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Zero-Shot Dynamic Quantization for Transformer Inference

17 November 2022
Yousef El-Kurdi
Jerry Quinn
Avirup Sil
    MQ
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Abstract

We introduce a novel run-time method for significantly reducing the accuracy loss associated with quantizing BERT-like models to 8-bit integers. Existing methods for quantizing models either modify the training procedure,or they require an additional calibration step to adjust parameters that also requires a selected held-out dataset. Our method permits taking advantage of quantization without the need for these adjustments. We present results on several NLP tasks demonstrating the usefulness of this technique.

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