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Legal Question Answering using Ranking SVM and Deep Convolutional Neural Network

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abstract

This paper presents a study of employing Ranking SVM and Convolutional Neural Network for two missions: legal information retrieval and question answering in the Competition on Legal Information Extraction/Entailment. For the first task, our proposed model used a triple of features (LSI, Manhattan, Jaccard), and is based on paragraph level instead of article level as in previous studies. In fact, each single-paragraph article corresponds to a particular paragraph in a huge multiple-paragraph article. For the legal question answering task, additional statistical features from information retrieval task integrated into Convolutional Neural Network contribute to higher accuracy.

fields

cs.CL 1

years

2025 1

verdicts

CONDITIONAL 1

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  • Natural Language Processing of Privacy Policies: A Survey cs.CL · 2025-01-17 · conditional · none · ref 35 · internal anchor

    A systematic review of NLP research on privacy policies finds heavy focus on text classification and sparse work on summarization, question answering, and alignment.