一种基于三项的BP算法及其在普适计算服务选择中的应用

Haibin Cai, Daoqing Sun, Qiying Cao, Fang Pu
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引用次数: 2

摘要

标准的反向传播(BP)算法收敛速度慢,容易陷入局部最小值,这是其不能在实时应用中得到广泛应用的主要原因。因此,本文提出了一种新的基于学习率(LR)、动量因子(MF)和比例因子(PF)三项方法的BP算法,称为TTMBP算法。采用自适应学习和自调整结构方法,使网络模型能够根据环境要求得到中等规模的网络模型。针对泛在计算中的服务选择问题,提出了一种新的BP算法。在实际的通信设备供电系统中进行了仿真,仿真结果表明所提出的控制方案不仅具有可扩展性,而且效率高。基于新型BP算法的控制方案优于传统的基于信任机制的服务选择方法。它可以从众多的目标服务中准确地选择最适合的服务,给用户提供最完美的服务性能
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel BP Algorithm Based on Three-term and Application in Service Selection of Ubiquitous Computing
The standard back-propagation(BP) algorithm converges slowly and is easy to trap into local minimum, which are the main reasons why it cannot be used widely in real-time applications. Therefore, a novel BP algorithm based on three-term method consisting of a learning rate (LR), a momentum factor (MF) and a proportional factor (PF), called the TTMBP algorithm, was put forward in this paper. The convergence speed and stability were enhanced by adding PF. The self-adapting learning and self-adjusting-architecture methods are adopted in order that a moderate size networks model can be obtained according to environmental requirements. The novel BP algorithm is proposed to solve the problem of service selection in ubiquitous computing. We have fulfilled simulation in an actual power supply system for communication devices and the results of simulation show that the proposed control scheme is not only scalable but also efficient. The control scheme based on novel BP algorithm superior to the traditional service selection method based on trust mechanism. It can exactly choose a most suitable service from many target services and give the most perfect service performance to users
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