183 lines
12 KiB
Markdown
183 lines
12 KiB
Markdown
# Pre-registered protocol: unified adapter eval (written before any test numbers)
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Date: 2026-07-13, after val@499, before step-799 completion. No test-set
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number for the unified adapter exists at time of writing.
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1. **Primary loop depth: k=2, for both tasks.** Chosen on val CE with the
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tie-breaking rule: prefer the SMALLEST k whose hard-cell val CE is within
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0.01 nats of the best k. (Current val: MBPP hard k2−k4 = 0.004, GSM hard
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k2−k4 = 0.006 → both ties → k=2.) The full k-curve is secondary/descriptive.
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2. **Checkpoint selection criterion (scalar, fixed now):** mean of the two
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hard-cell val CEs at k=2, tasks weighted equally:
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crit = (gsm_hard_k2 + mbpp_hard_k2)/2. Lowest crit among saved checkpoints
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wins. (At writing: step 499, crit = (0.475+0.205)/2 = 0.340.)
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3. **Primary endpoints:** (a) MBPP test pass@1 hard-bucket at k=2 vs k=0;
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(b) GSM8K test accuracy hard-bucket at k=2 vs k=0. McNemar, paired by item.
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Overall accuracy is secondary (known to be underpowered at n=250/256).
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4. **Same-harness rule:** all k, INCLUDING k=0 baselines, measured by the
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prompt-only fast-path scripts (`generate_frozen_prompt`; k=0 = plain
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cached generate inside the same function). No numbers carried over from
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the full-position-loop harness.
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5. **Known missing control (not covered by this run):** a same-size,
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no-recurrence adapter (h -> h + MLP(h) at the L13->L14 boundary, no loop,
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no band re-run) trained on identical data/objective. Until it exists,
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"the loop does the work (vs. 1.6M new weights anywhere doing it)" is NOT
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established. Queued as the next training run. Note the k=0 column is
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gated off by construction and is a sanity check only — it is not this
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control.
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6. **Symmetric interference check (missing):** dedicated GSM8K prompt-only
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adapter as the reference for "unified costs GSM nothing". Queued. Until
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then the no-interference claim is one-directional (MBPP side only).
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7. **Band-location ablation (pre-registered 2026-07-13, before any arm ran).**
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Arms, all else identical (adapter size/init, data, curriculum, k, scripts;
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MBPP): early L2-12, mid-narrow L17-27, late L24-34 (width-matched, 11
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layers); shifted L6-22 (width-matched to the original 17). Reference:
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workspace L14-30 (already run, 3 seeds). Prediction: workspace-centered
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arms (L14-30, L17-27) exceed early/late on hard-bucket pass@1 at k=2-4 by
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a wide margin; shifted intermediate. Falsification: near-parity across
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arms demotes the lens claim from "locates where to loop" to "convenient
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discovery tool"; to be reported either way. Primary readout: hard-bucket
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pass@1 at k=4, e400 checkpoints throughout.
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8. **Language commitments for the writeup:** the k0->k1 CE collapse (e.g.
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4.36->0.18) is format/template learning expected from any trained adapter
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and must not be quoted as evidence of routing/planning; informative
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comparisons are within k>=1 cells only. Depth ordering k2 vs k4 deltas
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(0.001-0.006 nats) are inside checkpoint jitter and must be described as
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"k>=2 fits hard items equally well; k=1 slightly worse."
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9. **Anchor/entrance sweep (pre-registered 2026-07-14 ~03:00, before any arm
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ran).** Arms: bands (13,30), (12,30), (11,30) — injection point shifted
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up from L14 at fixed tap L30; plus tap-23 = (14,23). All E2B/MBPP, same
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recipe, e400, primary readout hard-bucket pass@1 at k=4. Competing
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predictions: (a) "L14 special" (last full-attention KV-computing layer,
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lens boundary) → anchor-13 drops; (b) "KV-channel count" (anchors 11-13
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add 1-3 extra KV-recomputing attention channels) → holds or improves.
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Body-length confound noted: earlier anchors lengthen the loop body; if
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results shift, run matched-length control (12,28) before interpreting.
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10. **L9 discriminator arm (pre-registered 2026-07-14 ~10:00, before running).**
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Band (9,30): anchor at L9 — the only other full-attention, KV-computing
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layer below the boundary — deep in the lens's sensor regime, tap fixed at
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L30. Separates the two cliff explanations: (a) "lens boundary" predicts
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catastrophic (like anchors 11-13: 25-34% overall); (b) "full-attention
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KV-layer entry" predicts partial recovery (clearly above the L11-13
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trend, i.e. >40% overall or hard >25%). Registered prediction: (a) —
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the sensor-region content dominates; layer type does not rescue it.
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Same recipe/checkpoint/eval as the anchor sweep (250 items, ks 0,2,4).
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---
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# Outcomes vs pre-registrations (scored 2026-07-14, after all arms completed)
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1. **k=2 primary depth** — held. All primary comparisons reported at k=2;
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k-curves descriptive. k≥2 plateau confirmed (k=8 gen-eval flat).
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2. **Checkpoint criterion** — applied as written for the unified adapter.
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Separately reported: val-CE is a poor proxy for generation accuracy;
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later arms therefore pre-committed to fixed steps (e400) instead.
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3. **Primary endpoints (unified adapter, k=2 vs k=0)** — (a) MBPP hard
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3.6% → 28.6% (direction as predicted); (b) GSM hard 0% → 6.3%, overall
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10.5% → 9.0% (no overall win — the math boundary result). Both reported.
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4. **Same-harness rule** — held throughout (all final tables fast-path,
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k=0 included).
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5. **Missing weights control** — run: trained FF adapter = 17.9% hard,
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exactly the untrained-loop level. Loop-vs-weights gap established.
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6. **Symmetric interference check** — run (dedicated GSM adapter);
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mixed-task training regressed both tasks; reported as negative result.
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7. **Band-location ablation** — prediction CONFIRMED with a caveat:
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L14-30 hard 43.6% ≫ early L2-12 (23.6%, overall destroyed 22.8%) and
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shifted L6-22 (21.8%, overall 29.0%). Caveat discovered: L17-27 and
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L24-34 are structurally null (KV sharing; k>0 ≡ k=0 bit-identical), so
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the "mid-narrow beats late" half of the prediction was untestable at
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E2B; the 12B replication (no shared KV) carries that weight instead.
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8. **Language commitments** — honored in PAPER.md (k0→k1 CE collapse not
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cited as planning evidence; k2-vs-k4 nats described as jitter).
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9. **Anchor/entrance sweep** — prediction (a) "L14 special" CONFIRMED:
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anchor-13 hard 17.9%/overall 34.4%; 12: 28.6%/30.8%; 11: 25.0%/25.2%;
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monotone collapse below the boundary. Tap-23 arm died in training
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(never rerun); exits 27/30/32/34 within seed noise, so exit choice is
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free. Matched-length control not needed (results did not shift with
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body length in the informative direction).
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10. **L9 discriminator** — registered prediction (a) CONFIRMED: band
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(9,30) overall 14.0-21.4%, hard ≤21.4% — catastrophic, like anchors
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11-13, despite L9 being a full-attention KV-computing layer. The lens
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boundary, not layer type, gates the retrofit.
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11. **Recurrent-regime arm (pre-registered 2026-07-15, before training).**
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Huginn-style retrofit on the frozen E2B band: RecurrentAdapter
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(learned A,B init α·I/(1−α)·I + zero-init MLP), h0 = norm-scaled
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noise, log-uniform random depth k∈[1,16], bptt=4, same data/steps/
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checkpoint rule (e400 primary) as all merge arms. Eval ks 0,2,4,8,16,32
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on the 250-item MBPP set. Competing predictions: (a) "amortization is
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intrinsic to frozen-band retrofits" → performance plateaus by k≈4 at
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or below the merge arm's level, no depth-monotone gain; (b) "fixed-
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point behavior was an artifact of our fixed-shallow-k training"
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(Huginn regime transfers) → monotone hard-bucket improvement past k=8
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and reduced noise-seed sensitivity after training. Secondary readout:
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path independence (two noise seeds → output agreement rate) at e400.
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Known risk, stated in advance: 600 steps may be far too little for
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this regime (McLeish et al. use ~50B tokens); a null here bounds the
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cheap-retrofit budget only, not the regime.
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12. **Parcae-constrained recurrent arm (pre-registered 2026-07-15, before
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training; Prairie et al. 2026 parameterization).** Same as item 11 but
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A = exp(−Δt·exp(a)) diagonal → ρ(A) < 1 by construction; init exactly
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the α=0.3 merge (verified bit-equal at init). ρ(A) logged every 10
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steps in BOTH arms. Theory-derived predictions, stated in advance:
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(a) contraction ⇒ fixed point is a function of e ⇒ the Parcae arm
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SATURATES in k (no depth-monotone gain) and its converged performance
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is amortizable — if so, our deflationary result is a corollary of
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ρ<1, and our observed k≈3–4 convergence is the geometric rate 0.3^k;
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(b) the UNCONSTRAINED item-11 arm either drifts toward ρ≥1 (watch the
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ρ log: divergent runs should show ρ≥1 before loss spikes) or, if it
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gains monotone depth-performance, does so with ρ near 1 — the edge of
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stability is where genuine iteration must live. Either outcome
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formalizes "the anchor coefficient is the stability dial" as
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"the anchor coefficient is the spectral radius".
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13. **Per-depth adapter arm + free-ACT probe (pre-registered 2026-07-15,
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before training).** (a) PerDepthAdapter: one merge adapter per
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iteration (n=4, Bae-style depth-wise relaxation at the entrance;
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breaks time-invariance — LTV, no fixed-point guarantee), standard
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curriculum, e400, eval ks 0,2,4,8. Prediction: lands at or below the
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distill/rung-2 amortization ceiling (~46% hard) because depth-indexed
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weights add content, not state-evolution; exceeding it would show
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per-iteration expressivity was binding and amend the deflationary
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claim. Depths >4 reuse adapter 4 (stated: k=8 cell is then
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fixed-point-like by construction). (b) Free-ACT probe on the standard
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merge arm: record per-item convergence depth (cos>0.9995) at k=8 cap.
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Predictions: accuracy unchanged vs fixed k (post-convergence no-ops);
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mean k_conv ≈ 3; hard-labeled items converge SLOWER than easy ones
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(adaptive compute allocates like ACT without any learned halting
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parameter).
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--- Outcome, item 11 (scored 2026-07-15, k=16/32 cells cancelled by
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decision after k<=8): PREDICTION (a) SUBSTANTIALLY CONFIRMED, with one
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twist. The unconstrained arm left contraction immediately (rho(A):
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0.3 -> 3.4 by step 100, plateau ~4.5) yet trained smoothly — per-iteration
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norm-matching converts magnitude explosion into directional churn, so
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"rho>=1 => divergence" becomes "rho>=1 => divergence OR stationary churn"
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under a norm projection. Consequences as predicted: substrate damage
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(easy 98.4 -> ~69% at all k>0, far exceeding any contractive arm's tax),
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val CE flat k=1..16 (stationary, not progressive), hard bucket at
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merge level (35.7/39.3/42.9% at k=2/4/8 — a one-item-per-depth-doubling
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crawl that at k=8 reaches what the contractive merge reaches at k=4,
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never approaching the amortization ceiling from above). 4x parameters
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bought nothing. Depth-monotone computation did not emerge at this budget.
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14. **Tied-alpha arm (pre-registered 2026-07-15, before training).**
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TiedAlphaAdapter: x = (1−a)⊙e + a⊙ŝ + MLP([e;ŝ]), a = σ(â) per-dim
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learned, init a=0.3 everywhere (bit-equal to MergeAdapter at step 0,
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verified). B tied to (1−a): convex combination keeps the LTI fixed
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point on the e–ŝ segment (substrate-anchored by construction),
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ρ = max(a) < 1 guaranteed, +d≈1.5K params. Standard curriculum,
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s0 = band(e), e400, eval ks 0,2,4,8 on 250 items. This is the one
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untested cell combining parcae's learnable decay with the merge's
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anchoring. Predictions: (a) substrate fidelity preserved (easy ≈
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merge's 88%, unlike both rec arms' ~70%) because anchoring, not
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ρ, controls fidelity; (b) hard-bucket at merge level (no significant
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gain — per-dim constant α is not where capability lives, per the
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adaptive-α E2B result); (c) learned a drifts slightly DOWN from 0.3
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(as in parcae). If (a) holds while rec arms failed it, the
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fixed-point-location dial is causally isolated: same learnable-decay
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freedom, only the tie to (1−a) differs from parcae.
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