mesh builder v2
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@@ -30,6 +30,21 @@ DynamicMesh::DynamicMesh(const MeshBuilderData& data) : Mesh(data) {
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initAnimation();
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}
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DynamicMesh::DynamicMesh(const MeshBuilder2Data& data) : Mesh(data) {
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framesCount = data.materials[0]->frames.size();
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TYRA_ERROR(framesCount > 1,
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"Frames count should be greater than 1 for DynamicMesh! Maybe you "
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"should use StaticMesh?");
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frames = new MeshFrame*[framesCount];
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for (u32 i = 0; i < framesCount; i++) {
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frames[i] = new MeshFrame(data, i);
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}
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initAnimation();
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}
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DynamicMesh::DynamicMesh(const DynamicMesh& mesh) : Mesh(mesh) {
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framesCount = mesh.framesCount;
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@@ -29,6 +29,22 @@ Mesh::Mesh(const MeshBuilderData& data) {
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_isMother = true;
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}
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Mesh::Mesh(const MeshBuilder2Data& data) {
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init();
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TYRA_ASSERT(data.materials.size() > 0,
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"Materials count must be greater than 0");
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materialsCount = data.materials.size();
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materials = new MeshMaterial*[materialsCount];
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for (u32 i = 0; i < materialsCount; i++) {
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materials[i] = new MeshMaterial(data, i);
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}
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_isMother = true;
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}
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Mesh::Mesh(const Mesh& mesh) {
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init();
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@@ -31,6 +31,23 @@ MeshFrame::MeshFrame(const MeshBuilderData& data, const u32& index) {
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_isMother = true;
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}
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MeshFrame::MeshFrame(const MeshBuilder2Data& data, const u32& index) {
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id = rand() % 1000000;
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auto bboxes = new CoreBBox*[data.materials.size()];
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for (u32 i = 0; i < data.materials.size(); i++) {
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bboxes[i] = new CoreBBox(data.materials[i]->frames[index]->vertices,
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data.materials[i]->frames[index]->count);
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}
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bbox = new BBox(bboxes, data.materials.size());
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for (u32 i = 0; i < data.materials.size(); i++) delete bboxes[i];
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delete[] bboxes;
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_isMother = true;
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}
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MeshFrame::MeshFrame(const MeshFrame& frame) {
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id = rand() % 1000000;
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@@ -17,6 +17,40 @@
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namespace Tyra {
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MeshMaterial::MeshMaterial(const MeshBuilder2Data& data,
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const u32& materialIndex) {
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TYRA_ASSERT(materialIndex < data.materials.size(), "Provided index \"",
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materialIndex, "\" is out of range");
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auto* material = data.materials[materialIndex];
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TYRA_ASSERT(material->frames.size() > 0,
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"Material must have at least one frame");
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id = rand() % 1000000;
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if (data.lightMapEnabled) {
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singleColorFlag = false;
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TYRA_ASSERT(material->frames[0]->colors != nullptr,
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"Colors faces are required");
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} else {
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singleColorFlag = true;
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}
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color.set(128.0F, 128.0F, 128.0F, 128.0F);
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_name = material->name;
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TYRA_ASSERT(_name.length() > 0, "MeshMaterial name cannot be empty");
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framesCount = material->frames.size();
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frames = new MeshMaterialFrame*[framesCount];
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for (u32 i = 0; i < framesCount; i++) {
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frames[i] = new MeshMaterialFrame(data, i, materialIndex);
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}
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_isMother = true;
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}
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MeshMaterial::MeshMaterial(const MeshBuilderData& data,
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const u32& materialIndex)
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: color(false) {
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@@ -41,10 +41,53 @@ MeshMaterialFrame::MeshMaterialFrame(const MeshBuilderData& data,
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_isMother = true;
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}
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MeshMaterialFrame::MeshMaterialFrame(const MeshBuilder2Data& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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TYRA_ASSERT(materialIndex < data.materials.size(), "Provided index \"",
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materialIndex, "\" is out of range");
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TYRA_ASSERT(frameIndex < data.materials[materialIndex]->frames.size(),
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"Provided index \"", frameIndex, "\" is out of range");
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id = rand() % 1000000;
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auto* frame = data.materials[materialIndex]->frames[frameIndex];
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TYRA_ASSERT(frame->count > 0, "Vertex count must be greater than 0");
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TYRA_ASSERT(frame->vertices != nullptr, "Vertex array can't be null");
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TYRA_ASSERT(frame->normals != nullptr, "Normal array can't be null");
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TYRA_ASSERT(frame->textureCoords != nullptr,
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"Texture coordinate array can't be null");
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TYRA_ASSERT(frame->colors != nullptr, "Color array can't be null");
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bbox = new BBox(frame->vertices, frame->count);
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count = frame->count;
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vertices = frame->vertices;
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if (data.normalsEnabled)
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normals = frame->normals;
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else
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normals = nullptr;
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if (data.textureCoordsEnabled)
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textureCoords = frame->textureCoords;
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else
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textureCoords = nullptr;
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if (data.lightMapEnabled)
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colors = frame->colors;
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else
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colors = nullptr;
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_isMother = true;
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}
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MeshMaterialFrame::MeshMaterialFrame(const MeshMaterialFrame& frame) {
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id = rand() % 1000000;
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vertexCount = frame.vertexCount;
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count = frame.count;
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vertices = frame.vertices;
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normals = frame.normals;
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@@ -66,6 +109,74 @@ MeshMaterialFrame::~MeshMaterialFrame() {
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}
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}
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void MeshMaterialFrame::allocateVertices(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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count = data.materials[materialIndex]->count; // faces count
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vertices = new Vec4[count];
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TYRA_ASSERT(count > 0, "Vertex count must be greater than 0");
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auto* rolled = data.frames[frameIndex]->vertices;
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auto* faces = data.materials[materialIndex]->vertexFaces;
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TYRA_ASSERT(rolled != nullptr, "Vertices are required");
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TYRA_ASSERT(faces != nullptr, "Vertex faces are required");
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for (u32 i = 0; i < count; i++) vertices[i] = rolled[faces[i]];
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}
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void MeshMaterialFrame::allocateTextureCoords(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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textureCoords = nullptr;
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if (!data.textureCoordsEnabled) return;
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textureCoords = new Vec4[count];
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auto* rolled = data.frames[frameIndex]->textureCoords;
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auto* faces = data.materials[materialIndex]->textureCoordFaces;
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TYRA_ASSERT(rolled != nullptr, "Texture coordinates are required");
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TYRA_ASSERT(faces != nullptr, "Texture coordinate faces are required");
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for (u32 i = 0; i < count; i++) textureCoords[i] = rolled[faces[i]];
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}
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void MeshMaterialFrame::allocateNormals(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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normals = nullptr;
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if (!data.normalsEnabled) return;
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normals = new Vec4[count];
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auto* rolled = data.frames[frameIndex]->normals;
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auto* faces = data.materials[materialIndex]->normalFaces;
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TYRA_ASSERT(rolled != nullptr, "Normals are required");
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TYRA_ASSERT(faces != nullptr, "Normal faces are required");
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for (u32 i = 0; i < count; i++) normals[i] = rolled[faces[i]];
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}
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void MeshMaterialFrame::allocateColors(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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colors = nullptr;
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if (!data.manyColorsEnabled) return;
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colors = new Color[count];
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auto* rolled = data.frames[frameIndex]->colors;
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auto* faces = data.materials[materialIndex]->colorFaces;
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TYRA_ASSERT(rolled != nullptr, "Colors are required");
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TYRA_ASSERT(faces != nullptr, "Color faces are required");
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for (u32 i = 0; i < count; i++) colors[i] = rolled[faces[i]];
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}
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std::string MeshMaterialFrame::getPrint(const char* name) const {
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std::stringstream res;
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if (name) {
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@@ -76,31 +187,31 @@ std::string MeshMaterialFrame::getPrint(const char* name) const {
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res << std::fixed << std::setprecision(2);
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res << "Id: " << id << ", " << std::endl;
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res << "Vertex count: " << vertexCount << ", " << std::endl;
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res << "Vertex count: " << count << ", " << std::endl;
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res << "BBox: " << bbox->getPrint() << ", " << std::endl;
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res << "Vertices: ";
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for (u32 i = 0; i < vertexCount; i++) {
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for (u32 i = 0; i < count; i++) {
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res << vertices[i].getPrint() << ", " << std::endl;
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}
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if (normals) {
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res << "Normals: ";
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for (u32 i = 0; i < vertexCount; i++) {
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for (u32 i = 0; i < count; i++) {
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res << normals[i].getPrint() << ", " << std::endl;
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}
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}
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if (textureCoords) {
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res << "TextureCoords: ";
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for (u32 i = 0; i < vertexCount; i++) {
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for (u32 i = 0; i < count; i++) {
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res << textureCoords[i].getPrint() << ", " << std::endl;
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}
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}
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if (colors) {
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res << "Colors: ";
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for (u32 i = 0; i < vertexCount; i++) {
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for (u32 i = 0; i < count; i++) {
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res << colors[i].getPrint() << ", " << std::endl;
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}
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}
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@@ -110,72 +221,4 @@ std::string MeshMaterialFrame::getPrint(const char* name) const {
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return res.str();
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}
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void MeshMaterialFrame::allocateVertices(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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vertexCount = data.materials[materialIndex]->count; // faces count
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vertices = new Vec4[vertexCount];
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TYRA_ASSERT(vertexCount > 0, "Vertex count must be greater than 0");
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auto* rolled = data.frames[frameIndex]->vertices;
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auto* faces = data.materials[materialIndex]->vertexFaces;
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TYRA_ASSERT(rolled != nullptr, "Vertices are required");
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TYRA_ASSERT(faces != nullptr, "Vertex faces are required");
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for (u32 i = 0; i < vertexCount; i++) vertices[i] = rolled[faces[i]];
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}
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void MeshMaterialFrame::allocateTextureCoords(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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textureCoords = nullptr;
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if (!data.textureCoordsEnabled) return;
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textureCoords = new Vec4[vertexCount];
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auto* rolled = data.frames[frameIndex]->textureCoords;
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auto* faces = data.materials[materialIndex]->textureCoordFaces;
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TYRA_ASSERT(rolled != nullptr, "Texture coordinates are required");
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TYRA_ASSERT(faces != nullptr, "Texture coordinate faces are required");
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for (u32 i = 0; i < vertexCount; i++) textureCoords[i] = rolled[faces[i]];
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}
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void MeshMaterialFrame::allocateNormals(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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normals = nullptr;
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if (!data.normalsEnabled) return;
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normals = new Vec4[vertexCount];
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auto* rolled = data.frames[frameIndex]->normals;
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auto* faces = data.materials[materialIndex]->normalFaces;
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TYRA_ASSERT(rolled != nullptr, "Normals are required");
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TYRA_ASSERT(faces != nullptr, "Normal faces are required");
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for (u32 i = 0; i < vertexCount; i++) normals[i] = rolled[faces[i]];
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}
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void MeshMaterialFrame::allocateColors(const MeshBuilderData& data,
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const u32& frameIndex,
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const u32& materialIndex) {
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colors = nullptr;
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if (!data.manyColorsEnabled) return;
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colors = new Color[vertexCount];
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auto* rolled = data.frames[frameIndex]->colors;
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auto* faces = data.materials[materialIndex]->colorFaces;
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TYRA_ASSERT(rolled != nullptr, "Colors are required");
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TYRA_ASSERT(faces != nullptr, "Color faces are required");
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for (u32 i = 0; i < vertexCount; i++) colors[i] = rolled[faces[i]];
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}
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} // namespace Tyra
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@@ -23,6 +23,14 @@ StaticMesh::StaticMesh(const MeshBuilderData& data) : Mesh(data) {
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frame = new MeshFrame(data, 0);
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}
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StaticMesh::StaticMesh(const MeshBuilder2Data& data) : Mesh(data) {
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if (data.materials[0]->frames.size() > 1)
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TYRA_WARN("Static meshes should have only one frame, but ",
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data.materials[0]->frames.size(), " frames were found");
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frame = new MeshFrame(data, 0);
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}
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StaticMesh::StaticMesh(const StaticMesh& mesh) : Mesh(mesh) {
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frame = new MeshFrame(*mesh.frame);
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}
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