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TransVPR: Transformer-based place recognition with multi-level attention aggregation

About

Visual place recognition is a challenging task for applications such as autonomous driving navigation and mobile robot localization. Distracting elements presenting in complex scenes often lead to deviations in the perception of visual place. To address this problem, it is crucial to integrate information from only task-relevant regions into image representations. In this paper, we introduce a novel holistic place recognition model, TransVPR, based on vision Transformers. It benefits from the desirable property of the self-attention operation in Transformers which can naturally aggregate task-relevant features. Attentions from multiple levels of the Transformer, which focus on different regions of interest, are further combined to generate a global image representation. In addition, the output tokens from Transformer layers filtered by the fused attention mask are considered as key-patch descriptors, which are used to perform spatial matching to re-rank the candidates retrieved by the global image features. The whole model allows end-to-end training with a single objective and image-level supervision. TransVPR achieves state-of-the-art performance on several real-world benchmarks while maintaining low computational time and storage requirements.

Ruotong Wang, Yanqing Shen, Weiliang Zuo, Sanping Zhou, Nanning Zheng• 2022

Related benchmarks

TaskDatasetResultRank
Visual Place RecognitionMSLS (val)
Recall@186.8
236
Visual Place RecognitionPitts30k
Recall@189
164
Visual Place RecognitionTokyo24/7
Recall@179
146
Visual Place RecognitionMSLS Challenge
Recall@163.9
134
Visual Place RecognitionNordland
Recall@163.5
112
Visual Place RecognitionPittsburgh30k (test)
Recall@189
86
Visual Place RecognitionSt Lucia
R@198.7
76
Visual Place RecognitionNordland (test)
R@177.8
31
Visual Place RecognitionTokyo24/7 (test)
Recall@179
29
Urban LocalizationRobotCar Seasons v2
Recall (0.25m/2°)9.8
19
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