ADR-0064 Revision 2: replace per-op-type calibration table with a structural formula `FIXED_PER_CMD + cmd.logical_bytes × R`, defaults anchored at typical composite ≈ 45 ns. Topology yaml override under `pe_cost_model:` block; logical_bytes property per PE command. ADR-0065: implement ADR-0060 §5.6 / §8 item 4 carve-out as a flat-ops CompositeCmd (no head/epilogue structural fields — position + scope drives placement) + first stateful recipe `softmax_merge` (MATH-only 8-step). RECIPE_DESCRIPTORS lives in TLContext-adjacent module only; PE_SCHEDULER stays recipe-free and auto-inserts DMAs from operand `space`. Strict-FIFO RW hazard tracker; ≤1 GEMM per composite invariant. User-facing `tl.composite(prologue=[...], op=, epilogue=[...])` API preserved; existing benches unchanged (meaning-preserving refactor). DDD-0065: implementation-ready phased plan (P0=ADR-0064 Rev2 first, P1-P6 for ADR-0065), file plan, recipe engine sequence, scheduler plan-gen algorithm, RW tracker design, test matrix. Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
10 KiB
ADR-0064: Structural CPU dispatch cost model (logical_bytes + FIXED + R)
Status
Proposed (Revision 2)
Supporting ADR for ADR-0060 (AHBM GQA Fused Attention) and ADR-0065 (flat-ops composite + first stateful recipe). The hybrid decision there (GEMMs via
tl.composite, softmax merge in the kernel) wins by offloading tiling to PE_SCHEDULER so the CPU issues coarse descriptors and runs ahead, keeping the engines saturated. That win is currently invisible in the simulator because per-op CPU issue cost is zero.Revision 2 replaces the op-type calibration table (the original proposal) with a structural formula derived from each command's
logical_bytes— no per-op-type calibration needed; new op kinds are covered automatically.
Context
What exists today
- Every
tl.*op calls_emit_dispatch_overhead()before emitting its command (tl_context.py:196-212), which emitsPeCpuOverheadCmd(cycles=dispatch_cycles)only if `dispatch_cycles0
. The knob is **uniform** across op kinds and hardcoded to **0** in both live execution paths (pe_cpu.py:101greenlet,:195` replay). - ⇒ issuing a command — constructing the descriptor and pushing it to the scheduler queue — currently costs 0 ns on PE_CPU.
PeCpuOverheadCmdis consumed asyield env.timeout(cmd.cycles)on PE_CPU (kernel_runner.py:131-132).
Why uniform-and-zero is wrong for the hybrid
ADR-0060 §1's argument is that one composite descriptor offloads
N_tiles worth of GEMM tiling, so the CPU issues O(1) coarse commands
instead of O(N_tiles × ops/tile) fine ones. With issue cost = 0, the
model cannot show:
- that the primitive path may fail to saturate the engines when the CPU cannot push fast enough, nor
- that a composite costs more to construct than a single primitive but far less than the many primitives it replaces.
Why per-op-type calibration (Revision 1) was over-shaped
The original proposal had a cost_table[kind] keyed by op kind
(composite, load, dot, math, …). That required:
- a value per kind (calibration cost ≥ |kinds|),
- a new entry every time a new kind appears,
- and yet the ratio it tried to capture — "composite ≫ primitive, but ≪ the primitives it replaces" — is structurally a function of how many fields the command carries, not of the op kind.
A command's byte footprint is the natural proxy: a composite carrying
N OpSpecs has ~N× the bytes of a primitive op with one OpSpec. The
fixed part (queue head update, completion register, MMIO-class
latency) is per-command. The two together compose: FIXED + bytes × R.
Decision
D1. Structural dispatch cost formula
Each PE command going to PE_SCHEDULER incurs PE_CPU dispatch cycles:
dispatch_cycles(cmd) = FIXED_PER_CMD + cmd.logical_bytes × R
where:
FIXED_PER_CMD(cycles per command) models queue-tail update, MMIO-class RTT, completion-event registration — fixed per command regardless of size.R(cycles per byte) models the queue-write bandwidth — bytes of the command serialized into the scheduler queue.cmd.logical_bytes(int) is each command's HW-logical byte size, computed from D2 below — not Python'ssys.getsizeof.
PE_CPU emits PeCpuOverheadCmd(cycles=dispatch_cycles(cmd)) before
dispatching, exactly as the existing hook (tl_context.py:_emit_dispatch_ overhead) — only the cycle value changes.
D2. logical_bytes rule
Each PE command dataclass exposes logical_bytes: int (property). The
counting rule (HW-friendly, ignores Python overhead):
| Field kind | Bytes |
|---|---|
| Command framing (cmd-type discriminator + completion id ref) | 4 |
| Opcode (op kind enum) | 1 |
| Enum (scope, etc.) | 1 |
TensorHandle reference (address only — shape/dtype assumed in descriptor table) |
8 |
| Scalar (int/float) | 4 |
| Tuple length marker | 1 |
CompositeCmd recursively sums its ops and rw_handles:
@property
def logical_bytes(self) -> int:
return (
4 # framing
+ 1 + sum(op.logical_bytes for op in self.ops)
+ 1 + 8 * len(self.rw_handles)
)
OpSpec:
@property
def logical_bytes(self) -> int:
return (
1 + 1 # opcode + scope
+ 1 + 8 * len(self.operands) # named operand handles
+ (8 if self.out is not None else 0) # out handle
+ 1 + sum(4 for _ in self.extra.values()) # extra scalars
)
(Identical rule for DmaReadCmd, MathCmd, etc. — one property per
dataclass, ~3 lines each.)
D3. Defaults — anchored on a typical composite ≈ 45 ns
Anchor: a typical 1-op DMA→GEMM→DMA composite has logical_bytes ≈ 52
(framing 4 + GEMM OpSpec 39 + rw_handles 9). Target dispatch = 45 ns.
On-die producer→consumer queue assumed at 4 bytes/cycle.
clock = 1 GHz # 1 cycle = 1 ns
FIXED_PER_CMD = 32 cycles
R = 0.25 cycles/byte
Verification: 32 + 52 × 0.25 = 45 cycles ≈ 45 ns ✓
D4. Topology config override
Defaults are baked into pe_cpu.py. Topology yaml may override under a
pe_cost_model: section at the PE node attrs:
pe:
attrs:
pe_cost_model:
fixed_per_cmd_cycles: 32
byte_cycles_recip: 0.25
clock_freq_ghz: 1.0
Missing keys fall back to defaults. The dispatch formula reads from
node.attrs["pe_cost_model"] at PE_CPU init.
D5. Scope — what does and does not pay
| Path | Pays dispatch cost? |
|---|---|
PE_CPU → PE_SCHEDULER for any PeCommand |
Yes |
PeCpuOverheadCmd itself (already cycles-explicit) |
No (formula bypass) |
| Stages auto-generated by PE_SCHEDULER (DMA_READ/WRITE/FETCH/STORE) | No (PE_SCHEDULER-internal) |
Engine compute latency (DMA drain_ns, GEMM/MATH _compute_ns) |
No change — stays on engines (SPEC §0.1) |
This preserves the "latency on modelled components" invariant — dispatch cost is additional CPU-side time, not folded into engine times.
D6. Configurable values; goldens regenerate
Turning issue cost non-zero changes every bench's latency. Golden latencies are regenerated once when this ADR lands — same posture as ADR-0062 D3 lazy-load. After regeneration, the same calibration is in effect for ADR-0065 opt2 measurement.
Alternatives
A1. Keep Revision 1's op-type calibration table
Rejected: calibration cost scales with |kinds|, and the ratio the table tried to capture is structurally a function of cmd size. The structural formula reaches the same qualitative behaviour with two calibratable numbers instead of N.
A2. Byte-only formula (no FIXED term)
Rejected. With FIXED = 0, opt2 (Option Y per ADR-0065) does not win over opt3 — the total bytes dispatched per tile are similar (opt3 ≈ 232, opt2 ≈ 380); the win is entirely in fewer per-cmd fixed costs. A byte-only formula erases the very signal the model needs to expose.
A3. Charge dispatch on PE_SCHEDULER instead of PE_CPU
Rejected: the saturation question is "can the CPU push descriptors fast enough to keep the engines busy?" — that is a PE_CPU issue-bandwidth property. Charging on the scheduler would not model CPU back-pressure.
A4. Model DMA program/setup time as a separate fixed per-descriptor cost
Deferred: initially fold the descriptor-program cost into the issuing op's dispatch cost. Split it out to a PE_DMA fixed setup only if calibration shows it matters.
Consequences
Positive
- Hybrid's CPU-offload / saturation win (ADR-0060 §1) becomes measurable, with a structurally honest model (no calibration table).
- Adding new op kinds (e.g., ADR-0065's
softmax_merge8-step recipe) costs zero — they fit the same formula automatically. - More faithful to hardware (queue-head MMIO RTT + queue-write bandwidth).
Negative
- All bench goldens shift → one-time regeneration (D6); CI golden fixtures update.
- Two calibration knobs (FIXED, R) need values; defaults are anchored on a documented assumption — treat absolute latencies as provisional until a reference exists; keep the ratios defensible.
- Adds a small
logical_bytesproperty to each PE command dataclass.
Open review items
- Calibration source for FIXED and R. Defaults from "typical composite = 45 ns + on-die queue 4 bytes/cycle"; reasonable for an on-die producer→consumer queue. Revisit when a HW reference appears.
- Scheduler plan-gen cost. Stays 0 — D5 keeps PE_SCHEDULER's
plan-generation outside the dispatch formula. Expose via existing
overhead_nsif a workload shows scheduler-bound behaviour. - Where the override lives.
pe_cost_model:block under PE node attrs in topology yaml — keeps all knobs in one place, reviewable. - Path parity. Both greenlet (
_execute_legacyandkernel_runner) and replay paths must read the same cost model. Verify.
Test Requirements
- Anchor preservation. A typical DMA→GEMM→DMA composite (1 op,
logical_bytes ≈ 52) dispatches in 45 ns at the default values. - Structural ratio. opt3 vs opt2 dispatch (per ADR-0065 §verification):
opt3 / opt2 ≈ 2.4×at default calibration. - Override path. Topology yaml
pe_cost_model:block changes the per-PE dispatch cost; default is recovered when block is missing. PeCpuOverheadCmdbypass. Manualtl.cycles(n)issues exactlyncycles, notn + dispatch_cycles(...).- No double-count. PE_DMA
drain_ns, PE_GEMM/MATH_compute_nsidentical to pre-ADR values. - Determinism. Identical inputs → identical op_log + latency (SPEC §0.1).
- Path parity. Greenlet and replay paths produce identical dispatch-cycle accounting for the same kernel.
Migration
ADR-0064 Revision 2 lands as a single PR with:
logical_bytesproperty on eachPeCommanddataclass- formula application in
pe_cpu.pydispatch path pe_cost_model:override read at PE_CPU init- one-time goldens regeneration
After this lands, ADR-0065 builds on top with no further goldens churn
in existing benches (ADR-0065 is a meaning-preserving refactor of
CompositeCmd for the existing path; only opt2 is a new bench).