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Using Genetic Algorithms in Secured Business Intelligence Mobile Applications

机译:在安全的商业智能移动应用程序中使用遗传算法

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The paper aims to assess the use of genetic algorithms for training neural networks used in secured Business Intelligence Mobile Applications. A comparison is made between classic back-propagation method and a genetic algorithm based training. The design of these algorithms is presented. A comparative study is realized for determining the better way of training neural networks, from the point of view of time and memory usage. The results show that genetic algorithms based training offer better performance and memory usage than back-propagation and they are fit to be implemented on mobile devices.
机译:本文旨在评估遗传算法在安全商业智能移动应用程序中训练神经网络的使用。比较了经典的反向传播方法和基于遗传算法的训练。介绍了这些算法的设计。从时间和内存使用的角度出发,进行了一项比较研究,以确定更好的训练神经网络的方法。结果表明,基于遗传算法的训练比反向传播具有更好的性能和内存使用率,适合在移动设备上实现。

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