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计算机技术2019年10期

基于BP神经网络的本科教育质量综合评价分析——以江苏省为例
万晨威¹,刘心玮²,冉启露¹
(1. 江西财经大学,江西 南昌 330013;2. 南昌大学,江西 南昌 330031)

摘  要:通过对江苏省各大本科院校的信息进行量化分析后,得出各项指标的可视化数据,运用均值分析、方差分析等对各市级数据进行分析。我们运用统计累加法、行为锚定量化方法、权重分析法等不同的量化分析法,把各种信息转化成我们可视化的数据,把各个市的数据进行平均求值,最终求得13 个市的各项平均指标。再利用SPSS 软件进行数据的均值、方差、比对分析。通过对已知的各项数据进行神经网络算法评价,得出各市级教学质量的排名与各指标所占权重。对13 个地市级的教育质量进行综合评价与因素分析,最后给出有效提升江苏省本科教育质量的政策建议。


关键词:量化处理;神经网络算法;量化分析法



中图分类号:TP183;TP319          文献标识码:A         文章编号:2096-4706(2019)10-0104-03


Comprehensive Evaluation and Analysis of Undergraduate Education Quality
Based on BP Neural Network
——Take Jiangsu Province as an Example
WAN Chenwei1,LIU Xinwei2,RAN Qilu1
(1.Jiangxi University of Finance and Economics,Nanchang 330013,China;2.Nanchang University,Nanchang 330031,China)

Abstract:Through the quantitative analysis of the information of major universities in Jiangsu Province,the visual data of each index are obtained. Mean value analysis and variance analysis are used to analyze the data of each municipal level. We use different quantitative analysis methods,such as statistical cumulative method,behavior anchor quantitative method,weight analysis method,to convert various information into our visualized data,to average the data of each city,and ultimately to obtain the average indicators of 13 cities. Then SPSS software is used to analyze the mean,variance and comparison of data. Through the evaluation of the known data and the neural network algorithm,the ranking of teaching quality and the weight of each index are obtained. Comprehensive evaluation and factor analysis of the quality of education at 13 municipal levels are carried out. Finally,suggestions are given to effectively improve the undergraduate education policy in Jiangsu Province.

Keywords:quantitative processing;neural network algorithms;quantitative analysis


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作者简介:万晨威(1998.05-),男,汉族,江西南昌人,本科在读,研究方向:软件工程。