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Speed/Accuracy Trade-Offs for Modern Convolutional Object Detectors

机译:现代卷积目标检测器的速度/精度折衷

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The goal of this paper is to serve as a guide for selecting a detection architecture that achieves the right speed/memory/accuracy balance for a given application and platform. To this end, we investigate various ways to trade accuracy for speed and memory usage in modern convolutional object detection systems. A number of successful systems have been proposed in recent years, but apples-toapples comparisons are difficult due to different base feature extractors (e.g., VGG, Residual Networks), different default image resolutions, as well as different hardware and software platforms. We present a unified implementation of the Faster R-CNN [30], R-FCN [6] and SSD [25] systems, which we view as meta-architectures and trace out the speed/accuracy trade-off curve created by using alternative feature extractors and varying other critical parameters such as image size within each of these meta-architectures. On one extreme end of this spectrum where speed and memory are critical, we present a detector that achieves real time speeds and can be deployed on a mobile device. On the opposite end in which accuracy is critical, we present a detector that achieves state-of-the-art performance measured on the COCO detection task.
机译:本文的目的是作为指导,以选择能够为给定应用程序和平台实现正确的速度/内存/准确性平衡的检测体系结构。为此,我们研究了在现代卷积目标检测系统中以速度和内存使用率来交换精度的各种方法。近年来已经提出了许多成功的系统,但是由于不同的基本特征提取器(例如,VGG,Residual Networks),不同的默认图像分辨率以及不同的硬件和软件平台,因此难以进行苹果对苹果的比较。我们介绍了Faster R-CNN [30],R-FCN [6]和SSD [25]系统的统一实现,我们将它们视为元体系结构,并找出通过使用替代方法创建的速度/精度权衡曲线特征提取器和其他各种关键参数(例如,这些元体系结构中的每个图像中的图像大小)。在速度和内存至关重要的频谱的一个极端,我们提出了一种能够实现实时速度并且可以部署在移动设备上的检测器。在精度至关重要的另一端,我们提供了一种检测器,该检测器可实现在COCO检测任务上测得的最新性能。

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