2022
DOI: 10.3390/app12157467
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Learning More in Vehicle Re-Identification: Joint Local Blur Transformation and Adversarial Network Optimization

Abstract: Vehicle re-identification (ReID) tasks are an important part of smart cities and are widely used in public security. It is extremely challenging because vehicles with different identities are generated from a uniform pipeline and cannot be distinguished based only on the subtle differences in their characteristics. To enhance the network’s ability to handle the diversity of samples in order to adapt to the changing external environment, we propose a novel data augmentation method to improve its performance. Ou… Show more

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