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Region Based Convolutional Neural Network for Human-Elephant Conflict Management System

机译:基于地区的人大象冲突管理系统卷积神经网络

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Human elephant conflict occurs due to migration of elephants from their habitat to human living areas in search of food and water. In order to reduce the Human-Elephant Conflict, a real time prototype is built to migrate the elephant to human living areas is minimized by generating honey bee sound and tiger growl sound to which the elephant's dislikes. Four object detection algorithms such as SSD mobilenet v2 model, SSDlite mobilenet v2 model, SSD inception v2 model, and Fast R-CNN inception v2 are considered. SSDlite mobilenet v2 model produced the best results with precision = 0.854 AP, recall = 0.718 AR, f1-score = 0.780, prediction time = 34.49ms for a frame rate = 31.15fps. Real time implementation is carried out using Raspberry Pi 3 with SSDlite mobilenet v2 architecture.
机译:由于大象从他们的栖息地迁移到人类生活区域,就会发生人体大象冲突,以寻找食物和水域。为了减少人大象冲突,建立了一个实时原型来将大象迁移到人类生活区域是通过产生蜂蜜蜜蜂的声音和虎咆哮的声音来最小化,大象不喜欢的声音。考虑了四个对象检测算法,如SSD MobiLenet V2型号,SSDLITE MobileNet V2型号,SSD Inception V2型号和FAST R-CNN Inception V2。 SSDLITE MobileNet V2模型采用精度= 0.854 AP产生的最佳效果,调用= 0.718AR,F1分数= 0.780,预测时间=帧速率= 31.15fps = 31.15fps。使用Raspberry PI 3使用SSDLITE MobileNet V2架构进行实时实现。

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