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Innovative Concepts for Newborn Pain Based Systems with Hu Moment and Similar Classifier

机译:利用胡矩和类似分类的新生儿疼痛系统的创新概念

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Image analysis of infant pain has been proven to be an excellent tool in the area of automatic detection of pathological status of an infant. This paper investigates the application of parameter weighting for invariant moments to provide the robust representation of infant pain images. Two classes of infant images were considered such as normal images, and babies in pain. A Similar Classifier is suggested to classify the infant images into normal and pathological images. Similar Classifier is trained with different spread factor or smoothing parameter to obtain better classification accuracy. The experimental results demonstrate that the suggested features and classification algorithms give very promising classification accuracy of above 89.54% and it expounds that the suggested method can be used to help medical professionals for diagnosing pathological status of an infant from face images.
机译:婴儿疼痛的图像分析已被证明是婴儿病理状态的自动检测领域的优秀工具。本文研究了参数加权对不变矩的应用,提供了婴儿疼痛图像的鲁棒表示。两类婴儿图像被认为是普通图像,疼痛的婴儿。建议将婴儿图像分类为正常和病理图像的类似分类器。类似的分类器采用不同的扩频因子或平滑参数培训,以获得更好的分类准确性。实验结果表明,建议的特征和分类算法具有高于89.54%的非常有前景的分类准确性,并阐述了建议的方法可用于帮助医学专业人员从面部图像诊断婴儿的病理状态。

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