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Fast and accurate object detection in high resolution 4K and 8K video using GPUs

机译:使用GPU在高分辨率4K和8K视频中快速准确地检测物体

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Machine learning has celebrated a lot of achievements on computer vision tasks such as object detection, but the traditionally used models work with relatively low resolution images. The resolution of recording devices is gradually increasing and there is a rising need for new methods of processing high resolution data. We propose an attention pipeline method which uses two staged evaluation of each image or video frame under rough and refined resolution to limit the total number of necessary evaluations. For both stages, we make use of the fast object detection model YOLO v2. We have implemented our model in code, which distributes the work across GPUs. We maintain high accuracy while reaching the average performance of 3-6 fps on 4K video and 2 fps on 8K video.
机译:机器学习庆祝了对象检测等计算机视觉任务的成就,但传统使用的模型与相对较低的分辨率图像一起工作。记录设备的分辨率逐渐增加,并且需要对处理高分辨率数据的新方法的需要。我们提出了一种注意力管道方法,它在粗糙的分辨率下使用两个图像或视频帧的两个分阶段评估,以限制必要的评估总数。对于两个阶段,我们利用快速的物体检测型号YOLO V2。我们在代码中实施了我们的模型,它将工作跨GPU分发。我们保持高精度,同时在8K视频上达到4K视频和2 FPS的平均性能。

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