Files
Nuake/Data/Shaders/Vulkan/triangle.vert
antopilo 90d91feced Bunch of improvements
- Camera preview
- Culling, Sampling in materials
- Per scene lighting now working properly
- Fixed vk validations errors
- Viewport can be enabled/disabled
- Enabled anisotropy in device features
- Scenes now a resource
2025-04-26 17:55:52 -04:00

155 lines
3.3 KiB
GLSL

// Transforms
struct ModelData
{
float4x4 model;
};
[[vk::binding(0, 0)]]
StructuredBuffer<ModelData> model : register(t1);
// Vertex
struct Vertex
{
float3 position;
float uv_x;
float3 normal;
float uv_y;
float4 tangent;
float4 bitangent;
};
[[vk::binding(0, 1)]]
StructuredBuffer<Vertex> vertexBuffer : register(t2);
// Samplers
[[vk::binding(0, 2)]]
SamplerState mySampler[2] : register(s0);
// Materials
struct Material
{
bool hasAlbedo;
float3 albedo;
bool hasNormal;
bool hasMetalness;
bool hasRoughness;
bool hasAO;
float metalnessValue;
float roughnessValue;
float aoValue;
int albedoTextureId;
int normalTextureId;
int metalnessTextureId;
int roughnessTextureId;
int aoTextureId;
int samplingType;
};
[[vk::binding(0, 3)]]
StructuredBuffer<Material> material;
// Textures
[[vk::binding(0, 4)]]
Texture2D textures[];
// Lights
struct Light
{
float3 position;
int type;
float4 color;
float3 direction;
float outerConeAngle;
float innerConeAngle;
bool castShadow;
int shadowMapTextureId[4];
int transformId[4];
};
[[vk::binding(0, 5)]]
StructuredBuffer<Light> lights;
// Cameras
struct CameraView {
float4x4 View;
float4x4 Projection;
float4x4 ViewProjection;
float4x4 InverseView;
float4x4 InverseProjection;
float3 Position;
float Near;
float Far;
};
[[vk::binding(0, 6)]]
StructuredBuffer<CameraView> cameras;
struct ModelPushConstant
{
int modelIndex; // Push constant data
int materialIndex;
int cameraID;
float entityID;
};
[[vk::push_constant]]
ModelPushConstant pushConstants;
// Outputs
struct VSOutput
{
float4 Position : SV_Position;
float3 Color : TEXCOORD0;
float2 UV : TEXCOORD1;
float3 Normal : TEXCOORD2;
float3 Tangent : TEXCOORD3;
float3 Bitangent : TEXCOORD4;
};
float3x3 invert(float3x3 m)
{
float3 a = m[0];
float3 b = m[1];
float3 c = m[2];
float3 r0 = cross(b, c);
float3 r1 = cross(c, a);
float3 r2 = cross(a, b);
float det = dot(r2, c);
// Return identity if not invertible (optional fallback)
if (abs(det) < 1e-6)
return float3x3(1.0, 0.0, 0.0,
0.0, 1.0, 0.0,
0.0, 0.0, 1.0);
float invDet = 1.0 / det;
return float3x3(r0 * invDet,
r1 * invDet,
r2 * invDet);
}
// Main vertex shader
VSOutput main(uint vertexIndex : SV_VertexID)
{
VSOutput output;
CameraView camView = cameras[pushConstants.cameraID];
ModelData modelData = model[pushConstants.modelIndex];
// Load vertex data from the buffer
Vertex v = vertexBuffer[vertexIndex];
// Output the position of each vertex
output.Position = mul(camView.Projection, mul(camView.View, mul(modelData.model, float4(v.position, 1.0f))));
output.Color = normalize(float3(v.position.xyz));
output.UV = float2(v.uv_x, v.uv_y);
float3x3 upper3x3 = (float3x3)modelData.model;
float3x3 normalMatrix = transpose(invert(upper3x3));
output.Bitangent = mul(normalMatrix, normalize(v.bitangent.xyz));
output.Normal = mul(normalMatrix, normalize(v.normal.xyz));
output.Tangent = mul(normalMatrix, normalize(v.tangent.xyz));
//output.Normal = v.normal.xyz;
return output;
}