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Multimedia based Information Retrieval Approach based on ASR and OCR and Video Recommendation System

机译:基于ASR和OCR和视频推荐系统的多媒体信息检索方法

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Lecture videos and e-learning are upcoming effective learning resources. Getting the appropriate lecture video out of all video archives available on the internet is not an easy task. Analyzing the video title, description and other static metadata contents is not sufficient to find the relevance of a video. This paper presents an approach for lecture video analysis based on the content of the video. We apply video segmentation to retrieve the frames from given video at specific time interval. Then we retrieve keywords from the frames using OCR technology. At the same time ASR technique extract textual metadata from audio track of the video which is easily separable from video. On the basis of retrieved keywords web links, image links and YouTube links are provided. Users can access the related videos using provided links and they can give rating for viewed video according to the relevance of that video. This rating is helpful for further attempts of finding the relevance of video. Recommendation system is the major part of this research which is implemented using cosine similarity and Pearson correlation score.
机译:讲座视频和电子学习即将到来是有效的学习资源。将相应的讲座视频从互联网上提供的所有视频档案中都不是一件简单的任务。分析视频标题,描述和其他静态元数据内容不足以找到视频的相关性。本文提出了一种基于视频内容的讲义视频分析方法。我们应用视频分割以在特定时间间隔从给定视频检索帧。然后我们使用OCR技术从帧中检索关键字。同时ASR技术从视频的音频轨道提取文本元数据,这很容易可从视频中分离。在检索到的关键字Web链接的基础上,提供了图像链接和youTube链接。用户可以使用提供的链接访问相关的视频,并且根据该视频的相关性,他们可以为观看视频提供评级。该评级有助于进一步尝试找到视频的相关性。推荐系统是本研究的主要部分,该研究是使用余弦相似性和Pearson相关评分实施的。

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