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Scene-Guided Region Proposal Re-ranking Method for On-road Vehicle Candidate Generation

机译:现场引导地区建议重新排名的路上车辆候选生成方法

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Vehicle candidate generation is important for vehicle detection. Existing vehicle detection studies usually employ general-purpose region proposal methods to generate vehicle candidates, which do not consider the specificity of on-road vehicles in traffic scenes. In this paper, we propose a model to re-rank the candidates that are generated by general-purpose region proposal methods. Our model considers the specificity of on-road vehicle candidate generation in traffic scenes by encoding global-local semantic context and location-size geometric compatibility. In the experiments, we test our model on three art-of-the-state region proposal methods using two public datasets. The results show the significant performance improvement is gained after applying our model.
机译:车辆候选生成对于车辆检测很重要。现有的车辆检测研究通常采用通用区域提案方法来产生车辆候选者,这不考虑交通场景中的道路车辆的特殊性。在本文中,我们提出了一种模型来重新排名通过通用区域提案方法产生的候选人。我们的模型通过编码全球局域的语义上下文和位置几何兼容性来考虑交通场景中的路上车辆候选生成的特殊性。在实验中,我们使用两个公共数据集在三个状态区域提案方法上测试我们的模型。结果表明,在应用我们的模型后获得了显着的性能改进。

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