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- W2907473003 abstract "This paper addresses issues in performing video activity recognition using support vector machines (SVMs). The videos comprise of sequence of sub-activities where a sub-activity correspond to a segment of video. For building activity recognizer, each segment is encoded into a feature vector. Hence a video is represented as a sequence of feature vectors. In this work, we propose to explore GMM-based encoding scheme ot encode a video segment into bag-of-visual-word vector representation. We also propose to use Fisher score vector as an encoded representation for a video segment. For building SVM-based activity recognizer, it is necessary to use suitable kernel that match sequences of feature vectors. Such kernels are called sequence kernels. In this work, we propose different sequence kernels like modified time flexible kernel, segment level pyramid match kernel, segment level probability sequence kernel and segment level Fisher kernel for matching videos when segments are represented using an encoded feature vector representation. The effectiveness of the proposed sequence kernels in the SVM- based activity recognition are studied using benchmark datasets." @default.
- W2907473003 created "2019-01-11" @default.
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- W2907473003 date "2019-01-01" @default.
- W2907473003 modified "2023-09-26" @default.
- W2907473003 title "Video Activity Recognition Using Sequence Kernel Based Support Vector Machines" @default.
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- W2907473003 doi "https://doi.org/10.1007/978-3-030-05499-1_9" @default.
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