CVAICYLGFeb 9, 2024

Multiple Instance Learning for Cheating Detection and Localization in Online Examinations

arXiv:2402.06107v123 citationsh-index: 19IEEE Trans Cogn Dev Syst
Originality Incremental advance
AI Analysis

This addresses the problem of ensuring exam integrity for online education systems, but it is incremental as it builds on existing methods with feature integration.

The paper tackles cheating detection in online exams by developing CHEESE, a multiple instance learning framework that integrates multiple visual features, achieving a frame-level AUC of 87.58% on the OEP dataset.

The spread of the Coronavirus disease-2019 epidemic has caused many courses and exams to be conducted online. The cheating behavior detection model in examination invigilation systems plays a pivotal role in guaranteeing the equality of long-distance examinations. However, cheating behavior is rare, and most researchers do not comprehensively take into account features such as head posture, gaze angle, body posture, and background information in the task of cheating behavior detection. In this paper, we develop and present CHEESE, a CHEating detection framework via multiplE inStancE learning. The framework consists of a label generator that implements weak supervision and a feature encoder to learn discriminative features. In addition, the framework combines body posture and background features extracted by 3D convolution with eye gaze, head posture and facial features captured by OpenFace 2.0. These features are fed into the spatio-temporal graph module by stitching to analyze the spatio-temporal changes in video clips to detect the cheating behaviors. Our experiments on three datasets, UCF-Crime, ShanghaiTech and Online Exam Proctoring (OEP), prove the effectiveness of our method as compared to the state-of-the-art approaches, and obtain the frame-level AUC score of 87.58% on the OEP dataset.

Foundations

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