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Mingxue Xu

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Open access Jul 2026

Surviving Resource-constraint Compression: Capability Retention under Tensor-train Decomposition for Sub-billion Parameter Language Models

This work proposes a training-free model compression approach based on the tensor-train decomposition, whereby each pre-trained token embedding is converted into a lower-dimensional matrix product state (MPS), and comprehensively investigates what language capabilities are preserved under training-free compression at different compression ratios.

Mingxue Xu, Y. Xu, Danilo P. Mandic · 0 citations

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