计算机科学 ›› 2009, Vol. 36 ›› Issue (10): 253-255.

• 人工智能 • 上一篇    下一篇

基于多学位识别的学位决策机制的研究与实现

刘敏   

  1. (西华师范大学计算机学院 南充 637002)
  • 出版日期:2018-11-16 发布日期:2018-11-16
  • 基金资助:
    本文受西华师范大学校启动基金项目(06B012)资助。

Research and Implementation of Decision-making Mechanism Based on Identification of Multi-degree

LIU Min   

  • Online:2018-11-16 Published:2018-11-16

摘要: 在以1:1数字学习方式为主的自主学习模式下存在相关专业多学位识别的问题。针对该问题,建立了一种使用遗传算法和BP神经网络的多学位识别机制。该机制根据问题的特点,采用遗传算法产生样本群体,并用遗传算法确定神经网络模型的参数,通过神经网络自适应学习和训练,找出输入和输出的关系,从而达到多学位识别的目的。实验验证了该方法的有效性。

关键词: 遗传算法,BP神经网络,数字学习,多学位识别

Abstract: The genetic algorithm optimization back-propagation BP neural network decision-making mechanism was presented in order to overcome the shortcoming of the independent study model based on the digital technology supporled learning that can't identify a number of degrees. According to its feature, the genetic algorithm is adopted to produce sample groups and determine parameters of the neural network model. The relationship between input and output has been identified during adaptive learning and training of the neural network, so as to achieve the purpose of identificalion of multi-degree. It validates the proposed approach by experiments.

Key words: Genetic algorithm,BP neural network,Digital technology supported learning,Identification of multi-degree

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