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Up-Fusion: An Evolving Multimedia Fusion Method

机译:融合:一种不断发展的多媒体融合方法

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摘要

The amount of multimedia data on the Internet has increased exponentially in the past few decades and this trend is likely to continue. Multimedia content inherently has multiple information sources, therefore effective fusion methods are critical for data analysis and understanding. So far, most of the existing fusion methods are static with respect to time, making it difficult for them to handle the evolving multimedia content. To address this issue, in recent years, several evolving fusion methods were proposed, however, their requirements are difficult to meet, making them useful only in limited applications. In this article, we propose a novel evolving fusion method based on the online portfolio selection theory. The proposed method takes into account the correlation among different information sources and evolves the fusion model when new multimedia data is added. It performs effectively on both crisp and soft decisions without requiring additional context information. Extensive experiments on concept detection and human detection tasks over the TRECVTD dataset and surveillance data have been conducted and significantly better performance has been obtained.
机译:在过去的几十年中,Internet上的多媒体数据量呈指数增长,并且这种趋势可能会持续下去。多媒体内容固有地具有多个信息源,因此有效的融合方法对于数据分析和理解至关重要。到目前为止,大多数现有的融合方法在时间上都是静态的,这使得它们难以处理不断发展的多媒体内容。为了解决这个问题,近年来,提出了几种演进的融合方法,但是,它们的要求难以满足,使得它们仅在有限的应用中有用。在本文中,我们提出了一种基于在线投资组合选择理论的新型进化融合方法。该方法考虑了不同信息源之间的相关性,并在添加新的多媒体数据时发展了融合模型。它可以有效地执行清晰和软性决策,而无需其他上下文信息。已经对TRECVTD数据集和监视数据进行了概念检测和人体检测任务的广泛实验,并获得了明显更好的性能。

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