#![expect(non_snake_case)]
#![expect(clippy::too_many_arguments)]
#[cfg(feature = "svg")]
use std::sync::{Mutex, MutexGuard};
use std::{
hash::{Hash, Hasher},
sync::Arc,
};
use cranpose_core::NodeId;
use cranpose_ui_graphics::{ColorFilter, DrawScope, ImageBitmap, ImageSampling};
use cranpose_ui_layout::{Constraints, MeasurePolicy, MeasureResult, MeasureScope, Placement};
use thiserror::Error;
use crate::{
composable,
layout::core::{Alignment, Measurable},
modifier::{Modifier, Rect, Size},
nine_patch::{NinePatchInsets, PatchFill, PatchQuad, nine_patch_quads, tile_quads},
widgets::Layout,
};
#[cfg(feature = "svg")]
#[path = "image_svg.rs"]
mod image_svg;
pub const DEFAULT_ALPHA: f32 = 1.0;
#[cfg(feature = "svg")]
const SVG_RASTER_CACHE_LIMIT: usize = 8;
#[derive(Clone, Copy, Debug, PartialEq)]
pub enum ContentScale {
Fit,
Crop,
FillBounds,
FillWidth,
FillHeight,
Inside,
None,
}
impl ContentScale {
pub fn scaled_size(self, src_size: Size, dst_size: Size) -> Size {
if src_size.width <= 0.0
|| src_size.height <= 0.0
|| dst_size.width <= 0.0
|| dst_size.height <= 0.0
{
return Size::ZERO;
}
let scale_x = dst_size.width / src_size.width;
let scale_y = dst_size.height / src_size.height;
let (factor_x, factor_y) = match self {
Self::Fit => {
let factor = scale_x.min(scale_y);
(factor, factor)
}
Self::Crop => {
let factor = scale_x.max(scale_y);
(factor, factor)
}
Self::FillBounds => (scale_x, scale_y),
Self::FillWidth => (scale_x, scale_x),
Self::FillHeight => (scale_y, scale_y),
Self::Inside => {
if src_size.width <= dst_size.width && src_size.height <= dst_size.height {
(1.0, 1.0)
} else {
let factor = scale_x.min(scale_y);
(factor, factor)
}
}
Self::None => (1.0, 1.0),
};
Size {
width: src_size.width * factor_x,
height: src_size.height * factor_y,
}
}
}
#[derive(Clone, Debug, PartialEq, Eq, Hash)]
pub struct Painter {
kind: PainterKind,
}
#[derive(Clone, Debug, PartialEq, Eq, Hash)]
enum PainterKind {
Bitmap(ImageBitmap),
BitmapRegion {
bitmap: ImageBitmap,
source: Quad,
sampling: ImageSampling,
},
BitmapTiled {
bitmap: ImageBitmap,
source: Quad,
sampling: ImageSampling,
},
NinePatch {
bitmap: ImageBitmap,
source: Quad,
insets: Quad,
center: PatchFill,
edges: PatchFill,
sampling: ImageSampling,
},
Svg(SvgPainter),
}
#[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
struct Quad {
a: u32,
b: u32,
c: u32,
d: u32,
}
impl Quad {
fn of(a: f32, b: f32, c: f32, d: f32) -> Self {
Self {
a: a.to_bits(),
b: b.to_bits(),
c: c.to_bits(),
d: d.to_bits(),
}
}
fn values(self) -> (f32, f32, f32, f32) {
(
f32::from_bits(self.a),
f32::from_bits(self.b),
f32::from_bits(self.c),
f32::from_bits(self.d),
)
}
fn from_rect(source: Rect) -> Self {
Self::of(source.x, source.y, source.width, source.height)
}
fn rect(self) -> Rect {
let (x, y, width, height) = self.values();
Rect {
x,
y,
width,
height,
}
}
fn from_insets(insets: NinePatchInsets) -> Self {
Self::of(insets.left, insets.top, insets.right, insets.bottom)
}
fn insets(self) -> NinePatchInsets {
let (left, top, right, bottom) = self.values();
NinePatchInsets::new(left, top, right, bottom)
}
}
impl Painter {
pub fn from_bitmap(bitmap: ImageBitmap) -> Self {
Self {
kind: PainterKind::Bitmap(bitmap),
}
}
pub fn from_bitmap_region(bitmap: ImageBitmap, source: Rect, sampling: ImageSampling) -> Self {
Self {
kind: PainterKind::BitmapRegion {
bitmap,
source: Quad::from_rect(source),
sampling,
},
}
}
pub fn from_bitmap_tiled(bitmap: ImageBitmap, source: Rect, sampling: ImageSampling) -> Self {
Self {
kind: PainterKind::BitmapTiled {
bitmap,
source: Quad::from_rect(source),
sampling,
},
}
}
pub fn from_nine_patch(
bitmap: ImageBitmap,
source: Rect,
insets: NinePatchInsets,
center: PatchFill,
edges: PatchFill,
sampling: ImageSampling,
) -> Self {
Self {
kind: PainterKind::NinePatch {
bitmap,
source: Quad::from_rect(source),
insets: Quad::from_insets(insets),
center,
edges,
sampling,
},
}
}
pub fn from_svg(svg: SvgPainter) -> Self {
Self {
kind: PainterKind::Svg(svg),
}
}
pub fn intrinsic_size(&self) -> Size {
match &self.kind {
PainterKind::Bitmap(bitmap) => bitmap.intrinsic_size(),
PainterKind::BitmapRegion { source, .. }
| PainterKind::BitmapTiled { source, .. }
| PainterKind::NinePatch { source, .. } => {
let source = source.rect();
Size::new(source.width.max(0.0), source.height.max(0.0))
}
PainterKind::Svg(svg) => svg.intrinsic_size(),
}
}
pub fn as_bitmap(&self) -> Option<&ImageBitmap> {
match &self.kind {
PainterKind::Bitmap(bitmap) => Some(bitmap),
PainterKind::BitmapRegion { bitmap, .. }
| PainterKind::BitmapTiled { bitmap, .. }
| PainterKind::NinePatch { bitmap, .. } => Some(bitmap),
PainterKind::Svg(_) => None,
}
}
pub fn bitmap(&self) -> Option<&ImageBitmap> {
self.as_bitmap()
}
}
impl From<ImageBitmap> for Painter {
fn from(value: ImageBitmap) -> Self {
Self::from_bitmap(value)
}
}
impl From<SvgPainter> for Painter {
fn from(value: SvgPainter) -> Self {
Self::from_svg(value)
}
}
pub fn BitmapPainter(bitmap: ImageBitmap) -> Painter {
Painter::from_bitmap(bitmap)
}
pub fn BitmapRegionPainter(bitmap: ImageBitmap, source: Rect, sampling: ImageSampling) -> Painter {
Painter::from_bitmap_region(bitmap, source, sampling)
}
pub fn TiledPainter(bitmap: ImageBitmap, source: Rect, sampling: ImageSampling) -> Painter {
Painter::from_bitmap_tiled(bitmap, source, sampling)
}
pub fn NinePatchPainter(
bitmap: ImageBitmap,
source: Rect,
insets: NinePatchInsets,
center: PatchFill,
edges: PatchFill,
sampling: ImageSampling,
) -> Painter {
Painter::from_nine_patch(bitmap, source, insets, center, edges, sampling)
}
#[derive(Debug, Clone, PartialEq, Eq, Error)]
pub enum SvgPainterError {
#[error("SVG support is disabled; enable the cranpose-ui `svg` feature")]
SvgFeatureDisabled,
#[error("failed to parse SVG: {0}")]
Parse(String),
#[error("SVG raster dimensions must be greater than zero")]
InvalidRasterDimensions,
#[error("SVG raster dimensions are too large")]
RasterDimensionsTooLarge,
#[error("failed to allocate SVG raster {width}x{height}")]
RasterAllocationFailed { width: u32, height: u32 },
#[error("SVG raster cache is unavailable")]
RasterCacheUnavailable,
#[error(transparent)]
ImageBitmap(#[from] cranpose_ui_graphics::ImageBitmapError),
}
#[derive(Clone)]
pub struct SvgPainter {
inner: Arc<SvgPainterInner>,
}
struct SvgPainterInner {
#[cfg(feature = "svg")]
document: image_svg::SvgDocument,
intrinsic_size: Size,
#[cfg(feature = "svg")]
cache: Mutex<SvgRasterCache>,
}
#[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
#[cfg(feature = "svg")]
struct SvgRasterKey {
width: u32,
height: u32,
}
#[derive(Clone, Debug)]
#[cfg(feature = "svg")]
struct SvgRasterEntry {
key: SvgRasterKey,
bitmap: ImageBitmap,
}
#[derive(Default, Debug)]
#[cfg(feature = "svg")]
struct SvgRasterCache {
entries: Vec<SvgRasterEntry>,
}
impl SvgPainter {
pub fn from_bytes(bytes: &[u8]) -> Result<Self, SvgPainterError> {
#[cfg(not(feature = "svg"))]
{
let _ = bytes;
Err(SvgPainterError::SvgFeatureDisabled)
}
#[cfg(feature = "svg")]
{
let document = image_svg::parse_svg_document(bytes)?;
let intrinsic_size = document.intrinsic_size();
Ok(Self {
inner: Arc::new(SvgPainterInner {
document,
intrinsic_size,
cache: Mutex::new(SvgRasterCache::default()),
}),
})
}
}
pub fn id(&self) -> u64 {
Arc::as_ptr(&self.inner) as usize as u64
}
pub fn intrinsic_size(&self) -> Size {
self.inner.intrinsic_size
}
pub fn rasterize(&self, pixel_size: Size) -> Result<ImageBitmap, SvgPainterError> {
#[cfg(not(feature = "svg"))]
{
let _ = pixel_size;
Err(SvgPainterError::SvgFeatureDisabled)
}
#[cfg(feature = "svg")]
{
let key = svg_raster_key(pixel_size)?;
if let Some(bitmap) = self.cached_bitmap(key)? {
return Ok(bitmap);
}
let bitmap = self.rasterize_uncached(key)?;
self.cache_bitmap(key, bitmap.clone())?;
Ok(bitmap)
}
}
#[cfg(feature = "svg")]
fn cached_bitmap(&self, key: SvgRasterKey) -> Result<Option<ImageBitmap>, SvgPainterError> {
let mut cache = self.lock_cache();
Ok(cache.get(key))
}
#[cfg(feature = "svg")]
fn cache_bitmap(&self, key: SvgRasterKey, bitmap: ImageBitmap) -> Result<(), SvgPainterError> {
let mut cache = self.lock_cache();
cache.insert(key, bitmap);
Ok(())
}
#[cfg(feature = "svg")]
fn lock_cache(&self) -> MutexGuard<'_, SvgRasterCache> {
self.inner
.cache
.lock()
.unwrap_or_else(std::sync::PoisonError::into_inner)
}
#[cfg(feature = "svg")]
fn rasterize_uncached(&self, key: SvgRasterKey) -> Result<ImageBitmap, SvgPainterError> {
(key.width as usize)
.checked_mul(key.height as usize)
.and_then(|value| value.checked_mul(4))
.ok_or(SvgPainterError::RasterDimensionsTooLarge)?;
let mut pixmap = tiny_skia::Pixmap::new(key.width, key.height).ok_or(
SvgPainterError::RasterAllocationFailed {
width: key.width,
height: key.height,
},
)?;
image_svg::rasterize_svg_document(&self.inner.document, &mut pixmap);
let pixels = image_svg::demultiplied_rgba_pixels(&pixmap);
Ok(ImageBitmap::from_rgba8(key.width, key.height, pixels)?)
}
}
impl std::fmt::Debug for SvgPainter {
fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
f.debug_struct("SvgPainter")
.field("id", &self.id())
.field("intrinsic_size", &self.intrinsic_size())
.finish_non_exhaustive()
}
}
impl PartialEq for SvgPainter {
fn eq(&self, other: &Self) -> bool {
self.id() == other.id()
}
}
impl Eq for SvgPainter {}
impl Hash for SvgPainter {
fn hash<H: Hasher>(&self, state: &mut H) {
self.id().hash(state);
}
}
#[cfg(feature = "svg")]
impl SvgRasterCache {
fn get(&mut self, key: SvgRasterKey) -> Option<ImageBitmap> {
let position = self.entries.iter().position(|entry| entry.key == key)?;
let entry = self.entries.remove(position);
let bitmap = entry.bitmap.clone();
self.entries.push(entry);
Some(bitmap)
}
fn insert(&mut self, key: SvgRasterKey, bitmap: ImageBitmap) {
if let Some(position) = self.entries.iter().position(|entry| entry.key == key) {
self.entries.remove(position);
} else if self.entries.len() >= SVG_RASTER_CACHE_LIMIT {
self.entries.remove(0);
}
self.entries.push(SvgRasterEntry { key, bitmap });
}
}
#[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
struct SvgBytesKey {
ptr: usize,
len: usize,
}
impl SvgBytesKey {
fn new(bytes: &'static [u8]) -> Self {
Self {
ptr: bytes.as_ptr() as usize,
len: bytes.len(),
}
}
}
pub fn rememberSvg(bytes: &'static [u8]) -> Result<SvgPainter, SvgPainterError> {
let key = SvgBytesKey::new(bytes);
cranpose_core::withCurrentComposer(|composer| {
composer.with_key(&key, |composer| {
composer
.remember(|| SvgPainter::from_bytes(bytes))
.with(Clone::clone)
})
})
}
#[derive(Clone, Debug, PartialEq)]
struct ImageMeasurePolicy {
intrinsic_size: Size,
}
impl MeasurePolicy for ImageMeasurePolicy {
fn measure(
&self,
scope: &dyn MeasureScope,
_measurables: &[Box<dyn Measurable>],
constraints: Constraints,
) -> MeasureResult {
let mut placements = Vec::new();
let size = self.measure_into(scope, &[], constraints, &mut placements);
MeasureResult::new(size, placements)
}
fn measure_into(
&self,
_scope: &dyn MeasureScope,
_measurables: &[Box<dyn Measurable>],
constraints: Constraints,
placements: &mut Vec<Placement>,
) -> Size {
placements.clear();
let iw = self.intrinsic_size.width;
let ih = self.intrinsic_size.height;
if iw <= 0.0 || ih <= 0.0 {
let (w, h) = constraints.constrain(0.0, 0.0);
return Size {
width: w,
height: h,
};
}
let cw = iw.clamp(constraints.min_width, constraints.max_width);
let ch = ih.clamp(constraints.min_height, constraints.max_height);
let scale_x = cw / iw;
let scale_y = ch / ih;
let (width, height) = if scale_x < 1.0 || scale_y < 1.0 {
let factor = scale_x.min(scale_y);
let w = (iw * factor).clamp(constraints.min_width, constraints.max_width);
let h = (ih * factor).clamp(constraints.min_height, constraints.max_height);
(w, h)
} else {
(cw, ch)
};
Size { width, height }
}
fn min_intrinsic_width(&self, _measurables: &[Box<dyn Measurable>], _height: f32) -> f32 {
self.intrinsic_size.width
}
fn max_intrinsic_width(&self, _measurables: &[Box<dyn Measurable>], _height: f32) -> f32 {
self.intrinsic_size.width
}
fn min_intrinsic_height(&self, _measurables: &[Box<dyn Measurable>], _width: f32) -> f32 {
self.intrinsic_size.height
}
fn max_intrinsic_height(&self, _measurables: &[Box<dyn Measurable>], _width: f32) -> f32 {
self.intrinsic_size.height
}
}
fn destination_rect(
src_size: Size,
dst_size: Size,
alignment: Alignment,
content_scale: ContentScale,
) -> Rect {
let draw_size = content_scale.scaled_size(src_size, dst_size);
let allows_overflow = content_scale == ContentScale::Crop;
let offset_x = aligned_x_offset(
alignment.horizontal,
dst_size.width,
draw_size.width,
allows_overflow,
);
let offset_y = aligned_y_offset(
alignment.vertical,
dst_size.height,
draw_size.height,
allows_overflow,
);
Rect {
x: offset_x,
y: offset_y,
width: draw_size.width,
height: draw_size.height,
}
}
fn aligned_x_offset(
alignment: cranpose_ui_layout::HorizontalAlignment,
available: f32,
child: f32,
allows_overflow: bool,
) -> f32 {
if !allows_overflow {
return alignment.align(available, child);
}
match alignment {
cranpose_ui_layout::HorizontalAlignment::Start => 0.0,
cranpose_ui_layout::HorizontalAlignment::CenterHorizontally => (available - child) / 2.0,
cranpose_ui_layout::HorizontalAlignment::End => available - child,
}
}
fn aligned_y_offset(
alignment: cranpose_ui_layout::VerticalAlignment,
available: f32,
child: f32,
allows_overflow: bool,
) -> f32 {
if !allows_overflow {
return alignment.align(available, child);
}
match alignment {
cranpose_ui_layout::VerticalAlignment::Top => 0.0,
cranpose_ui_layout::VerticalAlignment::CenterVertically => (available - child) / 2.0,
cranpose_ui_layout::VerticalAlignment::Bottom => available - child,
}
}
fn map_destination_clip_to_source(
src_rect: Rect,
dst_rect: Rect,
clipped_dst_rect: Rect,
) -> Option<Rect> {
if src_rect.width <= 0.0
|| src_rect.height <= 0.0
|| dst_rect.width <= 0.0
|| dst_rect.height <= 0.0
|| clipped_dst_rect.width <= 0.0
|| clipped_dst_rect.height <= 0.0
{
return None;
}
let scale_x = src_rect.width / dst_rect.width;
let scale_y = src_rect.height / dst_rect.height;
let src_min_x = src_rect.x;
let src_min_y = src_rect.y;
let src_max_x = src_rect.x + src_rect.width;
let src_max_y = src_rect.y + src_rect.height;
let raw_left = src_rect.x + (clipped_dst_rect.x - dst_rect.x) * scale_x;
let raw_top = src_rect.y + (clipped_dst_rect.y - dst_rect.y) * scale_y;
let raw_right =
src_rect.x + ((clipped_dst_rect.x + clipped_dst_rect.width) - dst_rect.x) * scale_x;
let raw_bottom =
src_rect.y + ((clipped_dst_rect.y + clipped_dst_rect.height) - dst_rect.y) * scale_y;
let left = raw_left.clamp(src_min_x, src_max_x);
let top = raw_top.clamp(src_min_y, src_max_y);
let right = raw_right.clamp(src_min_x, src_max_x);
let bottom = raw_bottom.clamp(src_min_y, src_max_y);
let width = right - left;
let height = bottom - top;
if width <= 0.0 || height <= 0.0 {
None
} else {
Some(Rect {
x: left,
y: top,
width,
height,
})
}
}
fn image_destination_clip(
src_size: Size,
container_size: Size,
alignment: Alignment,
content_scale: ContentScale,
) -> Option<(Rect, Rect)> {
let dst_rect = destination_rect(src_size, container_size, alignment, content_scale);
if dst_rect.width <= 0.0 || dst_rect.height <= 0.0 {
return None;
}
let container_rect = Rect::from_size(container_size);
let clipped_dst_rect = dst_rect.intersect(container_rect)?;
Some((dst_rect, clipped_dst_rect))
}
fn draw_bitmap_painter(
scope: &mut dyn DrawScope,
bitmap: ImageBitmap,
intrinsic_size: Size,
alignment: Alignment,
content_scale: ContentScale,
alpha: f32,
color_filter: Option<ColorFilter>,
) {
let container_size = scope.size();
let Some((dst_rect, clipped_dst_rect)) =
image_destination_clip(intrinsic_size, container_size, alignment, content_scale)
else {
return;
};
let full_src_rect = Rect::from_size(Size::new(bitmap.width() as f32, bitmap.height() as f32));
let Some(clipped_src_rect) =
map_destination_clip_to_source(full_src_rect, dst_rect, clipped_dst_rect)
else {
return;
};
scope.draw_image_src_sampled(
bitmap,
clipped_src_rect,
clipped_dst_rect,
alpha,
color_filter,
ImageSampling::Linear,
);
}
fn draw_bitmap_region_painter(
scope: &mut dyn DrawScope,
bitmap: ImageBitmap,
source: Rect,
alignment: Alignment,
content_scale: ContentScale,
alpha: f32,
color_filter: Option<ColorFilter>,
sampling: ImageSampling,
) {
let source_size = Size::new(source.width.max(0.0), source.height.max(0.0));
let Some((dst_rect, clipped_dst_rect)) =
image_destination_clip(source_size, scope.size(), alignment, content_scale)
else {
return;
};
let Some(clipped_source) = map_destination_clip_to_source(source, dst_rect, clipped_dst_rect)
else {
return;
};
scope.draw_image_src_sampled(
bitmap,
clipped_source,
clipped_dst_rect,
alpha,
color_filter,
sampling,
);
}
fn draw_patch_quads(
scope: &mut dyn DrawScope,
bitmap: &ImageBitmap,
quads: &[PatchQuad],
container: Rect,
alpha: f32,
color_filter: Option<ColorFilter>,
sampling: ImageSampling,
) {
for quad in quads {
let Some(clipped_destination) = intersect(quad.destination, container) else {
continue;
};
let Some(clipped_source) =
map_destination_clip_to_source(quad.source, quad.destination, clipped_destination)
else {
continue;
};
scope.draw_image_src_sampled(
bitmap.clone(),
clipped_source,
clipped_destination,
alpha,
color_filter,
sampling,
);
}
}
fn intersect(rect: Rect, bounds: Rect) -> Option<Rect> {
let left = rect.x.max(bounds.x);
let top = rect.y.max(bounds.y);
let right = (rect.x + rect.width).min(bounds.x + bounds.width);
let bottom = (rect.y + rect.height).min(bounds.y + bounds.height);
if right <= left || bottom <= top {
return None;
}
Some(Rect {
x: left,
y: top,
width: right - left,
height: bottom - top,
})
}
fn draw_bitmap_tiled_painter(
scope: &mut dyn DrawScope,
bitmap: ImageBitmap,
source: Rect,
alpha: f32,
color_filter: Option<ColorFilter>,
sampling: ImageSampling,
) {
let container = Rect::from_size(scope.size());
let quads = tile_quads(source, container);
draw_patch_quads(
scope,
&bitmap,
&quads,
container,
alpha,
color_filter,
sampling,
);
}
#[expect(clippy::too_many_arguments)]
fn draw_nine_patch_painter(
scope: &mut dyn DrawScope,
bitmap: ImageBitmap,
source: Rect,
insets: NinePatchInsets,
center: PatchFill,
edges: PatchFill,
alpha: f32,
color_filter: Option<ColorFilter>,
sampling: ImageSampling,
) {
let container = Rect::from_size(scope.size());
let quads = nine_patch_quads(source, container, insets, center, edges);
draw_patch_quads(
scope,
&bitmap,
&quads,
container,
alpha,
color_filter,
sampling,
);
}
fn draw_svg_painter(
scope: &mut dyn DrawScope,
svg: SvgPainter,
intrinsic_size: Size,
alignment: Alignment,
content_scale: ContentScale,
alpha: f32,
color_filter: Option<ColorFilter>,
) {
let container_size = scope.size();
let Some((dst_rect, clipped_dst_rect)) =
image_destination_clip(intrinsic_size, container_size, alignment, content_scale)
else {
return;
};
let density = crate::render_state::current_density();
let pixel_size = Size::new(dst_rect.width * density, dst_rect.height * density);
let bitmap = match svg.rasterize(pixel_size) {
Ok(bitmap) => bitmap,
Err(error) => {
log::warn!("failed to rasterize SVG painter: {error}");
return;
}
};
let full_src_rect = Rect::from_size(Size::new(bitmap.width() as f32, bitmap.height() as f32));
let Some(clipped_src_rect) =
map_destination_clip_to_source(full_src_rect, dst_rect, clipped_dst_rect)
else {
return;
};
scope.draw_image_src_sampled(
bitmap,
clipped_src_rect,
clipped_dst_rect,
alpha,
color_filter,
ImageSampling::Linear,
);
}
#[cfg(feature = "svg")]
fn svg_raster_key(pixel_size: Size) -> Result<SvgRasterKey, SvgPainterError> {
let width = svg_raster_axis(pixel_size.width)?;
let height = svg_raster_axis(pixel_size.height)?;
width
.checked_mul(height)
.and_then(|value| value.checked_mul(4))
.ok_or(SvgPainterError::RasterDimensionsTooLarge)?;
Ok(SvgRasterKey { width, height })
}
#[cfg(feature = "svg")]
fn svg_raster_axis(value: f32) -> Result<u32, SvgPainterError> {
if !value.is_finite() || value <= 0.0 {
return Err(SvgPainterError::InvalidRasterDimensions);
}
let rounded = value.ceil();
if rounded > u32::MAX as f32 {
return Err(SvgPainterError::RasterDimensionsTooLarge);
}
Ok(rounded as u32)
}
#[composable]
pub fn Image<P>(
painter: P,
content_description: Option<String>,
modifier: Modifier,
alignment: Alignment,
content_scale: ContentScale,
alpha: f32,
color_filter: Option<ColorFilter>,
) -> NodeId
where
P: Into<Painter> + Clone + PartialEq + 'static,
{
let painter = painter.into();
let intrinsic_dp = painter.intrinsic_size();
let draw_alpha = alpha.clamp(0.0, 1.0);
let semantics_modifier = Modifier::empty().semantics(move |config| {
config.content_description.clone_from(&content_description);
});
let image_modifier = semantics_modifier
.then(modifier)
.semantics(|config| {
if config.role.is_none()
&& config
.content_description
.as_ref()
.is_some_and(|label| !label.trim().is_empty())
{
config.role = Some(crate::SemanticsWidgetRole::Image);
}
})
.draw_behind(move |scope: &mut dyn DrawScope| {
if draw_alpha <= 0.0 {
return;
}
let container_size = scope.size();
if container_size.width <= 0.0 || container_size.height <= 0.0 {
return;
}
match &painter.kind {
PainterKind::Bitmap(bitmap) => draw_bitmap_painter(
scope,
bitmap.clone(),
intrinsic_dp,
alignment,
content_scale,
draw_alpha,
color_filter,
),
PainterKind::BitmapRegion {
bitmap,
source,
sampling,
} => draw_bitmap_region_painter(
scope,
bitmap.clone(),
source.rect(),
alignment,
content_scale,
draw_alpha,
color_filter,
*sampling,
),
PainterKind::BitmapTiled {
bitmap,
source,
sampling,
} => draw_bitmap_tiled_painter(
scope,
bitmap.clone(),
source.rect(),
draw_alpha,
color_filter,
*sampling,
),
PainterKind::NinePatch {
bitmap,
source,
insets,
center,
edges,
sampling,
} => draw_nine_patch_painter(
scope,
bitmap.clone(),
source.rect(),
insets.insets(),
*center,
*edges,
draw_alpha,
color_filter,
*sampling,
),
PainterKind::Svg(svg) => draw_svg_painter(
scope,
svg.clone(),
intrinsic_dp,
alignment,
content_scale,
draw_alpha,
color_filter,
),
}
});
Layout(
image_modifier,
ImageMeasurePolicy {
intrinsic_size: intrinsic_dp,
},
|| {},
)
}
#[cfg(test)]
#[path = "tests/image_tests.rs"]
mod tests;