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Video shot retrieval using a kernel derived from a continuous HMM

机译:使用从连续HMM派生的内核检索视频镜头

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In this paper, we propose a discriminative approach for retrieval of video shots characterized by a sequential structure. The task of retrieving shots similar in content to a few positive example shots is more close to a binary classification problem. Hence, this task can be solved by a discriminative learning approach. For a content-based retrieval task the twin characteristics of rare positive example occurrence and a sequential structure in the positive examples make it attractive for us to use a learning approach based on a generative model like HMM. To make use of the positive aspects of both discriminative and generative models, we derive Fisher and Modified score kernels for a Continuous HMM and incorporate them into SVM classification framework. The training set video shots are used to learn SVM classifier. A test set video shot is ranked based on its proximity to the positive class side of hyperplane. We evaluate the performance of the derived kernels by retrieving video shots of airplane takeoff. The retrieval performance using the derived kernels is found to be much better compared to linear and RBF kernels.
机译:在本文中,我们提出了一种判别方法,用于检索以顺序结构为特征的视频镜头。检索内容与一些正面示例镜头相似的镜头的任务更接近于二进制分类问题。因此,该任务可以通过判别式学习方法来解决。对于基于内容的检索任务,罕见的正面示例出现和正面示例中的顺序结构的双重特征使我们对使用基于HMM生成模型的学习方法有吸引力。为了利用判别模型和生成模型的积极方面,我们导出了连续HMM的Fisher和Modified分数核,并将其纳入SVM分类框架。训练集视频镜头用于学习SVM分类器。测试集视频镜头根据其与超平面的正类侧的接近程度进行排名。我们通过检索飞机起飞的视频镜头来评估派生内核的性能。发现与线性和RBF内核相比,使用派生内核的检索性能要好得多。

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