上传于 2018-01-09 10:59 阅读:424 次 标签:研究论文  卡耐基梅隆大学  机器人研究所  机器人技术   评论

The motion of the camera can cause images of pedestrians to be captured at extreme angles. This can lead to very poor pedestrian detection performance when using standard pedestrian detectors. To address this issue, we propose a Rotational Rectification Network (R2N) that can be inserted into any CNN-based pedestrian (or object) detector to adapt it to significant changes in camera rotation.

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