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A novel approach on classification of infant activity post surgery based on motion vector

机译:基于运动矢量的婴儿术后活动分类的新方法

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Pain is a subjective experience and no objective test exist to measure it, IASP (International Association for the Study of Pain) decided patients self-report as gold standard of pain assessment. Infant cannot provide a self-report of pain verbally. In this paper, we developed a system to recognize post-surgery infant activity based FLACC (Face, Legs, Activity, Cry, Consolability), score 0 is given if the infant moves easily, score 1 if the infant is squirming, and a score 2 if the baby is jerking by observing the features of motion. In FLACC, activity is one of the five parameters to identify the level of infant pain. Using a block matching algorithm with the addition of the Taylor series to generate a value with sub-pixel motion accuracy from the reference frame to the current frame in the form of a motion vector. Videos have been verified by doctors and nurses using hormone cortisol with FLACC measurements. The results of the experiment show the classification using SVM could detect the infant activity moves easily, squirming, and jerking at 90.4762%. Nevertheless, this experiment is still novel and needs further study on the infant activity.
机译:疼痛是一种主观的经验,尚无客观的测试可以衡量它,IASP(国际疼痛研究协会)将患者的自我报告确定为疼痛评估的金标准。婴儿不能通过口头提供自我的疼痛报告。在本文中,我们开发了一种系统来识别手术后基于FLACC的婴儿活动(面部,腿部,活动,哭泣,可安慰性),如果婴儿容易移动,则得分为0,如果婴儿蠕动,得分为1,得分为1。 2如果婴儿通过观察运动特征来抽搐。在FLACC中,活性是识别婴儿疼痛程度的五个参数之一。使用带有泰勒级数的块匹配算法,以运动矢量的形式从参考帧到当前帧生成具有子像素运动精度的值。医生和护士已使用激素皮质醇和FLACC测量对视频进行了验证。实验结果表明,使用支持向量机进行分类可以检测出婴儿的活动活动容易,蠕动和抽动,为90.4762%。然而,该实验仍然是新颖的,需要对婴儿活动进行进一步的研究。

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