remove old shaders

This commit is contained in:
Sven Balzer
2026-07-03 14:23:55 +02:00
parent e7ad1d36ba
commit 18c1b3639c
7 changed files with 0 additions and 215 deletions
-2
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@@ -92,7 +92,6 @@ add_subdirectory(libs/tracy)
add_executable(mikemon add_executable(mikemon
src/smol-atlas.cpp src/smol-atlas.cpp
src/change_directory.c src/change_directory.c
src/shaders/shaders.c
src/renderer_wgpu.c src/renderer_wgpu.c
src/main.cpp src/main.cpp
) )
@@ -111,7 +110,6 @@ target_link_libraries(mikemon
add_executable(mikemon-sdlgpu add_executable(mikemon-sdlgpu
src/smol-atlas.cpp src/smol-atlas.cpp
src/change_directory.c src/change_directory.c
src/shaders/shaders.c
src/renderer_sdlgpu.c src/renderer_sdlgpu.c
src/main.cpp src/main.cpp
) )
-2
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@@ -18,8 +18,6 @@
#include "stb_image.h" #include "stb_image.h"
#include "change_directory.h" #include "change_directory.h"
#include "shaders/shaders.h"
#pragma clang diagnostic ignored "-Waddress-of-temporary" #pragma clang diagnostic ignored "-Waddress-of-temporary"
using namespace glm; using namespace glm;
-54
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@@ -1,54 +0,0 @@
struct VertexShaderInput {
// Per Vertex
@builtin(vertex_index) vertex_index: u32,
@location(0) pos: vec3<f32>,
@location(1) uv: vec2<f32>,
// Per Instance
@location(2) pos_size: vec4<f32>,
};
struct VertexShaderOutput {
@builtin(position) pos: vec4<f32>,
@location(0) uv: vec2<f32>,
};
struct FragmentShaderOutput {
@location(0) color: vec4<f32>,
};
@group(0) @binding(0) var<uniform> view_projection_matrix: mat4x4<f32>;
@vertex fn main_vertex(input: VertexShaderInput) -> VertexShaderOutput {
var output: VertexShaderOutput;
output.pos = vec4<f32>(input.pos_size.xy + input.pos.xy, 0, 1) * view_projection_matrix;
output.uv = input.uv;
return output;
}
@group(1) @binding(0) var texture1: texture_2d<f32>;
@group(1) @binding(1) var sampler1: sampler;
@group(1) @binding(2) var<uniform> tint: vec3<f32>;
@fragment fn main_fragment(input: VertexShaderOutput) -> FragmentShaderOutput {
var output: FragmentShaderOutput;
output.color = pixel_art_sample(texture1, sampler1, input.uv);
output.color = vec4<f32>(output.color.rgb * tint.rgb, output.color.a);
return output;
}
fn pixel_art_sample(input_texture: texture_2d<f32>, input_sampler: sampler, input_uv: vec2<f32>) -> vec4<f32> {
let dimensions = vec2<f32>(textureDimensions(input_texture));
let texture_uv = input_uv * dimensions.xy;
let sample_uv = (floor(texture_uv) + min(fract(texture_uv) / fwidth(texture_uv), vec2<f32>(1.0, 1.0)) - 0.5) / dimensions.xy;
return textureSample(input_texture, input_sampler, sample_uv);
}
-55
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@@ -1,55 +0,0 @@
struct VertexShaderInput {
// Per Vertex
@builtin(vertex_index) vertex_index: u32,
@location(0) pos: vec3<f32>,
// Per Instance
@builtin(instance_index) instance_index: u32,
};
struct VertexShaderOutput {
@builtin(position) pos: vec4<f32>,
@location(1) selected: i32,
};
struct FragmentShaderOutput {
@location(0) color: vec4<f32>,
};
struct Per_Frame_Data {
drag_start: vec2<i32>,
mouse: vec2<i32>,
grid_offset: vec2<f32>,
grid_width: u32,
map_width: u32,
};
@group(0) @binding(0) var<uniform> view_projection_matrix: mat4x4<f32>;
@group(0) @binding(1) var<uniform> per_frame: Per_Frame_Data;
@vertex fn main_vertex(input: VertexShaderInput) -> VertexShaderOutput {
var output: VertexShaderOutput;
let tile_pos = vec2<f32>(f32(input.instance_index % per_frame.grid_width), f32(input.instance_index / per_frame.grid_width));
output.pos = vec4<f32>(tile_pos + per_frame.grid_offset + input.pos.xy, 0, 1) * view_projection_matrix;
let pos = vec2<i32>(tile_pos + round(per_frame.grid_offset));
let selection_min = min(per_frame.drag_start, per_frame.mouse);
let selection_max = max(per_frame.drag_start, per_frame.mouse);
output.selected = select(1, 0, all(pos >= selection_min) && all(pos <= selection_max));
return output;
}
const tint = vec4<f32>(1.0, 1.0, 1.0, 0.1);
const selected_tint = vec4<f32>(1.0, 0.0, 1.0, 1.0);
@fragment fn main_fragment(input: VertexShaderOutput) -> FragmentShaderOutput {
var output: FragmentShaderOutput;
output.color = select(selected_tint, tint, input.selected != 0);
return output;
}
-19
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@@ -1,19 +0,0 @@
#include <stddef.h>
static const char _WGSL_basic[] = {
#embed "basic.wgsl"
};
const char *WGSL_basic = _WGSL_basic;
size_t WGSL_basic_num_bytes = sizeof(_WGSL_basic);
static const char _WGSL_world[] = {
#embed "world.wgsl"
};
const char *WGSL_world = _WGSL_world;
size_t WGSL_world_num_bytes = sizeof(_WGSL_world);
static const char _WGSL_grid[] = {
#embed "grid.wgsl"
};
const char *WGSL_grid = _WGSL_grid;
size_t WGSL_grid_num_bytes = sizeof(_WGSL_grid);
-7
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@@ -1,7 +0,0 @@
#include <stddef.h>
#define SHADER(name) extern "C" size_t WGSL_##name##_num_bytes; extern "C" const char *WGSL_##name;
SHADER(basic)
SHADER(world)
SHADER(grid)
#undef SHADER
-76
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@@ -1,76 +0,0 @@
struct VertexShaderInput {
@builtin(vertex_index) vertex_index: u32,
@builtin(instance_index) instance_index: u32,
};
struct VertexShaderOutput {
@builtin(position) pos: vec4<f32>,
@location(0) uv: vec2<f32>,
@location(1) tile: u32,
};
struct FragmentShaderOutput {
@location(0) color: vec4<f32>,
};
struct Per_Frame_Data {
drag_start: vec2<i32>,
mouse: vec2<i32>,
grid_offset: vec2<f32>,
grid_width: u32,
map_width: u32,
};
@group(0) @binding(0) var<uniform> view_projection_matrix: mat4x4<f32>;
@group(0) @binding(1) var<uniform> per_frame: Per_Frame_Data;
@group(2) @binding(0) var map_texture: texture_2d<u32>;
@vertex fn main_vertex(input: VertexShaderInput) -> VertexShaderOutput {
var output: VertexShaderOutput;
let tile_pos = vec2<u32>(input.instance_index % per_frame.map_width, input.instance_index / per_frame.map_width);
output.tile = textureLoad(map_texture, tile_pos, 0).r;
switch (input.vertex_index) {
case 0: { output.pos = vec4<f32>(vec2<f32>(tile_pos) - vec2<f32>(0.5, 0.5) + vec2<f32>(-0.5, 0.5), 0, 1) * view_projection_matrix; output.uv = vec2<f32>(0, 0); }
case 1: { output.pos = vec4<f32>(vec2<f32>(tile_pos) - vec2<f32>(0.5, 0.5) + vec2<f32>(-0.5, -0.5), 0, 1) * view_projection_matrix; output.uv = vec2<f32>(0, 1); }
case 2: { output.pos = vec4<f32>(vec2<f32>(tile_pos) - vec2<f32>(0.5, 0.5) + vec2<f32>( 0.5, -0.5), 0, 1) * view_projection_matrix; output.uv = vec2<f32>(1, 1); }
case 3: { output.pos = vec4<f32>(vec2<f32>(tile_pos) - vec2<f32>(0.5, 0.5) + vec2<f32>(-0.5, 0.5), 0, 1) * view_projection_matrix; output.uv = vec2<f32>(0, 0); }
case 4: { output.pos = vec4<f32>(vec2<f32>(tile_pos) - vec2<f32>(0.5, 0.5) + vec2<f32>( 0.5, -0.5), 0, 1) * view_projection_matrix; output.uv = vec2<f32>(1, 1); }
case 5: { output.pos = vec4<f32>(vec2<f32>(tile_pos) - vec2<f32>(0.5, 0.5) + vec2<f32>( 0.5, 0.5), 0, 1) * view_projection_matrix; output.uv = vec2<f32>(1, 0); }
default: {}
}
return output;
}
@group(1) @binding(0) var texture1: texture_2d<f32>;
@group(1) @binding(1) var sampler1: sampler;
@group(1) @binding(2) var<uniform> tint: vec3<f32>;
@group(1) @binding(3) var<storage> tile_uvs: array<vec4<f32>>;
@fragment fn main_fragment(input: VertexShaderOutput) -> FragmentShaderOutput {
var output: FragmentShaderOutput;
output.color = pixel_art_sample(texture1, sampler1, input.uv, input.tile);
output.color = vec4<f32>(output.color.rgb * tint.rgb, output.color.a);
return output;
}
fn pixel_art_sample(input_texture: texture_2d<f32>, input_sampler: sampler, input_uv: vec2<f32>, tile: u32) -> vec4<f32> {
let dimensions = vec2<f32>(textureDimensions(input_texture));
let tile_uv = tile_uvs[tile];
let texture_uv = mix(tile_uv.xy, tile_uv.zw, input_uv);
let sample_uv = (floor(texture_uv) + saturate(fract(texture_uv) / fwidth(texture_uv)) - 0.5) / dimensions;
let uv = clamp(sample_uv, (tile_uv.xy + 0.5) / dimensions, (tile_uv.zw - 0.5) / dimensions);
return textureSample(input_texture, input_sampler, uv);
}