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Reorder channelwise gated delta rule chunked hot loops for autovectorization (#21021)#21021

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Reorder channelwise gated delta rule chunked hot loops for autovectorization (#21021)#21021
JakeStevens wants to merge 2 commits into
pytorch:mainfrom
JakeStevens:export-D112598714

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@JakeStevens JakeStevens commented Jul 17, 2026

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Summary:

Reorder the chunked prefill inner loops (steps 1, 4, 5, 6) so the innermost loop runs contiguously over the head dimension (k or v) instead of striding down a column of the state / pv. This lets the compiler autovectorize the now-unit-stride AXPYs; hand-written at::vec was tried and was slower than the compiler output, so the loops stay scalar.

Reviewed By: billmguo

Differential Revision: D112598714

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🔗 Helpful Links

🧪 See artifacts and rendered test results at hud.pytorch.org/pr/pytorch/executorch/21021

Note: Links to docs will display an error until the docs builds have been completed.

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❌ 1 New Failure, 1 Unrelated Failure

As of commit d103906 with merge base 667c91b (image):

NEW FAILURE - The following job has failed:

BROKEN TRUNK - The following job failed but were present on the merge base:

👉 Rebase onto the `viable/strict` branch to avoid these failures

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@meta-cla meta-cla Bot added the CLA Signed This label is managed by the Facebook bot. Authors need to sign the CLA before a PR can be reviewed. label Jul 17, 2026
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@JakeStevens has exported this pull request. If you are a Meta employee, you can view the originating Diff in D112598714.

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This PR needs a release notes: label

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@meta-codesync meta-codesync Bot changed the title Reorder channelwise gated delta rule chunked hot loops for autovectorization Reorder channelwise gated delta rule chunked hot loops for autovectorization (#21021) Jul 17, 2026
JakeStevens added a commit to JakeStevens/executorch that referenced this pull request Jul 17, 2026
…ization (pytorch#21021)

Summary:

Reorder the chunked prefill inner loops (steps 1, 4, 5, 6) so the innermost loop runs contiguously over the head dimension (k or v) instead of striding down a column of the state / pv. This lets the compiler autovectorize the now-unit-stride AXPYs; hand-written at::vec was tried and was slower than the compiler output, so the loops stay scalar.

Differential Revision: D112598714
JakeStevens added a commit to JakeStevens/executorch that referenced this pull request Jul 20, 2026
…ization (pytorch#21021)

Summary:

Reorder the chunked prefill inner loops (steps 1, 4, 5, 6) so the innermost loop runs contiguously over the head dimension (k or v) instead of striding down a column of the state / pv. This lets the compiler autovectorize the now-unit-stride AXPYs; hand-written at::vec was tried and was slower than the compiler output, so the loops stay scalar.

Reviewed By: billmguo

Differential Revision: D112598714
@JakeStevens
JakeStevens force-pushed the export-D112598714 branch 2 times, most recently from f5857be to 3a6025b Compare July 20, 2026 20:39
JakeStevens added a commit to JakeStevens/executorch that referenced this pull request Jul 20, 2026
…ization (pytorch#21021)

Summary:

Reorder the chunked prefill inner loops (steps 1, 4, 5, 6) so the innermost loop runs contiguously over the head dimension (k or v) instead of striding down a column of the state / pv. This lets the compiler autovectorize the now-unit-stride AXPYs; hand-written at::vec was tried and was slower than the compiler output, so the loops stay scalar.

Reviewed By: billmguo

Differential Revision: D112598714
JakeStevens added a commit to JakeStevens/executorch that referenced this pull request Jul 21, 2026
…ization (pytorch#21021)

Summary:

Reorder the chunked prefill inner loops (steps 1, 4, 5, 6) so the innermost loop runs contiguously over the head dimension (k or v) instead of striding down a column of the state / pv. This lets the compiler autovectorize the now-unit-stride AXPYs; hand-written at::vec was tried and was slower than the compiler output, so the loops stay scalar.

Reviewed By: billmguo

Differential Revision: D112598714
…h#21061)

Summary:

Route the channelwise gated delta rule by sequence length: T == 1 keeps the two-pass token recurrence for autoregressive decode, while T != 1 uses a chunkwise WY/UT formulation for prefill.

The chunked path computes per-channel log-decay prefixes, causal query/key terms, the beta-folded triangular transform, WY pseudo-keys and pseudo-values, and inter-chunk state carry. It handles a ragged final chunk without a separate tail implementation.

Parallelize independent (batch, head) work across the ExecuTorch threadpool. Each worker receives a disjoint slice of one temporary scratch arena, avoiding shared mutable buffers while amortizing allocation across chunks.

Reviewed By: billmguo

Differential Revision: D112597348
…ization (pytorch#21021)

Summary:

Reorder the chunked prefill inner loops (steps 1, 4, 5, 6) so the innermost loop runs contiguously over the head dimension (k or v) instead of striding down a column of the state / pv. This lets the compiler autovectorize the now-unit-stride AXPYs; hand-written at::vec was tried and was slower than the compiler output, so the loops stay scalar.

Reviewed By: billmguo

Differential Revision: D112598714
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