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- W1902024696 abstract "Conventional action recognition algorithms adopt a single type of feature or a simple concatenation of multiple features. In this paper, we propose to better fuse and embed different feature representations for action recognition using a novel spectral coding algorithm called Kernelized Multiview Projection (KMP). Computing the kernel matrices from different features/views via time-sequential distance learning, KMP can encode different features with different weights to achieve a low-dimensional and semantically meaningful subspace where the distribution of each view is sufficiently smooth and discriminative. More crucially, KMP is linear for the reproducing kernel Hilbert space, which allows it to be competent for various practical applications. We demonstrate KMP’s performance for action recognition on five popular action datasets and the results are consistently superior to state-of-the-art techniques." @default.
- W1902024696 created "2016-06-24" @default.
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- W1902024696 creator A5063481044 @default.
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- W1902024696 date "2015-10-05" @default.
- W1902024696 modified "2023-09-30" @default.
- W1902024696 title "Kernelized Multiview Projection for Robust Action Recognition" @default.
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- W1902024696 doi "https://doi.org/10.1007/s11263-015-0861-6" @default.
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