基于PCA和PSO MLP网络的高校财务绩效评价研究

Huang Yun-jie, Liu Dong-rong
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引用次数: 1

摘要

高校财务绩效评价是一个复杂的系统。国内外学者普遍认为,高校财务绩效评价是一项艰巨的任务。本文在高校财务绩效综合评价指标体系的基础上,结合主成分分析(PCA)和粒子群优化(PSO)神经网络,建立了一种新的评价模型。粒子群优化算法是一种基于社会心理隐喻的自适应算法,利用主成分分析提取可用性信息并求解主成分。通过MATLAB7.0的实证研究,我们发现,与传统的神经网络模型相比,该模型的收敛速度和评估精度都有所提高。
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The Research of University Financial Performance Evaluation Based on PCA and PSO MLP Network
The evaluation of university financial performance evaluation is a complex system. Domestic and foreign scholars generally agreed that the evaluation of university financial performance is a difficult task. In this paper, a new evaluation model with principal component analysis (PCA) and particle swarm optimization (PSO) neural network is founded based on the comprehensive evaluation index system of university financial performance evaluation. A neural network model to the problem is trained by particle swarm optimization technique, which is a new adaptive algorithm based on a social-psychological metaphor, using principal component analysis to extract availability information and to solve a principal component. After empirical research with MATLAB7.0, we find that both the convergence speed and the evaluation accuracy are enhanced in comparison with the traditional neural network model.
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