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TileMix: Tile-Centric Mixed-Precision Attention for LLM Inference Acceleration

Authors

Do you know Hanzhi Zhang?You can claim authorship or link another user.Do you know Qiao Zhang?You can claim authorship or link another user.Do you know Qinglei Cao?You can claim authorship or link another user.Do you know Heng Fan?You can claim authorship or link another user.Do you know Yan Huang?You can claim authorship or link another user.Do you know Kewei Sha?You can claim authorship or link another user.Do you know Yunhe Feng?You can claim authorship or link another user.

Abstract

Long-context prefill in large language models (LLMs) incurs substantial computation and memory traffic because dense self-attention computes quadratic query-key scores. Existing methods either use a uniform low-precision path or select token interactions, leaving spatial precision routing over hardware-aligned score tiles outside fused dense attention. We introduce TileMix, a tile-centric precision-routing kernel that makes numerical precision an executable spatial decision over score-tile groups within fused dense attention. TileMix partitions the attention matrix into hardware-aligned score tiles, packs routing decisions into compact bitmasks, and dispatches each tile group through FP16 or INT8 score computation while both paths update a shared online-softmax state. Scalable precision grouping lets each routing bit govern multiple adjacent key tiles, preserving hardware-aligned compute tiles and compact metadata at long contexts. By routing all legal tile groups, TileMix preserves dense token connectivity, requires no training, and supports grouped-query attention, variable-length batches, and INT8 key/value caches. Across LongEval, LV-Eval, and A100 prefill benchmarks on LLaMA, Qwen, and Vicuna, TileMix recovers long-context quality lost under uniform INT8 and improves prefill throughput over FP16, yielding a controllable accuracy-efficiency frontier across model families. The implementation is available at https://github.com/HanzhiZhang-Ulrica/TileMix.

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