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An Improved Real Time Image Detection System for Elephant Intrusion along the Forest Border Areas

机译:林边界地区大象侵入的改进实时图像检测系统

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Human-elephant conflict is a major problem leading to crop damage, human death and injuries caused by elephants, and elephants being killed by humans. In this paper, we propose an automated unsupervised elephant image detection system (EIDS) as a solution to human-elephant conflict in the context of elephant conservation. The elephant’s image is captured in the forest border areas and is sent to a base station via an RF network. The received image is decomposed using Haar wavelet to obtain multilevel wavelet coefficients, with which we perform image feature extraction and similarity match between the elephant query image and the database image using image vision algorithms. A GSM message is sent to the forest officials indicating that an elephant has been detected in the forest border and is approaching human habitat. We propose an optimized distance metric to improve the image retrieval time from the database. We compare the optimized distance metric with the popular Euclidean and Manhattan distance methods. The proposed optimized distance metric retrieves more images with lesser retrieval time than the other distance metrics which makes the optimized distance method more efficient and reliable.
机译:人大象冲突是一个主要问题,导致大象引起的作物损害,人死亡和伤害,大象被人类杀死。在本文中,我们提出了一种自动无调节的大象图像检测系统(EID)作为大象保护背景下的人大象冲突的解决方案。大象的形象被捕获在林边界区域,并通过RF网络发送到基站。接收图像使用HAAR小波分解以获得多级小波系数,我们使用图像视觉算法在大象查询图像和数据库图像之间执行图像特征提取和相似度匹配。 GSM消息被送到森林官员,表明在森林边界中检测到大象,正在接近人类栖息地。我们提出了优化的距离度量来改善来自数据库的图像检索时间。我们将优化的距离度量与流行的欧几里德和曼哈顿距离方法进行比较。所提出的优化距离度量测量更多的图像与其他距离度量的检索时间较小,这使得优化距离方法更有效可靠。

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