
# Objective - Fixes #6370 - Closes #6581 ## Solution - Added the following lints to the workspace: - `std_instead_of_core` - `std_instead_of_alloc` - `alloc_instead_of_core` - Used `cargo +nightly fmt` with [item level use formatting](https://rust-lang.github.io/rustfmt/?version=v1.6.0&search=#Item%5C%3A) to split all `use` statements into single items. - Used `cargo clippy --workspace --all-targets --all-features --fix --allow-dirty` to _attempt_ to resolve the new linting issues, and intervened where the lint was unable to resolve the issue automatically (usually due to needing an `extern crate alloc;` statement in a crate root). - Manually removed certain uses of `std` where negative feature gating prevented `--all-features` from finding the offending uses. - Used `cargo +nightly fmt` with [crate level use formatting](https://rust-lang.github.io/rustfmt/?version=v1.6.0&search=#Crate%5C%3A) to re-merge all `use` statements matching Bevy's previous styling. - Manually fixed cases where the `fmt` tool could not re-merge `use` statements due to conditional compilation attributes. ## Testing - Ran CI locally ## Migration Guide The MSRV is now 1.81. Please update to this version or higher. ## Notes - This is a _massive_ change to try and push through, which is why I've outlined the semi-automatic steps I used to create this PR, in case this fails and someone else tries again in the future. - Making this change has no impact on user code, but does mean Bevy contributors will be warned to use `core` and `alloc` instead of `std` where possible. - This lint is a critical first step towards investigating `no_std` options for Bevy. --------- Co-authored-by: François Mockers <francois.mockers@vleue.com>
449 lines
14 KiB
Rust
449 lines
14 KiB
Rust
use core::marker::PhantomData;
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use crate::{
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component::{ComponentId, StorageType},
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prelude::*,
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};
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use super::{FilteredAccess, QueryData, QueryFilter};
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/// Builder struct to create [`QueryState`] instances at runtime.
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///
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/// ```
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/// # use bevy_ecs::prelude::*;
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/// #
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/// # #[derive(Component)]
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/// # struct A;
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/// #
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/// # #[derive(Component)]
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/// # struct B;
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/// #
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/// # #[derive(Component)]
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/// # struct C;
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/// #
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/// let mut world = World::new();
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/// let entity_a = world.spawn((A, B)).id();
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/// let entity_b = world.spawn((A, C)).id();
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///
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/// // Instantiate the builder using the type signature of the iterator you will consume
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/// let mut query = QueryBuilder::<(Entity, &B)>::new(&mut world)
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/// // Add additional terms through builder methods
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/// .with::<A>()
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/// .without::<C>()
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/// .build();
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///
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/// // Consume the QueryState
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/// let (entity, b) = query.single(&world);
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/// ```
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pub struct QueryBuilder<'w, D: QueryData = (), F: QueryFilter = ()> {
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access: FilteredAccess<ComponentId>,
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world: &'w mut World,
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or: bool,
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first: bool,
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_marker: PhantomData<(D, F)>,
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}
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impl<'w, D: QueryData, F: QueryFilter> QueryBuilder<'w, D, F> {
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/// Creates a new builder with the accesses required for `Q` and `F`
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pub fn new(world: &'w mut World) -> Self {
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let fetch_state = D::init_state(world);
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let filter_state = F::init_state(world);
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let mut access = FilteredAccess::default();
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D::update_component_access(&fetch_state, &mut access);
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// Use a temporary empty FilteredAccess for filters. This prevents them from conflicting with the
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// main Query's `fetch_state` access. Filters are allowed to conflict with the main query fetch
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// because they are evaluated *before* a specific reference is constructed.
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let mut filter_access = FilteredAccess::default();
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F::update_component_access(&filter_state, &mut filter_access);
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// Merge the temporary filter access with the main access. This ensures that filter access is
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// properly considered in a global "cross-query" context (both within systems and across systems).
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access.extend(&filter_access);
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Self {
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access,
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world,
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or: false,
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first: false,
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_marker: PhantomData,
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}
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}
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pub(super) fn is_dense(&self) -> bool {
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// Note: `component_id` comes from the user in safe code, so we cannot trust it to
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// exist. If it doesn't exist we pessimistically assume it's sparse.
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let is_dense = |component_id| {
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self.world()
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.components()
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.get_info(component_id)
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.map_or(false, |info| info.storage_type() == StorageType::Table)
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};
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#[allow(deprecated)]
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let (mut component_reads_and_writes, component_reads_and_writes_inverted) =
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self.access.access().component_reads_and_writes();
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if component_reads_and_writes_inverted {
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return false;
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}
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component_reads_and_writes.all(is_dense)
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&& self.access.access().archetypal().all(is_dense)
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&& !self.access.access().has_read_all_components()
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&& self.access.with_filters().all(is_dense)
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&& self.access.without_filters().all(is_dense)
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}
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/// Returns a reference to the world passed to [`Self::new`].
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pub fn world(&self) -> &World {
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self.world
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}
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/// Returns a mutable reference to the world passed to [`Self::new`].
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pub fn world_mut(&mut self) -> &mut World {
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self.world
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}
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/// Adds access to self's underlying [`FilteredAccess`] respecting [`Self::or`] and [`Self::and`]
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pub fn extend_access(&mut self, mut access: FilteredAccess<ComponentId>) {
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if self.or {
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if self.first {
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access.required.clear();
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self.access.extend(&access);
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self.first = false;
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} else {
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self.access.append_or(&access);
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}
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} else {
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self.access.extend(&access);
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}
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}
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/// Adds accesses required for `T` to self.
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pub fn data<T: QueryData>(&mut self) -> &mut Self {
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let state = T::init_state(self.world);
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let mut access = FilteredAccess::default();
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T::update_component_access(&state, &mut access);
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self.extend_access(access);
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self
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}
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/// Adds filter from `T` to self.
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pub fn filter<T: QueryFilter>(&mut self) -> &mut Self {
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let state = T::init_state(self.world);
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let mut access = FilteredAccess::default();
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T::update_component_access(&state, &mut access);
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self.extend_access(access);
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self
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}
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/// Adds [`With<T>`] to the [`FilteredAccess`] of self.
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pub fn with<T: Component>(&mut self) -> &mut Self {
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self.filter::<With<T>>();
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self
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}
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/// Adds [`With<T>`] to the [`FilteredAccess`] of self from a runtime [`ComponentId`].
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pub fn with_id(&mut self, id: ComponentId) -> &mut Self {
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let mut access = FilteredAccess::default();
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access.and_with(id);
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self.extend_access(access);
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self
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}
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/// Adds [`Without<T>`] to the [`FilteredAccess`] of self.
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pub fn without<T: Component>(&mut self) -> &mut Self {
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self.filter::<Without<T>>();
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self
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}
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/// Adds [`Without<T>`] to the [`FilteredAccess`] of self from a runtime [`ComponentId`].
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pub fn without_id(&mut self, id: ComponentId) -> &mut Self {
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let mut access = FilteredAccess::default();
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access.and_without(id);
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self.extend_access(access);
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self
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}
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/// Adds `&T` to the [`FilteredAccess`] of self.
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pub fn ref_id(&mut self, id: ComponentId) -> &mut Self {
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self.with_id(id);
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self.access.add_component_read(id);
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self
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}
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/// Adds `&mut T` to the [`FilteredAccess`] of self.
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pub fn mut_id(&mut self, id: ComponentId) -> &mut Self {
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self.with_id(id);
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self.access.add_component_write(id);
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self
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}
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/// Takes a function over mutable access to a [`QueryBuilder`], calls that function
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/// on an empty builder and then adds all accesses from that builder to self as optional.
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pub fn optional(&mut self, f: impl Fn(&mut QueryBuilder)) -> &mut Self {
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let mut builder = QueryBuilder::new(self.world);
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f(&mut builder);
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self.access.extend_access(builder.access());
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self
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}
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/// Takes a function over mutable access to a [`QueryBuilder`], calls that function
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/// on an empty builder and then adds all accesses from that builder to self.
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///
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/// Primarily used when inside a [`Self::or`] closure to group several terms.
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pub fn and(&mut self, f: impl Fn(&mut QueryBuilder)) -> &mut Self {
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let mut builder = QueryBuilder::new(self.world);
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f(&mut builder);
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let access = builder.access().clone();
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self.extend_access(access);
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self
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}
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/// Takes a function over mutable access to a [`QueryBuilder`], calls that function
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/// on an empty builder, all accesses added to that builder will become terms in an or expression.
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///
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/// ```
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/// # use bevy_ecs::prelude::*;
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/// #
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/// # #[derive(Component)]
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/// # struct A;
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/// #
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/// # #[derive(Component)]
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/// # struct B;
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/// #
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/// # let mut world = World::new();
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/// #
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/// QueryBuilder::<Entity>::new(&mut world).or(|builder| {
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/// builder.with::<A>();
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/// builder.with::<B>();
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/// });
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/// // is equivalent to
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/// QueryBuilder::<Entity>::new(&mut world).filter::<Or<(With<A>, With<B>)>>();
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/// ```
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pub fn or(&mut self, f: impl Fn(&mut QueryBuilder)) -> &mut Self {
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let mut builder = QueryBuilder::new(self.world);
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builder.or = true;
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builder.first = true;
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f(&mut builder);
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self.access.extend(builder.access());
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self
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}
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/// Returns a reference to the [`FilteredAccess`] that will be provided to the built [`Query`].
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pub fn access(&self) -> &FilteredAccess<ComponentId> {
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&self.access
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}
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/// Transmute the existing builder adding required accesses.
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/// This will maintain all existing accesses.
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///
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/// If including a filter type see [`Self::transmute_filtered`]
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pub fn transmute<NewD: QueryData>(&mut self) -> &mut QueryBuilder<'w, NewD> {
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self.transmute_filtered::<NewD, ()>()
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}
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/// Transmute the existing builder adding required accesses.
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/// This will maintain all existing accesses.
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pub fn transmute_filtered<NewD: QueryData, NewF: QueryFilter>(
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&mut self,
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) -> &mut QueryBuilder<'w, NewD, NewF> {
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let mut fetch_state = NewD::init_state(self.world);
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let filter_state = NewF::init_state(self.world);
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NewD::set_access(&mut fetch_state, &self.access);
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let mut access = FilteredAccess::default();
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NewD::update_component_access(&fetch_state, &mut access);
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NewF::update_component_access(&filter_state, &mut access);
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self.extend_access(access);
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// SAFETY:
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// - We have included all required accesses for NewQ and NewF
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// - The layout of all QueryBuilder instances is the same
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unsafe { core::mem::transmute(self) }
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}
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/// Create a [`QueryState`] with the accesses of the builder.
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///
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/// Takes `&mut self` to access the inner world reference while initializing
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/// state for the new [`QueryState`]
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pub fn build(&mut self) -> QueryState<D, F> {
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QueryState::<D, F>::from_builder(self)
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}
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}
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#[cfg(test)]
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mod tests {
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use crate as bevy_ecs;
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use crate::{prelude::*, world::FilteredEntityRef};
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#[derive(Component, PartialEq, Debug)]
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struct A(usize);
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#[derive(Component, PartialEq, Debug)]
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struct B(usize);
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#[derive(Component, PartialEq, Debug)]
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struct C(usize);
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#[test]
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fn builder_with_without_static() {
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let mut world = World::new();
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let entity_a = world.spawn((A(0), B(0))).id();
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let entity_b = world.spawn((A(0), C(0))).id();
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let mut query_a = QueryBuilder::<Entity>::new(&mut world)
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.with::<A>()
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.without::<C>()
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.build();
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assert_eq!(entity_a, query_a.single(&world));
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let mut query_b = QueryBuilder::<Entity>::new(&mut world)
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.with::<A>()
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.without::<B>()
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.build();
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assert_eq!(entity_b, query_b.single(&world));
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}
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#[test]
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fn builder_with_without_dynamic() {
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let mut world = World::new();
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let entity_a = world.spawn((A(0), B(0))).id();
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let entity_b = world.spawn((A(0), C(0))).id();
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let component_id_a = world.register_component::<A>();
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let component_id_b = world.register_component::<B>();
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let component_id_c = world.register_component::<C>();
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let mut query_a = QueryBuilder::<Entity>::new(&mut world)
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.with_id(component_id_a)
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.without_id(component_id_c)
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.build();
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assert_eq!(entity_a, query_a.single(&world));
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let mut query_b = QueryBuilder::<Entity>::new(&mut world)
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.with_id(component_id_a)
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.without_id(component_id_b)
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.build();
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assert_eq!(entity_b, query_b.single(&world));
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}
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#[test]
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fn builder_or() {
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let mut world = World::new();
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world.spawn((A(0), B(0)));
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world.spawn(B(0));
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world.spawn(C(0));
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let mut query_a = QueryBuilder::<Entity>::new(&mut world)
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.or(|builder| {
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builder.with::<A>();
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builder.with::<B>();
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})
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.build();
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assert_eq!(2, query_a.iter(&world).count());
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let mut query_b = QueryBuilder::<Entity>::new(&mut world)
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.or(|builder| {
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builder.with::<A>();
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builder.without::<B>();
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})
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.build();
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dbg!(&query_b.component_access);
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assert_eq!(2, query_b.iter(&world).count());
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let mut query_c = QueryBuilder::<Entity>::new(&mut world)
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.or(|builder| {
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builder.with::<A>();
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builder.with::<B>();
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builder.with::<C>();
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})
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.build();
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assert_eq!(3, query_c.iter(&world).count());
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}
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#[test]
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fn builder_transmute() {
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let mut world = World::new();
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world.spawn(A(0));
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world.spawn((A(1), B(0)));
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let mut query = QueryBuilder::<()>::new(&mut world)
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.with::<B>()
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.transmute::<&A>()
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.build();
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query.iter(&world).for_each(|a| assert_eq!(a.0, 1));
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}
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#[test]
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fn builder_static_components() {
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let mut world = World::new();
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let entity = world.spawn((A(0), B(1))).id();
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let mut query = QueryBuilder::<FilteredEntityRef>::new(&mut world)
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.data::<&A>()
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.data::<&B>()
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.build();
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let entity_ref = query.single(&world);
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assert_eq!(entity, entity_ref.id());
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let a = entity_ref.get::<A>().unwrap();
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let b = entity_ref.get::<B>().unwrap();
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assert_eq!(0, a.0);
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assert_eq!(1, b.0);
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}
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#[test]
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fn builder_dynamic_components() {
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let mut world = World::new();
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let entity = world.spawn((A(0), B(1))).id();
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let component_id_a = world.register_component::<A>();
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let component_id_b = world.register_component::<B>();
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let mut query = QueryBuilder::<FilteredEntityRef>::new(&mut world)
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.ref_id(component_id_a)
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.ref_id(component_id_b)
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.build();
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let entity_ref = query.single(&world);
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assert_eq!(entity, entity_ref.id());
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let a = entity_ref.get_by_id(component_id_a).unwrap();
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let b = entity_ref.get_by_id(component_id_b).unwrap();
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// SAFETY: We set these pointers to point to these components
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unsafe {
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assert_eq!(0, a.deref::<A>().0);
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assert_eq!(1, b.deref::<B>().0);
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}
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}
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/// Regression test for issue #14348
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#[test]
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fn builder_static_dense_dynamic_sparse() {
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#[derive(Component)]
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struct Dense;
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#[derive(Component)]
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#[component(storage = "SparseSet")]
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struct Sparse;
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let mut world = World::new();
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world.spawn(Dense);
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world.spawn((Dense, Sparse));
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let mut query = QueryBuilder::<&Dense>::new(&mut world)
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.with::<Sparse>()
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.build();
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let matched = query.iter(&world).count();
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assert_eq!(matched, 1);
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}
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}
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