Web mining to generate multimodal learning materials for children with special needs

Anukha Wagley, Monir Bhuiyan, P. Akhter, K. Dahal, Md. Alamgir Hossain
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引用次数: 3

Abstract

Developing a Web mining scheme that takes plain text (for example, a paragraph of a story) as an input to generate multimodal learning materials from the Internet sources could be of great help to both teachers and children with special needs. This paper proposes a solution which at first extracts the keywords from the plain text provided using word co-occurrences method. The co-occurrence distribution between frequent terms and other terms in a sentence are used to define the relative importance of a term. Thus extracted keywords are used to search for the multimodal elements (texts, images and video clips) and other similar stories through search engine APIs (Application Programme Interface). After the search operation, URL (Uniform Resource Locator) filtering, domain filtering and Web content analysis based filtering methods are used to remove unwanted materials. The proposed scheme has been implemented, tested and verified by children through ethnographic method to demonstrate the merits and capabilities in generating multimodal learning. Results show that the proposed scheme offers on average of about 80% accuracy for learning material generation.
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网络挖掘为有特殊需要的儿童生成多模式学习材料
开发一种以纯文本(例如,故事的一段)作为输入的Web挖掘方案,从Internet资源生成多模式学习材料,这对教师和有特殊需要的儿童都有很大帮助。本文提出了一种利用词共现法从提供的明文中提取关键词的解决方案。句子中频繁出现的术语与其他术语的共现分布用于定义术语的相对重要性。因此,提取的关键字用于通过搜索引擎api(应用程序编程接口)搜索多模态元素(文本,图像和视频剪辑)和其他类似的故事。在进行搜索操作后,采用URL(统一资源定位符)过滤、域过滤和基于Web内容分析的过滤方法去除不需要的内容。该方案已由儿童通过人种学方法实施、测试和验证,以证明产生多模式学习的优点和能力。结果表明,该方法在学习材料生成方面的平均准确率约为80%。
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