BIPro: Zero-shot Chinese Poem Generation via Block Inverse Prompting Constrained Generation Framework
Xu Zou
摘要
Recently, generative pre-trained models have made significant strides, particularly highlighted by the release of ChatGPT and GPT-4, which exhibit superior cross-domain capabilities. However, these models still face challenges on constrained writing tasks like poem generation under open-domain titles. In response to this challenge, we introduce Block Inverse Prompting (BIPro) constrained generation framework. BIPro leverages two block inverse prompting methods, revise and rewrite, that mimic the process of human text writing using block generative models. It significantly improves the zero-shot generation quality on the formidable constrained generation task of open-domain traditional-form Chinese poem generation. Based on a less powerful block generative model GLM-10B-Chinese, poems composed via BIPro without priming or additional training outperform both most advanced direct generative systems like GPT-4 or GLM-4 and best domain-specific systems such as Yusheng, Shisanbai, or Baidu Poetry Helper in human evaluation by proficient poets. Finally, BIPro considerably narrows the gap between AI-generated works and short-listed human literary arts in another human evaluation, unveiling the promising potential of block generative models in improving the quality of constrained generation.
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它引用的顶会 Paper4
- GLM-130B: An Open Bilingual Pre-trained ModelAohan Zeng, Xiao Liu, Zhengxiao Du, Zihan Wang 等ICLR 2023 · 被引用 295 次
- Controllable Generation from Pre-trained Language Models via Inverse PromptingXu Zou, Da Yin, Qingyang Zhong, Hongxia Yang 等KDD 2021 · 被引用 29 次
- Eliciting Thinking Hierarchy without a PriorYuqing Kong, Yunqi Li, Yubo Zhang, Zhihuan Huang 等NeurIPS 2022 · 被引用 9 次
- GLM: General Language Model Pretraining with Autoregressive Blank InfillingZhengxiao Du, Yujie Qian, Xiao Liu, Ming Ding 等ACL 2022
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