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Semantic Analysis in Soccer Videos Using Support Vector Machine

机译:使用支持向量机的足球视频中的语义分析

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A tremendous increase in the video content uploaded on the internet has made it necessary for auto-recognition of videos in order to analyze, moderate or categorize certain content that can be accessed easily later on. Video analysis requires the study of proficient methodologies at the semantic level in order to address the issues such as occlusions, changes in illumination, noise, etc. This paper is aimed at the analysis of the soccer videos and semantic processing as an application in the video semantic analysis field. This study proposes a framework for automatically generating and annotating the highlights from a soccer video. The proposed framework identifies the interesting clips containing possible scenes of interest, such as goals, penalty kicks, etc. by parsing and processing the audio/video components. The framework analyzes, separates and annotates the individual scenes inside the video clips and saves using kernel support vector machine. The results show that semantic analysis of videos using kernel support vector machines is a reliable method to separate and annotate events of interest in a soccer game.
机译:在Internet上上传的视频内容的巨大增加已经使得自动识别视频是为了分析,中等或分类某些内容,以便稍后可以轻松访问。视频分析需要在语义上进行熟练方法,以解决诸如闭塞,照明,噪声等变化等问题。本文旨在分析视频和语义处理作为视频中的应用程序语义分析领域。本研究提出了一种自动生成和注释来自足球视频的亮点的框架。所提出的框架识别通过解析和处理音频/视频组件,识别包含可能感兴趣的场景的有趣剪辑,例如目标,罚球踢,等等。框架分析,分离和注释视频剪辑内的各个场景,并使用内核支持向量机保存。结果表明,使用内核支持向量机的视频的语义分析是一种可靠的方法,可以分离和注释在足球比赛中的兴趣事件。

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