Zaikun Xu | University of Lugano (original) (raw)

Zaikun Xu

Address: Zurich, Zurich, Switzerland

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Research paper thumbnail of UC Merced Submission to the ActivityNet Challenge 2016

ArXiv, 2017

This notebook paper describes our system for the untrimmed classification task in the ActivityNet... more This notebook paper describes our system for the untrimmed classification task in the ActivityNet challenge 2016. We investigate multiple state-of-the-art approaches for action recognition in long, untrimmed videos. We exploit hand-crafted motion boundary histogram features as well feature activations from deep networks such as VGG16, GoogLeNet, and C3D. These features are separately fed to linear, one-versus-rest support vector machine classifiers to produce confidence scores for each action class. These predictions are then fused along with the softmax scores of the recent ultra-deep ResNet-101 using weighted averaging.

Research paper thumbnail of UC Merced Submission to the ActivityNet Challenge 2016

ArXiv, 2017

This notebook paper describes our system for the untrimmed classification task in the ActivityNet... more This notebook paper describes our system for the untrimmed classification task in the ActivityNet challenge 2016. We investigate multiple state-of-the-art approaches for action recognition in long, untrimmed videos. We exploit hand-crafted motion boundary histogram features as well feature activations from deep networks such as VGG16, GoogLeNet, and C3D. These features are separately fed to linear, one-versus-rest support vector machine classifiers to produce confidence scores for each action class. These predictions are then fused along with the softmax scores of the recent ultra-deep ResNet-101 using weighted averaging.

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