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Papers/LightTrack: Finding Lightweight Neural Networks for Object...

LightTrack: Finding Lightweight Neural Networks for Object Tracking via One-Shot Architecture Search

Bin Yan, Houwen Peng, Kan Wu, Dong Wang, Jianlong Fu, Huchuan Lu

2021-04-29CVPR 2021 1Neural Architecture SearchObject TrackingVideo Object Tracking
PaperPDFCode(official)

Abstract

Object tracking has achieved significant progress over the past few years. However, state-of-the-art trackers become increasingly heavy and expensive, which limits their deployments in resource-constrained applications. In this work, we present LightTrack, which uses neural architecture search (NAS) to design more lightweight and efficient object trackers. Comprehensive experiments show that our LightTrack is effective. It can find trackers that achieve superior performance compared to handcrafted SOTA trackers, such as SiamRPN++ and Ocean, while using much fewer model Flops and parameters. Moreover, when deployed on resource-constrained mobile chipsets, the discovered trackers run much faster. For example, on Snapdragon 845 Adreno GPU, LightTrack runs $12\times$ faster than Ocean, while using $13\times$ fewer parameters and $38\times$ fewer Flops. Such improvements might narrow the gap between academic models and industrial deployments in object tracking task. LightTrack is released at https://github.com/researchmm/LightTrack.

Results

TaskDatasetMetricValueModel
VideoNT-VOT211AUC32.85LightTrack
VideoNT-VOT211Precision43.65LightTrack
Object TrackingNT-VOT211AUC32.85LightTrack
Object TrackingNT-VOT211Precision43.65LightTrack

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