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Combining Machine Learning and Knowledge-Based Systems for Summarizing Interviews

机译:结合机器学习和基于知识的系统来汇总面试

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Achieving optimal results of an automatic summarization process is frequently conditioned by the knowledge of the domain. The performance of general methods is always lower than what can be achieved by introducing custom modifications taking into account the context. Nevertheless, these type of custom adjustments represents a hard work by experts and developers, which is not always possible to achieve due to the high costs. In this work we aim to leverage the features of the documents in order to classify them by using machine learning methods. Once the typology is identified, the application of improvements is done by a knowledge-based system that allows users to easily customize both the summarization process, and the presentation to the final user. The proposed method has been applied with promising results to interviews in a real environment of a major Spanish media group.
机译:实现自动汇总过程的最佳结果通常取决于领域的知识。通用方法的性能总是比考虑上下文引入自定义修改所能实现的性能低。但是,这些类型的自定义调整代表了专家和开发人员的辛苦工作,由于成本高昂,这并非总是可以实现的。在这项工作中,我们旨在利用文档的功能,以便通过使用机器学习方法对文档进行分类。一旦确定了类型,就可以通过基于知识的系统完成改进的应用,该系统允许用户轻松地定制摘要过程以及向最终用户的呈现。所提出的方法已经在西班牙主要媒体集团的真实环境中的采访中获得了可喜的结果。

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