configure context

This commit is contained in:
Jérôme Bousquié
2026-07-03 21:11:43 +02:00
parent 3d6112833d
commit 4fd39d32c6
4 changed files with 114 additions and 1 deletions
+72
View File
@@ -0,0 +1,72 @@
# DRAFT — Frame Loop
## The "Frame Loop" (preparing the draw)
To display something, you must follow an immutable cycle called the **Frame Lifetime**. In your Renderer (or a dedicated method of Context), you will need to:
1. **Acquire a surface texture** — ask the surface for the Back Buffer texture (where you'll draw).
2. **Create a texture view** — WGPU doesn't draw directly on the texture, but on a "view" into that texture.
3. **Create a command encoder** — this is the notebook where you write your orders ("clear screen", "draw triangle", "finalize").
4. **Submit commands** — send this notebook to the GPU via the Queue.
### Why this is the logical next step
Because without this, your `configure` call does nothing. You've reserved space on the GPU; now you need to learn how to "grasp" it to work on it.
Here is the skeleton of this cycle that you should implement:
```rust
// In your Renderer (or Context)
pub fn render(&self) -> Result<(), WsgError> {
// 1. Acquire the texture to draw on
let frame = self.surface.get_current_texture()
.map_err(|_| WsgError::SurfaceIncompatible)?;
// 2. Create the view (the "channel" to the texture)
let view = frame.texture.create_view(&wgpu::TextureViewDescriptor::default());
// 3. Create the command encoder
let mut encoder = self.device.create_command_encoder(&wgpu::CommandEncoderDescriptor {
label: Some("Render Encoder"),
});
// --- This is where we'll draw later ---
{
let _render_pass = encoder.begin_render_pass(&wgpu::RenderPassDescriptor {
label: Some("Render Pass"),
color_attachments: &[Some(wgpu::RenderPassColorAttachment {
view: &view,
resolve_target: None,
ops: wgpu::Operations {
load: wgpu::LoadOp::Clear(wgpu::Color::BLUE), // Blue background for testing
store: wgpu::StoreOp::Store,
},
})],
depth_stencil_attachment: None,
timestamp_writes: None,
occlusion_query_set: None,
});
}
// 4. Submit and present
self.queue.submit(std::iter::once(encoder.finish()));
frame.present();
Ok(())
}
```
### Why this separation is vital
You'll notice that the `{ let _render_pass ... }` block is delimited by braces. This is very important in Rust: `render_pass` must be dropped before calling `encoder.finish()`. If you forget this, your program will crash because you'd be submitting orders while the "notebook" is still being written.
## Persistent vs. Per-Frame Resources
| Element | Lifetime | Why? |
|---------|----------|------|
| `SurfaceConfiguration` | Persistent | Only changes on resize |
| `RenderPipeline` | Persistent | Very expensive to create (shader compilation) |
| Buffers (Vertex/Index) | Persistent | Geometry data doesn't change every frame |
| `CommandEncoder` | Frame | Temporary "notebook" for frame commands |
| `TextureView` | Frame | View into the active Swapchain texture |
+1 -1
View File
@@ -6,7 +6,7 @@ edition = "2024"
[dependencies] [dependencies]
wsg-lib = { path = "../lib" } wsg-lib = { path = "../lib" }
pollster = "0.4.0" pollster = "0.4.0"
winit = "=0.29" # Pinned — matches lib/ version exactly winit = "0.29" # Pinned — matches lib/ version exactly
[[bin]] [[bin]]
name = "demo" # Un nom de binaire qui ne risque pas de conflits name = "demo" # Un nom de binaire qui ne risque pas de conflits
+36
View File
@@ -59,4 +59,40 @@ impl Context {
queue, queue,
}) })
} }
/// Configures the surface with a render format and alpha mode for rendering.
/// Inputs: adapter (GPU capabilities), width/height (surface resolution).
/// Returns Ok(()) on success or SurfaceIncompatible if no SRGB format + alpha mode exist.
/// Typically called by the renderer when window size changes.
pub fn configure(&self, adapter: &wgpu::Adapter, width: u32, height: u32) -> Result<(), WsgError> {
let caps = self.surface.get_capabilities(adapter);
// Prefer SRGB format for color accuracy; fall back to first available if none (technical point documented above).
let format = caps
.formats
.iter()
.copied()
.find(|f| f.is_srgb())
.or(caps.formats.first().copied())
.ok_or(WsgError::SurfaceIncompatible)?;
let alpha_mode = caps
.alpha_modes
.first()
.copied()
.ok_or(WsgError::SurfaceIncompatible)?;
let config = wgpu::SurfaceConfiguration {
usage: wgpu::TextureUsages::RENDER_ATTACHMENT,
format,
width,
height,
present_mode: wgpu::PresentMode::Fifo, // V-Sync activated
alpha_mode, // first supported alpha mode
view_formats: vec![],
color_space: wgpu::SurfaceColorSpace::Srgb,
desired_maximum_frame_latency: 2,
};
self.surface.configure(&self.device, &config);
Ok(())
}
} }
+5
View File
@@ -45,4 +45,9 @@ pub enum WsgError {
/// Caller: `Context::new()` after `Instance::create_surface()`. /// Caller: `Context::new()` after `Instance::create_surface()`.
#[error("Failed to create rendering surface")] #[error("Failed to create rendering surface")]
SurfaceCreation(wgpu::CreateSurfaceError), SurfaceCreation(wgpu::CreateSurfaceError),
/// The surface is incompatible — no SRGB texture format and alpha mode are available on the device.
/// Caller: `Context::configure()` when selecting a render format/alpha mode from surface capabilities.
#[error("No compatible render format or alpha mode found for the surface")]
SurfaceIncompatible,
} }