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An approach to extract information from academic transcripts of HUST

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arxiv 2304.11454 v1 pith:Y7X72GTW submitted 2023-04-22 cs.CV

classification cs.CV
keywords modellinesinformationrecognizingtesttranscriptsacademicbaseline
verification ladder T0 review T1 audit T2 compute T3 formal
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In many Vietnamese schools, grades are still being inputted into the database manually, which is not only inefficient but also prone to human error. Thus, the automation of this process is highly necessary, which can only be achieved if we can extract information from academic transcripts. In this paper, we test our improved CRNN model in extracting information from 126 transcripts, with 1008 vertical lines, 3859 horizontal lines, and 2139 handwritten test scores. Then, this model is compared to the Baseline model. The results show that our model significantly outperforms the Baseline model with an accuracy of 99.6% in recognizing vertical lines, 100% in recognizing horizontal lines, and 96.11% in recognizing handwritten test scores.

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