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Hottest pixel segmentation based thermal image analysis for children

机译:基于最热像素分割的儿童热图像分析

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In this paper, the first order statistics for gray level intensity defined from thermal image is implemented to govern the significant and distinguishable characteristic pattern in thermal image of affective states. The impact of thresholding mechanism is studied to differentiate between positive affective states (happy) and negative affective states (sad) analysis in response to the stimuli adopted from International Affective Pictures System (IAPS) database. The hottest pixel segmentation technique is applied where it identifies the threshold level in a way to classify the hottest pixel area. The region of interest is narrowed to a forehead region with result of separation analysis made to left and right area. Two experiments have been conducted by using different set of stimuli and the results depicts of asymmetry and differed in culmination pattern for these two affective states. This conclusive result from this study suggests that this feature can be used as one of the important feature to give information of affective states on individuals with autism spectrum disorder (ASD) with least of facial expressions and perhaps would-be use in non-verbal means.
机译:本文通过对热图像定义的灰度强度进行一阶统计,以控制情感状态热图像中显着且可区分的特征模式。为了响应国际情感图片系统(IAPS)数据库采用的刺激,研究了阈值机制的影响,以区分积极情感状态(快乐)和消极情感状态(悲伤)分析。应用最热像素分割技术,该技术以对最热像素区域进行分类的方式识别阈值级别。通过对左侧和右侧区域进行分离分析,可以将目标区域缩小到额头区域。通过使用不同的一组刺激进行了两个实验,结果描述了这两种情感状态的不对称性和最终模式的不同。这项研究得出的结论性结果表明,该功能可以用作重要功能之一,以最少的面部表情提供自闭症谱系障碍(ASD)个体的情感状态信息,并且可能会以非语言方式使用。

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