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Bug or Feature$^2$: Weight Drift, Activation Sparsity, and Spikes

Standard losses and biased activations induce negative weight drift that drives early training dynamics and extreme sparsity across architectures, with squared activations sharply improving accuracy until a cliff near 70% sparsity unless clipping controls intermediate spikes.

Egor Shvetsov, Aleksandr Serkov, Shokorov Viacheslav, Redko Dmitry and 2 more

Paris Poster Session 1, Wed, Dec 9, 12:30 PM–2:30 PM, Paris Poster Hall · Published 2026 · ▲ 1 on Hugging Face · Code ★ 1

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AI panel: 13 of 20 reviewers recommend it
lenient 4/5
medium 7/10
strict 2/5