cs.AI updates on arXiv.org 11月05日 13:31
RoRaTrack数据集与RaceGAN模型助力赛道检测
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本文提出RoRaTrack数据集,包含多摄像头赛道场景图像数据,并基于GAN提出RaceGAN模型,有效解决赛道检测问题,性能优于现有模型。

arXiv:2502.14068v2 Announce Type: replace-cross Abstract: A significant challenge in racing-related research is the lack of publicly available datasets containing raw images with corresponding annotations for the downstream task. In this paper, we introduce RoRaTrack, a novel dataset that contains annotated multi-camera image data from racing scenarios for track detection. The data is collected on a Dallara AV-21 at a racing circuit in Indiana, in collaboration with the Indy Autonomous Challenge (IAC). RoRaTrack addresses common problems such as blurriness due to high speed, color inversion from the camera, and absence of lane markings on the track. Consequently, we propose RaceGAN, a baseline model based on a Generative Adversarial Network (GAN) that effectively addresses these challenges. The proposed model demonstrates superior performance compared to current state-of-the-art machine learning models in track detection. The dataset and code for this work are available at https://github.com/ghosh64/RaceGAN.

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RoRaTrack 赛道检测 GAN模型 数据集 自动驾驶
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