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Leveraging Deep Learning and Block chain Web3 Technologies for Financial Strategy Optimization in Sports Enterprises

  • Jie Wu [4] ; Xiang Zhang [5] ; Zhi Zhang [6] ; Bin Deng [1] ; Dongsheng Xue [2] ; Lebing Huang [3]
    1. [1] Universiti Sains Malaysia

      Universiti Sains Malaysia

      Malasia

    2. [2] University of North Carolina at Pembroke

      University of North Carolina at Pembroke

      Township of Pembroke, Estados Unidos

    3. [3] Hainan University

      Hainan University

      China

    4. [4] School of Management, Zhejiang Shuren University, Hangzhou 310000, Zhejiang Province, China
    5. [5] Emilio Aguinaldo College, 1113 San Marcelino St, Paco, Manila, Metro Manila, Philippines
    6. [6] School of Business Administration, Northeastern University, Liaoning 110167, Shenyang Province, China.
  • Localización: Revista de psicología del deporte, ISSN-e 1988-5636, ISSN 1132-239X, Vol. 33, Nº 2, 2024, págs. 318-327
  • Idioma: inglés
  • Enlaces
  • Resumen
    • The complexities of financial management in sports enterprises are magnified by the rapid pace of economic globalization and the increasing integration of advanced technologies. This paper examines the pivotal roles of block chain Web3 technology and deep learning in reshaping financial strategies within the sports and fitness sectors. With the proliferation of big data and cloud computing, sports organizations are seeking innovative ways to enhance their financial operations and maintain competitiveness in a volatile market. We explore how block chain Web3 technology can be applied to improve transparency, reduce transaction costs, and secure financial transactions, thereby enhancing the financial integrity of sports enterprises. Additionally, deep learning algorithms are analyzed for their capacity to provide predictive insights and early warning signals regarding financial risks, a crucial advantage in the dynamic sports market where financial stability is closely tied to seasonal performances and consumer interests. Furthermore, this paper addresses the existing challenges in the financial management of sports enterprises, highlighting how traditional methods may fall short in the face of evolving digital environments. We propose strategic applications of block chain and deep learning technologies, designed to foster more scientifically sound financial practices that support sustainable growth and operational efficiency in sports organizations. By integrating these advanced technologies, sports enterprises can better manage financial risks and capitalize on new opportunities for revenue generation and strategic expansion, ensuring long-term development and success in the increasingly competitive sports industry.


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