ClaimBrush: A Novel Framework for Automated Patent Claim Refinement Based on Large Language Models

October 08, 2024 ยท Declared Dead ยท ๐Ÿ› BigData Congress [Services Society]

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Authors Seiya Kawano, Hirofumi Nonaka, Koichiro Yoshino arXiv ID 2410.05575 Category cs.CL: Computation & Language Cross-listed cs.AI Citations 1 Venue BigData Congress [Services Society] Last Checked 6 months ago
Abstract
Automatic refinement of patent claims in patent applications is crucial from the perspective of intellectual property strategy. In this paper, we propose ClaimBrush, a novel framework for automated patent claim refinement that includes a dataset and a rewriting model. We constructed a dataset for training and evaluating patent claim rewriting models by collecting a large number of actual patent claim rewriting cases from the patent examination process. Using the constructed dataset, we built an automatic patent claim rewriting model by fine-tuning a large language model. Furthermore, we enhanced the performance of the automatic patent claim rewriting model by applying preference optimization based on a prediction model of patent examiners' Office Actions. The experimental results showed that our proposed rewriting model outperformed heuristic baselines and zero-shot learning in state-of-the-art large language models. Moreover, preference optimization based on patent examiners' preferences boosted the performance of patent claim refinement.
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