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Thermal image analysis for polygraph testing

机译:测谎仪的热图像分析

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We have designed, developed, and tested a very promising thermal image analysis method for polygraph testing. The method achieved a correct classification rate of CCR= 84% on the test population to our avail. This method, once refined, can serve as an additional channel for increasing the reliability and accuracy of traditional polygraph examination. We extract subtle facial temperature fluctuation patterns through nonlinear heat transfer modeling. The modeling transforms raw thermal data to blood flow rate information. Then, we use the slope of the average periorbital blood flow rate as the feature of a binary classification scheme. The results come to support our previous laboratory findings about the importance of periorbital blood flow in anxious states.
机译:我们设计,开发和测试了一种非常有前途的热图像分析方法,用于测谎仪测试。该方法在测试人群中达到了正确的CCR分类率= 84%。这种方法一旦完善,就可以用作增加传统测谎仪检查的可靠性和准确性的附加渠道。我们通过非线性传热模型提取了微妙的面部温度波动模式。该建模将原始热数据转换为血液流速信息。然后,我们使用眼眶周围平均血流速度的斜率作为二元分类方案的特征。该结果证明了我们先前关于焦虑状态下眶周血流重要性的实验室发现。

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