利用图像模式识别通过毛发模式分类来识别哺乳动物物种

Thamsanqa Moyo, S. Bangay, G. Foster
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引用次数: 18

摘要

通过使用哺乳动物的毛发来识别它们在法医学和生态学领域是很重要的。计算机模式识别技术在此过程中的应用提供了一种减少过程中发现的主观性的方法,因为手动技术依赖于人类专家的解释而不是定量测量。首次将图像模式识别技术应用于利用毛发模式对非洲哺乳动物物种进行分类。这个应用程序使用一个2D Gabor滤波器组,并激励使用时刻来分类头发尺度模式。将二维Gabor滤波器组应用于毛发尺度处理,当使用尺寸为4的滤波器组时,准确度为52%,当使用尺寸为8的滤波器组时,准确度为72%。这些初步结果表明,二维Gabor过滤器产生的信息可以成功地用于根据头发图案的图像对头发进行分类。
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The identification of mammalian species through the classification of hair patterns using image pattern recognition
The identification of mammals through the use of their hair is important in the fields of forensics and ecology. The application of computer pattern recognition techniques to this process provides a means of reducing the subjectivity found in the process, as manual techniques rely on the interpretation of a human expert rather than quantitative measures. The first application of image pattern recognition techniques to the classification of African mammalian species using hair patterns is presented. This application uses a 2D Gabor filter-bank and motivates the use of moments to classify hair scale patterns. Application of a 2D Gabor filter-bank to hair scale processing provides results of 52% accuracy when using a filter-bank of size four and 72% accuracy when using a filter-bank of size eight. These initial results indicate that 2D Gabor filters produce information that may be successfully used to classify hair according to images of its patterns.
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