Compare commits

..

4 Commits

Author SHA1 Message Date
William Moberg 8a8c375d3a Merge remote-tracking branch 'origin/master' into BoxModelCollision 2016-03-10 09:57:33 +01:00
William Moberg 8936b3d6c3 Probably fixed all the jittering, won't need the jitter guard anymore. 2016-03-09 19:45:26 +01:00
William Moberg 8a3564ad49 Merge remote-tracking branch 'origin/master' into BoxModelCollision 2016-03-09 18:03:39 +01:00
William Moberg 9581e9ac84 Don't set the player to previous position when uncrouching. 2016-03-09 17:51:26 +01:00
16 changed files with 162 additions and 233 deletions
@@ -19,6 +19,7 @@ public:
virtual const glm::vec3 Rotation() const { return m_Rotation; }
virtual bool Jumping() const { return m_Jumping; }
virtual bool Crouching() const { return m_Crouching; }
virtual bool CrouchingLastFrame() const { return m_CrouchingLastFrame; }
virtual bool DoubleJumping() const { return m_DoubleJumping; }
virtual void SetDoubleJumping(bool isDoubleJumping) {
m_DoubleJumping = isDoubleJumping;
@@ -44,6 +45,7 @@ protected:
bool m_Jumping = false;
bool m_DoubleJumping = false;
bool m_Crouching = false;
bool m_CrouchingLastFrame = false;
//assault dash membervariables - needed to calculate the doubletap- and dashlogic
double m_AssaultDashDoubleTapDeltaTime = 0.0;
//i will let m_AssaultDashDoubleTapSensitivityTimer stay hardcoded, its not really a gamevariable (more an inputvariable),
@@ -82,6 +84,7 @@ void FirstPersonInputController<EventContext>::Reset()
{
m_Rotation = glm::vec3(0.f, 0.f, 0.f);
m_Jumping = false;
m_CrouchingLastFrame = m_Crouching;
}
template <typename EventContext>
@@ -27,8 +27,6 @@ struct ExplosionEffectJob : ModelJob
Velocity = (glm::vec2)explosionEffectComponent["Velocity"];
ColorByDistance = (bool)explosionEffectComponent["ColorByDistance"];
ExponentialAccelaration = (bool)explosionEffectComponent["ExponentialAccelaration"];
Reverse = (bool)explosionEffectComponent["Reverse"];
ColorDistanceScalar = (double)explosionEffectComponent["ColorDistanceScalar"];
};
glm::vec3 ExplosionOrigin;
@@ -40,14 +38,12 @@ struct ExplosionEffectJob : ModelJob
glm::vec4 EndColor;
bool Randomness = false;
double RandomnessScalar = 1.f;
float RandomnessScalar = 1.f;
glm::vec2 Velocity;
bool ColorByDistance = false;
//bool ReverseAnimation = false;
//bool Wireframe = false;
bool ExponentialAccelaration = false;
bool Reverse = false;
double ColorDistanceScalar = 1.f;
std::array<float, 50> RandomNumbers = {
0.3257552917701f,
+1 -2
View File
@@ -63,8 +63,7 @@ private:
GLuint m_DepthMap;
FrameBuffer m_DepthBuffer;
ShaderProgram* m_ShadowProgram;
ShaderProgram* m_ShadowProgramSkinned;
ShaderProgram* m_ShadowProgram;
std::array<glm::mat4, MAX_SPLITS> m_LightProjection;
std::array<glm::mat4, MAX_SPLITS> m_LightView;
@@ -3,7 +3,6 @@
#include "Common.h"
#include "Core/System.h"
#include "Engine/GLM.h"
class ExplosionEffectSystem : public PureSystem
{
@@ -1,21 +1,19 @@
<?xml version="1.0" encoding="UTF-8" standalone="no" ?>
<ExplosionEffect xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:noNamespaceSchemaLocation="ExplosionEffect.xsd">
<ExplosionOrigin X="0" Y="0" Z="0"/>
<TimeSinceDeath>0.0</TimeSinceDeath>
<ExplosionDuration>2.0</ExplosionDuration>
<TimeSinceDeath>0</TimeSinceDeath>
<ExplosionDuration>2</ExplosionDuration>
<Speed>1</Speed>
<Delay>0</Delay>
<!--<Gravity>1</Gravity>-->
<!--<GravityForce>1</GravityForce>-->
<!--<ObjectRadius>2</ObjectRadius>-->
<EndColor R="0" G="0" B="0" A="0"/>
<Randomness>false</Randomness>
<RandomnessScalar>1.0</RandomnessScalar>
<Randomness>0</Randomness>
<RandomnessScalar>1</RandomnessScalar>
<Velocity X="2" Y="2"/>
<ColorByDistance>false</ColorByDistance>
<ColorByDistance>0</ColorByDistance>
<!--<ReverseAnimation>0</ReverseAnimation>-->
<!--<Wireframe>0</Wireframe>-->
<ExponentialAccelaration>false</ExponentialAccelaration>
<Pulsate>false</Pulsate>
<Reverse>false</Reverse>
<ColorDistanceScalar>1.0</ColorDistanceScalar>
<ExponentialAccelaration>0</ExponentialAccelaration>
</ExplosionEffect>
@@ -44,21 +44,15 @@
<xs:element name="ColorByDistance" type="t:bool" minOccurs="0">
<xs:annotation><xs:documentation>Change the color by its moved distance instead of by its time</xs:documentation></xs:annotation>
</xs:element>
<!--<xs:element name="ReverseAnimation" type="t:bool" minOccurs="0">
<xs:annotation><xs:documentation>Implosions are cooler</xs:documentation></xs:annotation>
</xs:element>-->
<!--<xs:element name="Wireframe" type="t:bool" minOccurs="0">
<xs:annotation><xs:documentation>Enable/disable wireframe</xs:documentation></xs:annotation>
</xs:element>-->
<xs:element name="ExponentialAccelaration" type="t:bool" minOccurs="0">
<xs:annotation><xs:documentation>Linear/Exponential accelaration</xs:documentation></xs:annotation>
</xs:element>
<xs:element name="Pulsate" type="t:bool" minOccurs="0">
<xs:annotation><xs:documentation>Pulsate the effect</xs:documentation></xs:annotation>
</xs:element>
<xs:element name="Reverse" type="t:bool" minOccurs="0">
<xs:annotation><xs:documentation>Reverse the effect</xs:documentation></xs:annotation>
</xs:element>
<xs:element name="ColorDistanceScalar" type="t:double" minOccurs="0">
<xs:annotation><xs:documentation>Scale the distance of the color change</xs:documentation></xs:annotation>
</xs:element>
</xs:all>
</xs:complexType>
</xs:element>
+125 -97
View File
@@ -15,11 +15,6 @@ uniform float RandomnessScalar;
uniform vec2 Velocity;
uniform bool ColorByDistance;
uniform bool ExponentialAccelaration;
uniform bool Reverse;
uniform float ColorDistanceScalar;
//uniform bool Gravity;
//uniform bool Rotation;
//uniform bool MaxRadius;
in VertexData{
vec3 Position;
@@ -46,136 +41,169 @@ out VertexData{
layout(triangles) in;
layout(triangle_strip, max_vertices = 3) out;
float EqualTo(float x, float y) {
return 1.0 - abs(sign(x - y));
}
float NotEqualTo(float x, float y) {
return abs(sign(x - y));
}
float GreaterThan(float x, float y) {
return max(sign(x - y), 0.0);
}
float LessThan(float x, float y) {
return max(sign(y - x), 0.0);
}
float GreaterEqualTo(float x, float y) {
return 1.0 - LessThan(x, y);
}
float LessEqualTo(float x, float y) {
return 1.0 - GreaterThan(x, y);
}
// returns a "random" number based on input parameter
float GetRandomNumber(int polygon_index)
{
return RandomNumbers[int(mod(polygon_index, 50))];
int randomIndex = int(mod(polygon_index, 50));
return RandomNumbers[randomIndex];
}
vec3 CalcCenterOfTriangle(vec3 vertex0, vec3 vertex1, vec3 vertex2)
float randomNumber = 0.0;
float randomDistance = 0.0;
void main()
{
// calculate middle of vectors
vec3 dir1 = normalize(vertex1 - vertex0);
vec3 dir2 = normalize(vertex2 - vertex0);
vec3 v1 = Input[1].Position - Input[0].Position;
vec3 v2 = Input[2].Position - Input[0].Position;
vec3 v3 = Input[2].Position - (v1 / 2);
vec3 v4 = Input[1].Position - (v2 / 2);
vec3 vecA = vertex2 - vertex1; //o2 - o1
// calculate intersection
// normalize direction
vec3 dir1 = normalize(v1);
vec3 dir2 = normalize(v2);
vec3 vecA = Input[2].Position - Input[1].Position; //o2 - o1
vec3 vecB = cross(dir1, dir2);
mat3 matrisA = mat3(vecA, dir2, vecB);
float lengthA = length(vecB);
lengthA = lengthA * lengthA;
float s = determinant(matrisA) / lengthA;
// center position of triangle
return vertex1 + (s * dir1);
}
void PassThingsThrough(int index)
{
// pass through vertex data
Output.Normal = Input[index].Normal;
Output.Position = Input[index].Position;
Output.TextureCoordinate = Input[index].TextureCoordinate;
Output.Tangent = Input[index].Tangent;
Output.BiTangent = Input[index].BiTangent;
Output.ExplosionColor = EndColor;
}
void main()
{
vec3 centerOfTriangle = CalcCenterOfTriangle(Input[0].Position, Input[1].Position, Input[2].Position);
vec3 centerOfTriangle = Input[1].Position + (s * dir1);
// center position of triangle to origin vector
vec3 origin2TriangleCenterVector = centerOfTriangle - ExplosionOrigin;
vec3 normalizedOrigin2TriangleCenterVector = normalize(origin2TriangleCenterVector);
// distance between origin and the center of the current triangle
float origin2TriangleCenterDistance = length(origin2TriangleCenterVector);
// time percentage until end of explosion (0.0-1.0)
float timePercetage = TimeSinceDeath / ExplosionDuration;
// get a random number if randomness is enabled, otherwise the random distance will be zero and won't affect the other algorithms
float randomDistance = float(Randomness) * GetRandomNumber(gl_PrimitiveIDIn) * RandomnessScalar;
// get a random number if randomness is enabled, otherwise the random number will be zero and won't affect the other algorithms
if (Randomness == true)
{
randomDistance = GetRandomNumber(gl_PrimitiveIDIn) * RandomnessScalar;
}
vec2 randomVelocity = Velocity * (randomDistance + 1.0);
// accelaration to use on current frame. is a interpolation between start and end value
float currentVelocity = mix(randomVelocity.x, randomVelocity.y, timePercetage);
// if the accelaration should be exponential
currentVelocity = currentVelocity * max(currentVelocity * float(ExponentialAccelaration), 1.0);
if (ExponentialAccelaration == true)
{
currentVelocity = pow(currentVelocity, 2) / 2.0;
}
// the distance the blast has moved since the beginning, i.e. its radius
float blastWave = TimeSinceDeath * currentVelocity;
// distance between origin and the center of the current triangle
float origin2TriangleCenterDistance = length(origin2TriangleCenterVector);
// the distance from origin to the triangle center with eventual randomness added
float origin2TriangleCenterDistanceWithRandomness = origin2TriangleCenterDistance + randomDistance;
vec3 triangleCenter2ExplosionRadius = (normalizedOrigin2TriangleCenterVector * blastWave) - (normalizedOrigin2TriangleCenterVector * origin2TriangleCenterDistanceWithRandomness);
float fullDistanceWithRandomness = origin2TriangleCenterDistance + randomDistance;
// if the triangle is inside the blast's radius...
float isInsideBlastRadius = LessEqualTo(origin2TriangleCenterDistanceWithRandomness, blastWave);
// vector from the triangle center to the explosion's shockwave
vec3 triangleCenter2ExplosionRadius = (normalizedOrigin2TriangleCenterVector * (TimeSinceDeath * currentVelocity)) - (normalizedOrigin2TriangleCenterVector * fullDistanceWithRandomness);
// calculate the max distance (s) the triangle will move
float accelaration = (randomVelocity.y - randomVelocity.x) / ExplosionDuration;
float maxDistance = (randomVelocity.x * ExplosionDuration) + (0.5 * accelaration * ExplosionDuration * ExplosionDuration);
// if explosion color should be affected by distance instead of time...
if (ColorByDistance == true)
// if the triangle is inside the blast radius...
if (fullDistanceWithRandomness <= (TimeSinceDeath * currentVelocity))
{
Output.ExplosionPercentageElapsed = (length(triangleCenter2ExplosionRadius) / maxDistance) * isInsideBlastRadius * ColorDistanceScalar;
float maxRadius = max(TimeSinceDeath * currentVelocity, (ExplosionDuration * currentVelocity));
float a = (randomVelocity.y - randomVelocity.x) / ExplosionDuration;
//float t = sqrt((2 * origin2TriangleCenterDistance) / a);
// if explosion color should be affected by distance instead of time...
if (ColorByDistance == true)
{
// calculate the max distance (s) the triangle will move
float s = (randomVelocity.x * ExplosionDuration) + (0.5 * a * pow(ExplosionDuration, 2));
float te = (length(triangleCenter2ExplosionRadius) / s);
Output.ExplosionColor = EndColor;
Output.ExplosionPercentageElapsed = te;
}
else
{
Output.ExplosionColor = EndColor;
Output.ExplosionPercentageElapsed = timePercetage;
}
// for every vertex on the triangle...
for (int i = 0; i < gl_in.length(); i++)
{
// move the triangle to the blast radius
vec3 ExplodedPosition = Input[i].Position + triangleCenter2ExplosionRadius;
// pass through vertex data
Output.Normal = Input[i].Normal;
Output.Position = Input[i].Position;
Output.TextureCoordinate = Input[i].TextureCoordinate;
Output.Tangent = Input[i].Tangent;
Output.BiTangent = Input[i].BiTangent;
for (int j = 0; j < MAX_SPLITS; j++)
{
Output.PositionLightSpace[j] = Input[i].PositionLightSpace[j];
}
// convert to model space for the gravity to always be in -y
vec4 ExplodedPositionInModelSpace = M * vec4(ExplodedPosition, 1.0);
// if there is gravity, apply it
//if (Gravity == true)
//{
// // ---DO THIS----> //ExplodedPositionInModelSpace.y = ExplodedPositionInModelSpace.y - TimeSinceHit;
//
// ExplodedPositionInModelSpace.y = ExplodedPositionInModelSpace.y - pow(TimeSinceDeath, 2);
//}
// convert to screen space
gl_Position = P*V * ExplodedPositionInModelSpace;
EmitVertex();
}
}
else
{
Output.ExplosionPercentageElapsed = timePercetage;
// if explosion color should be affected by distance instead of time...
if (ColorByDistance == true)
{
Output.ExplosionColor = EndColor;
Output.ExplosionPercentageElapsed = 0.0;
}
else
{
Output.ExplosionColor = EndColor;
Output.ExplosionPercentageElapsed = timePercetage;
}
// for every vertex on the triangle...
for(int i = 0; i < gl_in.length(); i++)
{
// pass through vertex data
Output.Normal = Input[i].Normal;
Output.Position = Input[i].Position;
Output.TextureCoordinate = Input[i].TextureCoordinate;
Output.Tangent = Input[i].Tangent;
Output.BiTangent = Input[i].BiTangent;
for (int j = 0; j < MAX_SPLITS; j++)
{
Output.PositionLightSpace[j] = Input[i].PositionLightSpace[j];
}
// no change in position, pass through vertex
gl_Position = gl_in[i].gl_Position;
EmitVertex();
}
}
vec3 ExplodedPosition;
for (int i = 0; i < gl_in.length(); i++)
{
// move the triangle to the blast radius
ExplodedPosition = Input[i].Position + (triangleCenter2ExplosionRadius * isInsideBlastRadius);
// pass through vertex data
PassThingsThrough(i);
for (int j = 0; j < MAX_SPLITS; j++)
{
Output.PositionLightSpace[j] = Input[i].PositionLightSpace[j];
}
for (int j = 0; j < MAX_SPLITS; j++)
{
Output.PositionLightSpace[j] = Input[i].PositionLightSpace[j];
}
// convert to window space
gl_Position = P * V * M * vec4(ExplodedPosition, 1.0);
EmitVertex();
}
}
//EndPrimitive();
}
-29
View File
@@ -1,29 +0,0 @@
#version 430
uniform mat4 M;
uniform mat4 V;
uniform mat4 P;
uniform mat4 Bones[100];
layout (location = 0) in vec3 Position;
layout (location = 4) in vec2 TextureCoords;
layout(location = 5) in vec4 BoneIndices;
layout(location = 6) in vec4 BoneWeights;
out VertexData{
vec2 TextureCoordinate;
}Output;
void main()
{
mat4 boneTransform = mat4(1);
if(BoneWeights[0] > 0.0f){
boneTransform = BoneWeights[0] * Bones[int(BoneIndices[0])]
+ BoneWeights[1] * Bones[int(BoneIndices[1])]
+ BoneWeights[2] * Bones[int(BoneIndices[2])]
+ BoneWeights[3] * Bones[int(BoneIndices[3])];
}
gl_Position = P * V * M * boneTransform * vec4(Position, 1.0);
Output.TextureCoordinate = TextureCoords;
}
+1
View File
@@ -470,6 +470,7 @@ bool AABBvsTriangle(const AABB& box,
}
glm::vec3 cornerResolution = (1+t) * diagonal;
cornerResolution = glm::dot(cornerResolution, triNormal) * triNormal;
//Overwrite the smallest resolution if cornerResolution is smaller.
float lenSq = glm::length2(cornerResolution);
if (lenSq < resolveShortest.DistanceSq) {
+1 -2
View File
@@ -88,12 +88,11 @@ void CollisionSystem::UpdateComponent(EntityWrapper& entity, ComponentWrapper& c
glm::mat4 modelMatrix = Transform::ModelMatrix(boxB.Entity);
glm::vec3 inOutVelocity = (glm::vec3)cPhysics["Velocity"];
bool notMovingxz = glm::all(glm::lessThan(glm::abs(glm::vec2(inOutVelocity.x, inOutVelocity.z)), glm::vec2(0.01f))) && prevPosIt != m_PrevPositions.end();
bool isOnGround = (bool)cPhysics["IsOnGround"];
float verticalStepHeight = (float)(double)cPhysics["VerticalStepHeight"];
if (Collision::AABBvsTriangles(boxA, model->Vertices(), model->m_Indices, modelMatrix, inOutVelocity, verticalStepHeight, isOnGround, resolutionVector)) {
//Move the position to previous position if it is not moving in the xz-plane, else resolve with the resolution vector.
(glm::vec3&)cTransform["Position"] += notMovingxz ? prevPosIt->second - boxA.Origin() : resolutionVector;
(glm::vec3&)cTransform["Position"] += resolutionVector;
boxA = *Collision::EntityAbsoluteAABB(entity);
cPhysics["Velocity"] = inOutVelocity;
if (isOnGround) {
+3 -3
View File
@@ -127,12 +127,12 @@ void AnimationSystem::UpdateAnimations(double dt)
void AnimationSystem::UpdateWeights(double dt)
{
for (auto it = m_AutoBlendQueues.begin(); it != m_AutoBlendQueues.end(); ) {
/* LOG_INFO("%s", it->first.Name().c_str());
it->second.PrintQueue();*/
LOG_INFO("%s", it->first.Name().c_str());
it->second.PrintQueue();
if(it->second.HasActiveBlendJob()) {
AutoBlendQueue::AutoBlendJob& blendJob = it->second.GetActiveBlendJob();
//LOG_INFO("%s", blendJob.RootNode.Name().c_str());
LOG_INFO("%s", blendJob.RootNode.Name().c_str());
std::shared_ptr<BlendTree> blendTree = it->second.GetBlendTree();
if (blendTree != nullptr) {
if (blendJob.Duration != 0.0) {
+1 -10
View File
@@ -1319,12 +1319,7 @@ void DrawFinalPass::BindExplosionUniforms(GLuint shaderHandle, std::shared_ptr<E
glUniform3fv(glGetUniformLocation(shaderHandle, "ExplosionOrigin"), 1, glm::value_ptr(job->ExplosionOrigin));
GLERROR("Bind 6 uniform");
if (job->Reverse == false) {
glUniform1f(glGetUniformLocation(shaderHandle, "TimeSinceDeath"), job->TimeSinceDeath);
}
else {
glUniform1f(glGetUniformLocation(shaderHandle, "TimeSinceDeath"), (job->ExplosionDuration - job->TimeSinceDeath));
}
glUniform1f(glGetUniformLocation(shaderHandle, "TimeSinceDeath"), job->TimeSinceDeath);
GLERROR("Bind 7 uniform");
glUniform1f(glGetUniformLocation(shaderHandle, "ExplosionDuration"), job->ExplosionDuration);
GLERROR("Bind 8 uniform");
@@ -1342,10 +1337,6 @@ void DrawFinalPass::BindExplosionUniforms(GLuint shaderHandle, std::shared_ptr<E
GLERROR("Bind 14 uniform");
glUniform1i(glGetUniformLocation(shaderHandle, "ExponentialAccelaration"), job->ExponentialAccelaration);
GLERROR("Bind 15 uniform");
glUniform1i(glGetUniformLocation(shaderHandle, "Reverse"), job->Reverse);
GLERROR("Bind 15-2 uniform");
glUniform1f(glGetUniformLocation(shaderHandle, "ColorDistanceScalar"), job->ColorDistanceScalar);
GLERROR("Bind 15-3 uniform");
glUniform4fv(glGetUniformLocation(shaderHandle, "Color"), 1, glm::value_ptr(job->Color));
GLERROR("Bind 16 uniform");
+1 -1
View File
@@ -219,7 +219,7 @@ void PickingPass::Draw(RenderScene& scene)
m_PickingSkinnedProgram->Bind();
lastShader = m_PickingSkinnedProgram->GetHandle();
}
glUniformMatrix4fv(glGetUniformLocation(shaderSkinnedHandle, "PVM"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix() * scene.Camera->ViewMatrix() * modelJob->Matrix));
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "PVM"), 1, GL_FALSE, glm::value_ptr(scene.Camera->ProjectionMatrix() * scene.Camera->ViewMatrix() * modelJob->Matrix));
glUniform2fv(glGetUniformLocation(shaderSkinnedHandle, "PickingColor"), 1, glm::value_ptr(glm::vec2(pickColor[0], pickColor[1])));
std::vector<glm::mat4> frameBones;
+3 -55
View File
@@ -156,12 +156,7 @@ void ShadowPass::InitializeShaderPrograms()
m_ShadowProgram->BindFragDataLocation(0, "ShadowMap");
m_ShadowProgram->Link();
m_ShadowProgramSkinned = ResourceManager::Load<ShaderProgram>("#ShadowProgramSkinned");
m_ShadowProgramSkinned->AddShader(std::shared_ptr<Shader>(new VertexShader("Shaders/ShadowSkinned.vert.glsl")));
m_ShadowProgramSkinned->AddShader(std::shared_ptr<Shader>(new FragmentShader("Shaders/Shadow.frag.glsl")));
m_ShadowProgramSkinned->Compile();
m_ShadowProgramSkinned->BindFragDataLocation(0, "ShadowMap");
m_ShadowProgramSkinned->Link();
}
void ShadowPass::ClearBuffer()
@@ -217,7 +212,8 @@ void ShadowPass::Draw(RenderScene & scene)
ShadowPassState* state = new ShadowPassState(m_DepthBuffer.GetHandle());
m_ShadowProgram->Bind();
GLuint shaderHandle = m_ShadowProgram->GetHandle();
glViewport(0, 0, m_ResolutionSizeWidth, m_ResolutionSizeHeight);
for (int i = 0; i < m_CurrentNrOfSplits; i++) {
@@ -225,11 +221,7 @@ void ShadowPass::Draw(RenderScene & scene)
glFramebufferTextureLayer(GL_FRAMEBUFFER, GL_DEPTH_ATTACHMENT, m_DepthMap, 0, i);
GLuint shaderHandle;
for (auto &job : scene.Jobs.DirectionalLight) {
auto directionalLightJob = std::dynamic_pointer_cast<DirectionalLightJob>(job);
if (directionalLightJob) {
@@ -240,19 +232,9 @@ void ShadowPass::Draw(RenderScene & scene)
//RadiusToLightspace(m_shadowFrusta[i]);
m_LightProjection[i] = glm::ortho(m_shadowFrusta[i].LRBT[LEFT], m_shadowFrusta[i].LRBT[RIGHT], m_shadowFrusta[i].LRBT[BOTTOM], m_shadowFrusta[i].LRBT[TOP], m_NearFarPlane[NEAR], m_NearFarPlane[FAR]);
m_ShadowProgram->Bind();
shaderHandle = m_ShadowProgram->GetHandle();
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(m_LightProjection[i]));
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(m_LightView[i]));
m_ShadowProgramSkinned->Bind();
shaderHandle = m_ShadowProgramSkinned->GetHandle();
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "P"), 1, GL_FALSE, glm::value_ptr(m_LightProjection[i]));
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "V"), 1, GL_FALSE, glm::value_ptr(m_LightView[i]));
GLERROR("ShadowLight ERROR");
for (auto &objectJob : scene.Jobs.OpaqueObjects) {
@@ -263,23 +245,6 @@ void ShadowPass::Draw(RenderScene & scene)
continue;
}
if(modelJob->Model->IsSkinned()) {
m_ShadowProgramSkinned->Bind();
shaderHandle = m_ShadowProgramSkinned->GetHandle();
std::vector<glm::mat4> frameBones;
if (modelJob->BlendTree != nullptr) {
frameBones = modelJob->BlendTree->GetFinalPose();
} else {
frameBones = modelJob->Skeleton->GetTPose();
}
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
} else {
m_ShadowProgram->Bind();
shaderHandle = m_ShadowProgram->GetHandle();
}
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniform1f(glGetUniformLocation(shaderHandle, "Alpha"), 1.f);
@@ -300,23 +265,6 @@ void ShadowPass::Draw(RenderScene & scene)
continue;
}
if (modelJob->Model->IsSkinned()) {
m_ShadowProgramSkinned->Bind();
shaderHandle = m_ShadowProgramSkinned->GetHandle();
std::vector<glm::mat4> frameBones;
if (modelJob->BlendTree != nullptr) {
frameBones = modelJob->BlendTree->GetFinalPose();
} else {
frameBones = modelJob->Skeleton->GetTPose();
}
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "Bones"), frameBones.size(), GL_FALSE, glm::value_ptr(frameBones[0]));
} else {
m_ShadowProgram->Bind();
shaderHandle = m_ShadowProgram->GetHandle();
}
glUniformMatrix4fv(glGetUniformLocation(shaderHandle, "M"), 1, GL_FALSE, glm::value_ptr(modelJob->Matrix));
glUniform1f(glGetUniformLocation(shaderHandle, "Alpha"), modelJob->Color.a);
+7 -10
View File
@@ -7,15 +7,12 @@ void ExplosionEffectSystem::UpdateComponent(EntityWrapper& entity, ComponentWrap
delay = std::max(0.0, delay - dt);
}
if (delay <= 0) {
double& timeSinceDeath = component["TimeSinceDeath"];
timeSinceDeath += (double)component["Speed"] * dt;
if (timeSinceDeath < 0) {
timeSinceDeath = 0.0;
}
else if (timeSinceDeath >(double)component["ExplosionDuration"]) {
timeSinceDeath = (double)component["ExplosionDuration"];
}
}
if (delay <= 0) {
double& timeSinceDeath = component["TimeSinceDeath"];
timeSinceDeath += (double)component["Speed"] * dt;
if (timeSinceDeath < 0 || timeSinceDeath > (double)component["ExplosionDuration"]) {
timeSinceDeath = 0.0;
}
}
}
@@ -264,6 +264,11 @@ void PlayerMovementSystem::updateMovementControllers(double dt)
size = glm::vec3(1.f, 1.f, 1.f);
} else {
size = glm::vec3(1.f, 1.6f, 1.f);
if (controller->CrouchingLastFrame() && isOnGround) {
// The collision should resolve this anyway, but
// this is more reliable, since the box gets larger.
((glm::vec3&)cTransform["Position"]).y += 0.3f;
}
}
}