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FactorEngram: Factorized N-gram Memory with Basis-Level Gating for Language Models

FactorEngram is a factorized n-gram memory approach for language models that uses sparsity-regularized coefficients over a shared basis vector dictionary. It allows context to modulate memory components individually through basis-level gating, improving language modeling and downstream tasks on large parameter models.

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PublishedSeptember 28, 2026Bowen Yang, Jingbo Zhou, Qinghong Miao
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Can improve language modeling and downstream tasks by enabling context-specific modulation of memory components.

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