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Action Recognition with Trajectory-Pooled Deep-Convolutional Descriptors

About

Visual features are of vital importance for human action understanding in videos. This paper presents a new video representation, called trajectory-pooled deep-convolutional descriptor (TDD), which shares the merits of both hand-crafted features and deep-learned features. Specifically, we utilize deep architectures to learn discriminative convolutional feature maps, and conduct trajectory-constrained pooling to aggregate these convolutional features into effective descriptors. To enhance the robustness of TDDs, we design two normalization methods to transform convolutional feature maps, namely spatiotemporal normalization and channel normalization. The advantages of our features come from (i) TDDs are automatically learned and contain high discriminative capacity compared with those hand-crafted features; (ii) TDDs take account of the intrinsic characteristics of temporal dimension and introduce the strategies of trajectory-constrained sampling and pooling for aggregating deep-learned features. We conduct experiments on two challenging datasets: HMDB51 and UCF101. Experimental results show that TDDs outperform previous hand-crafted features and deep-learned features. Our method also achieves superior performance to the state of the art on these datasets (HMDB51 65.9%, UCF101 91.5%).

Limin Wang, Yu Qiao, Xiaoou Tang• 2015

Related benchmarks

TaskDatasetResultRank
Action RecognitionUCF101
Accuracy91.5
365
Action RecognitionUCF101 (mean of 3 splits)
Accuracy91.5
357
Action RecognitionUCF101 (test)
Accuracy90.3
307
Action RecognitionHMDB51 (test)
Accuracy0.632
249
Action RecognitionHMDB51
Top-1 Acc63.2
225
Action RecognitionHMDB-51 (average of three splits)
Top-1 Acc63.2
204
Action RecognitionHMDB51
3-Fold Accuracy65.9
191
Action RecognitionUCF101 (3 splits)
Accuracy91.5
155
Video Action RecognitionHMDB-51 (3 splits)
Accuracy65.9
116
Video Action RecognitionHMDB51 (avg over all splits)
Top-1 Acc65.9
56
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