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Sobriety Testing Based on Thermal Infrared Images Using Convolutional Neural Networks

机译:基于卷积神经网络的热红外图像清醒度测试

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This paper proposes a method to test the sobriety of an individual using infrared images of the persons eyes, face, hand, and facial profile. The database we used consisted of images of forty different individuals. The process is broken down into two main stages. In the first stage, the data set was divided according to body part and each one was run through its own Convolutional Neural Network (CNN). We then tested the resulting network against a validation data set. The results obtained gave us an indication of which body parts were better suited for identifying signs of drunken state and sobriety. In the second stage, we took the weights of CNN giving best validation accuracy from the first stage. We then grouped the body parts according to the person they belong to. The body parts were fed together into a CNN using the weights obtained in the first stage. The result for each body part was passed to a simple back-propagation neural network (BPNN) to get final results. We tried to identify the most optimal configuration of neural networks for each stage of the process. The results we obtained showed that facial profile images tend to give very good indications of sobriety. The results also showed that combining the results of multiple body parts using a simple BPNN gives a higher accuracy than that of individual ones.
机译:本文提出了一种使用人眼,面部,手部和面部轮廓的红外图像测试个人清醒程度的方法。我们使用的数据库由40个不同个体的图像组成。该过程分为两个主要阶段。在第一阶段,根据身体部位对数据集进行划分,每个数据集都通过其自己的卷积神经网络(CNN)运行。然后,我们根据验证数据集对生成的网络进行了测试。获得的结果为我们指明了哪些身体部位更适合识别醉酒状态和清醒迹象。在第二阶段,我们从第一阶段开始就采用CNN权重,以提供最佳的验证准确性。然后,我们根据身体部位所属的人对其进行分组。使用在第一阶段获得的重量将身体部位一起喂入CNN中。每个身体部位的结果都传递到简单的反向传播神经网络(BPNN),以获得最终结果。我们试图为过程的每个阶段确定神经网络的最佳配置。我们获得的结果表明,面部轮廓图像往往可以很好地显示清醒感。结果还表明,使用简单的BPNN组合多个身体部位的结果会比单个部位的准确性更高。

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