Auto-Grader - Auto-Grading Free Text Answers

Auto-Grader - Auto-Grading Free Text Answers

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Teachers spend a great amount of time grading free text answer type questions. To encounter this challenge an auto-grader system is proposed. The thesis illustrates that the auto-grader can be approached with simple, recurrent, and Transformer-based neural networks. Hereby, the Transformer-based models has the best performance. It is further demonstrated that geometric representation of question-answer pairs is a worthwhile strategy for an auto-grader. Finally, it is indicated that while the auto-grader could potentially assist teachers in saving time with grading, it is not yet on a level to fully replace teachers for this task.

Robin Richner was working as a Machine Learning Engineer in the edtech industry exploring ways to help teachers in their daily life. He now moved on to the web3 industry.
ISBN 9783658392031
Article number 9783658392031
Media type eBook - PDF
Copyright year 2022
Publisher Springer Gabler
Length 96 pages
Language English
Copy protection Digital watermarking