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Performance Evaluation of Faster R-CNN for On-Road Object Detection on Graphical Processing Unit and Central Processing Unit

机译:图形处理单元和中央处理单元上用于道路目标检测的快速R-CNN性能评估

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On road object detection is very active research area for autonomous cars driving, pedestrian detection etc. Despite recent momentous enhancements, on road object detection is still a challenge that calls for more accuracy. In this study, we present the implementation of Faster R-CNN training for on road object detection and recognition. We have trained the model with our own dataset categorized into three classes such as car, cycle, pedestrian and test against three different datasets, such as KITTI dataset, video of Beijing road and also tested on our dataset to check the performance of the Faster R-CNN on GPU and CPU. we used this data to utilize Faster R-CNN and to analyze the impact of several factors like training datasets size, pre training model, iteration time, and training methods on the detection results of vehicle and pedestrians. Training the Faster R-CNN model by our own dataset on GPU has took 12 h while CPU took 11 days and 9 h to complete 50000 iterations. The GPU processed the video with a frame rate of 8 fps while CPU processed with 4 fps. The result shows that Faster R-CNN on GPU has higher mean Average Precision than CPU.
机译:道路物体检测是用于自动驾驶汽车,行人检测等的非常活跃的研究领域。尽管最近进行了重大改进,但道路物体检测仍然是一个挑战,需要更高的准确性。在这项研究中,我们介绍了用于道路目标检测和识别的Faster R-CNN训练的实现。我们已经使用自己的数据集对模型进行了训练,该数据集分为汽车,自行车,行人三类,并针对三个不同的数据集(例如KITTI数据集,北京道路视频)进行了测试,并在我们的数据集上进行了测试以检查Faster R -GPU和CPU上的-CNN。我们使用此数据来利用Faster R-CNN并分析训练数据集大小,预训练模型,迭代时间和训练方法等几个因素对车辆和行人检测结果的影响。通过我们自己的数据集在GPU上训练Faster R-CNN模型花费了12个小时,而CPU花费了11天9个小时来完成50000次迭代。 GPU以8 fps的帧速率处理视频,而CPU以4 fps的速率处理视频。结果表明,GPU上的Faster R-CNN具有比CPU高的平均平均精度。

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