Forecasting Construction Engineering Students’ Learning Outcomes by Means of Computational Pedagogys

Author:

Tashkinov Juriy A.1ORCID

Affiliation:

1. Donbass National Academy of Civil Engineering and Architecture

Abstract

Introduction. The prediction of learning outcomes plays an important role in professional training of the future civil engineers. The relevance of the article lies in the lack of a unified approach to predicting the formation of basic professional competencies among students of civil engineering universities. The purpose of the article is to describe the creation of a technology for predicting the formation of professional competencies of future civil engineers using modern computer technologies. Materials and Methods. The study was carried out on the basis of the results of the analysis of publications on the creation of social and pedagogical forecasts by computer methods, followed by the construction of “competence-based profiles”. To study the problem, empirical information from the results of passed examinations, tests performed by students of the academic programme 03/08/01 “Construction engineering” (102 students) was analysed. The data were presented in a 3D OLAP cube format. Results. As a result of the research, the author has created a step-by-step technology for quantitative forecasting of the formation of general professional, professional and universal competencies of future civil engineers, in accordance with the educational standard. A competence-based profile of a student enrolled with the construction engineering university has been built. Donbass National Academy of Civil Engineering and Architecture served as experimental facility. The analytical tool “Competence calculator of a future civil engineer” was developed. The optimal time for forecast development was revealed: making a forecast at the early stages of training while maintaining suf ficient accuracy. Discussion and Conclusion. The results of the study open a new theoretical direction in the study of the influence of various factors on the results of pedagogical forecasting: identifying the dynamics of achieving each of the educational results in each of the academic semesters; study of factors and indicators of the forecast background.

Publisher

National Research Mordovia State University MRSU

Subject

Education

Reference24 articles.

1. Tashkinov Ju.A. Modeling the Formation of the Prognostic Competence of the Civil Engineer with Intelligent Systems. Vestnik Donbasskoy natsionalnoy akademii stroitelstva i arkhitektury = Bulletin of the Donbass National Academy of Construction and Architecture. 2019; (1):59-63. Available at: http://donnasa.ru/publish_house/journals/vestnik/2019/vestnik_2019-1(135).pdf (accessed 01.02.2020). (In Russ., abstract in Eng.)

2. Shevchenko O.N., Tashkinov Ju.A. [Predicting the Civil Engineer Competence Level Development in the Course of Professional Training Using Intelligent Systems]. Stroitel Donbassa = Donbass Builder. 2020; (1):31-37. Available at: http://donnasa.ru/publish_house/journals/sd/2020/sd_2020-1(10).pdf (accessed 01.02.2020). (In Russ.)

3. Tashkinov Ju.A. Prediction of Diploma Grade Point Average of a Future Civil Engineer by the Method of Multiple Regression. Vestnik Akademii grazhdanskoy zashchity = Bulletin of the Academy of Civil Protection. 2019; (4):79-84. Available at: http://agz.dnmchs.ru/static/upload/agz/AKADEMY/ВЕСТНИК%20АГЗ/ВЕСТНИК%204(20)2019.pdf (accessed 01.02.2020). (In Russ., abstract in Eng.)

4. Tashkinov Ju.A. Pedagogical Forecasting of Educational Results of Future Civil Engineers in Real Time. Lichnost v menyayushchemsya mire: zdorovye, adaptatsiya, razvitiye = Personality in a Changing World: Health, Adaptation, Development. 2020; 8(1):35-45. (In Russ., abstract in Eng.) DOI: http://doi.org/10.23888/humJ2020135-45

5. Tashkinov Yu.A., Demyanenko I.V. Visual Mining Pedagogical Forecasting (on the Example of Technological Readiness of Future Engineers-Builders). Pedagogicheskoye obrazovaniye v Rossii = Pedagogical Education in Russia. 2020; (3):164-171. (In Russ., abstract in Eng.) DOI: http://doi.org/10.26170/po20-03-20

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