7a9d4ec47b
- ADR-0060: GEMMs (Q.Kt, P.V) via existing tl.composite (scheduler-managed tiling + K/V DMA streaming); softmax merge + IPCQ tree reduction stay in kernel. Front TL;DR pseudocode of the final composite kernel; new section B lists open design items (DDD sync, K pre-transpose, dma_read lever, kernel-vs-scheduler tiling, ring path). - ADR-0062: redefined from a new load_async op to global lazy tl.load (non-blocking + auto-wait on first use; API unchanged; goldens regenerate). - ADR-0064 (new): per-op-type CPU issue cost model (composite ~40ns >> primitive) so the hybrid's CPU-saturation win becomes measurable (currently dispatch_cycles=0 hides it). Cost-model impl deferred. - KO mirrors for ADR-0060/0062/0064 (-ko suffix, adr-proposed). Rationale: non-blocking CompositeCmd offloads tiling to PE_SCHEDULER, decoupling CPU issue-rate from execution so the CPU can saturate the engines; the prior 'composite = no latency benefit' claim was an artifact of dispatch_cycles=0. Docs only; no production code changed. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
170 lines
7.8 KiB
Markdown
170 lines
7.8 KiB
Markdown
# ADR-0062: Lazy `tl.load` — non-blocking HBM load with auto-wait on first use
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## Status
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Proposed
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> Supporting ADR for **ADR-0060** (AHBM GQA Fused Attention). Decode and
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> long-context attention are **KV-load-bound**; load/compute overlap is a
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> dominant lever. This ADR makes `tl.load` itself **lazy** (non-blocking,
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> with the wait automatically inserted at first use) rather than adding a
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> separate `load_async` op. Today the only async primitive is for IPCQ
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> comms, not for HBM loads.
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## Context
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### What overlap requires
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FlashAttention streams operands: while the GEMM/MATH engine works on the
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current tile, the DMA engine should already be pulling the next operand.
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With that overlap a bandwidth-bound kernel runs at roughly
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`max(compute, dma)` per tile instead of `compute + dma`.
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In ADR-0060's hybrid design the two GEMMs are issued as
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`tl.composite(op="gemm")` whose K/V operands are `tl.ref` (HBM-resident,
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streamed per tile by PE_SCHEDULER), so the **per-tile K/V prefetch is
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handled by the composite scheduler**. Lazy `tl.load` covers the remaining
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explicit loads (the Q group, and any non-composite kernel) so those also
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overlap the compute that follows instead of stalling the greenlet.
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### What exists
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- `tl.load(ptr, shape, dtype)` is **blocking**: it emits `DmaReadCmd` and
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the greenlet kernel suspends until PE_DMA signals completion
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(`tl_context.py:177-203`; greenlet drive `kernel_runner.py:146-153`).
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No two `tl.load`s can be in flight from one kernel.
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- An async pattern **does** exist, but only for IPCQ:
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`tl.recv_async(dir, ...) -> RecvFuture` + a deferred wait
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(`kernel_runner.py:248-285`). It proves the machinery — a non-blocking
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command that returns a future, resolved later by a wait check
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(`if not future.event.triggered: yield future.event`) — works in the
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greenlet model.
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- The DMA engine models a read channel as a SimPy resource (capacity 1,
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`pe_dma.py:45`) separate from the write channel, so in-flight reads are
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representable; they serialise on the single read channel while
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overlapping compute on PE_GEMM/PE_MATH. Only the *kernel-facing API*
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currently serialises load-vs-compute.
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`tl.load` cannot today overlap with the compute that follows it.
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## Decision
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**Make `tl.load` lazy: it issues the `DmaReadCmd` and returns a handle
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immediately (non-blocking); the runtime auto-inserts the wait at the
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first point the loaded data is actually consumed.** The kernel-facing API
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is unchanged — authors keep writing `tl.load` — so this is a *semantics*
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change, not a new op. It generalises the existing `recv_async`/wait
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machinery (1) to the HBM-load path and (2) from an explicit `tl.wait`
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call to an implicit, dependency-driven wait at first use.
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### D1. `tl` surface — unchanged
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`tl.load(ptr, shape, dtype)` keeps its signature and `TensorHandle`
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return. What changes is *when* it blocks: never at issue, only implicitly
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when its result is first read by a consuming op.
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### D2. Mechanism — non-blocking issue + auto-wait on use
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- `tl.load` posts the `DmaReadCmd` to PE_DMA without yielding its
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completion event, and records the pending event on the returned handle
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(the `recv_async` pattern, applied to loads).
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- When a consuming op (`tl.dot`, a MATH op, `tl.store`, a `tl.composite`
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operand, …) is dispatched, the runtime checks each input handle for a
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pending load event and yields it first if not yet triggered — i.e. the
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wait is inserted automatically at the latest correct point (first use).
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- The op_log entry is unchanged (`memory/dma_read`): asynchrony is a
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scheduling property, not a new op kind, so `dma_read_count` and existing
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op_log consumers keep working.
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### D3. Scope — global
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`tl.load` is lazy **everywhere**, not behind an opt-in flag. This is the
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faithful model: blocking on every load is a property of a *naive* kernel;
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an efficient kernel (and a real compiler) hoists the load and waits only
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at use. Consequence: existing kernels that have independent work between a
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`tl.load` and its first use see **lower (faster) latency** — a
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correctness improvement of the model, not a behaviour regression. Golden
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latencies that change must be **regenerated**; kernels that load then
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immediately use see no change (the auto-wait fires at once, identical to
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blocking).
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### D4. Latency / overlap semantics
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- `tl.load` charges the **issue** (descriptor push) only; the kernel
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proceeds. (Per-op issue cost is `dispatch_cycles`, currently 0; an
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op-type-differentiated issue cost is tracked separately — ADR-0060 §1,
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§9.)
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- The DMA transfer occupies the read channel (capacity 1) for its
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modelled duration in parallel with whatever compute the kernel issues
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next; multiple in-flight loads serialise on the channel but overlap
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compute.
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- The auto-inserted wait blocks only if the transfer has not finished.
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- Determinism is preserved: the wait point is fixed by program order
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(first use), and completion is a scheduled event on the modelled DMA
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channel (SPEC §0.1, R8). No latency subtraction — the overlap is real
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modelled concurrency.
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> **Modelling assumption.** Auto-wait-at-first-use models a *well-
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> scheduled* kernel (the compiler places the wait at the latest correct
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> point). Real compilers approximate this; some loads cannot be hoisted
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> (register pressure, aliasing). For a performance simulator (SPEC §0)
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> modelling the well-scheduled case is the intended behaviour.
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## Alternatives
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### A1. Separate `tl.load_async` op (earlier proposal)
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Add an explicit `load_async`/`wait` pair the kernel calls by hand (the
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double-buffer dance). Rejected: it enlarges the kernel-facing API and
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pushes buffer-lifetime bookkeeping onto every kernel author, when lazy
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`tl.load` gives the same overlap with **no** API-surface change and a
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compiler-style auto-wait.
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### A2. Per-kernel opt-in lazy load
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Keep `tl.load` blocking by default; make new kernels opt in. Rejected:
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splits `tl.load` semantics into two variants and hides the model
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improvement from existing benches; global lazy is cleaner and the
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golden-regeneration cost is one-time (D3).
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### A3. Rely on composite streaming only (no lazy load)
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ADR-0060's composites stream their `tl.ref` K/V operands, so the GEMM
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operand DMA already overlaps. But explicit loads (the Q group, and any
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non-composite kernel) still stall without lazy `tl.load`. Insufficient on
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its own.
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## Consequences
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### Positive
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- Load/compute overlap with **zero** kernel-facing API change; authors
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keep writing `tl.load`.
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- Symmetric with `recv_async`/wait — low conceptual surface area.
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- General: any bandwidth-bound kernel prefetches automatically.
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### Negative
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- Existing golden latencies shift (faster) for kernels with independent
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work between load and use → one-time regeneration (D3).
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- Auto-wait requires the runtime to track per-handle pending events and
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check them at consuming-op dispatch (data-dependency tracking).
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- Interacts with scratch lifetime (ADR-0063): an in-flight load's target
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buffer must not be recycled before its auto-wait fires. The recycling
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scope must exclude live (un-waited) load buffers.
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## Test Requirements
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1. **Overlap is real**: a kernel that issues `tl.load` then an
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independent GEMM of comparable duration completes in ≈`max(load,
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gemm)`, not `load+gemm` (end-to-end latency strictly below the serial
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sum).
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2. **Auto-wait correctness**: the loaded `TensorHandle`, when first
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consumed, carries the same bytes as today's blocking `tl.load` for the
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same address (Phase 2).
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3. **Two in flight**: two `tl.load`s to distinct addresses, consumed
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later, both resolve to correct, independent tensors; their DMAs
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serialise on the read channel.
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4. **op_log compatibility**: each `tl.load` still logs exactly one
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`memory/dma_read`; `dma_read_count` unchanged vs the blocking version.
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5. **No-overlap no-change**: a kernel that loads then immediately uses has
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identical latency to the blocking model (auto-wait fires at once).
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