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Convolutional Neural Networks Backbones for Object Detection

机译:用于目标检测的卷积神经网络骨干

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Detecting objects in images is an extremely important step in many image and video analysis applications. Object detection is considered as one of the main challenges in the field of computer vision, which focuses on identifying and locating objects of different classes in an image. In this paper, we aim to highlight the important role of deep learning and convolutional neural networks in particular in the object detection task. We analyze and focus on the various state-of-the-art convolutional neural networks serving as a backbone in object detection models. We test and evaluate them in the common datasets and benchmarks up-to-date. We Also outline the main features of each architecture. We demonstrate that the application of some convolutional neural network architectures has yielded very promising state-of-the-art results in image classification in the first place and then in the object detection task. The results have surpassed all the traditional methods, and in some cases, outperformed the human being's performance.
机译:在许多图像和视频分析应用程序中,检测图像中的对象是极其重要的一步。对象检测被认为是计算机视觉领域的主要挑战之一,其重点在于识别和定位图像中不同类别的对象。在本文中,我们旨在强调深度学习和卷积神经网络的重要作用,特别是在对象检测任务中。我们分析并专注于各种最先进的卷积神经网络,这些网络在对象检测模型中充当骨干。我们在最新的通用数据集和基准中对其进行测试和评估。我们还将概述每种体系结构的主要功能。我们证明,一些卷积神经网络体系结构的应用首先在图像分类中然后在对象检测任务中产生了非常有希望的最新结果。结果超过了所有传统方法,并且在某些情况下,其性能优于人类的表现。

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