瞬态因素-注意视频情感分析-基于互联网的应用建议

Uma Priyadarsini, M. Nalini
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引用次数: 1

摘要

随着多媒体服务的快速发展和在线社交系统中视频内容的大量提供,客户在获取自己的兴趣方面遇到了问题。通过这种方式,不同的定制建议框架被提出。此外,他们都没有考虑到客户独特情况的安全性(例如,经济状况,年龄和休闲活动)和视频对卖家金库的好处,这在很大程度上是敏感的,并且具有巨大的商业价值。针对这些问题,本文提出了一种基于网络循环学习的云辅助差分私有视频建议框架。在我们的项目中,我们提出了一种新的推荐优化技术。基于用户行为(用户兴趣)进行视频推荐,并利用模式挖掘进行视频标签搜索推荐。我们有搜索选项作为子类搜索和全局搜索在我们的应用程序。面对海量的多媒体服务和互联网上的内容是基于内容提供商的。尖端的,收集供应商,我们需要找出无关的内容推广。
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Transient Factor-Mindful Video Affective Analysis- A Proposal for Internet Based Application
The rapid growth in multimedia services and the enormous offers of video contents in online social systems, clients experience issues in getting their interests. In this way, different customized suggestion frameworks have been proposed. Also, none of them has considered both the security of clients’ unique situations (e. g., economic well being, ages and leisure activities) and video benefit sellers’ vaults, which are to a great degree touchy and of huge business esteem. To deal with these issues, it’s been proposed a cloud-helped differential private video suggestion framework in light of circulated web based learning. In our project we proposed the new optimization technique for recommendation. The video recommendation is based on user’s behaviour (user’s interest) and also using the pattern mining for video tag search recommendation. We have search option as sub category search and global search in our application. Facing massive multimedia services and contents in the Internet is based the content provider. Cutting-edge that collection of providers we need to find out the irrelevant content promoters.
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