Previously you weren't guaranteed to have only advancing time entries,
you could jump back in time, but now it omits unnecessary duplicates and
clamps automatically if you emit a previous time entry to enforce
forwards order only.
The reason I didn't do this originally is because `await` can jump in
the order because we're trying to encode a graph into a flat timeline
for simplicity of the protocol and consumers.
```js
async function a() {
await fetch1();
await fetch2();
}
async function b() {
await fetch3();
}
async function foo() {
const p = a();
await b();
return p;
}
```
This can effectively create two parallel sequences:
```
--1.................----2.......--
------3......---------------------
```
This can now be flattened to either:
```
--1.................3---2.......--
```
Or:
```
------3......1......----2.......--
```
Depending on which one we visit first. Regardless, information is lost.
I'd say that the second one is worse encoding of this scenario because
it pretends that we weren't waiting for part of the timespan that we
were. To solve this I think we should probably make `emitAsyncSequence`
create a temporary flat list and then sort it by start time before
emitting.
Although we weren't actually blocked since there was some CPU time that
was able to proceed to get to 3. So maybe the second one is actually
better. If we wanted that consistently we'd have to figure out what the
intersection was.
---------
Co-authored-by: Hendrik Liebau <mail@hendrik-liebau.de>
This adds some I/O to go get the third party thing to test how it
overlaps.
With #33482, this is what it looks like. The await gets cut off when the
third party component starts rendering. I.e. after the latency to start.
<img width="735" alt="Screenshot 2025-06-08 at 5 42 46 PM"
src="https://github.com/user-attachments/assets/f68d9a84-05a1-4125-b3f0-8f3e4eaaa5c1"
/>
This doesn't fully simulate everything because it should actually also
simulate each chunk of the stream coming back too. We could wrap the
ReadableStream to simulate that. In that scenario, it would probably get
some awaits on the chunks at the end too.
I noticed that the ThirdPartyComponent in the fixture was showing the
wrong stack and the `"use third-party"` is in the wrong location.
<img width="628" alt="Screenshot 2025-06-06 at 11 22 11 PM"
src="https://github.com/user-attachments/assets/f0013380-d79e-4765-b371-87fd61b3056b"
/>
When creating the initial JSX inside the third party server, we should
make sure that it has no owner. In a real cross-server environment you
get this by default by just executing in different context. But since
the fixture example is inside the same AsyncLocalStorage as the parent
it already has an owner which gets transferred. So we should make sure
that were we create the JSX has no owner to simulate this.
When we then parse a null owner on the receiving side, we replace its
owner/stack with the owner/stack of the call to `createFrom...` to
connect them. This worked fine with only two environments. The bug was
that when we did this and then transferred the result to a third
environment we took the original parsed stack trace. We should instead
parse a new one from the replaced stack in the current environment.
The second bug was that the `"use third-party"` badge ends up in the
wrong place when we do this kind of thing. Because the stack of the
thing entering the new environment is the call to `createFrom...` which
is in the old environment even though the component itself executes in
the new environment. So to see if there's a change we should be
comparing the current environment of the task to the owner's environment
instead of the next environment after the task.
After:
<img width="494" alt="Screenshot 2025-06-07 at 1 13 28 AM"
src="https://github.com/user-attachments/assets/e2e870ba-f125-4526-a853-bd29f164cf09"
/>
We want to change the defaults for `revealOrder` and `tail` on
SuspenseList. This is an intermediate step to allow experimental users
to upgrade.
To explicitly specify these options I added `revealOrder="independent"`
and `tail="visible"`.
I then added warnings if `undefined` or `null` is passed. You must now
always explicitly specify them. However, semantics are still preserved
for now until the next step.
We also want to change the rendering order of the `children` prop for
`revealOrder="backwards"`. As an intermediate step I first added
`revealOrder="unstable_legacy-backwards"` option. This will only be
temporary until all users can switch to the new `"backwards"` semantics
once we flip it in the next step.
I also clarified the types that the directional props requires iterable
children but not iterable inside of those. Rows with multiple items can
be modeled as explicit fragments.
Stacked on #33330.
This walks the element tree to activate the various classes under
different scenarios. There are some edge case things that are a little
different since we can't express every scenario without virtual nodes.
The main thing that's still missing though is avoiding animating updates
if it can be contained to a layout or enter/exit/share if they're out of
the viewport. I.e. layout stuff.
Basically we track a `SuspenseListRow` on the task. These keep track of
"pending tasks" that block the row. A row is blocked by:
- First itself completing rendering.
- A previous row completing.
- Any tasks inside the row and before the Suspense boundary inside the
row. This is mainly because we don't yet know if we'll discover more
SuspenseBoundaries.
- Previous row's SuspenseBoundaries completing.
If a boundary might get outlined, then we can't consider it completed
until we have written it because it determined whether other future
boundaries in the row can finish.
This is just handling basic semantics. Features not supported yet that
need follow ups later:
- CSS dependencies of previous rows should be added as dependencies of
future row's suspense boundary. Because otherwise if the client is
blocked on CSS then a previous row could be blocked but the server
doesn't know it.
- I need a second pass on nested SuspenseList semantics.
- `revealOrder="together"`
- `tail="hidden"`/`tail="collapsed"`. This needs some new runtime
semantics to the Fizz runtime and to allow the hydration to handle
missing rows in the HTML. This should also be future compatible with
AsyncIterable where we don't know how many rows upfront.
- Need to double check resuming semantics.
---------
Co-authored-by: Sebastian "Sebbie" Silbermann <silbermann.sebastian@gmail.com>
When needed.
For the external runtime we always include this wrapper.
For others, we only include it if we have an ViewTransitions affecting.
If we discover the ViewTransitions late, then we can upgrade an already
emitted instruction.
This doesn't yet do anything useful with it, that's coming in a follow
up. This is just the mechanism for how it gets installed.
Stacked on #33160, #33162, #33186 and #33188.
We have a special case that's awkward for default indicators. When you
start a new async Transition from `React.startTransition` then there's
not yet any associated root with the Transition because you haven't
necessarily `setState` on anything yet until the promise resolves.
That's what `entangleAsyncAction` handles by creating a lane that
everything entangles with until all async actions are done.
If there are no sync updates before the end of the event, we should
trigger a default indicator until either the async action completes
without update or if it gets entangled with some roots we should keep it
going until those roots are done.
Stacked on #33160.
By default, if `onDefaultTransitionIndicator` is not overridden, this
will trigger a fake Navigation event using the Navigation API. This is
intercepted to create an on-going navigation until we complete the
Transition. Basically each default Transition is simulated as a
Navigation.
This triggers the native browser loading state (in Chrome at least). So
now by default the browser spinner spins during a Transition if no other
loading state is provided. Firefox and Safari hasn't shipped Navigation
API yet and even in the flag Safari has, it doesn't actually trigger the
native loading state.
To ensures that you can still use other Navigations concurrently, we
don't start our fake Navigation if there's one on-going already.
Similarly if our fake Navigation gets interrupted by another. We wait
for on-going ones to finish and then start a new fake one if we're
supposed to be still pending.
There might be other routers on the page that might listen to intercept
Navigation Events. Typically you'd expect them not to trigger a refetch
when navigating to the same state. However, if they want to detect this
we provide the `"react-transition"` string in the `info` field for this
purpose.
`fragmentInstance.dispatchEvent(evt)` calls `element.dispatchEvent(evt)`
on the fragment's host parent. This mimics bubbling if the
`fragmentInstance` could receive an event itself.
If the parent is disconnected, there is a dev warning and no event is
dispatched.
This enables `focus` and `focusLast` methods on FragmentInstances to
search nested host components, depth first. Attempts focus on each child
and bails if one is successful. Previously, only the first level of host
children would attempt focus.
Now if we have an example like
```
component MenuItem() {
return (<div><a>{...}</a></div>)
}
component Menu() {
return <Fragment>{items.map(i => <MenuItem i={i} />)}</Fragment>
}
```
We can target focus on the first or last a tag, rather than checking
each wrapping div and then noop.
Stacked on #33129. Flagged behind `enableHydrationChangeEvent`.
If you type into a controlled input before hydration and something else
rerenders like a setState in an effect, then the controlled input will
reset to whatever React thought it was. Even with event replaying that
this is stacked on, if the second render happens before event replaying
has fired in a separate task.
We don't want to flush inside the commit phase because then things like
flushSync in these events wouldn't work since they're inside the commit
stack.
This flushes all event replaying between renders by flushing it at the
end of `flushSpawned` work. We've already committed at that point and is
about to either do subsequent renders or yield to event loop for passive
effects which could have these events fired anyway. This just ensures
that they've already happened by the time subsequent renders fire. This
means that there's now a type of event that fire between sync render
passes.
Follow up to #33027.
This enhances the heuristic so that we accumulate the size of the
currently written boundaries. Starting from the size of the root (minus
preamble) for the shell.
This ensures that if you have many small boundaries they don't all
continue to get inlined. For example, you can wrap each paragraph in a
document in a Suspense boundary to regain document streaming
capabilities if that's what you want.
However, one consideration is if it's worth producing a fallback at all.
Maybe if it's like `null` it's free but if it's like a whole alternative
page, then it's not. It's possible to have completely useless Suspense
boundaries such as when you nest several directly inside each other. So
this uses a limit of at least 500 bytes of the content itself for it to
be worth outlining at all. It also can't be too small because then for
example a long list of paragraphs can never be outlined.
In the fixture I straddle this limit so some paragraphs are too small to
be considered. An unfortunate effect of that is that you can end up with
some of them not being outlined which means that they appear out of
order. SuspenseList is supposed to address that but it's unfortunate.
The limit is still fairly high though so it's unlikely that by default
you'd start outlining anything within the viewport at all. I had to
reduce the `progressiveChunkSize` by an order of magnitude in my fixture
to try it out properly.
Since the very beginning we have had the `progressiveChunkSize` option
but we never actually took advantage of it because we didn't count the
bytes that we emitted. This starts counting the bytes by taking a pass
over the added chunks each time a segment completes.
That allows us to outline a Suspense boundary to stream in late even if
it is already loaded by the time that back-pressure flow and in a
`prerender`. Meaning it gets inserted with script.
The effect can be seen in the fixture where if you have large HTML
content that can block initial paint (thanks to
[`rel="expect"`](https://github.com/facebook/react/pull/33016) but also
nested Suspense boundaries). Before this fix, the paint would be blocked
until the large content loaded. This lets us paint the fallback first in
the case that the raw bytes of the content takes a while to download.
You can set it to `Infinity` to opt-out. E.g. if you want to ensure
there's never any scripts. It's always set to `Infinity` in
`renderToHTML` and the legacy `renderToString`.
One downside is that if we might choose to outline a boundary, we need
to let its fallback complete.
We don't currently discount the size of the fallback but really just
consider them additive even though in theory the fallback itself could
also add significant size or even more than the content. It should maybe
really be considered the delta but that would require us to track the
size of the fallback separately which is tricky.
One problem with the current heuristic is that we just consider the size
of the boundary content itself down to the next boundary. If you have a
lot of small boundaries adding up, it'll never kick in. I intend to
address that in a follow up.
The semantics of React is that anything outside of Suspense boundaries
in a transition doesn't display until it has fully unsuspended. With SSR
streaming the intention is to preserve that.
We explicitly don't want to support the mode of document streaming
normally supported by the browser where it can paint content as tags
stream in since that leads to content popping in and thrashing in
unpredictable ways. This should instead be modeled explictly by nested
Suspense boundaries or something like SuspenseList.
After the first shell any nested Suspense boundaries are only revealed,
by script, once they're fully streamed in to the next boundary. So this
is already the case there. However, for the initial shell we have been
at the mercy of browser heuristics for how long it decides to stream
before the first paint.
Chromium now has [an API explicitly for this use
case](https://developer.mozilla.org/en-US/docs/Web/API/View_Transition_API/Using#stabilizing_page_state_to_make_cross-document_transitions_consistent)
that lets us model the semantics that we want. This is always important
but especially so with MPA View Transitions.
After this a simple document looks like this:
```html
<!DOCTYPE html>
<html>
<head>
<link rel="expect" href="#«R»" blocking="render"/>
</head>
<body>
<p>hello world</p>
<script src="bootstrap.js" id="«R»" async=""></script>
...
</body>
</html>
```
The `rel="expect"` tag indicates that we want to wait to paint until we
have streamed far enough to be able to paint the id `"«R»"` which
indicates the shell.
Ideally this `id` would be assigned to the root most HTML element in the
body. However, this is tricky in our implementation because there can be
multiple and we can render them out of order.
So instead, we assign the id to the first bootstrap script if there is
one since these are always added to the end of the shell. If there isn't
a bootstrap script then we emit an empty `<template
id="«R»"></template>` instead as a marker.
Since we currently put as much as possible in the shell if it's loaded
by the time we render, this can have some negative effects for very
large documents. We should instead apply the heuristic where very large
Suspense boundaries get outlined outside the shell even if they're
immediately available. This means that even prerenders can end up with
script tags.
We only emit the `rel="expect"` if you're rendering a whole document.
I.e. if you rendered either a `<html>` or `<head>` tag. If you're
rendering a partial document, then we don't really know where the
streaming parts are anyway and can't provide such guarantees. This does
apply whether you're streaming or not because we still want to block
rendering until the end, but in practice any serialized state that needs
hydrate should still be embedded after the completion id.
Behind the `enableSrcObject` flag. This is revisiting a variant of what
was discussed in #11163.
Instead of supporting the [`srcObject`
property](https://developer.mozilla.org/en-US/docs/Web/API/HTMLMediaElement/srcObject)
as a separate name, this adds an overload of `src` to allow objects to
be passed. The DOM needs to add separate properties for the object forms
since you read back but it doesn't make sense for React's write-only API
to do that. Similar to how we'll like add an overload for
`popoverTarget` instead of calling it `popoverTargetElement` and how
`style` accepts an object and it's not `styleObject={{...}}`.
There are a number of reason to revisit this.
- It's just way more convenient to have this built-in and it makes
conceptual sense. We typically support declarative APIs and polyfill
them when necessary.
- RSC supports Blobs and by having it built-in you don't need a Client
Component wrapper to render it where as doing it with effects would
require more complex wrappers. By picking Blobs over base64,
client-navigations can use the more optimized binary encoding in the RSC
protocol.
- The timing aspect of coordinating it with Suspensey images and image
decoding is a bit tricky to get right because if you set it in an effect
it's too late because you've already rendered it.
- SSR gets complicated when done in user space because you have to
handle both branches. Likely with `useSyncExternalStore`.
- By having it built-in we could optimize the payloads shared between
RSC payloads embedded in the HTML and data URLs.
This does not support objects for `<source src>` nor `<img srcset>`.
Those don't really have equivalents in the DOM neither. They're mainly
for picking an option when you don't know programmatically. However, for
this use case you're really better off picking a variant before
generating the blobs.
We may support Response objects in the future too as per
https://github.com/whatwg/fetch/issues/49
Safari has a bug where if you put a block element inside an inline
element and the inline element has a `view-transition-name` assigned it
finds it as duplicate names.
https://bugs.webkit.org/show_bug.cgi?id=290923
This adds a warning if we detect this scenario in dev mode.
For the case where it renders into a single block, we can model this by
making the parent either `block` or `inline-block` automatically to fix
the issue. So we do that to automatically cover simple cases like
`<a><div>...</div></a>`. This unfortunately causes layout/styling thrash
so we might want to delete it once the bug has been fixed in enough
Safari versions.
We've known we've wanted this for many years and most of the
implementation was already done for Suspensey CSS. This waits to commit
until images have decoded by default or up to 500ms timeout (same as
suspensey fonts).
It only applies to Transitions, Retries (Suspense), Gesture Transitions
(flag) and Idle (doesn't exist). Sync updates just commit immediately.
`<img loading="lazy" src="..." />` opts out since you explicitly want it
to load lazily in that case.
`<img onLoad={...} src="..." />` also opts out since that implies you're
ok with managing your own reveal.
In the future, we may add an opt in e.g. `<img blocking="render"
src="..." />` that opts into longer timeouts and re-suspends even sync
updates. Perhaps also triggering error boundaries on errors.
The rollout for this would have to go in a major and we may have to
relax the default timeout to not delay too much by default. However, we
can also make this part of `enableViewTransition` so that if you opt-in
by using View Transitions then those animations will suspend on images.
That we could ship in a minor.
Stacked on #32788.
Normally we track `addTransitionType` globally because of the async gap
that can happen in Actions where we lack AsyncContext to associate it
with a particular Transition. This unfortunately also means it's
possible to call outside of `startTransition` which is something we want
to warn for.
We need to be able to distinguish whether `addTransitionType` is for a
regular Transition or a Gesture Transition though.
Since `startGestureTransition` is only synchronous we can track it
within that execution scope and move it to a separate set. Since we know
for sure which call owns it we can properly associate it with that
specific provider's `ScheduledGesture`.
This does not yet handle calling `addTransitionType` inside the render
phase of a gesture. That would currently still be associated with the
next Transition instead.
Stacked on #32783. This will replace [the `useSwipeTransition`
API](https://github.com/facebook/react/pull/32373).
Instead, of a special Hook, you can make updates to `useOptimistic`
Hooks within the `startGestureTransition` scope.
```
import {unstable_startGestureTransition as startGestureTransition} from 'react';
const cancel = startGestureTransition(timeline, () => {
setOptimistic(...);
}, options);
```
There are some downsides to this like you can't define two directions as
once and there's no "standard" direction protocol. It's instead up to
libraries to come up with their own conventions (although we can suggest
some).
The convention is still that a gesture recognizer has two props `action`
and `gesture`. The `gesture` prop is a Gesture concept which now behaves
more like an Action but 1) it can't be async 2) it shouldn't have
side-effects. For example you can't call `setState()` in it except on
`useOptimistic` since those can be reverted if needed. The `action` is
invoked with whatever side-effects you want after the gesture fulfills.
This is isomorphic and not associated with a specific renderer nor root
so it's a bit more complicated.
To implement this I unify with the `ReactSharedInternal.T` property to
contain a regular Transition or a Gesture Transition (the `gesture`
field). The benefit of this unification means that every time we
override this based on some scope like entering `flushSync` we also
override the `startGestureTransition` scope. We just have to be careful
when we read it to check the `gesture` field to know which one it is.
(E.g. I error for setState / requestFormReset.)
The other thing that's unique is the `cancel` return value to know when
to stop the gesture. That cancellation is no longer associated with any
particular Hook. It's more associated with the scope of the
`startGestureTransition`. Since the schedule of whether a particular
gesture has rendered or committed is associated with a root, we need to
somehow associate any scheduled gestures with a root.
We could track which roots we update inside the scope but instead, I
went with a model where I check all the roots and see if there's a
scheduled gesture matching the timeline. This means that you could
"retain" a gesture across roots. Meaning this wouldn't cancel until both
are cancelled:
```
const cancelA = startGestureTransition(timeline, () => {
setOptimisticOnRootA(...);
}, options);
const cancelB = startGestureTransition(timeline, () => {
setOptimisticOnRootB(...);
}, options);
```
It's more like it's a global transition than associated with the roots
that were updated.
Optimistic updates mostly just work but I now associate them with a
specific "ScheduledGesture" instance since we can only render one at a
time and so if it's not the current one, we leave it for later.
Clean up of optimistic updates is now lazy rather than when we cancel.
Allowing the cancel closure not to have to be associated with each
particular update.
Portals and `<ViewTransition>` are tricky because they leave the React
tree. You might think of a Portal's container conceptually as also being
part of a React tree but that's not quite how they're modeled today.
They're more like their own roots. So instead, of trying to find a
conceptual place in the React tree we treat Portals as their own root.
We have two ways of tracking whether an update to a ViewTransition
boundary has occurred. Either a DOM mutation has happened within it, or
a resize of a child has caused it to potentially relayout its parent.
Normally that just follows the tree structure of React, but not when
it's a Portal.
When it's a Portal we don't know which DOM parent it might have
affected. For all we know it's at the root (and in fact, in most cases
that's where Portals go).
With this PR we mark the root as having been affected by a mutation or
resize. This means that the whole document will animate and we can't
optimize away from it. This ensures that a mutation to the root of a
Portal doesn't go unanimated with other things are animating such as its
parent.
You can regain this optimization by adding a `<ViewTransition>` boundary
directly inside the Portal itself so it owns its own animation. If that
DOM node is also absolutely positioned it doesn't leak.
Conversely this also means that a mutation inside a Portal doesn't
affect its React parent so it won't trigger its parent's animation if
this was the only thing animating. That could be unfortunate if this
container is actually inside the same React parent. However, because
this would have been an update we would've marked it for "maybe
animating" and updates can't only get their animations cancelled if the
root is cancelled, in practice this will actually animate anyway.
It was always confusing that this is not a CSS class but a
view-transition-class.
The `className` sticks out a bit among its siblings `enter`, `exit`,
`update` and `share`. The idea is that the most specific definition
override is the class name that gets applied and this prop is really
just the fallback, catch-all or "any" that is applied if you didn't
specify a more specific one.
It has also since evolved not just to take a string but also a map of
Transition Type to strings.
The "class" is really the type of the value. We could add a suffix to
all of them like `defaultClass`, `enterClass`, `exitClass`,
`updateClass` and `shareClass`. However, this doesn't necessarily make
sense with the mapping of Transition Type to string. It also makes it a
bit too DOM centric. In React Native this might still be called a
"class" but it might be represented by an object definition. We might
even allow some kind of inline style form for the DOM too. Really this
is about picking which "animation" that runs which can be a string or
instance. "Animation" is too broad because there's also a concept of a
CSS Animation and these are really sets of CSS animations (group,
image-pair, old, new). It could maybe be `defaultTransition`,
`enterTransition`, etc but that seems unnecessarily repetitive and still
doesn't say anything about it being a class.
We also already have the name "default" in the map of Transition Types.
In fact you can now specify a default for default:
```
<ViewTransition default={{"navigation-back": "slide-out", "default": "fade-in"}}>
```
One thing I don't like about the name `"default"` is that it might be
common to just apply a named class that does it matching to
enter/exit/update in the CSS selectors (such as the `:only-child` rule)
instead of doing that mapping to each one using React. In that can you
end up specifying only `default={...}` a lot and then what is it the
"default" for? It's more like "all". I think it's likely that you end up
with either "default" or the specific forms instead of both at once.
Starting a View Transition is an async sequence. Since React can get a
sync update in the middle of sequence we sometimes interrupt that
sequence.
Currently, we don't actually cancel the View Transition so it can just
run as a partial. This ensures that we fully skip it when that happens,
as well as warn.
However, it's very easy to trigger this with just a setState in
useLayoutEffect right now. Therefore if we're inside the preparing
sequence of a startViewTransition, this delays work that would've
normally flushed in a microtask. ~Maybe we want to do the same for
Default work already scheduled through a scheduler Task.~ Edit: This was
already done.
`flushSync` currently will still lead to an interrupted View Transition
(with a warning). There's a tradeoff here whether we want to try our
best to preserve the guarantees of `flushSync` or favor the animation.
It's already possible to suspend at the root with `flushSync` which
means it's not always 100% guaranteed to commit anyway. We could treat
it as suspended. But let's see how much this is a problem in practice.
Follow up to #32656.
Remove touchAction from SwipeRecognizer. I was under the wrong
impression that this was only the touch-action applied to this
particular element, but that parents would still win but in fact this
blocks the parent from scrolling in the other direction. By specifying a
fixed direction it also blocked rage-swiping in the other direction
early on.
Disable pointer-events on view-transition so that the scroll can be hit.
This means that touches hit below the items animating above. This allows
swiping to happen again before momentum scroll has finished. Previously
they were ignored. This only works as long as the SwipeRecognizer is
itself not animating. This means you can now rage-swipe in both
directions quickly.
Adds `getClientRects()` to fragment instances with a fixture test case.
`Element.getClientRect` returns a collection of `DOMRect`s (see example
of multiline span returning two `DOMRect` boxes).
`fragmentInstance.getClientRects` here flattens those collections into
an array of rects.
`focus()` was added in https://github.com/facebook/react/pull/32465.
Here we add `focusLast()` and `blur()`. I also extended `focus` to take
options.
`focus` will focus the first focusable element. `focusLast` will focus
the last focusable element. We could consider a `focusFirst` naming or
even the `focusWithin` used by test selector APIs as well.
`blur` will only have an effect if the current `document.activeElement`
is one of the fragment children.
I made the button a bit bigger and moved the swipe recognizer around the
whole screen. Typically these are used around the whole content without
any affordances and not as a standalone scrubber. Ideally the swipe
would be able to be inside the animating content but it can't yet due to
[this Safari bug](https://bugs.webkit.org/show_bug.cgi?id=288795).
Added back some paragraphs so that scrolling can be tested properly. It
appears it's possible to get the swipe to be a bit misaligned if you
scroll enough on iOS.
<img width="437" alt="Screenshot 2025-03-17 at 10 27 42 PM"
src="https://github.com/user-attachments/assets/589dc828-717e-420c-83dc-94ae6ad59791"
/>
This does the same thing for `measureUpdateViewTransition` that we did
for `measureNestedViewTransitions` in
https://github.com/facebook/react/pull/32612/commits/e3cbaffef05c7b476c07f7495e06788a9503e636.
If a boundary hasn't mutated and didn't change in size, we mark it for
cancellation. Otherwise we add names to it. The different from the
CommitViewTransition path is that the "old" names are added to the
clones so this is the first time the "new" names.
Now we also cancel any boundaries that were unchanged. So now the root
no longer animates. We still have to clone them. There are other
optimizations that can avoid cloning but once we've done all the layouts
we can still cancel the running animation and let them just be the
regular content if they didn't change. Just like the regular
fire-and-forget path.
This also fixes the measurement so that we measure clones by adjusting
their position back into the viewport.
This actually surfaces a bug in Safari that was already in #32612. It
turns out that the old names aren't picked up for some reason and so in
Safari they looked more like a cross-fade than what #32612 was supposed
to fix. However, now that bug is even more apparent because they
actually just disappear in Safari. I'm not sure what that bug is but
it's unrelated to this PR so will fix that separately.
ViewTransition uses the `useId` algorithm to auto-assign names. This
ensures that we could animate between SSR content and client content by
ensuring that the names line up.
However, I missed that we need to bump the id (materialize it) when we
do that. This is what function components do if they use one or more
`useId()`. This caused duplicate names when two ViewTransitions were
nested without any siblings since they would share name.
This implements `observeUsing(observer)` and `unobserverUsing(observer)`
on fragment instances. IntersectionObservers and ResizeObservers can be
passed to observe each host child of the fragment. This is the
equivalent to calling `observer.observe(child)` or
`observer.unobserve(child)` for each child target.
Just like the addEventListener, the observer is held on the fragment
instance and applied to any newly mounted child. So you can do things
like wrap a paginated list in a fragment and have each child
automatically observed as they commit in.
Unlike, the event listeners though, we don't `unobserve` when a child is
removed. If a removed child is currently intersecting, the observer
callback will be called when it is removed with an empty rect. This lets
you track all the currently intersecting elements by setting state from
the observer callback and either adding or removing them from your list
depending on the intersecting state. If you want to track the removal of
items offscreen, you'd have to maintain that state separately and append
intersecting data to it in the observer callback. This is what the
fixture example does.
There could be more convenient ways of managing the state of multiple
child intersections, but basic examples are able to be modeled with the
simple implementation. Let's see how the usage goes as we integrate this
with more advanced loggers and other features.
For now you can only attach one observer to an instance. This could
change based on usage but the fragments are composable and could be
stacked as one way to apply multiple observers to the same elements.
In practice, one pattern we expect to enable is more composable logging
such as
```javascript
function Feed({ items }) {
return (
<ImpressionLogger>
{items.map((item) => (
<FeedItem />
))}
</ImpressionLogger>
);
}
```
where `ImpressionLogger` would set up the IntersectionObserver using a
fragment ref with the required business logic and various components
could layer it wherever the logging is needed. Currently most callsites
use a hook form, which can require wiring up refs through the tree and
merging refs for multiple loggers.
This change merges the `react-compiler` rule from
`eslint-plugin-react-compiler` into the `eslint-plugin-react-hooks`
plugin. In order to do the move in a way that keeps commit history with
the moved files, but also no remove them from their origin until a
future cleanup change can be done, I did the `git mv` first, and then
recreated the files that were moved in their original places, as a
separate commit. Unfortunately GH shows the moved files as new instead
of the ones that are truly new. But in the IDE and `git blame`, commit
history is intact with the moved files.
Since this change adds new dependencies, and one of those dependencies
has a higher `engines` declaration for `node` than what the plugin
currently has, this is technically a breaking change and will have to go
out as part of a major release.
### Related Changes
- https://github.com/facebook/react/pull/32458
---------
Co-authored-by: Lauren Tan <poteto@users.noreply.github.com>
This adds a page to the DOM fixture to test Fragment Refs. The first
test case is for `addEventListener`/`removeEventListener`.
Setting `enableFragmentRefs` to `__EXPERIMENTAL__` and building is
required to run the fixture.
<img width="872" alt="Screenshot 2025-03-05 at 12 58 57 PM"
src="https://github.com/user-attachments/assets/fee498b7-fd96-4178-9e82-c46d4cb55c9b"
/>
This is really the essence mechanism of the `useSwipeTransition`
feature.
We don't want to immediately switch to the destination state when
starting a gesture. The effects remain mounted on the current state. We
want the current state to be "live". This is important to for example
allow a video to keeping playing while starting a swipe (think
TikTok/Reels) and not stop until you've committed the action. The only
thing that can be live is the "new" state. Therefore we treat the
destination as the "old" state and perform a reverse animation from
there.
Ideally we could apply the old state to the DOM tree, take a snapshot
and then revert it back in the mutation of `startViewTransition`.
Unfortunately, the way `startViewTransition` was designed it always
paints one frame of the "old" state which would lead this to cause a
flicker.
To work around this, we need to create a clone of any View Transition
boundary that might be mutated and then render that offscreen. That way
we can render the "current" state on screen and the "destination" state
offscreen for the screenshots. Being mutated can be either due to React
doing a DOM mutation or if a child boundary resizes that causes the
parent to relayout. We don't have to do this for insertions or deletions
since they only appear on one side.
The worst case scenario is that we have to clone the whole root. That's
what this first PR implements. We clone the container and if it's not
absolutely positioned, we position it on top of the current one. If the
container is `document` or `<html>` we instead clone the `<body>` tag
since it's the only one we can insert a duplicate of. If the container
is deep in the tree we clone just that even though technically we should
probably clone the whole document in that case. We just keep the impact
smaller. Ideally though we'd never hit this case. In fact, if we clone
the document we issue a warning (always for now) since you probably
should optimize this. In the future I intend to add optimizations when
affected View Transition boundaries are absolutely positioned since they
cannot possibly relayout the parent. This would be the ideal way to use
this feature most efficiently but it still works without it.
Since we render the "old" state outside the viewport, we need to then
adjust the animation to put it back into the viewport. This is the
trickiest part to get right while still preserving any customization of
the View Transitions done using CSS. This current approach reapplies all
the animations with adjusted keyframes.
In the case of an "exit" the pseudo-element itself is positioned outside
the viewport but since we can't programmatically update the style of the
pseudo-element itself we instead adjust all the keyframes to put it back
into the viewport. If there is no animation on the group we add one.
In the case of an "update" the pseudo-element is positioned on the new
state which is already inside the viewport. However, the auto-generated
animation of the group has a starting keyframe that starts outside the
viewport. In this case we need to adjust that keyframe.
In the future I might explore a technique that inserts stylesheets
instead of mutating the animations. It might be simpler. But whatever
hacks work to maximize the compatibility is best.
This change swaps which config `recommended` is aliasing. In 5.2.0, the
new flat config was introduced as `recommended-latest`, while
`recommended` still pointed at the legacy rc-based config, with a note
that in the next major version `recommended` would be updated to point
at `recommend-latest`. This change makes that swap, and make the default
`recommended` experience the flat config. To continue using the legacy
rc recommended config, please make the following change in your config
```diff
- extends: ['plugin:react-hooks/recommended']
+ extends: ['plugin:react-hooks/recommended-legacy']
```
This change also deprecates `recommended-latest` in favor of
`recommended`. `recommended-latest` will be removed in a future major
version.
The README has been updated to reflect the new usage, and to put the
flat config sections before the legacy config sections.
I also took the opportunity to change the v9 fixture to use a typescript
config, serving as a demonstration for usage as well as a way to
validate the types are correct.
BREAKING CHANGE
---------
Co-authored-by: lauren <poteto@users.noreply.github.com>
This adds a `ReactFiberApplyGesture` which is basically intended to be a
fork of the phases in `ReactFiberCommitWork` except for the fake commit
that `useSwipeTransition` does. So far none of the phases are actually
implemented yet. This is just the scaffolding around them so I can fill
them in later.
The important bit is that we call `startViewTransition` (via the
`startGestureTransition` Config) when a gesture starts. We add a paused
animation to prevent the transition from committing (even if the
ScrollTimeline goes to 100%). This also locks the documents so that we
can't commit any other Transitions until it completes.
When the gesture completes (scroll end) then we stop the gesture View
Transition. If there's no new work scheduled we do that immediately but
if there was any new work already scheduled, then we assume that this
will potentially commit the new state. So we wait for that to finish.
This lets us lock the animation in its state instead of snapping back
and then applying the real update.
Using this technique we can't actually run a View Transition from the
current state to the actual committed state because it would snap back
to the beginning and then run the View Transition from there. Therefore
any new commit needs to skip View Transitions even if it should've
technically animated to that state. We assume that the new state is the
same as the optimistic state you already swiped to. An alternative to
this technique could be to commit the optimistic state when we cancel
and then apply any new updates o top of that. I might explore that in
the future.
Regardless it's important that the `action` associated with the swipe
schedules some work before we cancel. Otherwise it risks reverting
first. So I had to update this in the fixture.
Stacked on #32412.
To effectively `useSwipeTransition` you need something to start and stop
the gesture as well as triggering an Action.
This adds an example Gesture Recognizer to the fixture. Instead of
having this built-in to React itself, instead the idea is to leave this
to various user space Component libraries. It can be done in different
ways for different use cases. It could use JS driven or native
ScrollTimeline or both.
This example uses a native scroll with scroll snapping to two edges. If
you swipe far enough to snap to the other edge, it triggers an Action at
the end.
This particular example uses a `position: sticky` to wrap the content of
the Gesture Recognizer. This means that it's inert by itself. It doesn't
scroll its content just like a plain JS recognizer using pointer events
would. This is useful because it means that scrolling doesn't affect
content before we start (the "scroll" event fires after scrolling has
already started) so we don't have to both trying to start it earlier. It
also means that scrolling doesn't affect the live content which can lead
to unexpected effects on the View Transition.
I find the inert recognizer the most useful pairing with
`useSwipeTransition` but it's not the only way to do it. E.g. you can
also have a scrollable surface that uses plain scrolling with snapping
and then just progressively enhances swiping between steps.
We can only render one direction at a time with View Transitions. When
the direction changes we need to do another render in the new direction
(returning previous or next).
To determine direction we store the position we started at and anything
moving to a lower value (left/up) is "previous" direction (`false`) and
anything else is "next" (`true`) direction.
For the very first render we won't know which direction you're going
since you're still on the initial position. It's useful to start the
render to allow the view transition to take control before anything
shifts around so we start from the original position. This is not
guaranteed though if the render suspends.
For now we start the first render by guessing the direction such as if
we know that prev/next are the same as current. With the upcoming auto
start mode we can guess more accurately there before we start. We can
also add explicit APIs to `startGesture` but ideally it wouldn't matter.
Ideally we could just start after the first change in direction from the
starting point.