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Analysis of Hamming Network and MAXNET of Neural Network Method in the String Recognition

机译:字符串识别中的汉明网络和神经网络方法的MAXNET分析

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This paper aims that analysing neural network method in pattern recognition. A neural network is a processing device, whose design was inspired by the design and functioning of human brain and their components. The proposed solutions focus on applying Hamming Network and MAXNET model for pattern recognition. The primary function of which is to retrieve in a pattern stored in memory, when an incomplete or noisy version of that pattern is presented. An associative memory is a storehouse of associated patterns that are encoded in some form. In auto-association, an input pattern is associated with itself and the states of input and output units coincide. When the storehouse is incited with a given distorted or partial pattern, the associated pattern pair stored in its perfect form is recalled. Pattern recognition techniques are associated a symbolic identity with the image of the pattern. This problem of replication of patterns by machines (computers) involves the machine printed patterns. There is no idle memory containing data and programmed, but each neuron is programmed and continuously active.
机译:本文旨在分析模式识别中的神经网络方法。神经网络是一种处理设备,其设计受到人脑及其组件的设计和功能的启发。提出的解决方案着重于应用汉明网​​络和MAXNET模型进行模式识别。其主要功能是在存在不完整或嘈杂的模式时,检索存储在内存中的模式。关联存储器是以某种形式编码的关联模式的仓库。在自动关联中,输入模式与其自身关联,并且输入和输出单元的状态一致。当激励仓库使用给定的扭曲或部分模式时,将以其完美形式存储关联的模式对。模式识别技术将符号身份与模式图像相关联。机器(计算机)复制图案的问题涉及机器印刷的图案。没有包含数据和已编程的空闲存储器,但是每个神经元都已编程并且连续处于活动状态。

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