A Fine-grained Chinese Software Privacy Policy Dataset for Sequence Labeling and Regulation Compliant Identification
Kaifa Zhao, Le Yu, Shiyao Zhou, Jing Li, Xiapu Luo, Aemon Yat Fei Chiu, Yutong Liu
摘要
Privacy protection raises great attention on both legal levels and user awareness. To protect user privacy, countries enact laws and regulations requiring software privacy policies to regulate their behavior. However, privacy policies are written in natural languages with many legal terms and software jargon that prevent users from understanding and even reading them. It is desirable to use NLP techniques to analyze privacy policies for helping users understand them. Furthermore, existing datasets ignore law requirements and are limited to English. In this paper, we construct the first Chinese privacy policy dataset, namely CA4P-483, to facilitate the sequence labeling tasks and regulation compliance identification between privacy policies and software. Our dataset includes 483 Chinese Android application privacy policies, over 11K sentences, and 52K fine-grained annotations. We evaluate families of robust and representative baseline models on our dataset. Based on baseline performance, we provide findings and potential research directions on our dataset. Finally, we investigate the potential applications of CA4P-483 1 combing regulation requirements and program analysis.
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引用它的顶会 Paper5
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- Evaluating Privacy Policies under Modern Privacy Laws At Scale: An LLM-Based Automated ApproachQinge Xie, Karthik Ramakrishnan, Frank LiUSENIX Security 2025
- Speechworthy Instruction-tuned Language ModelsHyundong Cho, Nicolaas Paul Jedema, Leonardo F. R. Ribeiro, Karishma Sharma 等EMNLP 2024
- APPSI-139: A Parallel Corpus of English Application Privacy Policy Summarization and InterpretationPengyun Zhu, Qiheng Sun, Long Wen, Yanbo Wang 等ACL 2026
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