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Practices and Innovations in Analyzing Digital Enabling High-Quality Development of Vocational Education Based on Time-Series Data Analytics

   | 31 ene 2024

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With the rapid development of the social economy and the continuous progress of science and technology, vocational education plays a crucial role in cultivating high-quality talents and promoting economic development. In this paper, based on the requirements of practice and innovation of digitization-enabled high-quality development of vocational education, a time-series decomposition model based on Transformer is proposed, which is defined as the DMR former model. The original data are decomposed using the temporal decomposition model, combined with the multi-scale fusion residual attention mechanism to capture and process the temporal feature information of vocational education in multiple time scales, and finally, the obtained results are analyzed. The results show that vocational education performs poorly in the classroom effect, most of the attention of vocational education students in the classroom is not concentrated, and the degree of liking for the classroom is lower than 0.5. After the digital empowerment of classroom effect, the student’s performance can be stabilized at more than 85 compared to the average of about 60 in the previous period, which is a good effect of improvement. After improving the curriculum of the College of Vocational Education, the employment rate of students increased to more than 95%. The high-quality development of vocational education and meeting the social demand for talent can be promoted through time series data analysis and digital empowerment.

eISSN:
2444-8656
Idioma:
Inglés
Calendario de la edición:
Volume Open
Temas de la revista:
Life Sciences, other, Mathematics, Applied Mathematics, General Mathematics, Physics