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Intelligent MRTD Testing for Thermal Imaging System Using ANN

机译:使用ANN的热成像系统智能MRTD测试

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The Minimum Resolvable Temperature Difference (MRTD) is the most widely accepted figure for describing the performance of a thermal imaging system. Many models have been proposed to predict it. The MRTD testing is a psychophysical task, for which biases are unavoidable. It requires laboratory conditions such as normal air condition and a constant temperature. It also needs expensive measuring equipments and takes a considerable period of time. Especially when measuring imagers of the same type, the test is time consuming. So an automated and intelligent measurement method should be discussed. This paper adopts the concept of automated MRTD testing using boundary contour system and fuzzy ARTMAP, but uses different methods. It describes an Automated MRTD Testing procedure basing on Back-Propagation Network. Firstly, we use frame grabber to capture the 4-bar target image data. Then according to image gray scale, we segment the image to get 4-bar place and extract feature vector representing the image characteristic and human detection ability. These feature sets, along with known target visibility, are used to train the ANN (Artificial Neural Networks). Actually it is a nonlinear classification (of input dimensions) of the image series using ANN. Our task is to justify if image is resolvable or uncertainty. Then the trained ANN will emulate observer performance in determining MRTD. This method can reduce the uncertainties between observers and long time dependent factors by standardization. This paper will introduce the feature extraction algorithm, demonstrate the feasibility of the whole process and give the accuracy of MRTD measurement.
机译:最小可解变温差(MRTD)是用于描述热成像系统性能的最广泛接受的图。已经提出了许多模型来预测它。 MRTD测试是一种心理物理任务,其中偏差是不可避免的。它需要实验室条件,例如正常的空气状况和恒定温度。它还需要昂贵的测量设备,并且需要相当多的时间。特别是当测量相同类型的成像仪时,测试是耗时的。因此,应讨论自动化和智能测量方法。本文采用边界轮廓系统和模糊艺术图的自动MRTD测试的概念,但使用不同的方法。它描述了一种基于反向传播网络的自动MRTD测试程序。首先,我们使用帧抓取器来捕获4BAR目标图像数据。然后根据图像灰度刻度,我们将图像分段为获得4栏地点并提取表示图像特征和人类检测能力的特征向量。这些特征集以及已知的目标可见度用于培训ANN(人工神经网络)。实际上它是使用ANN的图像系列的非线性分类(输入尺寸)。我们的任务是证明图像是可解析或不确定性的合理性。然后训练的ANN将在确定MRTD时模拟观察者性能。该方法可以通过标准化降低观察者和长时间依赖性因子之间的不确定性。本文将介绍特征提取算法,展示整个过程的可行性,并提供MRTD测量的准确性。

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