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Analysis of Semantic Comprehension Algorithms of Natural Language Based on Robot’s Questions and Answers

机译:基于机器人问答的自然语言语义理解算法分析

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The deep learning has made a significant breakthrough and rapid development in the field of natural language processing under the background of big data. We analyzed deep learning algorithms based on natural language processing and its semantic comprehension, and studied the method of natural language semantic comprehension of robot’s questions and answers that is suitable for commercial use occasion, by consulting and analyzing related works and literatures, we sorted out and analyzed the methods of existing deep learning algorithms in natural language processing and semantic comprehension, aimed to improve the accuracy of robots in recognizing users' core information and extracting users' true intentions from the theoretical research level. This paper summarized the natural language semantic comprehension algorithms and research progress suitable for robot’s questions and answers around preprocessing technology, word sense disambiguation, semantic integrity analysis, etc. on this basis, through contrast tests and performance analysis, and laid the foundation for further scientific research.
机译:在大数据背景下,深度学习在自然语言处理领域取得了重大突破,并取得了飞速发展。我们分析了基于自然语言处理及其语义理解的深度学习算法,并研究和分析了相关著作和文献,研究了适合商业用途的机器人问答语言对自然语言语义的理解方法。分析了现有深度学习算法在自然语言处理和语义理解中的方法,旨在提高机器人识别用户核心信息并从理论研究水平提取用户真实意图的准确性。在此基础上,通过对比测试和性能分析,总结了适用于机器人问答的自然语言语义理解算法和研究进展,包括预处理技术,词义消歧,语义完整性分析等,为进一步的科学化奠定了基础。研究。

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