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https://github.com/bevyengine/bevy
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# Motivation When spawning entities into a scene, it is very common to create assets like meshes and materials and to add them via asset handles. A common setup might look like this: ```rust fn setup( mut commands: Commands, mut meshes: ResMut<Assets<Mesh>>, mut materials: ResMut<Assets<StandardMaterial>>, ) { commands.spawn(PbrBundle { mesh: meshes.add(Mesh::from(shape::Cube { size: 1.0 })), material: materials.add(StandardMaterial::from(Color::RED)), ..default() }); } ``` Let's take a closer look at the part that adds the assets using `add`. ```rust mesh: meshes.add(Mesh::from(shape::Cube { size: 1.0 })), material: materials.add(StandardMaterial::from(Color::RED)), ``` Here, "mesh" and "material" are both repeated three times. It's very explicit, but I find it to be a bit verbose. In addition to being more code to read and write, the extra characters can sometimes also lead to the code being formatted to span multiple lines even though the core task, adding e.g. a primitive mesh, is extremely simple. A way to address this is by using `.into()`: ```rust mesh: meshes.add(shape::Cube { size: 1.0 }.into()), material: materials.add(Color::RED.into()), ``` This is fine, but from the names and the type of `meshes`, we already know what the type should be. It's very clear that `Cube` should be turned into a `Mesh` because of the context it's used in. `.into()` is just seven characters, but it's so common that it quickly adds up and gets annoying. It would be nice if you could skip all of the conversion and let Bevy handle it for you: ```rust mesh: meshes.add(shape::Cube { size: 1.0 }), material: materials.add(Color::RED), ``` # Objective Make adding assets more ergonomic by making `Assets::add` take an `impl Into<A>` instead of `A`. ## Solution `Assets::add` now takes an `impl Into<A>` instead of `A`, so e.g. this works: ```rust commands.spawn(PbrBundle { mesh: meshes.add(shape::Cube { size: 1.0 }), material: materials.add(Color::RED), ..default() }); ``` I also changed all examples to use this API, which increases consistency as well because `Mesh::from` and `into` were being used arbitrarily even in the same file. This also gets rid of some lines of code because formatting is nicer. --- ## Changelog - `Assets::add` now takes an `impl Into<A>` instead of `A` - Examples don't use `T::from(K)` or `K.into()` when adding assets ## Migration Guide Some `into` calls that worked previously might now be broken because of the new trait bounds. You need to either remove `into` or perform the conversion explicitly with `from`: ```rust // Doesn't compile let mesh_handle = meshes.add(shape::Cube { size: 1.0 }.into()), // These compile let mesh_handle = meshes.add(shape::Cube { size: 1.0 }), let mesh_handle = meshes.add(Mesh::from(shape::Cube { size: 1.0 })), ``` ## Concerns I believe the primary concerns might be: 1. Is this too implicit? 2. Does this increase codegen bloat? Previously, the two APIs were using `into` or `from`, and now it's "nothing" or `from`. You could argue that `into` is slightly more explicit than "nothing" in cases like the earlier examples where a `Color` gets converted to e.g. a `StandardMaterial`, but I personally don't think `into` adds much value even in this case, and you could still see the actual type from the asset type. As for codegen bloat, I doubt it adds that much, but I'm not very familiar with the details of codegen. I personally value the user-facing code reduction and ergonomics improvements that these changes would provide, but it might be worth checking the other effects in more detail. Another slight concern is migration pain; apps might have a ton of `into` calls that would need to be removed, and it did take me a while to do so for Bevy itself (maybe around 20-40 minutes). However, I think the fact that there *are* so many `into` calls just highlights that the API could be made nicer, and I'd gladly migrate my own projects for it.
119 lines
4.3 KiB
Rust
119 lines
4.3 KiB
Rust
//! Demonstrates how to use transparency in 3D.
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//! Shows the effects of different blend modes.
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//! The `fade_transparency` system smoothly changes the transparency over time.
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use bevy::prelude::*;
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fn main() {
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App::new()
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.insert_resource(Msaa::default())
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.add_plugins(DefaultPlugins)
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.add_systems(Startup, setup)
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.add_systems(Update, fade_transparency)
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.run();
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}
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fn setup(
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mut commands: Commands,
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mut meshes: ResMut<Assets<Mesh>>,
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mut materials: ResMut<Assets<StandardMaterial>>,
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) {
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// opaque plane, uses `alpha_mode: Opaque` by default
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commands.spawn(PbrBundle {
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mesh: meshes.add(shape::Plane::from_size(6.0)),
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material: materials.add(Color::rgb(0.3, 0.5, 0.3)),
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..default()
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});
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// transparent sphere, uses `alpha_mode: Mask(f32)`
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commands.spawn(PbrBundle {
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mesh: meshes.add(
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Mesh::try_from(shape::Icosphere {
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radius: 0.5,
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subdivisions: 3,
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})
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.unwrap(),
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),
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material: materials.add(StandardMaterial {
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// Alpha channel of the color controls transparency.
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// We set it to 0.0 here, because it will be changed over time in the
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// `fade_transparency` function.
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// Note that the transparency has no effect on the objects shadow.
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base_color: Color::rgba(0.2, 0.7, 0.1, 0.0),
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// Mask sets a cutoff for transparency. Alpha values below are fully transparent,
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// alpha values above are fully opaque.
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alpha_mode: AlphaMode::Mask(0.5),
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..default()
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}),
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transform: Transform::from_xyz(1.0, 0.5, -1.5),
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..default()
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});
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// transparent unlit sphere, uses `alpha_mode: Mask(f32)`
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commands.spawn(PbrBundle {
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mesh: meshes.add(
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Mesh::try_from(shape::Icosphere {
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radius: 0.5,
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subdivisions: 3,
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})
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.unwrap(),
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),
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material: materials.add(StandardMaterial {
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base_color: Color::rgba(0.2, 0.7, 0.1, 0.0),
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alpha_mode: AlphaMode::Mask(0.5),
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unlit: true,
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..default()
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}),
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transform: Transform::from_xyz(-1.0, 0.5, -1.5),
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..default()
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});
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// transparent cube, uses `alpha_mode: Blend`
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commands.spawn(PbrBundle {
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mesh: meshes.add(shape::Cube { size: 1.0 }),
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// Notice how there is no need to set the `alpha_mode` explicitly here.
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// When converting a color to a material using `into()`, the alpha mode is
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// automatically set to `Blend` if the alpha channel is anything lower than 1.0.
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material: materials.add(Color::rgba(0.5, 0.5, 1.0, 0.0)),
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transform: Transform::from_xyz(0.0, 0.5, 0.0),
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..default()
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});
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// opaque sphere
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commands.spawn(PbrBundle {
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mesh: meshes.add(
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Mesh::try_from(shape::Icosphere {
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radius: 0.5,
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subdivisions: 3,
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})
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.unwrap(),
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),
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material: materials.add(Color::rgb(0.7, 0.2, 0.1)),
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transform: Transform::from_xyz(0.0, 0.5, -1.5),
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..default()
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});
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// light
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commands.spawn(PointLightBundle {
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point_light: PointLight {
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intensity: 1500.0,
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shadows_enabled: true,
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..default()
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},
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transform: Transform::from_xyz(4.0, 8.0, 4.0),
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..default()
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});
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// camera
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commands.spawn(Camera3dBundle {
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transform: Transform::from_xyz(-2.0, 3.0, 5.0).looking_at(Vec3::ZERO, Vec3::Y),
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..default()
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});
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}
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/// Fades the alpha channel of all materials between 0 and 1 over time.
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/// Each blend mode responds differently to this:
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/// - [`Opaque`](AlphaMode::Opaque): Ignores alpha channel altogether, these materials stay completely opaque.
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/// - [`Mask(f32)`](AlphaMode::Mask): Object appears when the alpha value goes above the mask's threshold, disappears
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/// when the alpha value goes back below the threshold.
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/// - [`Blend`](AlphaMode::Blend): Object fades in and out smoothly.
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pub fn fade_transparency(time: Res<Time>, mut materials: ResMut<Assets<StandardMaterial>>) {
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let alpha = (time.elapsed_seconds().sin() / 2.0) + 0.5;
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for (_, material) in materials.iter_mut() {
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material.base_color.set_a(alpha);
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}
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}
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