基于神经网络梯度方法的可持续发展保险预测

Dharminder Kumar, Sangeeta Gupta, Parveen Sehgal
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摘要

本文比较了基于神经网络的可持续保险预测模型的发展,使用梯度技术对网络进行训练。比较了不同梯度算法在农村寿险数据集上的收敛性。为了应用这些基于梯度的算法,在MATLAB神经网络工具箱中对基于神经网络的预测模型进行了仿真。采用监督学习的方法对多层前馈感知器网络进行学习,同时考虑了这些基于梯度的误差减小算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Predicting insurance for sustainable development using gradient methods based neural networks
This paper compares the development of neural network based prediction models for sustainable insurance using gradient techniques for training of the network. Convergence of different gradient algorithms is compared on data sets taken from life insurance in the rural sector. For applying these gradient based algorithms, prediction models based on neural networks are simulated in MATLAB Neural Network Toolbox. Method of supervised learning is adopted for learning of multilayer feed forward perceptron networks along with these gradient based algorithms of error reduction under consideration.
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