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4 months ago

Deep Feature Flow for Video Recognition

Xizhou Zhu; Yuwen Xiong; Jifeng Dai; Lu Yuan; Yichen Wei

Deep Feature Flow for Video Recognition

Abstract

Deep convolutional neutral networks have achieved great success on image recognition tasks. Yet, it is non-trivial to transfer the state-of-the-art image recognition networks to videos as per-frame evaluation is too slow and unaffordable. We present deep feature flow, a fast and accurate framework for video recognition. It runs the expensive convolutional sub-network only on sparse key frames and propagates their deep feature maps to other frames via a flow field. It achieves significant speedup as flow computation is relatively fast. The end-to-end training of the whole architecture significantly boosts the recognition accuracy. Deep feature flow is flexible and general. It is validated on two recent large scale video datasets. It makes a large step towards practical video recognition.

Code Repositories

msracver/Deep-Feature-Flow
Official
mxnet
Mentioned in GitHub
Scalsol/mega.pytorch
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
video-semantic-segmentation-on-cityscapes-valDFF [22]
mIoU: 69.2

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