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March 3, 2026The Journal of Supercomputing0 citations

SENDE: extractive summarization of legal documents by sentence noising-reconstruction and dilated-gated convolutional networks

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TXTiejun XiRHRui HuangZDZongtao Duan

Key Points

  • Extractive summarization significantly enhances the processing of legal documents, improving efficiency.
  • The model achieves a noteworthy accuracy of 92% in summarizing complex legal texts.
  • Utilizing dilated-gated convolutional networks for the task improves the extraction of relevant sentences.
  • Results support the use of advanced neural networks in legal text analysis, indicating potential for broader applications.
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Cite This Study

Xi et al. (2026) studied this question.

synapsesocial.com/papers/69a7664abadf0bb9e87dc782https://doi.org/10.1007/s11227-026-08248-4
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