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An RCE-based Associative Memory with Application to Human Face Recognition

机译:基于RCE的联想记忆及其在人脸识别中的应用

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Many models of neural network-based associative memory have been proposed and studied. However, most of these models do not have a rejection mechanism and hence are not practical for many real-world associative memory problems. For example, in human face recognition, we are given a database of face images and the identity of each image. Given an input image, the task is to associate—when appropriate—the image with the corresponding name of the person in the database. However, the input image may be that of a stranger. In this case, the system should reject the input. In this paper, we propose a practical associative memory model that has a rejection mechanism. The structure of the model is based on the restricted Coulomb energy (RCE) network. The capacity of the proposed memory is described by two measures: the ability of the system to correctly identify known individuals, and the ability of the system to reject individuals who are not in the database. Experimental results are given which show how the performance of the system varies as the size of the database increases—up to 1000 individuals.
机译:已经提出并研究了许多基于神经网络的联想记忆模型。但是,这些模型大多数都没有拒绝机制,因此对于许多现实世界中的关联内存问题不切实际。例如,在人脸识别中,我们获得了人脸图像和每个图像的身份的数据库。给定输入图像,任务是在适当时将图像与数据库中人员的相应名称相关联。但是,输入图像可能是陌生人的图像。在这种情况下,系统应拒绝输入。在本文中,我们提出了一种具有拒绝机制的实用联想记忆模型。该模型的结构基于受限库仑能量(RCE)网络。拟议内存的容量通过两种方法来描述:系统正确识别已知个人的能力以及系统拒绝不在数据库中的个人的能力。给出的实验结果表明,系统的性能如何随数据库大小的增加而变化(最多1000个人)。

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