基于情感分析的YouTube视频元数据提取与分类

S. Rangaswamy, Shubham Ghosh, Srishti Jha, S. Ramalingam
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引用次数: 23

摘要

MPEG媒体已经被广泛采用,并且在促进可互操作的服务方面非常成功,这些服务可以在一系列设备上向消费者提供视频。然而,媒体消费已经超越了单纯的媒体资产的播放,而是面向依赖于丰富元数据和内容描述的更丰富的用户体验。本文提出了一种从视频中提取和分析元数据的技术,然后进行与视频内容相关的决策。该系统使用情感分析进行分类。据设想,该系统在完全发展后,将用于确定网上是否存在非法多媒体内容。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metadata extraction and classification of YouTube videos using sentiment analysis
MPEG media have been widely adopted and is very successful in promoting interoperable services that deliver video to consumers on a range of devices. However, media consumption is going beyond the mere playback of a media asset and is geared towards a richer user experience that relies on rich metadata and content description. This paper proposes a technique for extracting and analysing metadata from a video, followed by decision making related to the video content. The system uses sentiment analysis for such a classification. It is envisaged that the system when fully developed, is to be applied to determine the existence of illicit multimedia content on the Web.
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