiRenderPass = new ImGuiRenderPass(this, m_EventBroker);
}
void Renderer::glfwFrameBufferCallback(GLFWwindow* window, int width, int height)
{
glViewport(0, 0, width, height);
Renderer* currentRenderer = m_WindowToRenderer[window];
currentRenderer->m_ViewportSize = Rectangle(width, height);
currentRenderer->m_DrawFinalPass->OnWindowResize();
currentRenderer->m_LightCullingPass->OnWindowResize();
currentRenderer->m_PickingPass->OnWindowResize();
currentRenderer->m_DrawBloomPass->OnWindowResize();
currentRenderer->m_SSAOPass->OnWindowResize();
}
void Renderer::InitializeWindow()
{
// Initialize GLFW
@@ -39,6 +52,7 @@ void Renderer::InitializeWindow()
LOG_ERROR("GLFW: Failed to create window");
exit(EXIT_FAILURE);
}
glfwSetFramebufferSizeCallback(m_Window, &glfwFrameBufferCallback);
glfwMakeContextCurrent(m_Window);
// GL version info
@@ -51,7 +65,7 @@ void Renderer::InitializeWindow()
ss << " DEBUG";
#endif
LOG_INFO(ss.str().c_str());
glfwSetWindowTitle(m_Window, ss.str().c_str());
SetWindowTitle(ss.str());
// Initialize GLEW
if (glewInit() != GLEW_OK) {
@@ -59,8 +73,10 @@ void Renderer::InitializeWindow()
exit(EXIT_FAILURE);
}
m_WindowToRenderer[m_Window] = this;
int windowSize[2];
glfwGetWindowSize(m_Window, &windowSize[0], &windowSize[1]);
glfwGetFramebufferSize(m_Window, &windowSize[0], &windowSize[1]);
m_ViewportSize = Rectangle(windowSize[0], windowSize[1]);
}
@@ -85,37 +101,83 @@ void Renderer::Update(double dt)
void Renderer::Draw(RenderFrame& frame)
{
ImGui::Combo("Draw textures", &m_DebugTextureToDraw, "Final\0Scene\0Bloom\0Gaussian\0Picking");
GLERROR("PRE");
ImGui::Combo("Draw textures", &m_DebugTextureToDraw, "Final\0Scene\0Bloom\0SceneLowRes\0BloomLowRes\0Gaussian\0Picking\0Ambient Occlusion");
ImGui::Combo("CubeMap", &m_CubeMapTexture, "Nevada(512)\0Sky(1024)");
if(m_CubeMapTexture == 0) {
m_CubeMapPass->LoadTextures("Nevada");
} else if (m_CubeMapTexture == 1) {
m_CubeMapPass->LoadTextures("Sky");
}
ImGui::SliderFloat("SSAO sample radius", &m_SSAO_Radius, 0.01f, 5.0f);
ImGui::SliderFloat("SSAO bias", &m_SSAO_Bias, 0.0f, 0.1f);
ImGui::SliderFloat("SSAO contrast", &m_SSAO_Contrast, 0.0f, 10.0f);
ImGui::SliderFloat("SSAO IntensityScale", &m_SSAO_IntensityScale, 0.0f, 10.0f);
ImGui::SliderInt("SSAO Number of Samples", &m_SSAO_NumOfSamples, 2, 100);
ImGui::SliderInt("SSAO Number of Turns", &m_SSAO_NumOfTurns, 0, 50);
m_SSAOPass->Setting(m_SSAO_Radius, m_SSAO_Bias, m_SSAO_Contrast, m_SSAO_IntensityScale, m_SSAO_NumOfSamples, m_SSAO_NumOfTurns);
GLERROR("SSAO Settings");
//clear buffer 0
glClearColor(0.f, 0.f, 0.f, 0.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
//Clear other buffers
PerformanceTimer::StartTimer("Renderer-ClearBuffers");
m_PickingPass->ClearPicking();
m_DrawFinalPass->ClearBuffer();
m_DrawBloomPass->ClearBuffer();
m_ShadowPass->ClearBuffer();
m_SSAOPass->ClearBuffer();
PerformanceTimer::StopTimer("Renderer-ClearBuffers");
GLERROR("ClearBuffers");
for (auto scene : frame.RenderScenes) {
PerformanceTimer::StartTimer("Renderer-Depth");
m_PickingPass->Draw(*scene);
GLERROR("Drawing pickingpass");
PerformanceTimer::StopTimer("Renderer-Depth");
}
PerformanceTimer::StartTimer("AO generation");
m_SSAOPass->Draw(m_PickingPass->DepthBuffer(), frame.RenderScenes.front()->Camera);
GLuint ao = m_SSAOPass->SSAOTexture();
PerformanceTimer::StopTimer("AO generation");
for (auto scene : frame.RenderScenes){
PerformanceTimer::StartTimer("Renderer-Drawing PickingPass");
SortRenderJobsByDepth(*scene);
m_PickingPass->Draw(*scene);
GLERROR("SortByDepth");
m_ShadowPass->Draw(*scene);
PerformanceTimer::StartTimerAndStopPrevious("Renderer-Generate Frustrums");
m_LightCullingPass->GenerateNewFrustum(*scene);
GLERROR("Generate frustums");
PerformanceTimer::StartTimerAndStopPrevious("Renderer-Filling Light List");
m_LightCullingPass->FillLightList(*scene);
GLERROR("Filling light list");
PerformanceTimer::StartTimerAndStopPrevious("Renderer-Light Culling");
m_LightCullingPass->CullLights(*scene);
m_DrawFinalPass->Draw(*scene);
GLERROR("LightCulling");
m_DrawFinalPass->Draw(*scene, ao);
PerformanceTimer::StartTimerAndStopPrevious("Renderer-Draw Geometry+Light");
GLERROR("Draw Geometry+Light");
//m_DrawScenePass->Draw(*scene);
GLERROR("Renderer::Draw m_DrawScenePass->Draw");
PerformanceTimer::StartTimerAndStopPrevious("Renderer-Draw Text");
m_TextPass->Draw(*scene, *m_DrawFinalPass->FinalPassFrameBuffer());
GLERROR("Draw Text");
PerformanceTimer::StopTimer("Renderer-Draw Text");
}
}
PerformanceTimer::StartTimer("Renderer-Draw Bloom");
m_DrawBloomPass->Draw(m_DrawFinalPass->BloomTexture());
PerformanceTimer::StopTimer("Renderer-Draw Bloom");
if (m_DebugTextureToDraw == 0) {
m_DrawColorCorrectionPass->Draw(m_DrawFinalPass->SceneTexture(), m_DrawBloomPass->GaussianTexture(), frame.Gamma, frame.Exposure);
PerformanceTimer::StartTimer("Renderer-Color Correction Pass");
m_DrawColorCorrectionPass->Draw(m_DrawFinalPass->SceneTexture(), m_DrawBloomPass->GaussianTexture(), m_DrawFinalPass->SceneTextureLowRes(), m_DrawFinalPass->BloomTextureLowRes(), frame.Gamma, frame.Exposure);
PerformanceTimer::StopTimer("Renderer-Color Correction Pass");
}
PerformanceTimer::StartTimer("Renderer-Misc Debug Draws");
if (m_DebugTextureToDraw == 1) {
m_DrawScreenQuadPass->Draw(m_DrawFinalPass->SceneTexture());
}
@@ -123,14 +185,27 @@ void Renderer::Draw(RenderFrame& frame)
m_DrawScreenQuadPass->Draw(m_DrawFinalPass->BloomTexture());
}
if (m_DebugTextureToDraw == 3) {
m_DrawScreenQuadPass->Draw(m_DrawBloomPass->GaussianTexture());
m_DrawScreenQuadPass->Draw(m_DrawFinalPass->SceneTextureLowRes());
}
if (m_DebugTextureToDraw == 4) {
m_DrawScreenQuadPass->Draw(m_DrawFinalPass->BloomTextureLowRes());
}
if (m_DebugTextureToDraw == 5) {
m_DrawScreenQuadPass->Draw(m_DrawBloomPass->GaussianTexture());
}
if (m_DebugTextureToDraw == 6) {
m_DrawScreenQuadPass->Draw(m_PickingPass->PickingTexture());
}
if (m_DebugTextureToDraw == 7) {
m_DrawScreenQuadPass->Draw(m_SSAOPass->SSAOTexture());
}
PerformanceTimer::StopTimer("Renderer-Misc Debug Draws");
PerformanceTimer::StartTimer("Renderer-ImGuiRenderPass");
m_ImGuiRenderPass->Draw();
glfwSwapBuffers(m_Window);
GLERROR("Imgui draw");
glfwSwapBuffers(m_Window);
PerformanceTimer::StopTimer("Renderer-ImGuiRenderPass");
}
PickData Renderer::Pick(glm::vec2 screenCoord)
@@ -140,15 +215,17 @@ PickData Renderer::Pick(glm::vec2 screenCoord)
void Renderer::InitializeTextures()
{
m_ErrorTexture = ResourceManager::Load<Texture>("Textures/Core/ErrorTexture.png");
m_WhiteTexture = ResourceManager::Load<Texture>("Textures/Core/White.png");
m_ErrorTexture = CommonFunctions::LoadTexture("Textures/Core/ErrorTexture.png", false);
m_WhiteTexture = CommonFunctions::LoadTexture("Textures/Core/White.png", false);
}
void Renderer::SortRenderJobsByDepth(RenderScene &scene)
{
//Sort all forward jobs so transparency is good.
scene.TransparentObjects.sort(Renderer::DepthSort);
scene.Jobs.TransparentObjects.sort(Renderer::DepthSort);
scene.Jobs.SpriteJob.sort(Renderer::DepthSort);
scene.Jobs.Text.sort(Renderer::DepthSort);
}
void Renderer::GenerateTexture(GLuint* texture, GLenum wrapping, GLenum filtering, glm::vec2 dimensions, GLint internalFormat, GLint format, GLenum type)
@@ -168,8 +245,10 @@ void Renderer::InitializeRenderPasses()
m_PickingPass = new PickingPass(this, m_EventBroker);
m_LightCullingPass = new LightCullingPass(this);
m_ShadowPass = new ShadowPass(this);
m_DrawFinalPass = new DrawFinalPass(this, m_LightCullingPass, m_ShadowPass);
m_CubeMapPass = new CubeMapPass(this);
m_DrawFinalPass = new DrawFinalPass(this, m_LightCullingPass, m_CubeMapPass, m_ShadowPass);
m_DrawScreenQuadPass = new DrawScreenQuadPass(this);
m_DrawBloomPass = new DrawBloomPass(this);
m_DrawColorCorrectionPass = new DrawColorCorrectionPass(this);
m_SSAOPass = new SSAOPass(this);
}
+145
View File
@@ -0,0 +1,145 @@
#include "Rendering/SSAOPass.h"
SSAOPass::SSAOPass(IRenderer* renderer)
{
m_Renderer = renderer;
m_ScreenQuad = ResourceManager::Load<Model>("Models/Core/ScreenQuad.mesh");
InitializeTexture();
InitializeBuffer();
InitializeShaderProgram();
Setting(0.1f, 0.012f, 1.0f, 1.0f, 13, 7);
m_DrawBloomPass = new DrawBloomPass(renderer);
}
void SSAOPass::InitializeShaderProgram()
{
m_SSAOProgram = ResourceManager::Load<ShaderProgram>("##SSAOProgram");
m_SSAOProgram->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/SSAO.vert.glsl")));
m_SSAOProgram->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/SSAO.frag.glsl")));
m_SSAOProgram->Compile();
m_SSAOProgram->Link();
m_SSAOViewSpaceZProgram = ResourceManager::Load<ShaderProgram>("##SSAOViewSpaceZProgram");
m_SSAOViewSpaceZProgram->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/SSAO.vert.glsl")));
m_SSAOViewSpaceZProgram->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/SSAOViewSpaceZ.frag.glsl")));
m_SSAOViewSpaceZProgram->Compile();
m_SSAOViewSpaceZProgram->Link();
}
void SSAOPass::InitializeTexture() {
GenerateTexture(&m_SSAOTexture, GL_CLAMP_TO_EDGE, GL_LINEAR, glm::vec2(m_Renderer->GetViewportSize().Width, m_Renderer->GetViewportSize().Height), GL_R8, GL_RED, GL_FLOAT);
GenerateTexture(&m_SSAOViewSpaceZTexture, GL_CLAMP_TO_EDGE, GL_LINEAR, glm::vec2(m_Renderer->GetViewportSize().Width, m_Renderer->GetViewportSize().Height), GL_R32F, GL_RED, GL_FLOAT);
}
void SSAOPass::InitializeBuffer()
{
m_SSAOFramBuffer.AddResource(std::shared_ptr<BufferResource>(new Texture2D(&m_SSAOTexture, GL_COLOR_ATTACHMENT0)));
m_SSAOFramBuffer.Generate();
m_SSAOViewSpaceZFramBuffer.AddResource(std::shared_ptr<BufferResource>(new Texture2D(&m_SSAOViewSpaceZTexture, GL_COLOR_ATTACHMENT0)));
m_SSAOViewSpaceZFramBuffer.Generate();
}
void SSAOPass::ClearBuffer()
{
m_SSAOFramBuffer.Bind();
glClearColor(1.f, 1.f, 1.f, 1.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
m_SSAOFramBuffer.Unbind();
m_SSAOViewSpaceZFramBuffer.Bind();
glClearColor(1.f, 1.f, 1.f, 1.f);
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
m_SSAOViewSpaceZFramBuffer.Unbind();
}
void SSAOPass::Setting(float radius, float bias, float contrast, float intensityScale, int numOfSamples, int NumOfTurns) {
m_Radius = radius;
m_Bias = bias;
m_Contrast = contrast;
m_IntensityScale = intensityScale;
m_NumOfSamples = numOfSamples;
m_NumOfTurns = NumOfTurns;
}
void SSAOPass::GenerateTexture(GLuint* texture, GLenum wrapping, GLenum filtering, glm::vec2 dimensions, GLint internalFormat, GLint format, GLenum type) const
{
glGenTextures(1, texture);
glBindTexture(GL_TEXTURE_2D, *texture);
glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_S, wrapping);
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, nullptr);
GLERROR("Texture initialization failed");
}
void SSAOPass::Draw(GLuint depthBuffer, Camera* camera)
{
SSAOPassState state;
GLuint viewSpaceZPShaderHandle = m_SSAOViewSpaceZProgram->GetHandle();
GLuint SSAOShaderHandle = m_SSAOProgram->GetHandle();
m_SSAOViewSpaceZFramBuffer.Bind();
m_SSAOViewSpaceZProgram->Bind();
glActiveTexture(GL_TEXTURE0);
glBindTexture(GL_TEXTURE_2D, depthBuffer);
glm::vec3 clipInfo = glm::vec3(
(camera->NearClip() * camera->FarClip()),
(camera->NearClip() - camera->FarClip()),
(camera->FarClip())
);
/*glm::vec3 clipInfo = glm::vec3(
(camera->NearClip()),
(-1.0f),
(+1.0f)
);*/
glUniform3fv(glGetUniformLocation(viewSpaceZPShaderHandle, "ClipInfo"), 1, glm::value_ptr(clipInfo));
glBindVertexArray(m_ScreenQuad->VAO);
glBindBuffer(GL_ELEMENT_ARRAY_BUFFER, m_ScreenQuad->ElementBuffer);
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex + 1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
glm::vec4 projInfo = glm::vec4(
((1.0 - camera->ProjectionMatrix()[0][2]) / camera->ProjectionMatrix()[0][0]),
(-2.0 / (m_Renderer->GetViewportSize().Width * camera->ProjectionMatrix()[0][0])),
((1.0 + camera->ProjectionMatrix()[1][2]) / camera->ProjectionMatrix()[1][1]),
(-2.0 / (m_Renderer->GetViewportSize().Height * camera->ProjectionMatrix()[1][1]))
);
m_SSAOFramBuffer.Bind();
m_SSAOProgram->Bind();
glActiveTexture(GL_TEXTURE0);
glBindTexture(GL_TEXTURE_2D, m_SSAOViewSpaceZTexture);
// How many pixel there are in a 1m long object 1m away from the camera
glUniform1f(glGetUniformLocation(SSAOShaderHandle, "uProjScale"), m_Renderer->GetViewportSize().Height / (-2.0f * glm::tan(camera->FOV() * 0.5f)));
glUniform1f(glGetUniformLocation(SSAOShaderHandle, "uRadius"), m_Radius);
glUniform1f(glGetUniformLocation(SSAOShaderHandle, "uBias"), m_Bias);
glUniform1f(glGetUniformLocation(SSAOShaderHandle, "uContrast"), m_Contrast);
glUniform1f(glGetUniformLocation(SSAOShaderHandle, "uIntensityScale"), m_IntensityScale);
glUniform1i(glGetUniformLocation(SSAOShaderHandle, "uNumOfSamples"), m_NumOfSamples);
glUniform1i(glGetUniformLocation(SSAOShaderHandle, "uNumOfTurns"), m_NumOfTurns);;
glUniform4fv(glGetUniformLocation(SSAOShaderHandle, "uProjInfo"), 1, glm::value_ptr(projInfo));
glDrawElementsBaseVertex(GL_TRIANGLES, m_ScreenQuad->MaterialGroups()[0].material->EndIndex - m_ScreenQuad->MaterialGroups()[0].material->StartIndex + 1
, GL_UNSIGNED_INT, 0, m_ScreenQuad->MaterialGroups()[0].material->StartIndex);
m_DrawBloomPass->ClearBuffer();
m_DrawBloomPass->Draw(m_SSAOTexture);
}
void SSAOPass::OnWindowResize() {
m_DrawBloomPass->OnWindowResize();
InitializeTexture();
m_SSAOFramBuffer.Generate();
m_SSAOViewSpaceZFramBuffer.Generate();
}
+16
View File
@@ -0,0 +1,16 @@
#include "Rendering/SSAOPassState.h"
SSAOPassState::SSAOPassState()
{
//BindFramebuffer(0);
Disable(GL_BLEND);
Disable(GL_DEPTH_TEST);
Disable(GL_CULL_FACE);
}
SSAOPassState::~SSAOPassState()
{
}
+1 -2
View File
@@ -98,8 +98,7 @@ void ShaderProgram::AddShader(std::shared_ptr<Shader> shader)
void ShaderProgram::Compile()
{
if (m_ShaderProgramHandle == 0)
{
if (m_ShaderProgramHandle == 0) {
m_ShaderProgramHandle = glCreateProgram();
}
+635 -46
View File
@@ -29,6 +29,8 @@ Skeleton::~Skeleton()
}
}
const Skeleton::Animation* Skeleton::GetAnimation(std::string name)
{
auto it = Animations.find(name);
@@ -39,66 +41,649 @@ const Skeleton::Animation* Skeleton::GetAnimation(std::string name)
}
}
std::vector<glm::mat4> Skeleton::GetFrameBones(const Animation& animation, double time, bool noRootMotion /*= false*/)
std::vector<glm::mat4> Skeleton::GetFrameBones(std::vector<AnimationData> animations, bool noRootMotion /*= false*/)
{
// HACK: Animation wrap-around
while (time < 0) {
time += animation.Duration;
}
while (time > animation.Duration) {
time -= animation.Duration;
}
if (animations.size() <= 0) {
std::vector<glm::mat4> finalMatrices;
for (auto& b : Bones) {
finalMatrices.push_back(glm::mat4(1));//b.second->OffsetMatrix);
}
return finalMatrices;
}
int currentKeyframeIndex = GetKeyframe(animation, time);
std::map<int, glm::mat4> frameBones;
AccumulateBoneTransforms(true, animations, frameBones, RootBone, glm::mat4(1));
const Animation::Keyframe& currentFrame = animation.Keyframes[currentKeyframeIndex];
const Animation::Keyframe& nextFrame = animation.Keyframes[(currentKeyframeIndex + 1) % animation.Keyframes.size()];
double alpha = (time - currentFrame.Time) / (nextFrame.Time - currentFrame.Time);
//auto animationFrame = Animations[""].Keyframes[frame];
std::map<int, glm::mat4> frameBones;
AccumulateBoneTransforms(noRootMotion, currentFrame, nextFrame, static_cast<float>(alpha), frameBones, RootBone, glm::mat4(1));
std::vector<glm::mat4> finalMatrices;
for (auto &kv : frameBones) {
finalMatrices.push_back(kv.second);
}
return finalMatrices;
std::vector<glm::mat4> finalMatrices;
for (auto &kv : frameBones) {
finalMatrices.push_back(kv.second);
}
return finalMatrices;
}
void Skeleton::AccumulateBoneTransforms(bool noRootMotion, const Animation::Keyframe &currentFrame, const Animation::Keyframe &nextFrame, float progress, std::map<int, glm::mat4> &boneMatrices, const Bone* bone, glm::mat4 parentMatrix)
std::vector<glm::mat4> Skeleton::GetFrameBones(std::vector<AnimationData> animations, AnimationOffset animationOffset, bool noRootMotion /*= false*/)
{
if (animations.size() <= 0 || animationOffset.animation == nullptr) {
std::vector<glm::mat4> finalMatrices;
for (auto& b : Bones) {
finalMatrices.push_back(glm::mat4(1));//b.second->OffsetMatrix);
}
return finalMatrices;
}
std::map<int, glm::mat4> frameBones;
AccumulateBoneTransforms(true, animations, animationOffset, frameBones, RootBone, glm::mat4(1));
std::vector<glm::mat4> finalMatrices;
for (auto &kv : frameBones) {
finalMatrices.push_back(kv.second);
}
return finalMatrices;
}
void Skeleton::AccumulateBoneTransforms(bool noRootMotion, std::vector<AnimationData> animations, std::map<int, glm::mat4>& boneMatrices, const Bone* bone, glm::mat4 parentMatrix)
{
glm::mat4 boneMatrix;
std::vector<JointFrameTransform> JointTransforms;
for (const AnimationData animationData : animations) {
const Animation* animation = animationData.animation;
const float time = animationData.time;
JointFrameTransform jointTransform;
jointTransform.Weight = animationData.weight;;
if (animation->JointAnimations.find(bone->ID) != animation->JointAnimations.end()) {
std::vector<Animation::Keyframe> boneKeyFrames = animation->JointAnimations.at(bone->ID);
Animation::Keyframe currentFrame;
Animation::Keyframe nextFrame;
if (boneKeyFrames.size() > 1) { // 2+ keyframes for the current bone
for (int index = boneKeyFrames.size()-1; index >= 0; index--) { // find the bone keyframes that surrounds the current frame
if (time >= boneKeyFrames.at(index).Time) {
currentFrame = boneKeyFrames.at(index);
nextFrame = boneKeyFrames.at((index + 1) % boneKeyFrames.size());
break;
}
}
float progress;
if (nextFrame.Index == 0) {
nextFrame = currentFrame;
progress = (time - currentFrame.Time) / (animation->Duration - currentFrame.Time);
} else {
progress = (time - currentFrame.Time) / (nextFrame.Time - currentFrame.Time);
}
if (progress > 1.0f || progress < 0.0f) {
progress = glm::clamp(progress, 0.0f, 1.0f);
}
Animation::Keyframe::BoneProperty currentBoneProperty = currentFrame.BoneProperties;
Animation::Keyframe::BoneProperty nextBoneProperty = nextFrame.BoneProperties;
jointTransform.PositionInterp = currentBoneProperty.Position * (1.f - progress) + nextBoneProperty.Position * progress;
jointTransform.RotationInterp = glm::slerp(currentBoneProperty.Rotation, nextBoneProperty.Rotation, progress);
jointTransform.ScaleInterp = currentBoneProperty.Scale * (1.f - progress) + nextBoneProperty.Scale * progress;
// Flag for no root motion
if (bone == RootBone && noRootMotion) {
jointTransform.PositionInterp.x = 0;
jointTransform.PositionInterp.z = 0;
}
JointTransforms.push_back(jointTransform);
} else { // 1 keyframes for the current bone
currentFrame = boneKeyFrames.at(0);
jointTransform.PositionInterp = currentFrame.BoneProperties.Position;
jointTransform.RotationInterp = currentFrame.BoneProperties.Rotation;
jointTransform.ScaleInterp = currentFrame.BoneProperties.Scale;
JointTransforms.push_back(jointTransform);
}
} else { // 0 keyframes for the current bone
}
}
if (JointTransforms.size() <= 0) {
if (bone->Parent) {
boneMatrix = parentMatrix * glm::inverse(bone->OffsetMatrix) * bone->Parent->OffsetMatrix;
boneMatrices[bone->ID] = boneMatrix * bone->OffsetMatrix;
} else {
boneMatrix = glm::inverse(bone->OffsetMatrix);
boneMatrices[bone->ID] = parentMatrix;
}
} else if (JointTransforms.size() == 1) {
boneMatrix = parentMatrix *(glm::translate(JointTransforms.at(0).PositionInterp) * glm::toMat4(JointTransforms.at(0).RotationInterp) * glm::scale(JointTransforms.at(0).ScaleInterp));
boneMatrices[bone->ID] = boneMatrix * bone->OffsetMatrix;
} else {
glm::vec3 finalPosInterp;
glm::quat finalRotInterp;
glm::vec3 finalScaleInterp;
float totalWeight = 0;
for (JointFrameTransform jointTransform : JointTransforms) {
totalWeight += jointTransform.Weight;
}
for (JointFrameTransform jointTransform : JointTransforms) {
if (jointTransform.Weight == 1.0f) {
finalPosInterp = jointTransform.PositionInterp;
finalRotInterp = jointTransform.RotationInterp;
finalScaleInterp = jointTransform.ScaleInterp;
break;
} else {
finalPosInterp += jointTransform.PositionInterp * (jointTransform.Weight/totalWeight);
finalRotInterp *= glm::slerp(glm::quat(), jointTransform.RotationInterp, (jointTransform.Weight/totalWeight));
finalScaleInterp += jointTransform.ScaleInterp * (jointTransform.Weight/totalWeight);
}
}
boneMatrix = parentMatrix *(glm::translate(finalPosInterp) * glm::toMat4(finalRotInterp) * glm::scale(finalScaleInterp));
boneMatrices[bone->ID] = boneMatrix * bone->OffsetMatrix;
}
for (auto &child : bone->Children) {
AccumulateBoneTransforms(noRootMotion, animations, boneMatrices, child, boneMatrix);
}
}
void Skeleton::AccumulateBoneTransforms(bool noRootMotion, std::vector<AnimationData> animations, AnimationOffset animationOffset, std::map<int, glm::mat4>& boneMatrices, const Bone* bone, glm::mat4 parentMatrix)
{
glm::mat4 boneMatrix;
if (currentFrame.BoneProperties.find(bone->ID) != currentFrame.BoneProperties.end() || nextFrame.BoneProperties.find(bone->ID) != nextFrame.BoneProperties.end()) {
Animation::Keyframe::BoneProperty currentBoneProperty = currentFrame.BoneProperties.at(bone->ID);
Animation::Keyframe::BoneProperty nextBoneProperty = nextFrame.BoneProperties.at(bone->ID);
std::vector<JointFrameTransform> JointTransforms;
glm::vec3 positionInterp = currentBoneProperty.Position * (1.f - progress) + nextBoneProperty.Position * progress;
glm::quat rotationInterp = glm::slerp(currentBoneProperty.Rotation, nextBoneProperty.Rotation, progress);
glm::vec3 scaleInterp = currentBoneProperty.Scale * (1.f - progress) + nextBoneProperty.Scale * progress;
for (const AnimationData animationData : animations) {
const Animation* animation = animationData.animation;
const float time = animationData.time;
// Flag for no root motion
if (bone == RootBone && noRootMotion) {
positionInterp.x = 0;
positionInterp.z = 0;
}
JointFrameTransform jointTransform;
jointTransform.Weight = animationData.weight;;
if (animation->JointAnimations.find(bone->ID) != animation->JointAnimations.end()) {
std::vector<Animation::Keyframe> boneKeyFrames = animation->JointAnimations.at(bone->ID);
Animation::Keyframe currentFrame;
Animation::Keyframe nextFrame;
if (boneKeyFrames.size() > 1) { // 2+ keyframes for the current bone
for (int index = boneKeyFrames.size()-1; index >= 0; index--) { // find the bone keyframes that surrounds the current frame
if (time >= boneKeyFrames.at(index).Time) {
currentFrame = boneKeyFrames.at(index);
nextFrame = boneKeyFrames.at((index + 1) % boneKeyFrames.size());
break;
}
}
float progress;
if (nextFrame.Index == 0) {
nextFrame = currentFrame;
progress = (time - currentFrame.Time) / (animation->Duration - currentFrame.Time);
} else {
progress = (time - currentFrame.Time) / (nextFrame.Time - currentFrame.Time);
}
boneMatrix = parentMatrix * (glm::translate(positionInterp) * glm::toMat4(rotationInterp) * glm::scale(scaleInterp));
boneMatrices[bone->ID] = boneMatrix * bone->OffsetMatrix;
} else {
if (bone->Parent) {
boneMatrix = parentMatrix; // * glm::inverse(bone->OffsetMatrix);
if (progress > 1.0f || progress < 0.0f) {
progress = glm::clamp(progress, 0.0f, 1.0f);
}
Animation::Keyframe::BoneProperty currentBoneProperty = currentFrame.BoneProperties;
Animation::Keyframe::BoneProperty nextBoneProperty = nextFrame.BoneProperties;
jointTransform.PositionInterp = currentBoneProperty.Position * (1.f - progress) + nextBoneProperty.Position * progress;
jointTransform.RotationInterp = glm::slerp(currentBoneProperty.Rotation, nextBoneProperty.Rotation, progress);
jointTransform.ScaleInterp = currentBoneProperty.Scale * (1.f - progress) + nextBoneProperty.Scale * progress;
// Flag for no root motion
if (bone == RootBone && noRootMotion) {
jointTransform.PositionInterp.x = 0;
jointTransform.PositionInterp.z = 0;
}
JointTransforms.push_back(jointTransform);
} else { // 1 keyframes for the current bone
currentFrame = boneKeyFrames.at(0);
jointTransform.PositionInterp = currentFrame.BoneProperties.Position;
jointTransform.RotationInterp = currentFrame.BoneProperties.Rotation;
jointTransform.ScaleInterp = currentFrame.BoneProperties.Scale;
JointTransforms.push_back(jointTransform);
}
} else { // 0 keyframes for the current bone
}
boneMatrices[bone->ID] = boneMatrix; // * bone->OffsetMatrix;
}
for (auto &child : bone->Children) {
std::string name = child->Name;
AccumulateBoneTransforms(noRootMotion, currentFrame, nextFrame, progress, boneMatrices, child, boneMatrix);
}
}
glm::mat4 offset = GetOffsetTransform(bone, animationOffset);
if (JointTransforms.size() == 0) {
if (bone->Parent) {
if (offset != glm::mat4(1)) {
boneMatrix = parentMatrix * offset;// *((glm::inverse(bone->OffsetMatrix) * bone->Parent->OffsetMatrix));
} else {
boneMatrix = parentMatrix *((glm::inverse(bone->OffsetMatrix) * bone->Parent->OffsetMatrix));
}
boneMatrices[bone->ID] = boneMatrix * bone->OffsetMatrix;
} else {
boneMatrix = offset * glm::inverse(bone->OffsetMatrix);
boneMatrices[bone->ID] = parentMatrix;
}
} else {
glm::vec3 finalPosInterp;
glm::quat finalRotInterp;
glm::vec3 finalScaleInterp;
float totalWeight = 0;
for (JointFrameTransform jointTransform : JointTransforms) {
totalWeight += jointTransform.Weight;
}
for (JointFrameTransform jointTransform : JointTransforms) {
if (jointTransform.Weight == 1.0f) {
finalPosInterp = jointTransform.PositionInterp;
finalRotInterp = jointTransform.RotationInterp;
finalScaleInterp = jointTransform.ScaleInterp;
break;
} else {
finalPosInterp += jointTransform.PositionInterp * (jointTransform.Weight/totalWeight);
finalRotInterp *= glm::slerp(glm::quat(), jointTransform.RotationInterp, (jointTransform.Weight/totalWeight));
finalScaleInterp += jointTransform.ScaleInterp * (jointTransform.Weight/totalWeight);
}
}
if (offset != glm::mat4(1)) {
boneMatrix = parentMatrix * ((glm::translate(finalPosInterp) * glm::toMat4(finalRotInterp) * glm::scale(finalScaleInterp)) + offset);
} else {
boneMatrix = parentMatrix * (glm::translate(finalPosInterp) * glm::toMat4(finalRotInterp) * glm::scale(finalScaleInterp));
}
boneMatrices[bone->ID] = boneMatrix * bone->OffsetMatrix;
}
for (auto &child : bone->Children) {
AccumulateBoneTransforms(noRootMotion, animations, animationOffset, boneMatrices, child, boneMatrix);
}
}
glm::mat4 Skeleton::GetOffsetTransform(const Bone* bone, AnimationOffset animationOffset)
{
const Animation* animation = animationOffset.animation;
float time = animationOffset.time;
glm::vec3 position = glm::vec3(0);
glm::quat rotation = glm::quat();
glm::vec3 scale = glm::vec3(1);
if (animation->JointAnimations.find(bone->ID) != animation->JointAnimations.end()) {
std::vector<Animation::Keyframe> boneKeyFrames = animation->JointAnimations.at(bone->ID);
Animation::Keyframe currentFrame;
Animation::Keyframe nextFrame;
if (boneKeyFrames.size() > 1) { // 2+ keyframes for the current bone
for (int index = boneKeyFrames.size()-1; index >= 0; index--) { // find the bone keyframes that surrounds the current frame
if (time >= boneKeyFrames.at(index).Time) {
currentFrame = boneKeyFrames.at(index);
nextFrame = boneKeyFrames.at((index + 1) % boneKeyFrames.size());
break;
}
}
float progress;
if (nextFrame.Index == 0) {
nextFrame = currentFrame;
progress = (time - currentFrame.Time) / (animation->Duration - currentFrame.Time);
} else {
progress = (time - currentFrame.Time) / (nextFrame.Time - currentFrame.Time);
}
progress = glm::clamp(progress, 0.0f, 1.0f);
Animation::Keyframe::BoneProperty currentBoneProperty = currentFrame.BoneProperties;
Animation::Keyframe::BoneProperty nextBoneProperty = nextFrame.BoneProperties;
position = currentBoneProperty.Position * (1.f - progress) + nextBoneProperty.Position * progress;
rotation = glm::slerp(currentBoneProperty.Rotation, nextBoneProperty.Rotation, progress);
scale = currentBoneProperty.Scale * (1.f - progress) + nextBoneProperty.Scale * progress;
} else { // 1 keyframes for the current bone
currentFrame = boneKeyFrames.at(0);
position = currentFrame.BoneProperties.Position;
rotation = currentFrame.BoneProperties.Rotation;
scale = currentFrame.BoneProperties.Scale;
}
}
return (glm::translate(position) * glm::toMat4(rotation) * glm::scale(scale));
}
glm::mat4 Skeleton::GetBoneTransform(const Bone* bone, const Animation* animation, float time, glm::mat4 childMatrix)
{
glm::mat4 boneMatrix;
Animation::Keyframe currentFrame;
Animation::Keyframe nextFrame;
if (animation->JointAnimations.find(bone->ID) != animation->JointAnimations.end()) {
std::vector<Animation::Keyframe> boneKeyFrames = animation->JointAnimations.at(bone->ID);
if (boneKeyFrames.size() > 1) { // 2+ keyframes for the current bone
for (int index = boneKeyFrames.size()-1; index >= 0; index--) { // find the bone keyframes that surrounds the current frame
if (time >= boneKeyFrames.at(index).Time) {
currentFrame = boneKeyFrames.at(index);
nextFrame = boneKeyFrames.at((index + 1) % boneKeyFrames.size());
break;
}
}
float progress;
if (nextFrame.Index == 0) {
nextFrame = currentFrame;
progress = (time - currentFrame.Time) / (animation->Duration - currentFrame.Time);
} else {
progress = (time - currentFrame.Time) / (nextFrame.Time - currentFrame.Time);
}
if (progress > 1.0f || progress < 0.0f) {
LOG_INFO("Progress %f", progress);
progress = glm::clamp(progress, 0.0f, 1.0f);
}
Animation::Keyframe::BoneProperty currentBoneProperty = currentFrame.BoneProperties;
Animation::Keyframe::BoneProperty nextBoneProperty = nextFrame.BoneProperties;
glm::vec3 positionInterp = currentBoneProperty.Position * (1.f - progress) + nextBoneProperty.Position * progress;
glm::quat rotationInterp = glm::slerp(currentBoneProperty.Rotation, nextBoneProperty.Rotation, progress);
glm::vec3 scaleInterp = currentBoneProperty.Scale * (1.f - progress) + nextBoneProperty.Scale * progress;
boneMatrix = (glm::translate(positionInterp) * glm::toMat4(rotationInterp) * glm::scale(scaleInterp)) * childMatrix;
} else { // 1 keyframes for the current bone
currentFrame = boneKeyFrames.at(0);
boneMatrix = (glm::translate(currentFrame.BoneProperties.Position) * glm::toMat4(currentFrame.BoneProperties.Rotation) * glm::scale(currentFrame.BoneProperties.Scale)) * childMatrix;
}
} else { // 0 keyframes for the current bone
if (bone->Parent) {
boneMatrix = bone->Parent->OffsetMatrix * glm::inverse(bone->OffsetMatrix) * childMatrix;
} else {
boneMatrix = glm::inverse(bone->OffsetMatrix) * childMatrix;
}
}
if (bone->Parent) {
return GetBoneTransform(bone->Parent, animation, time, boneMatrix);
} else {
return boneMatrix;
}
}
glm::mat4 Skeleton::GetBoneTransform(bool noRootMotion, const Bone* bone, std::vector<AnimationData> animations, AnimationOffset animationOffset, glm::mat4 childMatrix)
{
glm::mat4 boneMatrix;
std::vector<JointFrameTransform> JointTransforms;
for (const AnimationData animationData : animations) {
const Animation* animation = animationData.animation;
const float time = animationData.time;
JointFrameTransform jointTransform;
jointTransform.Weight = animationData.weight;;
if (animation->JointAnimations.find(bone->ID) != animation->JointAnimations.end()) {
std::vector<Animation::Keyframe> boneKeyFrames = animation->JointAnimations.at(bone->ID);
Animation::Keyframe currentFrame;
Animation::Keyframe nextFrame;
if (boneKeyFrames.size() > 1) { // 2+ keyframes for the current bone
for (int index = boneKeyFrames.size()-1; index >= 0; index--) { // find the bone keyframes that surrounds the current frame
if (time >= boneKeyFrames.at(index).Time) {
currentFrame = boneKeyFrames.at(index);
nextFrame = boneKeyFrames.at((index + 1) % boneKeyFrames.size());
break;
}
}
float progress;
if (nextFrame.Index == 0) {
nextFrame = currentFrame;
progress = (time - currentFrame.Time) / (animation->Duration - currentFrame.Time);
} else {
progress = (time - currentFrame.Time) / (nextFrame.Time - currentFrame.Time);
}
if (progress > 1.0f || progress < 0.0f) {
progress = glm::clamp(progress, 0.0f, 1.0f);
}
Animation::Keyframe::BoneProperty currentBoneProperty = currentFrame.BoneProperties;
Animation::Keyframe::BoneProperty nextBoneProperty = nextFrame.BoneProperties;
jointTransform.PositionInterp = currentBoneProperty.Position * (1.f - progress) + nextBoneProperty.Position * progress;
jointTransform.RotationInterp = glm::slerp(currentBoneProperty.Rotation, nextBoneProperty.Rotation, progress);
jointTransform.ScaleInterp = currentBoneProperty.Scale * (1.f - progress) + nextBoneProperty.Scale * progress;
// Flag for no root motion
if (bone == RootBone && noRootMotion) {
jointTransform.PositionInterp.x = 0;
jointTransform.PositionInterp.z = 0;
}
JointTransforms.push_back(jointTransform);
} else { // 1 keyframes for the current bone
currentFrame = boneKeyFrames.at(0);
jointTransform.PositionInterp = currentFrame.BoneProperties.Position;
jointTransform.RotationInterp = currentFrame.BoneProperties.Rotation;
jointTransform.ScaleInterp = currentFrame.BoneProperties.Scale;
JointTransforms.push_back(jointTransform);
}
} else { // 0 keyframes for the current bone
}
}
glm::mat4 offset = GetOffsetTransform(bone, animationOffset);
if (JointTransforms.size() == 0) {
if (bone->Parent) {
if (offset != glm::mat4(1)) {
boneMatrix = offset * childMatrix;// *((glm::inverse(bone->OffsetMatrix) * bone->Parent->OffsetMatrix));
} else {
boneMatrix = ((glm::inverse(bone->OffsetMatrix) * bone->Parent->OffsetMatrix)) * childMatrix;
}
} else {
boneMatrix = offset * glm::inverse(bone->OffsetMatrix);
}
} else {
glm::vec3 finalPosInterp;
glm::quat finalRotInterp;
glm::vec3 finalScaleInterp;
float totalWeight = 0;
for (JointFrameTransform jointTransform : JointTransforms) {
totalWeight += jointTransform.Weight;
}
for (JointFrameTransform jointTransform : JointTransforms) {
if (jointTransform.Weight == 1.0f) {
finalPosInterp = jointTransform.PositionInterp;
finalRotInterp = jointTransform.RotationInterp;
finalScaleInterp = jointTransform.ScaleInterp;
break;
} else {
finalPosInterp += jointTransform.PositionInterp * (jointTransform.Weight/totalWeight);
finalRotInterp *= glm::slerp(glm::quat(), jointTransform.RotationInterp, (jointTransform.Weight/totalWeight));
finalScaleInterp += jointTransform.ScaleInterp * (jointTransform.Weight/totalWeight);
}
}
if (offset != glm::mat4(1)) {
boneMatrix = ((glm::translate(finalPosInterp) * glm::toMat4(finalRotInterp) * glm::scale(finalScaleInterp)) + offset) * childMatrix;
} else {
boneMatrix = (glm::translate(finalPosInterp) * glm::toMat4(finalRotInterp) * glm::scale(finalScaleInterp)) * childMatrix;
}
}
if (bone->Parent != nullptr) {
return GetBoneTransform(noRootMotion, bone->Parent, animations, animationOffset, boneMatrix);
} else {
return boneMatrix;
}
}
glm::mat4 Skeleton::GetBoneTransform(bool noRootMotion, const Bone* bone, std::vector<AnimationData> animations, glm::mat4 childMatrix)
{
glm::mat4 boneMatrix;
std::vector<JointFrameTransform> JointTransforms;
for (const AnimationData animationData : animations) {
const Animation* animation = animationData.animation;
const float time = animationData.time;
JointFrameTransform jointTransform;
jointTransform.Weight = animationData.weight;;
if (animation->JointAnimations.find(bone->ID) != animation->JointAnimations.end()) {
std::vector<Animation::Keyframe> boneKeyFrames = animation->JointAnimations.at(bone->ID);
Animation::Keyframe currentFrame;
Animation::Keyframe nextFrame;
if (boneKeyFrames.size() > 1) { // 2+ keyframes for the current bone
for (int index = boneKeyFrames.size()-1; index >= 0; index--) { // find the bone keyframes that surrounds the current frame
if (time >= boneKeyFrames.at(index).Time) {
currentFrame = boneKeyFrames.at(index);
nextFrame = boneKeyFrames.at((index + 1) % boneKeyFrames.size());
break;
}
}
float progress;
if (nextFrame.Index == 0) {
nextFrame = currentFrame;
progress = (time - currentFrame.Time) / (animation->Duration - currentFrame.Time);
} else {
progress = (time - currentFrame.Time) / (nextFrame.Time - currentFrame.Time);
}
if (progress > 1.0f || progress < 0.0f) {
progress = glm::clamp(progress, 0.0f, 1.0f);
}
Animation::Keyframe::BoneProperty currentBoneProperty = currentFrame.BoneProperties;
Animation::Keyframe::BoneProperty nextBoneProperty = nextFrame.BoneProperties;
jointTransform.PositionInterp = currentBoneProperty.Position * (1.f - progress) + nextBoneProperty.Position * progress;
jointTransform.RotationInterp = glm::slerp(currentBoneProperty.Rotation, nextBoneProperty.Rotation, progress);
jointTransform.ScaleInterp = currentBoneProperty.Scale * (1.f - progress) + nextBoneProperty.Scale * progress;
// Flag for no root motion
if (bone == RootBone && noRootMotion) {
jointTransform.PositionInterp.x = 0;
jointTransform.PositionInterp.z = 0;
}
JointTransforms.push_back(jointTransform);
} else { // 1 keyframes for the current bone
currentFrame = boneKeyFrames.at(0);
jointTransform.PositionInterp = currentFrame.BoneProperties.Position;
jointTransform.RotationInterp = currentFrame.BoneProperties.Rotation;
jointTransform.ScaleInterp = currentFrame.BoneProperties.Scale;
JointTransforms.push_back(jointTransform);
}
} else { // 0 keyframes for the current bone
}
}
if (JointTransforms.size() <= 0) {
if (bone->Parent) {
boneMatrix = glm::inverse(bone->OffsetMatrix) * bone->Parent->OffsetMatrix * childMatrix;
} else {
boneMatrix = glm::inverse(bone->OffsetMatrix) * childMatrix;
}
} else if (JointTransforms.size() == 1) {
boneMatrix = (glm::translate(JointTransforms.at(0).PositionInterp) * glm::toMat4(JointTransforms.at(0).RotationInterp) * glm::scale(JointTransforms.at(0).ScaleInterp)) * childMatrix;
} else {
glm::vec3 finalPosInterp;
glm::quat finalRotInterp;
glm::vec3 finalScaleInterp;
float totalWeight = 0;
for (JointFrameTransform jointTransform : JointTransforms) {
totalWeight += jointTransform.Weight;
}
for (JointFrameTransform jointTransform : JointTransforms) {
if (jointTransform.Weight == 1.0f) {
finalPosInterp = jointTransform.PositionInterp;
finalRotInterp = jointTransform.RotationInterp;
finalScaleInterp = jointTransform.ScaleInterp;
break;
} else {
finalPosInterp += jointTransform.PositionInterp * (jointTransform.Weight/totalWeight);
finalRotInterp *= glm::slerp(glm::quat(), jointTransform.RotationInterp, (jointTransform.Weight/totalWeight));
finalScaleInterp += jointTransform.ScaleInterp * (jointTransform.Weight/totalWeight);
}
}
boneMatrix = (glm::translate(finalPosInterp) * glm::toMat4(finalRotInterp) * glm::scale(finalScaleInterp)) * childMatrix;
}
if (bone->Parent != nullptr) {
return GetBoneTransform(noRootMotion, bone->Parent, animations, boneMatrix);
} else {
return boneMatrix;
}
}
int Skeleton::GetBoneID(std::string name)
@@ -134,11 +719,13 @@ void Skeleton::PrintSkeleton(const Bone* bone, int depthCount)
int Skeleton::GetKeyframe(const Animation& animation, double time)
{
/*
if (time < 0) {
time = 0;
}
if (time >= animation.Duration) {
return animation.Keyframes.size() - 1;
return animation..size() - 1;
}
for (int keyframe = 0; keyframe < animation.Keyframes.size(); ++keyframe) {
@@ -146,6 +733,8 @@ int Skeleton::GetKeyframe(const Animation& animation, double time)
return (keyframe - 1) % animation.Keyframes.size();
}
}
*/
return 0;
}
+1 -1
View File
@@ -35,7 +35,7 @@ void TextPass::Draw(RenderScene& scene, FrameBuffer& frameBuffer)
{
GLERROR("Derp1");
TextPassState* state = new TextPassState(frameBuffer.GetHandle());
for (auto &job : scene.TextJobs) {
for (auto &job : scene.Jobs.Text) {
auto textJob = std::dynamic_pointer_cast<TextJob>(job);
if (textJob) {
+20 -13
View File
@@ -2,21 +2,26 @@
Texture::Texture(std::string path)
{
PNG image(path);
PNG* img = ResourceManager::Load<PNG, true>(path); //TODO: Make this threaded. Catch exeptions in all other load places.
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;
}
}
//PNG image(path);
this->Width = image.Width;
this->Height = image.Height;
//if (img->Width == 0 && img->Height == 0 || img->Format == Image::ImageFormat::Unknown) {
// //image = PNG("Textures/Core/ErrorTexture.png");
// //return; // Temporary fix to remove crash
// if (img->Width == 0 && img->Height == 0 || img->Format == Image::ImageFormat::Unknown) {
// LOG_ERROR("Couldn't even load the error texture. This is a dark day indeed.");
// return;
// }
//}
this->Width = img->Width;
this->Height = img->Height;
this->Data = img->Data;
GLint format;
switch (image.Format) {
switch (img->Format) {
case Image::ImageFormat::RGB:
format = GL_RGB;
break;
@@ -24,15 +29,17 @@ Texture::Texture(std::string path)
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);
glTexImage2D(GL_TEXTURE_2D, 0, format, img->Width, img->Height, 0, format, GL_UNSIGNED_BYTE, img->Data);
glGenerateMipmap(GL_TEXTURE_2D);
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_MIN_FILTER, GL_LINEAR_MIPMAP_LINEAR);
glTexParameterf(GL_TEXTURE_2D, GL_TEXTURE_MAG_FILTER, GL_LINEAR);
GLERROR("Texture load");
}
@@ -1,2 +1,19 @@
#include "Rendering/Util/CommonFunctions.h"
Texture* CommonFunctions::LoadTexture(std::string path, bool threaded)
{
Texture* img;
try {
if(threaded) {
img = ResourceManager::Load<Texture, true>(path);
} else {
img = ResourceManager::Load<Texture, false>(path);
}
} catch (const Resource::StillLoadingException&) {
img = ResourceManager::Load<Texture>("Textures/Core/ErrorTexture.png");
} catch (const std::exception&) {
img = nullptr;
}
return img;
}