Method for discriminating homework plagiarism based on big data acquisition and analysis
A big data and homework technology, applied in data processing applications, electronic digital data processing, digital data information retrieval, etc., can solve problems such as operability, feasibility and accuracy, and plagiarism that confuses teachers, so as to overcome tedious labor and effects of uncertainty, resolution of accuracy and authority issues
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Embodiment 1
[0030] A method for screening homework plagiarism based on big data collection and analysis, comprising the following steps:
[0031] (1) Collect the scores of each knowledge point in students' online and offline task points in real time, and calculate the score rate of each knowledge point in the middle.
[0032] (2) Collect the score values of the corresponding knowledge points in the usual stage test and the final exam, and calculate the score rate of the knowledge points corresponding to the test questions.
[0033] (3) Statistics and summary of the score data of each knowledge point in the homework and examination collected in real time.
[0034] Further, based on the Excel table, the score data of each knowledge point is collected and summarized.
[0035] (4) After the stage test and the final exam, the curve of the score rate of the knowledge points in the test and the corresponding score rate of the corresponding knowledge points in the daily homework is drawn in ti...
Embodiment 2
[0046] In order to illustrate the present invention better, now take the engineering automation major "analog electronic technology" course as an example, as figure 2 As shown, this method is described:
[0047] 1) Collect learning data of online and offline task points: first collect the score data of knowledge points in offline operations, such as figure 1 As shown, 6 offline paper-based after-school homework assignments are arranged. Take 8 calculation questions for each homework as an example. 108 pieces of data such as the score of the small question); secondly, 18 online tests + 2 pass-through exams and 1 online final exam score per semester are collected, and a total of 42 online learning data are generated.
[0048] 2) Organize the knowledge points mastery data in the exam: arrange 2 stage tests and 1 final exam. Taking 12 calculation questions in each exam as an example, a total of 72+6 pieces of data will be generated. According to the knowledge points assessed in...
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