mirror of
https://github.com/FULU-Foundation/OrcaSlicer-bambulab.git
synced 2026-05-14 13:02:39 -07:00
Initial release
This commit is contained in:
11
resources/shaders/110/background.fs
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11
resources/shaders/110/background.fs
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#version 110
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uniform vec4 top_color;
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uniform vec4 bottom_color;
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varying vec2 tex_coord;
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void main()
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{
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gl_FragColor = mix(bottom_color, top_color, tex_coord.y);
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}
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12
resources/shaders/110/background.vs
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12
resources/shaders/110/background.vs
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#version 110
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attribute vec3 v_position;
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attribute vec2 v_tex_coord;
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varying vec2 tex_coord;
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void main()
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{
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tex_coord = v_tex_coord;
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gl_Position = vec4(v_position, 1.0);
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}
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8
resources/shaders/110/flat.fs
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8
resources/shaders/110/flat.fs
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#version 110
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uniform vec4 uniform_color;
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void main()
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{
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gl_FragColor = uniform_color;
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}
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11
resources/shaders/110/flat.vs
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11
resources/shaders/110/flat.vs
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#version 110
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uniform mat4 view_model_matrix;
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uniform mat4 projection_matrix;
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attribute vec3 v_position;
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void main()
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{
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gl_Position = projection_matrix * view_model_matrix * vec4(v_position, 1.0);
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}
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15
resources/shaders/110/flat_clip.fs
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15
resources/shaders/110/flat_clip.fs
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#version 110
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const vec3 ZERO = vec3(0.0, 0.0, 0.0);
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uniform vec4 uniform_color;
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varying vec3 clipping_planes_dots;
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void main()
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{
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if (any(lessThan(clipping_planes_dots, ZERO)))
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discard;
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gl_FragColor = uniform_color;
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}
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23
resources/shaders/110/flat_clip.vs
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23
resources/shaders/110/flat_clip.vs
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#version 110
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uniform mat4 view_model_matrix;
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uniform mat4 projection_matrix;
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uniform mat4 volume_world_matrix;
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// Clipping plane, x = min z, y = max z. Used by the FFF and SLA previews to clip with a top / bottom plane.
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uniform vec2 z_range;
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// Clipping plane - general orientation. Used by the SLA gizmo.
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uniform vec4 clipping_plane;
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attribute vec3 v_position;
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varying vec3 clipping_planes_dots;
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void main()
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{
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// Fill in the scalars for fragment shader clipping. Fragments with any of these components lower than zero are discarded.
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vec4 world_pos = volume_world_matrix * vec4(v_position, 1.0);
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clipping_planes_dots = vec3(dot(world_pos, clipping_plane), world_pos.z - z_range.x, z_range.y - world_pos.z);
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gl_Position = projection_matrix * view_model_matrix * vec4(v_position, 1.0);
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}
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10
resources/shaders/110/flat_texture.fs
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10
resources/shaders/110/flat_texture.fs
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#version 110
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uniform sampler2D uniform_texture;
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varying vec2 tex_coord;
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void main()
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{
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gl_FragColor = texture2D(uniform_texture, tex_coord);
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}
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15
resources/shaders/110/flat_texture.vs
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15
resources/shaders/110/flat_texture.vs
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#version 110
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uniform mat4 view_model_matrix;
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uniform mat4 projection_matrix;
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attribute vec3 v_position;
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attribute vec2 v_tex_coord;
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varying vec2 tex_coord;
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void main()
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{
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tex_coord = v_tex_coord;
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gl_Position = projection_matrix * view_model_matrix * vec4(v_position, 1.0);
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}
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188
resources/shaders/110/gouraud.fs
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188
resources/shaders/110/gouraud.fs
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#version 110
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const vec3 ZERO = vec3(0.0, 0.0, 0.0);
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//BBS: add grey and orange
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//const vec3 GREY = vec3(0.9, 0.9, 0.9);
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const vec3 ORANGE = vec3(0.8, 0.4, 0.0);
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const vec3 LightRed = vec3(0.78, 0.0, 0.0);
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const vec3 LightBlue = vec3(0.73, 1.0, 1.0);
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const float EPSILON = 0.0001;
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struct PrintVolumeDetection
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{
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// 0 = rectangle, 1 = circle, 2 = custom, 3 = invalid
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int type;
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// type = 0 (rectangle):
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// x = min.x, y = min.y, z = max.x, w = max.y
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// type = 1 (circle):
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// x = center.x, y = center.y, z = radius
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vec4 xy_data;
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// x = min z, y = max z
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vec2 z_data;
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};
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struct SlopeDetection
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{
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bool actived;
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float normal_z;
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mat3 volume_world_normal_matrix;
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};
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uniform vec4 uniform_color;
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uniform bool use_color_clip_plane;
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uniform vec4 uniform_color_clip_plane_1;
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uniform vec4 uniform_color_clip_plane_2;
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uniform SlopeDetection slope;
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//BBS: add outline_color
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uniform bool is_outline;
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uniform sampler2D depth_tex;
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uniform vec2 screen_size;
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#ifdef ENABLE_ENVIRONMENT_MAP
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uniform sampler2D environment_tex;
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uniform bool use_environment_tex;
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#endif // ENABLE_ENVIRONMENT_MAP
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uniform PrintVolumeDetection print_volume;
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uniform float z_far;
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uniform float z_near;
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varying vec3 clipping_planes_dots;
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varying float color_clip_plane_dot;
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// x = diffuse, y = specular;
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varying vec2 intensity;
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varying vec4 world_pos;
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varying float world_normal_z;
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varying vec3 eye_normal;
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vec3 getBackfaceColor(vec3 fill) {
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float brightness = 0.2126 * fill.r + 0.7152 * fill.g + 0.0722 * fill.b;
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return (brightness > 0.75) ? vec3(0.11, 0.165, 0.208) : vec3(0.988, 0.988, 0.988);
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}
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// Silhouette edge detection & rendering algorithem by leoneruggiero
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// https://www.shadertoy.com/view/DslXz2
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#define INFLATE 1
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float GetTolerance(float d, float k)
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{
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// -------------------------------------------
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// Find a tolerance for depth that is constant
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// in view space (k in view space).
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//
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// tol = k*ddx(ZtoDepth(z))
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// -------------------------------------------
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float A=- (z_far+z_near)/(z_far-z_near);
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float B=-2.0*z_far*z_near /(z_far-z_near);
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d = d*2.0-1.0;
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return -k*(d+A)*(d+A)/B;
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}
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float DetectSilho(vec2 fragCoord, vec2 dir)
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{
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// -------------------------------------------
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// x0 ___ x1----o
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// :\ :
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// r0 : \ : r1
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// : \ :
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// o---x2 ___ x3
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//
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// r0 and r1 are the differences between actual
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// and expected (as if x0..3 where on the same
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// plane) depth values.
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// -------------------------------------------
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float x0 = abs(texture2D(depth_tex, (fragCoord + dir*-2.0) / screen_size).r);
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float x1 = abs(texture2D(depth_tex, (fragCoord + dir*-1.0) / screen_size).r);
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float x2 = abs(texture2D(depth_tex, (fragCoord + dir* 0.0) / screen_size).r);
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float x3 = abs(texture2D(depth_tex, (fragCoord + dir* 1.0) / screen_size).r);
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float d0 = (x1-x0);
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float d1 = (x2-x3);
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float r0 = x1 + d0 - x2;
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float r1 = x2 + d1 - x1;
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float tol = GetTolerance(x2, 0.04);
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return smoothstep(0.0, tol*tol, max( - r0*r1, 0.0));
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}
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float DetectSilho(vec2 fragCoord)
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{
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return max(
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DetectSilho(fragCoord, vec2(1,0)), // Horizontal
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DetectSilho(fragCoord, vec2(0,1)) // Vertical
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);
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}
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void main()
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{
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if (any(lessThan(clipping_planes_dots, ZERO)))
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discard;
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vec4 color;
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if (use_color_clip_plane) {
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color.rgb = (color_clip_plane_dot < 0.0) ? uniform_color_clip_plane_1.rgb : uniform_color_clip_plane_2.rgb;
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color.a = uniform_color.a;
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}
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else
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color = uniform_color;
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if (slope.actived) {
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if(world_pos.z<0.1&&world_pos.z>-0.1)
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{
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color.rgb = LightBlue;
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color.a = 0.8;
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}
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else if( world_normal_z < slope.normal_z - EPSILON)
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{
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color.rgb = color.rgb * 0.5 + LightRed * 0.5;
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color.a = 0.8;
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}
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}
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// if the fragment is outside the print volume -> use darker color
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vec3 pv_check_min = ZERO;
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vec3 pv_check_max = ZERO;
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if (print_volume.type == 0) {
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// rectangle
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pv_check_min = world_pos.xyz - vec3(print_volume.xy_data.x, print_volume.xy_data.y, print_volume.z_data.x);
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pv_check_max = world_pos.xyz - vec3(print_volume.xy_data.z, print_volume.xy_data.w, print_volume.z_data.y);
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}
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else if (print_volume.type == 1) {
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// circle
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float delta_radius = print_volume.xy_data.z - distance(world_pos.xy, print_volume.xy_data.xy);
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pv_check_min = vec3(delta_radius, 0.0, world_pos.z - print_volume.z_data.x);
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pv_check_max = vec3(0.0, 0.0, world_pos.z - print_volume.z_data.y);
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}
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color.rgb = (any(lessThan(pv_check_min, ZERO)) || any(greaterThan(pv_check_max, ZERO))) ? mix(color.rgb, ZERO, 0.3333) : color.rgb;
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//BBS: add outline_color
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if (is_outline) {
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color = vec4(vec3(intensity.y) + color.rgb * intensity.x, color.a);
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vec2 fragCoord = gl_FragCoord.xy;
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float s = DetectSilho(fragCoord);
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// Makes silhouettes thicker.
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for(int i=1;i<=INFLATE; i++)
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{
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s = max(s, DetectSilho(fragCoord.xy + vec2(i, 0)));
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s = max(s, DetectSilho(fragCoord.xy + vec2(0, i)));
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}
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gl_FragColor = vec4(mix(color.rgb, getBackfaceColor(color.rgb), s), color.a);
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}
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#ifdef ENABLE_ENVIRONMENT_MAP
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else if (use_environment_tex)
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gl_FragColor = vec4(0.45 * texture(environment_tex, normalize(eye_normal).xy * 0.5 + 0.5).xyz + 0.8 * color.rgb * intensity.x, color.a);
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#endif
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else
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gl_FragColor = vec4(vec3(intensity.y) + color.rgb * intensity.x, color.a);
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}
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81
resources/shaders/110/gouraud.vs
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81
resources/shaders/110/gouraud.vs
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#version 110
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#define INTENSITY_CORRECTION 0.6
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// normalized values for (-0.6/1.31, 0.6/1.31, 1./1.31)
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const vec3 LIGHT_TOP_DIR = vec3(-0.4574957, 0.4574957, 0.7624929);
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#define LIGHT_TOP_DIFFUSE (0.8 * INTENSITY_CORRECTION)
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#define LIGHT_TOP_SPECULAR (0.125 * INTENSITY_CORRECTION)
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#define LIGHT_TOP_SHININESS 20.0
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// normalized values for (1./1.43, 0.2/1.43, 1./1.43)
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const vec3 LIGHT_FRONT_DIR = vec3(0.6985074, 0.1397015, 0.6985074);
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#define LIGHT_FRONT_DIFFUSE (0.3 * INTENSITY_CORRECTION)
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//#define LIGHT_FRONT_SPECULAR (0.0 * INTENSITY_CORRECTION)
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//#define LIGHT_FRONT_SHININESS 5.0
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#define INTENSITY_AMBIENT 0.3
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const vec3 ZERO = vec3(0.0, 0.0, 0.0);
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struct SlopeDetection
|
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{
|
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bool actived;
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float normal_z;
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mat3 volume_world_normal_matrix;
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};
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uniform mat4 view_model_matrix;
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||||
uniform mat4 projection_matrix;
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uniform mat3 view_normal_matrix;
|
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uniform mat4 volume_world_matrix;
|
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uniform SlopeDetection slope;
|
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|
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// Clipping plane, x = min z, y = max z. Used by the FFF and SLA previews to clip with a top / bottom plane.
|
||||
uniform vec2 z_range;
|
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// Clipping plane - general orientation. Used by the SLA gizmo.
|
||||
uniform vec4 clipping_plane;
|
||||
// Color clip plane - general orientation. Used by the cut gizmo.
|
||||
uniform vec4 color_clip_plane;
|
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|
||||
attribute vec3 v_position;
|
||||
attribute vec3 v_normal;
|
||||
|
||||
// x = diffuse, y = specular;
|
||||
varying vec2 intensity;
|
||||
|
||||
varying vec3 clipping_planes_dots;
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||||
varying float color_clip_plane_dot;
|
||||
|
||||
varying vec4 world_pos;
|
||||
varying float world_normal_z;
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||||
varying vec3 eye_normal;
|
||||
|
||||
void main()
|
||||
{
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// First transform the normal into camera space and normalize the result.
|
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eye_normal = normalize(view_normal_matrix * v_normal);
|
||||
|
||||
// Compute the cos of the angle between the normal and lights direction. The light is directional so the direction is constant for every vertex.
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||||
// Since these two are normalized the cosine is the dot product. We also need to clamp the result to the [0,1] range.
|
||||
float NdotL = max(dot(eye_normal, LIGHT_TOP_DIR), 0.0);
|
||||
|
||||
intensity.x = INTENSITY_AMBIENT + NdotL * LIGHT_TOP_DIFFUSE;
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||||
vec4 position = view_model_matrix * vec4(v_position, 1.0);
|
||||
intensity.y = LIGHT_TOP_SPECULAR * pow(max(dot(-normalize(position.xyz), reflect(-LIGHT_TOP_DIR, eye_normal)), 0.0), LIGHT_TOP_SHININESS);
|
||||
|
||||
// Perform the same lighting calculation for the 2nd light source (no specular applied).
|
||||
NdotL = max(dot(eye_normal, LIGHT_FRONT_DIR), 0.0);
|
||||
intensity.x += NdotL * LIGHT_FRONT_DIFFUSE;
|
||||
|
||||
// Point in homogenous coordinates.
|
||||
world_pos = volume_world_matrix * vec4(v_position, 1.0);
|
||||
|
||||
// z component of normal vector in world coordinate used for slope shading
|
||||
world_normal_z = slope.actived ? (normalize(slope.volume_world_normal_matrix * v_normal)).z : 0.0;
|
||||
|
||||
gl_Position = projection_matrix * position;
|
||||
// Fill in the scalars for fragment shader clipping. Fragments with any of these components lower than zero are discarded.
|
||||
clipping_planes_dots = vec3(dot(world_pos, clipping_plane), world_pos.z - z_range.x, z_range.y - world_pos.z);
|
||||
color_clip_plane_dot = dot(world_pos, color_clip_plane);
|
||||
}
|
||||
12
resources/shaders/110/gouraud_light.fs
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12
resources/shaders/110/gouraud_light.fs
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||||
#version 110
|
||||
|
||||
uniform vec4 uniform_color;
|
||||
uniform float emission_factor;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
|
||||
void main()
|
||||
{
|
||||
gl_FragColor = vec4(vec3(intensity.y) + uniform_color.rgb * (intensity.x + emission_factor), uniform_color.a);
|
||||
}
|
||||
45
resources/shaders/110/gouraud_light.vs
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45
resources/shaders/110/gouraud_light.vs
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|
||||
#version 110
|
||||
|
||||
#define INTENSITY_CORRECTION 0.6
|
||||
|
||||
// normalized values for (-0.6/1.31, 0.6/1.31, 1./1.31)
|
||||
const vec3 LIGHT_TOP_DIR = vec3(-0.4574957, 0.4574957, 0.7624929);
|
||||
#define LIGHT_TOP_DIFFUSE (0.8 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SPECULAR (0.125 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SHININESS 20.0
|
||||
|
||||
// normalized values for (1./1.43, 0.2/1.43, 1./1.43)
|
||||
const vec3 LIGHT_FRONT_DIR = vec3(0.6985074, 0.1397015, 0.6985074);
|
||||
#define LIGHT_FRONT_DIFFUSE (0.3 * INTENSITY_CORRECTION)
|
||||
|
||||
#define INTENSITY_AMBIENT 0.3
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
uniform mat3 view_normal_matrix;
|
||||
|
||||
attribute vec3 v_position;
|
||||
attribute vec3 v_normal;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
|
||||
void main()
|
||||
{
|
||||
// First transform the normal into camera space and normalize the result.
|
||||
vec3 normal = normalize(view_normal_matrix * v_normal);
|
||||
|
||||
// Compute the cos of the angle between the normal and lights direction. The light is directional so the direction is constant for every vertex.
|
||||
// Since these two are normalized the cosine is the dot product. We also need to clamp the result to the [0,1] range.
|
||||
float NdotL = max(dot(normal, LIGHT_TOP_DIR), 0.0);
|
||||
|
||||
intensity.x = INTENSITY_AMBIENT + NdotL * LIGHT_TOP_DIFFUSE;
|
||||
vec4 position = view_model_matrix * vec4(v_position, 1.0);
|
||||
intensity.y = LIGHT_TOP_SPECULAR * pow(max(dot(-normalize(position.xyz), reflect(-LIGHT_TOP_DIR, normal)), 0.0), LIGHT_TOP_SHININESS);
|
||||
|
||||
// Perform the same lighting calculation for the 2nd light source (no specular applied).
|
||||
NdotL = max(dot(normal, LIGHT_FRONT_DIR), 0.0);
|
||||
intensity.x += NdotL * LIGHT_FRONT_DIFFUSE;
|
||||
|
||||
gl_Position = projection_matrix * position;
|
||||
}
|
||||
12
resources/shaders/110/gouraud_light_instanced.fs
Normal file
12
resources/shaders/110/gouraud_light_instanced.fs
Normal file
@@ -0,0 +1,12 @@
|
||||
#version 110
|
||||
|
||||
uniform vec4 uniform_color;
|
||||
uniform float emission_factor;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
|
||||
void main()
|
||||
{
|
||||
gl_FragColor = vec4(vec3(intensity.y) + uniform_color.rgb * (intensity.x + emission_factor), uniform_color.a);
|
||||
}
|
||||
50
resources/shaders/110/gouraud_light_instanced.vs
Normal file
50
resources/shaders/110/gouraud_light_instanced.vs
Normal file
@@ -0,0 +1,50 @@
|
||||
#version 110
|
||||
|
||||
#define INTENSITY_CORRECTION 0.6
|
||||
|
||||
// normalized values for (-0.6/1.31, 0.6/1.31, 1./1.31)
|
||||
const vec3 LIGHT_TOP_DIR = vec3(-0.4574957, 0.4574957, 0.7624929);
|
||||
#define LIGHT_TOP_DIFFUSE (0.8 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SPECULAR (0.125 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SHININESS 20.0
|
||||
|
||||
// normalized values for (1./1.43, 0.2/1.43, 1./1.43)
|
||||
const vec3 LIGHT_FRONT_DIR = vec3(0.6985074, 0.1397015, 0.6985074);
|
||||
#define LIGHT_FRONT_DIFFUSE (0.3 * INTENSITY_CORRECTION)
|
||||
|
||||
#define INTENSITY_AMBIENT 0.3
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
uniform mat3 view_normal_matrix;
|
||||
|
||||
// vertex attributes
|
||||
attribute vec3 v_position;
|
||||
attribute vec3 v_normal;
|
||||
// instance attributes
|
||||
attribute vec3 i_offset;
|
||||
attribute vec2 i_scales;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
|
||||
void main()
|
||||
{
|
||||
// First transform the normal into camera space and normalize the result.
|
||||
vec3 eye_normal = normalize(view_normal_matrix * v_normal);
|
||||
|
||||
// Compute the cos of the angle between the normal and lights direction. The light is directional so the direction is constant for every vertex.
|
||||
// Since these two are normalized the cosine is the dot product. We also need to clamp the result to the [0,1] range.
|
||||
float NdotL = max(dot(eye_normal, LIGHT_TOP_DIR), 0.0);
|
||||
|
||||
intensity.x = INTENSITY_AMBIENT + NdotL * LIGHT_TOP_DIFFUSE;
|
||||
vec4 world_position = vec4(v_position * vec3(vec2(1.5 * i_scales.x), 1.5 * i_scales.y) + i_offset - vec3(0.0, 0.0, 0.5 * i_scales.y), 1.0);
|
||||
vec4 eye_position = view_model_matrix * world_position;
|
||||
intensity.y = LIGHT_TOP_SPECULAR * pow(max(dot(-normalize(eye_position.xyz), reflect(-LIGHT_TOP_DIR, eye_normal)), 0.0), LIGHT_TOP_SHININESS);
|
||||
|
||||
// Perform the same lighting calculation for the 2nd light source (no specular applied).
|
||||
NdotL = max(dot(eye_normal, LIGHT_FRONT_DIR), 0.0);
|
||||
intensity.x += NdotL * LIGHT_FRONT_DIFFUSE;
|
||||
|
||||
gl_Position = projection_matrix * eye_position;
|
||||
}
|
||||
43
resources/shaders/110/hotbed.fs
Normal file
43
resources/shaders/110/hotbed.fs
Normal file
@@ -0,0 +1,43 @@
|
||||
#version 110
|
||||
|
||||
const vec3 ZERO = vec3(0.0, 0.0, 0.0);
|
||||
const vec3 WHITE = vec3(1.0, 1.0, 1.0);
|
||||
struct PrintVolumeDetection
|
||||
{
|
||||
// 0 = rectangle, 1 = circle, 2 = custom, 3 = invalid
|
||||
int type;
|
||||
// type = 0 (rectangle):
|
||||
// x = min.x, y = min.y, z = max.x, w = max.y
|
||||
// type = 1 (circle):
|
||||
// x = center.x, y = center.y, z = radius
|
||||
vec4 xy_data;
|
||||
// x = min z, y = max z
|
||||
vec2 z_data;
|
||||
};
|
||||
|
||||
uniform vec4 uniform_color;
|
||||
uniform float emission_factor;
|
||||
uniform PrintVolumeDetection print_volume;
|
||||
// x = diffuse, y = specular;
|
||||
varying vec2 intensity;
|
||||
varying vec4 world_pos;
|
||||
void main()
|
||||
{
|
||||
vec3 color = uniform_color.rgb;
|
||||
float alpha = uniform_color.a;
|
||||
// if the fragment is outside the print volume -> use darker color
|
||||
vec3 pv_check_min = ZERO;
|
||||
vec3 pv_check_max = ZERO;
|
||||
if (print_volume.type == 0) {// rectangle
|
||||
pv_check_min = world_pos.xyz - vec3(print_volume.xy_data.x, print_volume.xy_data.y, print_volume.z_data.x);
|
||||
pv_check_max = world_pos.xyz - vec3(print_volume.xy_data.z, print_volume.xy_data.w, print_volume.z_data.y);
|
||||
}
|
||||
else if (print_volume.type == 1) {// circle
|
||||
float delta_radius = print_volume.xy_data.z - distance(world_pos.xy, print_volume.xy_data.xy);
|
||||
pv_check_min = vec3(delta_radius, 0.0, world_pos.z - print_volume.z_data.x);
|
||||
pv_check_max = vec3(0.0, 0.0, world_pos.z - print_volume.z_data.y);
|
||||
}
|
||||
color = (any(lessThan(pv_check_min, ZERO)) || any(greaterThan(pv_check_max, ZERO))) ? mix(color, WHITE, 0.3333) : color;
|
||||
//gl_FragColor = vec4(vec3(intensity.y) + color * intensity.x, alpha);
|
||||
gl_FragColor = vec4(vec3(intensity.y) + color * (intensity.x + emission_factor), alpha);
|
||||
}
|
||||
47
resources/shaders/110/hotbed.vs
Normal file
47
resources/shaders/110/hotbed.vs
Normal file
@@ -0,0 +1,47 @@
|
||||
#version 110
|
||||
|
||||
#define INTENSITY_CORRECTION 0.6
|
||||
|
||||
// normalized values for (-0.6/1.31, 0.6/1.31, 1./1.31)
|
||||
const vec3 LIGHT_TOP_DIR = vec3(-0.4574957, 0.4574957, 0.7624929);
|
||||
#define LIGHT_TOP_DIFFUSE (0.8 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SPECULAR (0.125 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SHININESS 20.0
|
||||
|
||||
// normalized values for (1./1.43, 0.2/1.43, 1./1.43)
|
||||
const vec3 LIGHT_FRONT_DIR = vec3(0.6985074, 0.1397015, 0.6985074);
|
||||
#define LIGHT_FRONT_DIFFUSE (0.3 * INTENSITY_CORRECTION)
|
||||
|
||||
#define INTENSITY_AMBIENT 0.3
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
uniform mat3 view_normal_matrix;
|
||||
uniform mat4 volume_world_matrix;
|
||||
|
||||
attribute vec3 v_position;
|
||||
attribute vec3 v_normal;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
varying vec4 world_pos;
|
||||
void main()
|
||||
{
|
||||
// First transform the normal into camera space and normalize the result.
|
||||
vec3 normal = normalize(view_normal_matrix * v_normal);
|
||||
|
||||
// Compute the cos of the angle between the normal and lights direction. The light is directional so the direction is constant for every vertex.
|
||||
// Since these two are normalized the cosine is the dot product. We also need to clamp the result to the [0,1] range.
|
||||
float NdotL = max(dot(normal, LIGHT_TOP_DIR), 0.0);
|
||||
|
||||
intensity.x = INTENSITY_AMBIENT + NdotL * LIGHT_TOP_DIFFUSE;
|
||||
world_pos = volume_world_matrix * vec4(v_position, 1.0);
|
||||
vec4 position = view_model_matrix * vec4(v_position, 1.0);
|
||||
intensity.y = LIGHT_TOP_SPECULAR * pow(max(dot(-normalize(position.xyz), reflect(-LIGHT_TOP_DIR, normal)), 0.0), LIGHT_TOP_SHININESS);
|
||||
|
||||
// Perform the same lighting calculation for the 2nd light source (no specular applied).
|
||||
NdotL = max(dot(normal, LIGHT_FRONT_DIR), 0.0);
|
||||
intensity.x += NdotL * LIGHT_FRONT_DIFFUSE;
|
||||
|
||||
gl_Position = projection_matrix * position;
|
||||
}
|
||||
11
resources/shaders/110/imgui.fs
Normal file
11
resources/shaders/110/imgui.fs
Normal file
@@ -0,0 +1,11 @@
|
||||
#version 110
|
||||
|
||||
uniform sampler2D Texture;
|
||||
|
||||
varying vec2 Frag_UV;
|
||||
varying vec4 Frag_Color;
|
||||
|
||||
void main()
|
||||
{
|
||||
gl_FragColor = Frag_Color * texture2D(Texture, Frag_UV.st);
|
||||
}
|
||||
17
resources/shaders/110/imgui.vs
Normal file
17
resources/shaders/110/imgui.vs
Normal file
@@ -0,0 +1,17 @@
|
||||
#version 110
|
||||
|
||||
uniform mat4 ProjMtx;
|
||||
|
||||
attribute vec2 Position;
|
||||
attribute vec2 UV;
|
||||
attribute vec4 Color;
|
||||
|
||||
varying vec2 Frag_UV;
|
||||
varying vec4 Frag_Color;
|
||||
|
||||
void main()
|
||||
{
|
||||
Frag_UV = UV;
|
||||
Frag_Color = Color;
|
||||
gl_Position = ProjMtx * vec4(Position.xy, 0.0, 1.0);
|
||||
}
|
||||
8
resources/shaders/110/mm_contour.fs
Normal file
8
resources/shaders/110/mm_contour.fs
Normal file
@@ -0,0 +1,8 @@
|
||||
#version 110
|
||||
|
||||
uniform vec4 uniform_color;
|
||||
|
||||
void main()
|
||||
{
|
||||
gl_FragColor = uniform_color;
|
||||
}
|
||||
15
resources/shaders/110/mm_contour.vs
Normal file
15
resources/shaders/110/mm_contour.vs
Normal file
@@ -0,0 +1,15 @@
|
||||
#version 110
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
uniform float offset;
|
||||
|
||||
attribute vec3 v_position;
|
||||
|
||||
void main()
|
||||
{
|
||||
// Add small epsilon to z to solve z-fighting between painted triangles and contour lines.
|
||||
vec4 clip_position = projection_matrix * view_model_matrix * vec4(v_position, 1.0);
|
||||
clip_position.z -= offset * abs(clip_position.w);
|
||||
gl_Position = clip_position;
|
||||
}
|
||||
119
resources/shaders/110/mm_gouraud.fs
Normal file
119
resources/shaders/110/mm_gouraud.fs
Normal file
@@ -0,0 +1,119 @@
|
||||
#version 110
|
||||
|
||||
#define INTENSITY_CORRECTION 0.6
|
||||
|
||||
// normalized values for (-0.6/1.31, 0.6/1.31, 1./1.31)
|
||||
const vec3 LIGHT_TOP_DIR = vec3(-0.4574957, 0.4574957, 0.7624929);
|
||||
#define LIGHT_TOP_DIFFUSE (0.8 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SPECULAR (0.125 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SHININESS 20.0
|
||||
|
||||
// normalized values for (1./1.43, 0.2/1.43, 1./1.43)
|
||||
const vec3 LIGHT_FRONT_DIR = vec3(0.6985074, 0.1397015, 0.6985074);
|
||||
#define LIGHT_FRONT_DIFFUSE (0.3 * INTENSITY_CORRECTION)
|
||||
|
||||
#define INTENSITY_AMBIENT 0.3
|
||||
|
||||
const vec3 ZERO = vec3(0.0, 0.0, 0.0);
|
||||
const float EPSILON = 0.0001;
|
||||
//BBS: add grey and orange
|
||||
//const vec3 GREY = vec3(0.9, 0.9, 0.9);
|
||||
const vec3 ORANGE = vec3(0.8, 0.4, 0.0);
|
||||
const vec3 LightRed = vec3(0.78, 0.0, 0.0);
|
||||
const vec3 LightBlue = vec3(0.73, 1.0, 1.0);
|
||||
uniform vec4 uniform_color;
|
||||
|
||||
uniform bool volume_mirrored;
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat3 view_normal_matrix;
|
||||
|
||||
varying vec3 clipping_planes_dots;
|
||||
varying vec4 model_pos;
|
||||
varying vec4 world_pos;
|
||||
|
||||
struct SlopeDetection
|
||||
{
|
||||
bool actived;
|
||||
float normal_z;
|
||||
mat3 volume_world_normal_matrix;
|
||||
};
|
||||
uniform SlopeDetection slope;
|
||||
|
||||
//BBS: add wireframe logic
|
||||
varying vec3 barycentric_coordinates;
|
||||
float edgeFactor(float lineWidth) {
|
||||
vec3 d = fwidth(barycentric_coordinates);
|
||||
vec3 a3 = smoothstep(vec3(0.0), d * lineWidth, barycentric_coordinates);
|
||||
return min(min(a3.x, a3.y), a3.z);
|
||||
}
|
||||
|
||||
vec3 wireframe(vec3 fill, vec3 stroke, float lineWidth) {
|
||||
return mix(stroke, fill, edgeFactor(lineWidth));
|
||||
//if (any(lessThan(barycentric_coordinates, vec3(0.005, 0.005, 0.005))))
|
||||
// return vec3(1.0, 0.0, 0.0);
|
||||
//else
|
||||
// return fill;
|
||||
}
|
||||
|
||||
vec3 getWireframeColor(vec3 fill) {
|
||||
float brightness = 0.2126 * fill.r + 0.7152 * fill.g + 0.0722 * fill.b;
|
||||
return (brightness > 0.75) ? vec3(0.11, 0.165, 0.208) : vec3(0.988, 0.988, 0.988);
|
||||
}
|
||||
uniform bool show_wireframe;
|
||||
|
||||
void main()
|
||||
{
|
||||
if (any(lessThan(clipping_planes_dots, ZERO)))
|
||||
discard;
|
||||
vec3 color = uniform_color.rgb;
|
||||
float alpha = uniform_color.a;
|
||||
|
||||
vec3 triangle_normal = normalize(cross(dFdx(model_pos.xyz), dFdy(model_pos.xyz)));
|
||||
#ifdef FLIP_TRIANGLE_NORMALS
|
||||
triangle_normal = -triangle_normal;
|
||||
#endif
|
||||
|
||||
if (volume_mirrored)
|
||||
triangle_normal = -triangle_normal;
|
||||
|
||||
vec3 transformed_normal = normalize(slope.volume_world_normal_matrix * triangle_normal);
|
||||
|
||||
if (slope.actived) {
|
||||
if(world_pos.z<0.1&&world_pos.z>-0.1)
|
||||
{
|
||||
color = LightBlue;
|
||||
alpha = 1.0;
|
||||
}
|
||||
else if( transformed_normal.z < slope.normal_z - EPSILON)
|
||||
{
|
||||
color = color * 0.5 + LightRed * 0.5;
|
||||
alpha = 1.0;
|
||||
}
|
||||
}
|
||||
// First transform the normal into camera space and normalize the result.
|
||||
vec3 eye_normal = normalize(view_normal_matrix * triangle_normal);
|
||||
|
||||
// Compute the cos of the angle between the normal and lights direction. The light is directional so the direction is constant for every vertex.
|
||||
// Since these two are normalized the cosine is the dot product. We also need to clamp the result to the [0,1] range.
|
||||
float NdotL = max(dot(eye_normal, LIGHT_TOP_DIR), 0.0);
|
||||
|
||||
// x = diffuse, y = specular;
|
||||
vec2 intensity = vec2(0.0);
|
||||
intensity.x = INTENSITY_AMBIENT + NdotL * LIGHT_TOP_DIFFUSE;
|
||||
vec3 position = (view_model_matrix * model_pos).xyz;
|
||||
intensity.y = LIGHT_TOP_SPECULAR * pow(max(dot(-normalize(position), reflect(-LIGHT_TOP_DIR, eye_normal)), 0.0), LIGHT_TOP_SHININESS);
|
||||
|
||||
// Perform the same lighting calculation for the 2nd light source (no specular applied).
|
||||
NdotL = max(dot(eye_normal, LIGHT_FRONT_DIR), 0.0);
|
||||
intensity.x += NdotL * LIGHT_FRONT_DIFFUSE;
|
||||
|
||||
if (show_wireframe) {
|
||||
vec3 wireframeColor = show_wireframe ? getWireframeColor(color) : color;
|
||||
vec3 triangleColor = wireframe(color, wireframeColor, 1.0);
|
||||
gl_FragColor = vec4(vec3(intensity.y) + triangleColor * intensity.x, alpha);
|
||||
}
|
||||
else {
|
||||
gl_FragColor = vec4(vec3(intensity.y) + color * intensity.x, alpha);
|
||||
}
|
||||
}
|
||||
41
resources/shaders/110/mm_gouraud.vs
Normal file
41
resources/shaders/110/mm_gouraud.vs
Normal file
@@ -0,0 +1,41 @@
|
||||
#version 110
|
||||
|
||||
const vec3 ZERO = vec3(0.0, 0.0, 0.0);
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
|
||||
uniform mat4 volume_world_matrix;
|
||||
// Clipping plane, x = min z, y = max z. Used by the FFF and SLA previews to clip with a top / bottom plane.
|
||||
uniform vec2 z_range;
|
||||
// Clipping plane - general orientation. Used by the SLA gizmo.
|
||||
uniform vec4 clipping_plane;
|
||||
|
||||
attribute vec3 v_position;
|
||||
attribute vec3 v_barycentric;
|
||||
|
||||
varying vec3 clipping_planes_dots;
|
||||
varying vec4 model_pos;
|
||||
varying vec4 world_pos;
|
||||
varying vec3 barycentric_coordinates;
|
||||
|
||||
struct SlopeDetection
|
||||
{
|
||||
bool actived;
|
||||
float normal_z;
|
||||
mat3 volume_world_normal_matrix;
|
||||
};
|
||||
uniform SlopeDetection slope;
|
||||
void main()
|
||||
{
|
||||
model_pos = vec4(v_position, 1.0);
|
||||
// Point in homogenous coordinates.
|
||||
world_pos = volume_world_matrix * model_pos;
|
||||
|
||||
gl_Position = projection_matrix * view_model_matrix * model_pos;
|
||||
// Fill in the scalars for fragment shader clipping. Fragments with any of these components lower than zero are discarded.
|
||||
clipping_planes_dots = vec3(dot(world_pos, clipping_plane), world_pos.z - z_range.x, z_range.y - world_pos.z);
|
||||
|
||||
//compute the Barycentric Coordinates
|
||||
barycentric_coordinates = v_barycentric;
|
||||
}
|
||||
34
resources/shaders/110/printbed.fs
Normal file
34
resources/shaders/110/printbed.fs
Normal file
@@ -0,0 +1,34 @@
|
||||
#version 110
|
||||
|
||||
const vec3 back_color_dark = vec3(0.235, 0.235, 0.235);
|
||||
const vec3 back_color_light = vec3(0.365, 0.365, 0.365);
|
||||
|
||||
uniform sampler2D texture;
|
||||
uniform bool transparent_background;
|
||||
uniform bool svg_source;
|
||||
|
||||
varying vec2 tex_coord;
|
||||
|
||||
vec4 svg_color()
|
||||
{
|
||||
// takes foreground from texture
|
||||
vec4 fore_color = texture2D(texture, tex_coord);
|
||||
|
||||
// calculates radial gradient
|
||||
vec3 back_color = vec3(mix(back_color_light, back_color_dark, smoothstep(0.0, 0.5, length(abs(tex_coord.xy) - vec2(0.5)))));
|
||||
|
||||
// blends foreground with background
|
||||
return vec4(mix(back_color, fore_color.rgb, fore_color.a), transparent_background ? fore_color.a : 1.0);
|
||||
}
|
||||
|
||||
vec4 non_svg_color()
|
||||
{
|
||||
// takes foreground from texture
|
||||
vec4 color = texture2D(texture, tex_coord);
|
||||
return vec4(color.rgb, transparent_background ? color.a * 0.25 : color.a);
|
||||
}
|
||||
|
||||
void main()
|
||||
{
|
||||
gl_FragColor = svg_source ? svg_color() : non_svg_color();
|
||||
}
|
||||
15
resources/shaders/110/printbed.vs
Normal file
15
resources/shaders/110/printbed.vs
Normal file
@@ -0,0 +1,15 @@
|
||||
#version 110
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
|
||||
attribute vec3 v_position;
|
||||
attribute vec2 v_tex_coord;
|
||||
|
||||
varying vec2 tex_coord;
|
||||
|
||||
void main()
|
||||
{
|
||||
tex_coord = v_tex_coord;
|
||||
gl_Position = projection_matrix * view_model_matrix * vec4(v_position, 1.0);
|
||||
}
|
||||
21
resources/shaders/110/thumbnail.fs
Normal file
21
resources/shaders/110/thumbnail.fs
Normal file
@@ -0,0 +1,21 @@
|
||||
#version 110
|
||||
|
||||
uniform bool ban_light;
|
||||
uniform vec4 uniform_color;
|
||||
uniform float emission_factor;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
//varying float drop;
|
||||
varying vec4 world_pos;
|
||||
|
||||
void main()
|
||||
{
|
||||
if (world_pos.z < 0.0)
|
||||
discard;
|
||||
if(ban_light){
|
||||
gl_FragColor = uniform_color;
|
||||
} else{
|
||||
gl_FragColor = vec4(vec3(intensity.y) + uniform_color.rgb * (intensity.x + emission_factor), uniform_color.a);
|
||||
}
|
||||
}
|
||||
50
resources/shaders/110/thumbnail.vs
Normal file
50
resources/shaders/110/thumbnail.vs
Normal file
@@ -0,0 +1,50 @@
|
||||
#version 110
|
||||
|
||||
#define INTENSITY_CORRECTION 0.6
|
||||
|
||||
// normalized values for (-0.6/1.31, 0.6/1.31, 1./1.31)
|
||||
const vec3 LIGHT_TOP_DIR = vec3(-0.4574957, 0.4574957, 0.7624929);
|
||||
#define LIGHT_TOP_DIFFUSE (0.8 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SPECULAR (0.125 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SHININESS 20.0
|
||||
|
||||
// normalized values for (1./1.43, 0.2/1.43, 1./1.43)
|
||||
const vec3 LIGHT_FRONT_DIR = vec3(0.6985074, 0.1397015, 0.6985074);
|
||||
#define LIGHT_FRONT_DIFFUSE (0.3 * INTENSITY_CORRECTION)
|
||||
|
||||
#define INTENSITY_AMBIENT 0.3
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
uniform mat3 view_normal_matrix;
|
||||
uniform mat4 volume_world_matrix;
|
||||
|
||||
attribute vec3 v_position;
|
||||
attribute vec3 v_normal;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
varying vec4 world_pos;
|
||||
|
||||
void main()
|
||||
{
|
||||
// First transform the normal into camera space and normalize the result.
|
||||
vec3 normal = normalize(view_normal_matrix * v_normal);
|
||||
|
||||
// Compute the cos of the angle between the normal and lights direction. The light is directional so the direction is constant for every vertex.
|
||||
// Since these two are normalized the cosine is the dot product. We also need to clamp the result to the [0,1] range.
|
||||
float NdotL = max(dot(normal, LIGHT_TOP_DIR), 0.0);
|
||||
|
||||
intensity.x = INTENSITY_AMBIENT + NdotL * LIGHT_TOP_DIFFUSE;
|
||||
vec4 position = view_model_matrix * vec4(v_position, 1.0);
|
||||
intensity.y = LIGHT_TOP_SPECULAR * pow(max(dot(-normalize(position.xyz), reflect(-LIGHT_TOP_DIR, normal)), 0.0), LIGHT_TOP_SHININESS);
|
||||
|
||||
// Perform the same lighting calculation for the 2nd light source (no specular applied).
|
||||
NdotL = max(dot(normal, LIGHT_FRONT_DIR), 0.0);
|
||||
intensity.x += NdotL * LIGHT_FRONT_DIFFUSE;
|
||||
|
||||
// Point in homogenous coordinates.
|
||||
world_pos = volume_world_matrix * vec4(v_position, 1.0);
|
||||
|
||||
gl_Position = projection_matrix * position;
|
||||
}
|
||||
41
resources/shaders/110/variable_layer_height.fs
Normal file
41
resources/shaders/110/variable_layer_height.fs
Normal file
@@ -0,0 +1,41 @@
|
||||
#version 110
|
||||
|
||||
#define M_PI 3.1415926535897932384626433832795
|
||||
|
||||
// 2D texture (1D texture split by the rows) of color along the object Z axis.
|
||||
uniform sampler2D z_texture;
|
||||
// Scaling from the Z texture rows coordinate to the normalized texture row coordinate.
|
||||
uniform float z_to_texture_row;
|
||||
uniform float z_texture_row_to_normalized;
|
||||
uniform float z_cursor;
|
||||
uniform float z_cursor_band_width;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
|
||||
varying float object_z;
|
||||
|
||||
void main()
|
||||
{
|
||||
float object_z_row = z_to_texture_row * object_z;
|
||||
// Index of the row in the texture.
|
||||
float z_texture_row = floor(object_z_row);
|
||||
// Normalized coordinate from 0. to 1.
|
||||
float z_texture_col = object_z_row - z_texture_row;
|
||||
float z_blend = 0.25 * cos(min(M_PI, abs(M_PI * (object_z - z_cursor) * 1.8 / z_cursor_band_width))) + 0.25;
|
||||
// Calculate level of detail from the object Z coordinate.
|
||||
// This makes the slowly sloping surfaces to be shown with high detail (with stripes),
|
||||
// and the vertical surfaces to be shown with low detail (no stripes)
|
||||
float z_in_cells = object_z_row * 190.;
|
||||
// Gradient of Z projected on the screen.
|
||||
float dx_vtc = dFdx(z_in_cells);
|
||||
float dy_vtc = dFdy(z_in_cells);
|
||||
float lod = clamp(0.5 * log2(max(dx_vtc * dx_vtc, dy_vtc * dy_vtc)), 0., 1.);
|
||||
// Sample the Z texture. Texture coordinates are normalized to <0, 1>.
|
||||
vec4 color = vec4(0.25, 0.25, 0.25, 1.0);
|
||||
if (z_texture_row >= 0.0)
|
||||
color = mix(texture2D(z_texture, vec2(z_texture_col, z_texture_row_to_normalized * (z_texture_row + 0.5 )), -10000.),
|
||||
texture2D(z_texture, vec2(z_texture_col, z_texture_row_to_normalized * (z_texture_row * 2. + 1.)), 10000.), lod);
|
||||
// Mix the final color.
|
||||
gl_FragColor = vec4(vec3(intensity.y), 1.0) + intensity.x * mix(color, vec4(1.0, 1.0, 0.0, 1.0), z_blend);
|
||||
}
|
||||
60
resources/shaders/110/variable_layer_height.vs
Normal file
60
resources/shaders/110/variable_layer_height.vs
Normal file
@@ -0,0 +1,60 @@
|
||||
#version 110
|
||||
|
||||
#define INTENSITY_CORRECTION 0.6
|
||||
|
||||
const vec3 LIGHT_TOP_DIR = vec3(-0.4574957, 0.4574957, 0.7624929);
|
||||
#define LIGHT_TOP_DIFFUSE (0.8 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SPECULAR (0.125 * INTENSITY_CORRECTION)
|
||||
#define LIGHT_TOP_SHININESS 20.0
|
||||
|
||||
const vec3 LIGHT_FRONT_DIR = vec3(0.6985074, 0.1397015, 0.6985074);
|
||||
#define LIGHT_FRONT_DIFFUSE (0.3 * INTENSITY_CORRECTION)
|
||||
//#define LIGHT_FRONT_SPECULAR (0.0 * INTENSITY_CORRECTION)
|
||||
//#define LIGHT_FRONT_SHININESS 5.0
|
||||
|
||||
#define INTENSITY_AMBIENT 0.3
|
||||
|
||||
uniform mat4 view_model_matrix;
|
||||
uniform mat4 projection_matrix;
|
||||
uniform mat3 view_normal_matrix;
|
||||
uniform mat4 volume_world_matrix;
|
||||
uniform float object_max_z;
|
||||
|
||||
attribute vec3 v_position;
|
||||
attribute vec3 v_normal;
|
||||
attribute vec2 v_tex_coord;
|
||||
|
||||
// x = tainted, y = specular;
|
||||
varying vec2 intensity;
|
||||
|
||||
varying float object_z;
|
||||
|
||||
void main()
|
||||
{
|
||||
// =====================================================
|
||||
// NOTE:
|
||||
// when object_max_z > 0.0 we are rendering the overlay
|
||||
// when object_max_z == 0.0 we are rendering the volumes
|
||||
// =====================================================
|
||||
|
||||
// First transform the normal into camera space and normalize the result.
|
||||
vec3 normal = (object_max_z > 0.0) ? vec3(0.0, 0.0, 1.0) : normalize(view_normal_matrix * v_normal);
|
||||
|
||||
// Compute the cos of the angle between the normal and lights direction. The light is directional so the direction is constant for every vertex.
|
||||
// Since these two are normalized the cosine is the dot product. We also need to clamp the result to the [0,1] range.
|
||||
float NdotL = max(dot(normal, LIGHT_TOP_DIR), 0.0);
|
||||
|
||||
intensity.x = INTENSITY_AMBIENT + NdotL * LIGHT_TOP_DIFFUSE;
|
||||
vec4 position = view_model_matrix * vec4(v_position, 1.0);
|
||||
intensity.y = LIGHT_TOP_SPECULAR * pow(max(dot(-normalize(position.xyz), reflect(-LIGHT_TOP_DIR, normal)), 0.0), LIGHT_TOP_SHININESS);
|
||||
|
||||
// Perform the same lighting calculation for the 2nd light source (no specular)
|
||||
NdotL = max(dot(normal, LIGHT_FRONT_DIR), 0.0);
|
||||
|
||||
intensity.x += NdotL * LIGHT_FRONT_DIFFUSE;
|
||||
|
||||
// Scaled to widths of the Z texture.
|
||||
object_z = (object_max_z > 0.0) ? object_max_z * v_tex_coord.y : (volume_world_matrix * vec4(v_position, 1.0)).z;
|
||||
|
||||
gl_Position = projection_matrix * position;
|
||||
}
|
||||
Reference in New Issue
Block a user