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Herpetofauna Species Classification from Images with Deep Neural Network

机译:基于深度神经网络的影像对爬虫种类的分类

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Camera-traps are noninvasive tools that can capture thousands of images of wildlife species per deployment. To conduct collaborative wildlife monitoring for conservation and to collect up to date information about wildlife species, integrated camera-sensor networking systems have been established at a large scale in Bastrop County, Texas. Species recognition from gathered images is a challenging assignment for computers due to a large amount of intra-class variability, viewpoint variation, lighting illumination, occlusion, background clutter, and deformation. Moreover, processing millions of captured images is daunting, expensive, and time-consuming as most of the images contain only background absent species of interest. This paper proposes a framework of automated wildlife species recognition by image classification using computer-vision techniques and machine learning algorithms. A Convolutional Neural Network (CNN) architecture has been suggested to classify any two species automatically. As an initial experiment, a binary CNN network has been trained and validated with a small public dataset of snakes, and toads/frogs to classify them within their group. The model evaluation achieved 76% accuracy on average for the test data that supports the prospects for the recommended model.
机译:相机陷阱是一种非侵入性工具,可以在每次部署中捕获数千种野生动植物物种的图像。为了进行野生动植物保护合作监测并收集有关野生动植物物种的最新信息,已在得克萨斯州巴斯特罗普县大规模建立了集成的摄像头-传感器网络系统。由于大量的类内可变性,视点变化,照明照明,遮挡,背景杂乱和变形,从采集的图像中识别物种对于计算机来说是一项具有挑战性的任务。而且,处理数百万个捕获的图像是艰巨的,昂贵的和费时的,因为大多数图像仅包含背景缺失的感兴趣物种。本文提出了一种利用计算机视觉技术和机器学习算法通过图像分类自动识别野生动物物种的框架。已经提出了卷积神经网络(CNN)结构来自动对任何两个物种进行分类。作为初始实验,已经使用小型公开数据集(蛇和蟾蜍/青蛙)对二进制CNN网络进行了训练和验证,以将其分类为一组。对于支持推荐模型前景的测试数据,模型评估的平均准确度达到76%。

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