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Papers/SiamRPN++: Evolution of Siamese Visual Tracking with Very ...

SiamRPN++: Evolution of Siamese Visual Tracking with Very Deep Networks

Bo Li, Wei Wu, Qiang Wang, Fangyi Zhang, Junliang Xing, Junjie Yan

2018-12-31CVPR 2019 6Visual Object TrackingVisual TrackingTranslation
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Abstract

Siamese network based trackers formulate tracking as convolutional feature cross-correlation between target template and searching region. However, Siamese trackers still have accuracy gap compared with state-of-the-art algorithms and they cannot take advantage of feature from deep networks, such as ResNet-50 or deeper. In this work we prove the core reason comes from the lack of strict translation invariance. By comprehensive theoretical analysis and experimental validations, we break this restriction through a simple yet effective spatial aware sampling strategy and successfully train a ResNet-driven Siamese tracker with significant performance gain. Moreover, we propose a new model architecture to perform depth-wise and layer-wise aggregations, which not only further improves the accuracy but also reduces the model size. We conduct extensive ablation studies to demonstrate the effectiveness of the proposed tracker, which obtains currently the best results on four large tracking benchmarks, including OTB2015, VOT2018, UAV123, and LaSOT. Our model will be released to facilitate further studies based on this problem.

Results

TaskDatasetMetricValueModel
Object TrackingVOT2017/18Expected Average Overlap (EAO)0.414SiamRPN++
Object TrackingTrackingNetAccuracy70SiamRPN++
Object TrackingTrackingNetNormalized Precision79.98SiamRPN++
Object TrackingTrackingNetPrecision69.38SiamRPN++
Visual Object TrackingVOT2017/18Expected Average Overlap (EAO)0.414SiamRPN++
Visual Object TrackingTrackingNetAccuracy70SiamRPN++
Visual Object TrackingTrackingNetNormalized Precision79.98SiamRPN++
Visual Object TrackingTrackingNetPrecision69.38SiamRPN++

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