Innovative Financial Management in Higher Education: A Multi-Scale Deep Learning Approach for Risk Reduction and Quality Enhancement

IF 0.5 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Hongbin Yue
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引用次数: 0

Abstract

This paper presents a novel university financial management system leveraging multi-scale deep learning. With rising college enrollment and teaching complexities, traditional financial models require adaptation to mitigate risks and improve management quality. The system integrates hardware and software innovations: multiple sensors enhance data scanning, coordinated by a central coordinator, ensuring comprehensive financial database coverage. Software-wise, a structured database establishes attribute-based financial connections, crucial for weight assignment. Employing a multilayer perceptual network topology, a full interconnection model based on multi-scale deep learning facilitates profound data extraction. Experimental evaluations demonstrate the system's superior financial risk assessment capabilities compared to traditional approaches, extracting a broader spectrum of financial parameters for comprehensive risk warnings. By embracing multi-scale deep learning, this system promises significant advancements in university financial management, enhancing adaptability and risk mitigation in college finance departments.
高等教育中的创新财务管理:降低风险、提高质量的多尺度深度学习方法
本文介绍了一种利用多尺度深度学习的新型高校财务管理系统。随着高校招生人数的增加和教学工作的复杂化,传统的财务模式需要进行调整,以降低风险,提高管理质量。该系统集成了硬件和软件创新:多个传感器加强数据扫描,由中央协调器协调,确保财务数据库的全面覆盖。在软件方面,结构化数据库建立了基于属性的金融联系,这对权重分配至关重要。采用多层感知网络拓扑结构,基于多尺度深度学习的全互联模型有助于深度数据提取。实验评估表明,与传统方法相比,该系统具有更出色的金融风险评估能力,能提取更广泛的金融参数,以进行全面的风险预警。通过采用多尺度深度学习,该系统有望在高校财务管理方面取得重大进展,增强高校财务部门的适应性和风险缓解能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Electrical Systems
Journal of Electrical Systems ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
1.10
自引率
25.00%
发文量
0
审稿时长
10 weeks
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