Risk Analysis of Textile Industry Foreign Investment Based on Deep Learning

Author:

Liu Jingyi1,Li Jiaolong2ORCID

Affiliation:

1. School of Art and Design, South-Central University for Nationalities, Wuhan 430074, China

2. Department of Mathematics and Quantitative Economics, School of Statistics and Mathematics, Zhongnan University of Economics and Law, Wuhan 430073, China

Abstract

With the decline of China’s economic growth rate and the uproar of antiglobalization, the textile industry, one of the business cards of China’s globalization, is facing a huge impact. When the economic model is undergoing transformation, it is more important to prevent enterprises from falling into financial distress. So, the financial risk early warning is one of the important means to prevent enterprises from falling into financial distress. Aiming at the risk analysis of the textile industry’s foreign investment, this paper proposes an analysis method based on deep learning. This method combines residual network (ResNet) and long short-term memory (LSTM) risk prediction model. This method first establishes a risk indicator system for the textile industry and then uses ResNet to complete deep feature extraction, which are further used for LSTM training and testing. The performance of the proposed method is tested based on part of the measured data, and the results show the effectiveness of the proposed method.

Publisher

Hindawi Limited

Subject

General Mathematics,General Medicine,General Neuroscience,General Computer Science

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