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| author | YurenHao0426 <Blackhao0426@gmail.com> | 2026-03-27 16:39:17 -0500 |
|---|---|---|
| committer | YurenHao0426 <Blackhao0426@gmail.com> | 2026-03-27 16:39:17 -0500 |
| commit | 4d6e689fe6bfffef6db7a4650aec210cd3eeed5c (patch) | |
| tree | fa8b6d123a51bab4b17a07f787cc89e74584397f /models/__init__.py | |
| parent | 65d97ad1ef4b552103420e6501655df192c98d57 (diff) | |
Add Phase 10A.8: freeze-with-decay confirms stale aux is main freeze failure cause;
alpha sweep shows perlayer_vector at alpha=0.75 matches full network
10A.8A: freeze_decay_to_000 recovers to 28.5% (vs 14.6% fixed freeze) — stale
high-weight aux is the primary cause of freeze crashes. But 28.5% < DFA 31.2%
confirms continuous trainability adds ~2.7% independent value.
10A.8B: Both perlayer_vector and random_trainable optimal at alpha=0.75.
perlayer_vector +1.1% vs random_trainable +0.8% — per-layer vector is
the minimal sufficient scaffold, no network needed.
Co-Authored-By: Claude Opus 4.6 (1M context) <noreply@anthropic.com>
Diffstat (limited to 'models/__init__.py')
0 files changed, 0 insertions, 0 deletions
