Guidelines for the Annotation and Visualization of Legal Argumentation Structures in Chinese Judicial Decisions

Fuente: arXiv
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Main Authors: Chen, Kun, Liao, Xianglei, Fei, Kaixue, Xing, Yi, Li, Xinrui
Format: Preprint
Published: 2026
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author Chen, Kun
Liao, Xianglei
Fei, Kaixue
Xing, Yi
Li, Xinrui
author_facet Chen, Kun
Liao, Xianglei
Fei, Kaixue
Xing, Yi
Li, Xinrui
contents This guideline proposes a systematic and operational annotation framework for representing the structure of legal argumentation in judicial decisions. Grounded in theories of legal reasoning and argumentation, the framework aims to reveal the logical organization of judicial reasoning and to provide a reliable data foundation for computational analysis. At the proposition level, the guideline distinguishes four types of propositions: general normative propositions, specific normative propositions, general factual propositions, and specific factual propositions. At the relational level, five types of relations are defined to capture argumentative structures: support, attack, joint, match, and identity. These relations represent positive and negative argumentative connections, conjunctive reasoning structures, the correspondence between legal norms and case facts, and semantic equivalence between propositions. The guideline further specifies formal representation rules and visualization conventions for both basic and nested structures, enabling consistent graphical representation of complex argumentation patterns. In addition, it establishes a standardized annotation workflow and consistency control mechanisms to ensure reproducibility and reliability of the annotated data. By providing a clear conceptual model, formal representation rules, and practical annotation procedures, this guideline offers methodological support for large-scale analysis of judicial reasoning and for future research in legal argument mining, computational modeling of legal reasoning, and AI-assisted legal analysis.
format Preprint
id arxiv_https___arxiv_org_abs_2603_05171
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Guidelines for the Annotation and Visualization of Legal Argumentation Structures in Chinese Judicial Decisions
Chen, Kun
Liao, Xianglei
Fei, Kaixue
Xing, Yi
Li, Xinrui
Computation and Language
Artificial Intelligence
This guideline proposes a systematic and operational annotation framework for representing the structure of legal argumentation in judicial decisions. Grounded in theories of legal reasoning and argumentation, the framework aims to reveal the logical organization of judicial reasoning and to provide a reliable data foundation for computational analysis. At the proposition level, the guideline distinguishes four types of propositions: general normative propositions, specific normative propositions, general factual propositions, and specific factual propositions. At the relational level, five types of relations are defined to capture argumentative structures: support, attack, joint, match, and identity. These relations represent positive and negative argumentative connections, conjunctive reasoning structures, the correspondence between legal norms and case facts, and semantic equivalence between propositions. The guideline further specifies formal representation rules and visualization conventions for both basic and nested structures, enabling consistent graphical representation of complex argumentation patterns. In addition, it establishes a standardized annotation workflow and consistency control mechanisms to ensure reproducibility and reliability of the annotated data. By providing a clear conceptual model, formal representation rules, and practical annotation procedures, this guideline offers methodological support for large-scale analysis of judicial reasoning and for future research in legal argument mining, computational modeling of legal reasoning, and AI-assisted legal analysis.
title Guidelines for the Annotation and Visualization of Legal Argumentation Structures in Chinese Judicial Decisions
topic Computation and Language
Artificial Intelligence
url https://arxiv.org/abs/2603.05171