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A rat walking behavior classification by body length measurement

机译:由身体长度测量进行大鼠行走行为分类

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To study rat behavior have been playing an important role in psychology, medical science and brain science. Open-field test such as holeboard model is a popular experiment to analyze rat behavior. Rat behaviors such as walking, rearing and head dip are usually considered. These behaviors are observed and recorded by human that, obviously, included human errors. Commercial products have limitation for identifying rat behaviors. In this paper, we proposed a new method for classifying a walking behavior in Holeboard model test based on length of rat's body. Webcam is used to record data. The camera is installed over the models. The proposed method consists of three main processes. The first step is a background modeling; K-mean clustering technique is adapted to reconstruct the background. Second step, rat is extracted by means of background subtraction. Third step is an ellipse fitting by least square method. Then a length of rat's body is calculated for classifying rat behaviors. To test performance of the proposed method, classification accuracy is considered. 500 frames from five image sequence data sets are used. Based on pilot test, criterion of rat's body length for classifying walking behavior is 31 pixels. If the length of rat's body is greater than 31, it is indicated as rat's walking behavior, in the other hand, it is others behaviors. Accuracy of the proposed method is 72.52%. The result shows that the proposed method is satisfactory and able to be improved for higher performance. An advantage of the proposed method is that it is developed for recording rat behavior from a distance and classifying rat's walking behavior which decreases effect to rat.
机译:研究老鼠行为一直在发挥心理学,医学和脑科学中的重要作用。车窗模型等开场测试是一种流行的实验,可以分析大鼠行为。通常考虑诸如行走,饲养和头部倾角之类的大鼠行为。这些行为被人类观察并记录,显然包括人类错误。商业产品有限制识别老鼠行为。在本文中,我们提出了一种基于大鼠身体长度对车窗模型测试中的行走行为进行分类的新方法。网络摄像头用于记录数据。相机安装在模型上。所提出的方法包括三个主要过程。第一步是背景建模; k均值聚类技术适于重建背景。第二步,通过背景减法提取大鼠。第三步是至少方形方法的椭圆拟合。然后计算大鼠的身体长度以分类老鼠行为。为了测试所提出的方法的性能,考虑分类准确性。使用五个图像序列数据集500帧。基于试验试验,对级别行走行为的大鼠体长的标准是31像素。如果大鼠体的长度大于31,则表明RAT的行走行为,另一方面,它是其他行为。所提出的方法的准确性为72.52%。结果表明,所提出的方法是令人满意的并且能够改善以获得更高的性能。所提出的方法的一个优点是,它是开发用于从距离和分类RAT的步行行为来记录大鼠的行为,这减少了对RAT的效果。

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