基于深度学习模型的大学生就业管理大数据分析与建模方法

Yibei Yin
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引用次数: 0

摘要

为了研究大学生就业大数据,本文以大学生就业大数据为前提,通过建立DBN模型对当前就业数据进行分析,并提出相应的管理措施,旨在为毕业生就业数据的管理提供科学依据。结果表明:通过对比线性回归方法、BP神经网络和DBN模型的应用评价,本文发现DBN模型具有更好的准确性和更低的误差,在大学生就业数据管理特征的应用中具有更好的优势。此外,社会经济的发展和大学毕业生的数量是影响大学生就业率的关键因素。因此,本文建议高校利用大数据技术,搭建大学生就业管理数据平台,为大学生获取专业信息和就业管理信息提供载体。
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Big Data Analysis and Modeling Method of College Student Employment Management Based on Deep Learning Model
In order to study the big data of college students' employment, this paper takes the big data of college students' employment as the premise, analyzes the current employment data by establishing a DBN model, and puts forward relevant management measures, aiming to provide scientific basis for the management of graduates' employment data. The results are as follows: By comparing the application evaluation of linear regression method, BP neural network and DBN model, this paper finds that DBN model has better accuracy and lower error and has better advantages in the application of college students' employment data management characteristics. In addition, the development of social economy and the number of college graduates are the key factors for the employment rate of college students. Therefore, this paper suggests that through the use of big data technology, college will build a data platform for college students' employment management and provide a carrier for college students to obtain professional information and employment management information.
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