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@@ -4534,28 +4534,7 @@ Error GLTFDocument::_serialize_lights(Ref<GLTFState> state) {
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}
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Array lights;
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for (GLTFLightIndex i = 0; i < state->lights.size(); i++) {
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- Dictionary d;
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- Ref<GLTFLight> light = state->lights[i];
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- Array color;
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- color.resize(3);
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- color[0] = light->color.r;
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- color[1] = light->color.g;
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- color[2] = light->color.b;
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- d["color"] = color;
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- d["type"] = light->light_type;
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- if (light->light_type == "spot") {
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- Dictionary s;
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- float inner_cone_angle = light->inner_cone_angle;
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- s["innerConeAngle"] = inner_cone_angle;
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- float outer_cone_angle = light->outer_cone_angle;
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- s["outerConeAngle"] = outer_cone_angle;
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- d["spot"] = s;
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- }
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- float intensity = light->intensity;
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- d["intensity"] = intensity;
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- float range = light->range;
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- d["range"] = range;
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- lights.push_back(d);
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+ lights.push_back(state->lights[i]->to_dictionary());
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}
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Dictionary extensions;
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@@ -4577,27 +4556,7 @@ Error GLTFDocument::_serialize_cameras(Ref<GLTFState> state) {
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Array cameras;
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cameras.resize(state->cameras.size());
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for (GLTFCameraIndex i = 0; i < state->cameras.size(); i++) {
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- Dictionary d;
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-
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- Ref<GLTFCamera> camera = state->cameras[i];
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-
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- if (camera->get_perspective()) {
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- Dictionary persp;
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- persp["yfov"] = camera->get_fov();
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- persp["zfar"] = camera->get_depth_far();
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- persp["znear"] = camera->get_depth_near();
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- d["perspective"] = persp;
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- d["type"] = "perspective";
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- } else {
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- Dictionary ortho;
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- ortho["ymag"] = camera->get_size_mag();
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- ortho["xmag"] = camera->get_size_mag();
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- ortho["zfar"] = camera->get_depth_far();
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- ortho["znear"] = camera->get_depth_near();
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- d["orthographic"] = ortho;
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- d["type"] = "orthographic";
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- }
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- cameras[i] = d;
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+ cameras[i] = state->cameras[i]->to_dictionary();
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}
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if (!state->cameras.size()) {
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@@ -4627,35 +4586,10 @@ Error GLTFDocument::_parse_lights(Ref<GLTFState> state) {
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const Array &lights = lights_punctual["lights"];
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for (GLTFLightIndex light_i = 0; light_i < lights.size(); light_i++) {
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- const Dictionary &d = lights[light_i];
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-
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- Ref<GLTFLight> light;
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- light.instantiate();
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- ERR_FAIL_COND_V(!d.has("type"), ERR_PARSE_ERROR);
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- const String &type = d["type"];
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- light->light_type = type;
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-
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- if (d.has("color")) {
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- const Array &arr = d["color"];
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- ERR_FAIL_COND_V(arr.size() != 3, ERR_PARSE_ERROR);
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- const Color c = Color(arr[0], arr[1], arr[2]).linear_to_srgb();
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- light->color = c;
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- }
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- if (d.has("intensity")) {
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- light->intensity = d["intensity"];
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+ Ref<GLTFLight> light = GLTFLight::from_dictionary(lights[light_i]);
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+ if (light.is_null()) {
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+ return Error::ERR_PARSE_ERROR;
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}
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- if (d.has("range")) {
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- light->range = d["range"];
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- }
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- if (type == "spot") {
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- const Dictionary &spot = d["spot"];
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- light->inner_cone_angle = spot["innerConeAngle"];
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- light->outer_cone_angle = spot["outerConeAngle"];
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- ERR_CONTINUE_MSG(light->inner_cone_angle >= light->outer_cone_angle, "The inner angle must be smaller than the outer angle.");
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- } else if (type != "point" && type != "directional") {
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- ERR_CONTINUE_MSG(true, "Light type is unknown.");
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- }
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-
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state->lights.push_back(light);
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}
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@@ -4672,35 +4606,7 @@ Error GLTFDocument::_parse_cameras(Ref<GLTFState> state) {
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const Array cameras = state->json["cameras"];
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for (GLTFCameraIndex i = 0; i < cameras.size(); i++) {
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- const Dictionary &d = cameras[i];
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-
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- Ref<GLTFCamera> camera;
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- camera.instantiate();
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- ERR_FAIL_COND_V(!d.has("type"), ERR_PARSE_ERROR);
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- const String &type = d["type"];
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- if (type == "perspective") {
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- camera->set_perspective(true);
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- if (d.has("perspective")) {
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- const Dictionary &persp = d["perspective"];
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- camera->set_fov(persp["yfov"]);
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- if (persp.has("zfar")) {
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- camera->set_depth_far(persp["zfar"]);
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- }
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- camera->set_depth_near(persp["znear"]);
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- }
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- } else if (type == "orthographic") {
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- camera->set_perspective(false);
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- if (d.has("orthographic")) {
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- const Dictionary &ortho = d["orthographic"];
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- camera->set_size_mag(ortho["ymag"]);
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- camera->set_depth_far(ortho["zfar"]);
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- camera->set_depth_near(ortho["znear"]);
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- }
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- } else {
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- ERR_FAIL_V_MSG(ERR_PARSE_ERROR, "Camera3D should be in 'orthographic' or 'perspective'");
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- }
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-
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- state->cameras.push_back(camera);
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+ state->cameras.push_back(GLTFCamera::from_dictionary(cameras[i]));
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}
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print_verbose("glTF: Total cameras: " + itos(state->cameras.size()));
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@@ -5148,45 +5054,7 @@ Node3D *GLTFDocument::_generate_light(Ref<GLTFState> state, const GLTFNodeIndex
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print_verbose("glTF: Creating light for: " + gltf_node->get_name());
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Ref<GLTFLight> l = state->lights[gltf_node->light];
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-
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- float intensity = l->intensity;
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- if (intensity > 10) {
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- // GLTF spec has the default around 1, but Blender defaults lights to 100.
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- // The only sane way to handle this is to check where it came from and
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- // handle it accordingly. If it's over 10, it probably came from Blender.
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- intensity /= 100;
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- }
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-
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- if (l->light_type == "directional") {
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- DirectionalLight3D *light = memnew(DirectionalLight3D);
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- light->set_param(Light3D::PARAM_ENERGY, intensity);
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- light->set_color(l->color);
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- return light;
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- }
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-
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- const float range = CLAMP(l->range, 0, 4096);
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- if (l->light_type == "point") {
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- OmniLight3D *light = memnew(OmniLight3D);
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- light->set_param(OmniLight3D::PARAM_ENERGY, intensity);
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- light->set_param(OmniLight3D::PARAM_RANGE, range);
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- light->set_color(l->color);
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- return light;
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- }
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- if (l->light_type == "spot") {
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- SpotLight3D *light = memnew(SpotLight3D);
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- light->set_param(SpotLight3D::PARAM_ENERGY, intensity);
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- light->set_param(SpotLight3D::PARAM_RANGE, range);
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- light->set_param(SpotLight3D::PARAM_SPOT_ANGLE, Math::rad_to_deg(l->outer_cone_angle));
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- light->set_color(l->color);
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-
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- // Line of best fit derived from guessing, see https://www.desmos.com/calculator/biiflubp8b
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- // The points in desmos are not exact, except for (1, infinity).
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- float angle_ratio = l->inner_cone_angle / l->outer_cone_angle;
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- float angle_attenuation = 0.2 / (1 - angle_ratio) - 0.1;
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- light->set_param(SpotLight3D::PARAM_SPOT_ATTENUATION, angle_attenuation);
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- return light;
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- }
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- return memnew(Node3D);
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+ return l->to_node();
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}
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Camera3D *GLTFDocument::_generate_camera(Ref<GLTFState> state, const GLTFNodeIndex node_index) {
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@@ -5194,32 +5062,16 @@ Camera3D *GLTFDocument::_generate_camera(Ref<GLTFState> state, const GLTFNodeInd
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ERR_FAIL_INDEX_V(gltf_node->camera, state->cameras.size(), nullptr);
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- Camera3D *camera = memnew(Camera3D);
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print_verbose("glTF: Creating camera for: " + gltf_node->get_name());
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Ref<GLTFCamera> c = state->cameras[gltf_node->camera];
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- camera->set_projection(c->get_perspective() ? Camera3D::PROJECTION_PERSPECTIVE : Camera3D::PROJECTION_ORTHOGONAL);
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- // GLTF spec (yfov) is in radians, Godot's camera (fov) is in degrees.
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- camera->set_fov(Math::rad_to_deg(c->get_fov()));
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- // GLTF spec (xmag and ymag) is a radius in meters, Godot's camera (size) is a diameter in meters.
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- camera->set_size(c->get_size_mag() * 2.0f);
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- camera->set_near(c->get_depth_near());
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- camera->set_far(c->get_depth_far());
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- return camera;
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+ return c->to_node();
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}
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GLTFCameraIndex GLTFDocument::_convert_camera(Ref<GLTFState> state, Camera3D *p_camera) {
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print_verbose("glTF: Converting camera: " + p_camera->get_name());
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- Ref<GLTFCamera> c;
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- c.instantiate();
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- c->set_perspective(p_camera->get_projection() == Camera3D::ProjectionType::PROJECTION_PERSPECTIVE);
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- // GLTF spec (yfov) is in radians, Godot's camera (fov) is in degrees.
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- c->set_fov(Math::deg_to_rad(p_camera->get_fov()));
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- // GLTF spec (xmag and ymag) is a radius in meters, Godot's camera (size) is a diameter in meters.
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- c->set_size_mag(p_camera->get_size() * 0.5f);
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- c->set_depth_far(p_camera->get_far());
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- c->set_depth_near(p_camera->get_near());
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+ Ref<GLTFCamera> c = GLTFCamera::from_node(p_camera);
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GLTFCameraIndex camera_index = state->cameras.size();
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state->cameras.push_back(c);
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return camera_index;
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@@ -5228,31 +5080,7 @@ GLTFCameraIndex GLTFDocument::_convert_camera(Ref<GLTFState> state, Camera3D *p_
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GLTFLightIndex GLTFDocument::_convert_light(Ref<GLTFState> state, Light3D *p_light) {
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print_verbose("glTF: Converting light: " + p_light->get_name());
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- Ref<GLTFLight> l;
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- l.instantiate();
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- l->color = p_light->get_color();
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- if (cast_to<DirectionalLight3D>(p_light)) {
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- l->light_type = "directional";
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- DirectionalLight3D *light = cast_to<DirectionalLight3D>(p_light);
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- l->intensity = light->get_param(DirectionalLight3D::PARAM_ENERGY);
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- l->range = FLT_MAX; // Range for directional lights is infinite in Godot.
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- } else if (cast_to<OmniLight3D>(p_light)) {
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- l->light_type = "point";
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- OmniLight3D *light = cast_to<OmniLight3D>(p_light);
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- l->range = light->get_param(OmniLight3D::PARAM_RANGE);
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- l->intensity = light->get_param(OmniLight3D::PARAM_ENERGY);
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- } else if (cast_to<SpotLight3D>(p_light)) {
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- l->light_type = "spot";
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- SpotLight3D *light = cast_to<SpotLight3D>(p_light);
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- l->range = light->get_param(SpotLight3D::PARAM_RANGE);
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- l->intensity = light->get_param(SpotLight3D::PARAM_ENERGY);
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- l->outer_cone_angle = Math::deg_to_rad(light->get_param(SpotLight3D::PARAM_SPOT_ANGLE));
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-
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- // This equation is the inverse of the import equation (which has a desmos link).
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- float angle_ratio = 1 - (0.2 / (0.1 + light->get_param(SpotLight3D::PARAM_SPOT_ATTENUATION)));
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- angle_ratio = MAX(0, angle_ratio);
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- l->inner_cone_angle = l->outer_cone_angle * angle_ratio;
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- }
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+ Ref<GLTFLight> l = GLTFLight::from_node(p_light);
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GLTFLightIndex light_index = state->lights.size();
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state->lights.push_back(l);
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