Automatic Website Comprehensibility Evaluation

Ping Yan, Zhu Zhang, Ray Garcia
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引用次数: 15

Abstract

The Web provides easy access to a vast amount of informational content to the average person, who may often be interested in selecting Websites that best match their learning objectives and comprehensibility level. Web content is generally not tagged for easy determination of its instructional appropriateness and comprehensibility level. Our research develops an analytical model, using a group of website features, to automatically determine the comprehensibility level of a Website. These features, selected from a large pool of Website features quantitatively measured, are statistically shown to be significantly correlated to website comprehensibility based on empirical studies. The automatically inferred comprehensibility index may be used to assist the average person, interested in using web content for self-directed learning, to find content suited to their comprehension level and filter out content which may have low potential instructional value.
自动网站可理解性评估
Web为普通人提供了访问大量信息内容的便捷途径,他们可能经常对选择最符合其学习目标和可理解性水平的网站感兴趣。Web内容通常没有标记,以便于确定其教学适当性和可理解性水平。我们的研究开发了一个分析模型,使用一组网站特征,自动确定一个网站的可理解性水平。这些特征是从大量定量测量的网站特征中挑选出来的,根据实证研究,统计结果表明,这些特征与网站的可理解性显著相关。自动推断的可理解性指数可以帮助有兴趣使用网络内容进行自主学习的普通人找到适合他们理解水平的内容,并过滤掉可能没有潜在教学价值的内容。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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