Across EQE pre-exam legal questions, OpenAI o1 reached the highest accuracy (0.82), but no tested LLM reached the 0.90 threshold the authors set for passing, and human patent experts found systematic flaws in the models' legal justifications.
Can Large Language Models Generate High-quality Patent Claims?
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abstract
Large language models (LLMs) have shown exceptional performance across various text generation tasks but remain under-explored in the patent domain, which offers highly structured and precise language. This paper constructs a dataset to investigate the performance of current LLMs in patent claim generation. Our results demonstrate that generating claims based on patent descriptions outperforms previous research relying on abstracts. Interestingly, current patent-specific LLMs perform much worse than state-of-the-art general LLMs, highlighting the necessity for future research on in-domain LLMs. We also find that LLMs can produce high-quality first independent claims, but their performances markedly decrease for subsequent dependent claims. Moreover, fine-tuning can enhance the completeness of inventions' features, conceptual clarity, and feature linkage. Among the tested LLMs, GPT-4 demonstrates the best performance in comprehensive human evaluations by patent experts, with better feature coverage, conceptual clarity, and technical coherence. Despite these capabilities, comprehensive revision and modification are still necessary to pass rigorous patent scrutiny and ensure legal robustness.
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cs.CY 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
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Can Large Language Models Understand As Well As Apply Patent Regulations to Pass a Hands-On Patent Attorney Test?
Across EQE pre-exam legal questions, OpenAI o1 reached the highest accuracy (0.82), but no tested LLM reached the 0.90 threshold the authors set for passing, and human patent experts found systematic flaws in the models' legal justifications.