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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 36 / No. 10: AAAI-22 Technical Tracks 10

Block-Skim: Efficient Question Answering for Transformer

February 1, 2023

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Abstract:

Transformer models have achieved promising results on natural language processing (NLP) tasks including extractive question answering (QA). Common Transformer encoders used in NLP tasks process the hidden states of all input tokens in the context paragraph throughout all layers. However, different from other tasks such as sequence classification, answering the raised question does not necessarily need all the tokens in the context paragraph. Following this motivation, we propose Block-skim, which learns to skim unnecessary context in higher hidden layers to improve and accelerate the Transformer performance. The key idea of Block-Skim is to identify the context that must be further processed and those that could be safely discarded early on during inference. Critically, we find that such information could be sufficiently derived from the self-attention weights inside the Transformer model. We further prune the hidden states corresponding to the unnecessary positions early in lower layers, achieving significant inference-time speedup. To our surprise, we observe that models pruned in this way outperform their full-size counterparts. Block-Skim improves QA models' accuracy on different datasets and achieves 3 times speedup on BERT-base model.

Authors

Yue Guan

Shanghai Jiaotong University Shanghai Qi Zhi Institute


Zhengyi Li

Shanghai Jiao Tong University Shanghai Qi Zhi Institute


Zhouhan Lin

Shanghai Jiao Tong University


Yuhao Zhu

University of Rochester


Jingwen Leng

Shanghai Jiao Tong University Shanghai Qi Zhi Institute


Minyi Guo

Shanghai Jiaotong University Shanghai Qi Zhi Institute


DOI:

10.1609/aaai.v36i10.21316


Topics: AAAI

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HOW TO CITE:

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo Block-Skim: Efficient Question Answering for Transformer Proceedings of the AAAI Conference on Artificial Intelligence, 36 (2022) 10710-10719.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo Block-Skim: Efficient Question Answering for Transformer AAAI 2022, 10710-10719.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo (2022). Block-Skim: Efficient Question Answering for Transformer. Proceedings of the AAAI Conference on Artificial Intelligence, 36, 10710-10719.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo. Block-Skim: Efficient Question Answering for Transformer. Proceedings of the AAAI Conference on Artificial Intelligence, 36 2022 p.10710-10719.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo. 2022. Block-Skim: Efficient Question Answering for Transformer. "Proceedings of the AAAI Conference on Artificial Intelligence, 36". 10710-10719.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo. (2022) "Block-Skim: Efficient Question Answering for Transformer", Proceedings of the AAAI Conference on Artificial Intelligence, 36, p.10710-10719

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo, "Block-Skim: Efficient Question Answering for Transformer", AAAI, p.10710-10719, 2022.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo. "Block-Skim: Efficient Question Answering for Transformer". Proceedings of the AAAI Conference on Artificial Intelligence, 36, 2022, p.10710-10719.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo. "Block-Skim: Efficient Question Answering for Transformer". Proceedings of the AAAI Conference on Artificial Intelligence, 36, (2022): 10710-10719.

Yue Guan||Zhengyi Li||Zhouhan Lin||Yuhao Zhu||Jingwen Leng||Minyi Guo. Block-Skim: Efficient Question Answering for Transformer. AAAI[Internet]. 2022[cited 2023]; 10710-10719.


ISSN: 2374-3468


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