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D3D: Distilled 3D Networks for Video Action Recognition

2018-12-19Code Available0· sign in to hype

Jonathan C. Stroud, David A. Ross, Chen Sun, Jia Deng, Rahul Sukthankar

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Abstract

State-of-the-art methods for video action recognition commonly use an ensemble of two networks: the spatial stream, which takes RGB frames as input, and the temporal stream, which takes optical flow as input. In recent work, both of these streams consist of 3D Convolutional Neural Networks, which apply spatiotemporal filters to the video clip before performing classification. Conceptually, the temporal filters should allow the spatial stream to learn motion representations, making the temporal stream redundant. However, we still see significant benefits in action recognition performance by including an entirely separate temporal stream, indicating that the spatial stream is "missing" some of the signal captured by the temporal stream. In this work, we first investigate whether motion representations are indeed missing in the spatial stream of 3D CNNs. Second, we demonstrate that these motion representations can be improved by distillation, by tuning the spatial stream to predict the outputs of the temporal stream, effectively combining both models into a single stream. Finally, we show that our Distilled 3D Network (D3D) achieves performance on par with two-stream approaches, using only a single model and with no need to compute optical flow.

Tasks

Benchmark Results

DatasetModelMetricClaimedVerifiedStatus
AVA v2.1D3D (ResNet RPN, Kinetics-400 pretraining)mAP (Val)23Unverified
HMDB-51D3D (Kinetics-600 pretraining)Average accuracy of 3 splits79.3Unverified
HMDB-51D3D (Kinetics-400 pretraining)Average accuracy of 3 splits78.7Unverified
HMDB-51D3D + D3DAverage accuracy of 3 splits80.5Unverified
UCF101D3D + D3D3-fold Accuracy97.6Unverified
UCF101D3D (Kinetics-600 pretraining)3-fold Accuracy97.1Unverified
UCF101D3D (Kinetics-400 pretraining)3-fold Accuracy97Unverified

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