Length::dp no longer collapses to absolute pixels at construction: the design value travels in a new LengthBase::Dp variant and the density multiplication happens when the length is resolved. Previously dp( n ) baked in whatever density() returned at view-build time, so correctness across output changes depended on the view being rebuilt after set_density and in that order; now a density change is picked up by the very next paint with no reconstruction. Length::resolve keeps its signature (process density), and the new Length::resolve_with_density takes an explicit factor. dp becomes const in the bargain. Density also becomes overridable per canvas, the first step towards surface-local responsive state. SoftwareCanvas and GlesCanvas carry a density: Option<f32> analogous to the layout_viewport introduced for sub-canvas fluid resolution: None means "use the process global", Canvas::set_density pins a local factor, and sub-canvases inherit it. All canvas-routed resolution honours it — geom_px / font_px for stock-widget design pixels, and the new Canvas::resolve_geom / resolve_font for explicit Length values, which every widget now uses in place of the raw l.resolve( canvas.viewport_layout(), EM ) pattern (row, column, wrap_grid, spacer, container, separator, button, text, rich_text, text_edit, list_item, vslider, image, and the container draw path). Overlay sizing keeps resolving against the main surface with the global density, which is what it describes. New tests cover explicit-density resolution, resolution-time application, the local-over-global override and sub-canvas inheritance. The GLES image texture cache is now bounded. It was content-keyed but unbounded and never evicted, so a stream of distinct buffers — a photo carousel, video thumbnails — grew GPU memory for the lifetime of the canvas. The cache now tracks an estimated byte total (RGBA8, w × h × 4) against a 32 MiB budget and evicts least-recently-drawn textures on insert; the most recent entry is never evicted, so a single texture larger than the whole budget still draws and simply owns the cache until replaced. Drop-time cleanup is unchanged: drain deletes whatever the map holds. CI gains a Clippy step (workspace, all targets, test-support, -D warnings) sharing the build cache of the test job, with make clippy mirroring the invocation locally and CONTRIBUTING listing it. Run make clippy locally before pushing the first time — the gate has not seen the tree yet and pre-existing lints will fail CI until addressed. docs/backends.md formalises the software/GLES capability matrix that was previously scattered across per-method rustdoc: parity set (fills, strokes, text, images, paths, path clips), graceful degradations on software (flat-fill gradients, no shadows, no backdrop blur, hard bottom edge), GPU-only features (external textures), the shared Oklab-fallback limitation, and the cross-backend blit panic. Linked from README, onboarding and architecture's known-gaps list, which now states the parity gaps explicitly. The dp/density prose in architecture.md, lib.rs and the Length rustdoc is updated for resolution-time semantics and the per-canvas override.
455 lines
13 KiB
Markdown
455 lines
13 KiB
Markdown
# ltk onboarding
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This guide is for the first hour with `ltk`: what environment you need, how to
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run the examples, how to build a minimal app, when to use layer-shell vs a
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regular window, and what theme/font assumptions the toolkit currently makes.
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If you already know the basics and want the deeper rationale, read
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[`docs/architecture.md`](./architecture.md) next.
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## What `ltk` is
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`ltk` is a Rust UI toolkit for Wayland. It is aimed first at the Eydos shell
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stack, but it can also be used to build normal client applications and
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runtime-free UI surfaces.
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At a high level:
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- Implement the `App` trait.
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- Return an `Element<Msg>` tree from `view()`.
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- React to user input by handling messages in `update()`.
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- Start the event loop with `ltk::run(app)`.
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The model is declarative and Elm-shaped: the widget tree is rebuilt from your
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state, then `ltk` handles layout, drawing and input dispatch.
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If you are browsing the crate through `cargo doc`, the public API is also
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grouped conceptually into three entry points:
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- `ltk::window` — basic application windows
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- `ltk::shell` — layer-shell and overlays
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- `ltk::runtime` — advanced runtime hooks and runtime-free embedding
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Most users should start with `ltk::window` and ignore the other two until they
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have a normal app window running.
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## Before you start
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`ltk` is not a browser toolkit and not a cross-platform desktop toolkit. Today
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it assumes:
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- a running **Wayland** session
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- Wayland client libraries available through Rust dependencies
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- a usable system font — on Debian (the crate's own packaging target):
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`fonts-sora`, `fonts-liberation` or `fonts-dejavu`
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- an installed `default` theme, or a development theme directory exposed
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through `LTK_THEMES_DIR`
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The rendering backend is selected automatically:
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- **GLES** when EGL/GLES is available
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- **software** fallback otherwise, or when `LTK_FORCE_SOFTWARE=1`
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## Fastest way to see it working
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From the repo root:
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```bash
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LTK_THEMES_DIR=themes cargo run --example showcase
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```
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The `LTK_THEMES_DIR=themes` prefix points theme lookup at the in-repo
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`themes/` directory (see *Theme and font setup* below); without it, on a
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machine without the `default` theme installed, the example runs on the
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embedded B/W fallback with a red banner.
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The other examples, same prefix:
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- `cargo run --example widgets` — broad widget survey
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- `cargo run --example inputs` — plain and secure text fields with a
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show/hide-password toggle
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- `cargo run --example scroll` — the two main scroll use cases: a long list
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and an app-drawer-style grid
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- `cargo run --example sliders` — the Glass effect on horizontal and
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vertical sliders
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- `cargo run --example combo` — select/dropdown with editable query and
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multi-select chips
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- `cargo run --example pickers` — notebook tabs, date, time and color
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pickers
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- `cargo run --example dialog` — modal confirm, non-modal pick and the
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other dialog shapes
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- `cargo run --example carousel` — focused-tile carousel
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- `cargo run --example responsive` — fluid vs physical scaling side by side
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- `cargo run --example clip_path` — per-path canvas clipping
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- `cargo run --example mini_shell` — overlays, animation and theme switching
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All examples require a running Wayland compositor.
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## Build and test
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The `Makefile` wraps the cargo invocations the repo expects:
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- `make all` — release build
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- `make test` — `cargo test --features test-support`; a bare `cargo test`
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fails because the integration tests import the feature-gated
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`ltk::test_support`
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- `make doctest-md` — typechecks the code snippets in `docs/*.md`, so API
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drift surfaces in CI like a normal doctest failure
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- `make examples` — runs every example in sequence with
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`LTK_THEMES_DIR=themes`
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- `make doc` — `cargo doc --no-deps`
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## Theme and font setup
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`ltk` currently expects a theme named `default`. Lookup order is:
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1. `LTK_THEMES_DIR/<id>/`
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2. `$XDG_DATA_HOME/ltk/themes/<id>/`
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3. `/usr/share/ltk/themes/<id>/`
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For development inside this repository, the simplest setup is:
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```bash
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export LTK_THEMES_DIR="$PWD/themes"
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```
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That makes `ThemeDocument::find("default")` resolve to
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`$PWD/themes/default/theme.json`.
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Font loading is separate from theme lookup. `src/system_fonts.rs` walks a
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chain of common system font *file paths* — the files installed by the
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Debian packages `fonts-sora`, `fonts-liberation`, `fonts-freefont` and
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`fonts-dejavu`, plus the equivalent locations other distros use — and
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loads the first one it finds. If nothing matches, it falls back to an
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embedded Sora Regular (~50 KB, SIL OFL 1.1) shipped inside the crate, so
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font resolution never panics on a system without the expected fonts.
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Installing one of the listed packages is still recommended for richer
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glyph coverage.
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## Your first app
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The smallest useful `ltk` app implements `App`, returns a tree from `view()`,
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updates its state in `update()`, and calls `ltk::run(...)`.
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```rust,no_run
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use ltk::{ App, Element, Keysym, button, column, spacer, text };
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#[derive(Clone)]
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enum Msg
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{
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Increment,
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}
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struct CounterApp
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{
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value: u32,
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}
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impl App for CounterApp
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{
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type Message = Msg;
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fn view( &self ) -> Element<Msg>
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{
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column::<Msg>()
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.padding( 32.0 )
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.spacing( 16.0 )
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.center_y( true )
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.push( text( "Hello from ltk" ).size( 28.0 ) )
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.push( text( format!( "Count: {}", self.value ) ).size( 18.0 ) )
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.push( spacer() )
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.push( button( "Increment" ).on_press( Msg::Increment ) )
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.into()
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}
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fn update( &mut self, msg: Msg )
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{
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match msg
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{
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Msg::Increment => self.value += 1,
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}
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}
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fn on_key( &mut self, keysym: Keysym ) -> Option<Msg>
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{
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if keysym == Keysym::Escape
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{
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std::process::exit( 0 );
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}
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None
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}
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}
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fn main()
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{
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ltk::run( CounterApp { value: 0 } );
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}
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```
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### Minimal `Cargo.toml`
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```toml
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[package]
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name = "my-ltk-app"
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version = "0.1.0"
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edition = "2021"
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[dependencies]
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ltk = { path = "../ltk" }
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```
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If you vend `ltk` from crates.io later, replace the `path` dependency with a
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versioned one.
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## Public API Layers
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`ltk` exposes most items at the crate root, but for documentation and discovery
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it is useful to think of the library in three layers.
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### 1. `ltk::window`
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This is the default entry point for third-party applications.
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Use it for:
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- normal application windows
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- tools and prototypes
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- most widget/layout work
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The APIs you will usually touch first live here conceptually:
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- `App`
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- `Element<Msg>`
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- `button`, `text`, `text_edit`, `img_widget`
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- `column`, `row`, `stack`, `grid`, `spacer`
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- `container`, `scroll`, `slider`, `toggle`, `checkbox`, `radio`
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- `Color`
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- `run`
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### 2. `ltk::shell`
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This layer groups the APIs that matter when your surface is part of the shell
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rather than a normal app window.
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Use it for:
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- bars and docks
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- homescreens
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- notifications
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- greeters and lock screens
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- transient overlays
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The most important APIs in this layer are:
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- `ShellMode`
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- `Layer`
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- `Anchor`
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- `OverlaySpec`
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- `OverlayId`
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- `overlays()`
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### 3. `ltk::runtime`
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This layer is for advanced integration points.
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Use it when you need:
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- external wakeups via `set_channel_sender()`
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- timer-driven or async state via `poll_external()` / `poll_interval()`
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- redraw narrowing via `invalidate_after()`
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- runtime theme state access
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- runtime-free embedding through `core::UiSurface`
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Most applications do not need to start here.
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## Regular app window vs shell surface
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Most consumers should start with a **regular window**.
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Default behaviour:
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- `shell_mode()` defaults to `ShellMode::Window`
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- `ltk::run(app)` creates an xdg-shell toplevel
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Use this for:
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- normal applications
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- internal tools
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- prototypes while learning the toolkit
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Switch to **layer-shell** only when you are building a shell component:
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- top bar
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- dock
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- homescreen
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- notification surface
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- lock screen / greeter
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The knobs you will usually override are:
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- `shell_mode()`
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- `layer_anchor()`
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- `layer_size()`
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- `exclusive_zone()`
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- `keyboard_exclusive()`
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- `background_color()`
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For a non-trivial multi-surface example, use `examples/mini_shell.rs` as the
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reference entry point — note it runs as a regular window (it never overrides
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`shell_mode()`) and demonstrates screen routing, coordinated overlays, an
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animated OSD and live theme switching. The layer-shell knobs themselves are
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exercised by the downstream shell components, not by the in-repo examples.
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## The APIs you will touch first
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In practice, most first apps only need a small subset of the surface area.
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Start here:
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- `App`
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- `Element<Msg>`
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- `button`, `text`, `text_edit`, `img_widget`
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- `column`, `row`, `stack`, `grid`, `spacer`
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- `container`, `scroll`, `slider`, `toggle`, `checkbox`, `radio`
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- `Color`
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- `run`
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Do not start with these unless you need them:
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- `ltk::shell`
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- `ltk::runtime`
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- `overlays()`
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- gesture hooks such as `on_swipe_*`
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- `set_channel_sender()` / `poll_external()`
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- `core::UiSurface`
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- custom theming APIs
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## Message flow and state
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The expected shape is:
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1. user interaction emits a `Message`
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2. `update()` mutates app state
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3. `view()` rebuilds the UI from that state
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Example:
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```rust
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#[derive(Clone)]
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enum Msg
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{
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NameChanged( String ),
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Submit,
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}
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```
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For small apps, one top-level `enum Msg` is enough. Once the app grows, split
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state by screen/panel and wrap sub-messages in the top-level enum:
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```rust,no_run
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# #[ derive( Clone ) ] pub enum HomeMsg {}
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# #[ derive( Clone ) ] pub enum SettingsMsg {}
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enum AppMsg
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{
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Home( HomeMsg ),
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Settings( SettingsMsg ),
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Quit,
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}
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```
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This is the pattern used by `examples/mini_shell.rs`.
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## Responsive sizing: fluid vs physical
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`ltk` gives you two ways to make an interface adapt to the display, and you can
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mix them per value. **Fluid** sizes are a fraction of the surface (best for
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full-screen system surfaces); **physical** sizes stay a constant real-world
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size (best for conventional windowed apps). In practice you write a size as a
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`Length` and bound it with `.clamp`:
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```rust
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use ltk::{ text, Length };
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// Fluid: 6 % of the surface's short side, never below 20 px nor above 44 px.
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text("Welcome").size(Length::vmin(6.0).clamp(20.0, 44.0));
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```
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Stock widgets follow a process-wide mode (`set_widget_scaling`, fluid by
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default); an explicit `Length` on a widget overrides it. For the units
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(`vmin` / `orient` / `dp` / …), the clamp discipline and how it all resolves,
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see the *Responsive sizing* section of
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[`architecture.md`](architecture.md#responsive-sizing) and the `Length`
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rustdoc.
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## Recommended learning order
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If you are new to the library, this order minimizes confusion:
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1. Run `examples/showcase.rs`.
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2. Read the crate-level docs in `src/lib.rs`, especially `ltk::window`.
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3. Build a plain xdg-shell window with `button`, `text`, `column`.
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4. Add input handling with `text_edit` or `slider`.
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5. Only then look at `ltk::shell` for overlays and layer-shell.
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6. Move to `ltk::runtime` only when you need advanced hooks or embedding.
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## Performance rules of thumb
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`ltk` is designed to sleep when idle and redraw only on real changes, but the
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application can still make bad choices. Keep these rules in mind:
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- keep `view()` pure and cheap
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- do not do filesystem I/O, parsing or image decoding inside `view()`
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- cache expensive derived data on your app struct
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- leave `poll_interval()` as `None` unless you genuinely need periodic wakeups
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- only return `true` from `is_animating()` while something is actually moving
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On mobile targets, the last two matter directly for battery life.
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## When to use `core::UiSurface`
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Most apps should ignore `core` at first.
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Use `core::UiSurface` when you want `ltk`'s layout/drawing/hit-testing without
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`ltk::run()`. Typical cases:
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- compositor-side decorations
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- embedding `ltk` widgets in another render loop
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- offscreen rendering or previews
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There is coverage for that path in `tests/core_surface.rs`.
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## Current assumptions and rough edges
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This repo is usable, but a few current behaviours are worth knowing up front:
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- examples and docs assume Wayland, not X11
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- theming is process-global
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- theme discovery currently expects a `default` theme on disk (a B/W
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fallback document kicks in when missing, with a red banner on every
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frame so the gap is impossible to miss)
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- the architecture docs mention downstream consumer repos that are not part of
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this repository
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None of that blocks learning the toolkit, but it matters when you evaluate
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`ltk` as a third-party dependency.
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## What to read next
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In the README's recommended order — onboarding, then the widget catalogue,
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then the cookbook, then architecture:
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- [`docs/widgets.md`](./widgets.md) — per-widget catalogue: what each one
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is, when to use it, minimal example
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- [`docs/cookbook.md`](./cookbook.md) — concrete recipes: slide-in panels,
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password fields, runtime theme toggle, channel-driven state
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- [`docs/architecture.md`](./architecture.md) — multi-surface patterns,
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theming, animation and performance
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- [`docs/theming.md`](./theming.md) — JSON theme schema, slot conventions,
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runtime APIs
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- [`docs/backends.md`](./backends.md) — software/GLES capability matrix
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- [`examples/showcase.rs`](../examples/showcase.rs) — smallest visual tour
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- [`examples/widgets.rs`](../examples/widgets.rs) — broader widget coverage
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- [`examples/mini_shell.rs`](../examples/mini_shell.rs) — overlays and shell
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patterns
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- [`tests/core_surface.rs`](../tests/core_surface.rs) — runtime-free rendering
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