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BSN++: Complementary Boundary Regressor with Scale-Balanced Relation Modeling for Temporal Action Proposal Generation

About

Generating human action proposals in untrimmed videos is an important yet challenging task with wide applications. Current methods often suffer from the noisy boundary locations and the inferior quality of confidence scores used for proposal retrieving. In this paper, we present BSN++, a new framework which exploits complementary boundary regressor and relation modeling for temporal proposal generation. First, we propose a novel boundary regressor based on the complementary characteristics of both starting and ending boundary classifiers. Specifically, we utilize the U-shaped architecture with nested skip connections to capture rich contexts and introduce bi-directional boundary matching mechanism to improve boundary precision. Second, to account for the proposal-proposal relations ignored in previous methods, we devise a proposal relation block to which includes two self-attention modules from the aspects of position and channel. Furthermore, we find that there inevitably exists data imbalanced problems in the positive/negative proposals and temporal durations, which harm the model performance on tail distributions. To relieve this issue, we introduce the scale-balanced re-sampling strategy. Extensive experiments are conducted on two popular benchmarks: ActivityNet-1.3 and THUMOS14, which demonstrate that BSN++ achieves the state-of-the-art performance. Not surprisingly, the proposed BSN++ ranked 1st place in the CVPR19 - ActivityNet challenge leaderboard on temporal action localization task.

Haisheng Su, Weihao Gan, Wei Wu, Yu Qiao, Junjie Yan• 2020

Related benchmarks

TaskDatasetResultRank
Temporal Action DetectionTHUMOS-14 (test)
mAP@tIoU=0.541.3
330
Temporal Action DetectionActivityNet v1.3 (val)
mAP@0.551.27
185
Temporal Action ProposalActivityNet v1.3 (val)
AUC68.26
114
Temporal Action LocalizationTHUMOS 2014
mAP@0.3059.9
93
Temporal Action Proposal GenerationTHUMOS14 (test)
AR@5042.44
84
Temporal Action DetectionActivityNet 1.3 (test)
Average mAP34.8
80
Temporal Action Proposal GenerationTHUMOS 14
AR@5042.44
41
Temporal Action LocalizationActivityNet 1.3
Average mAP34.9
32
Temporal Action Proposal GenerationTHUMOS14 1.3 (test)
AR@5042.44
30
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