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Sustainable Development Evaluation of Innovation and Entrepreneurship Education of Clean Energy Major in Colleges and Universities Based on SPA-VFS and GRNN Optimized by Chaos Bat Algorithm

机译:基于SPA-VFS和GRNN优化的高校清洁能源专业创新与企业家高校的可持续发展评价,CHAOS BAT算法

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摘要

The research on the sustainability evaluation of innovation and entrepreneurship education for clean energy majors in colleges and universities can not only cultivate more and better innovative and entrepreneurial talents for the development of sustainable energy but also provide a reference for the sustainable development of innovation and entrepreneurship education for other majors. To achieve systematic and comprehensive scientific evaluation, this paper proposes an evaluation model based on SPA-VFS and Chaos bat algorithm to optimize GRNN. Firstly, the sustainability evaluation index system of innovation and entrepreneurship education for clean energy major in colleges and universities is constructed from the four aspects of the environment, investment, process, and results, and the meaning of each evaluation index is explained; Then, combined with variable fuzzy set evaluation theory (VFS) and set pair analysis theory (SPA), the classical evaluation model based on SPA-VFS is constructed, and the entropy weight method and rank method are coupled to obtain the index weight. The basic bat algorithm is improved by using Tent chaotic mapping, and the chaotic bat algorithm (CBA) is proposed. The generalized regression neural network (GRNN) model is optimized by CBA, and the intelligent evaluation model based on CBA-GRNN is obtained to realize fast real-time calculation; finally, a numerical example is used to verify the scientificity and accuracy of the model proposed in this paper. This study is conducive to a comprehensive evaluation of the sustainability of innovation and entrepreneurship education for clean energy major in colleges and universities, and is conducive to the healthy and sustainable development of innovation and entrepreneurship education for clean energy major in colleges and universities, so as to provide more innovative and entrepreneurial talents for the clean energy industry.
机译:高校清洁能源专业创新与企业家高等教育可持续性评价研究,不仅可以为可持续能源的发展培养更多和更好的创新和创业人才,而且还为创新和创业教育的可持续发展提供了参考对于其他专业。为实现系统和全面的科学评估,本文提出了一种基于SPA-VFS和混沌BAT算法的评估模型来优化GRNN。首先,在环境,投资,过程和结果的四个方面构建了高校清洁能源专业的创新和创业教育的可持续性评估指标体系,并解释了每个评估指标的含义;然后,与可变模糊设定评估理论(VFS)和设定对分析理论(SPA)组合,构建基于SPA-VF的经典评估模型,耦合熵权法和等级方法以获得索引权重。通过使用帐篷混沌映射来改善基本BAT算法,提出了混沌BAT算法(CBA)。广义回归神经网络(GRNN)模型由CBA进行优化,获得基于CBA-GRNN的智能评估模型来实现快速实时计算;最后,使用数值例子来验证本文提出的模型的科学性和准确性。本研究有利于综合评估高校清洁能源专业创新和创业教育的可持续性,有利于高校清洁能源专业创新与企业家的健康和可持续发展,为为清洁能源行业提供更具创新性和创业人才。

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