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Innovative Algorithms for Running a Web-Based Pattern Recognition Search System for a Component Patterns Database

机译:用于运行基于Web的组件模式数据库的模式识别搜索系统的创新算法

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The real-time system uses a recurrent neural network (RNN) with associative memory for training and recognition. This study attempts to use associative memory to apply pattern recognition (PR) technology to the real-time pattern recognition of engineering components in a web-based recognition system with a Client-Server network structure. Remote engineers can draw the shape of the engineering components using the browser, and the recognition system then searches the component database via the Internet. Component patterns are stored in the database system considered here. Moreover, the data fields of each component pattern contain the properties and specifications of that pattern, except in the case of engineering components. The database system approach significantly improves recognition system capacity. The recognition system examined here employs parallel computing, which increases system recognition rate. The recognition system used in this work is an Internet-based, client-server network structure. The final phase of the system recognition applies database matching technology to processing recognition, and can solve the problem of spurious states. The system considered here is implemented in the Yang-Fen Automation Electrical Engineering Company as a case study. The experiment is continued for four months, and engineers are also used to operating the web-based pattern recognition system. Therefore, the cooperative plan described above is analysed and discussed here.
机译:实时系统使用带有关联存储器的递归神经网络(RNN)进行训练和识别。这项研究尝试使用关联内存将模式识别(PR)技术应用于具有客户端-服务器网络结构的基于Web的识别系统中工程组件的实时模式识别。远程工程师可以使用浏览器绘制工程组件的形状,然后识别系统通过Internet搜索组件数据库。组件模式存储在此处考虑的数据库系统中。此外,除了工程组件外,每个组件模式的数据字段都包含该模式的属性和规范。数据库系统方法大大提高了识别系统的能力。此处检查的识别系统采用并行计算,从而提高了系统识别率。在这项工作中使用的识别系统是基于Internet的客户端-服务器网络结构。系统识别的最后阶段将数据库匹配技术应用于处理识别,可以解决伪状态问题。作为案例研究,此处考虑的系统已在Yang-Fen自动化电气工程公司中实施。实验持续了四个月,工程师还习惯于操作基于Web的模式识别系统。因此,在此分析和讨论上述合作计划。

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