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首页> 外文期刊>Procedia Computer Science >Assessing the Auto Associative Network Approach for Prediction in Civil Engineering Databases
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Assessing the Auto Associative Network Approach for Prediction in Civil Engineering Databases

机译:评估土木工程数据库中预测的自动关联网络方法

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Auto-associative networks are a type of Artificial Neural Network (ANN) architectures that has been used in a variety of engineering areas for the past two decades. In auto-associative networks, the knowledge to be extracted from a database is the identity function. In other words, this particular network is trained to reproduce its inputs and output(s). Due to the fact that the network is optimized on inputs, as well as outputs, obtaining highly accurate results can be challenging. In this study, auto-associative network was explored using seven civil engineering databases from various applications and with a range of data types. The architecture of the auto-associative networks was developed with only three layers - input, hidden, and output layers - in order to maintain the generalization capabilities. Only the output was considered when assessing the statistical accuracy measures. A traditional ANN model was developed for each database to provide an initial estimate of the output. Then these estimates and the inputs were used to develop the auto-associative network. The auto-associative network improved the statistical accuracy measures for some databases relative to the traditional ANN approach. Overall, the auto-associative network yielded promising results and can be applicable to civil engineering databases.
机译:自动关联网络是一种人工神经网络(ANN)架构,在过去的二十年中已在各种工程领域中使用。在自动关联网络中,要从数据库中提取的知识是身份功能。换句话说,训练该特定网络以再现其输入和输出。由于在输入和输出方面都对网络进行了优化,因此要获得高度准确的结果可能会具有挑战性。在这项研究中,使用来自各种应用程序和一系列数据类型的七个土木工程数据库,探索了自动关联网络。为了保持泛化能力,自动关联网络的体系结构仅由三层(输入,隐藏和输出层)开发。在评估统计准确性度量时,仅考虑输出。为每个数据库开发了传统的ANN模型,以提供输出的初始估计。然后,将这些估计和输入用于开发自动关联网络。与传统的ANN方法相比,自动关联网络改善了某些数据库的统计准确性度量。总体而言,自动关联网络产生了可喜的结果,可以应用于土木工程数据库。

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