利用网页分类进行数据对象识别

Ling Lin, Lizhu Zhou
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引用次数: 8

摘要

数据丰富的网页为web应用程序提供了越来越重要的数据源。虽然对数据对象识别问题进行了深入的讨论,但它主要是作为一个与相关网页识别的前沿任务分离的过程来解决的。在本文中,我们提出了一种利用数据丰富的网页分类结果进行高效和可扩展的数据对象识别的方法。提出了一种新的上下文信息,该信息可以从网页分类中推断出来,并在自下而上的数据对象识别中加以利用。实验结果表明,上下文信息使自底向上数据对象识别的运行效率提高了19%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Leveraging Webpage Classification for Data Object Recognition
Data-rich webpages are providing an increasingly important data source for web applications. While the problem of data object recognition is intensively discussed, it is mostly addressed as a separated process from the frontier task of relevant webpage identification. In this paper, we propose a method to leverage the classification result of data-rich webpages for efficient and scalable data object recognition. A novel context information is proposed, which can be inferred from the webpage classification and exploited in the bottom-up data object recognition. Experimental results show that the context information brings a 19% improvement in the running efficiency of the bottom- up data object recognition.
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