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Proceedings ArticleDOI

Design of face detection and recognition system to monitor students during online examinations using Machine Learning algorithms

TLDR
In this article, an approach similar to Eigenface is used for extracting facial features through facial vectors and the datasets are trained using Support Vector Machine (SVM) algorithm to perform face classification and detection.
Abstract
Today's pandemic situation has transformed the way of educating a student. Education is undertaken remotely through online platforms. In addition to the way the online course contents and online teaching, it has also changed the way of assessments. In online education, monitoring the attendance of the students is very important as the presence of students is part of a good assessment for teaching and learning. Educational institutions have adopting online examination portals for the assessments of the students. These portals make use of face recognition techniques to monitor the activities of the students and identify the malpractice done by them. This is done by capturing the students' activities through a web camera and analyzing their gestures and postures. Image processing algorithms are widely used in the literature to perform face recognition. Despite the progress made to improve the performance of face detection systems, there are issues such as variations in human facial appearance like varying lighting condition, noise in face images, scale, pose etc., that blocks the progress to reach human level accuracy. The aim of this study is to increase the accuracy of the existing face recognition systems by making use of SVM and Eigenface algorithms. In this project, an approach similar to Eigenface is used for extracting facial features through facial vectors and the datasets are trained using Support Vector Machine (SVM) algorithm to perform face classification and detection. This ensures that the face recognition can be faster and be used for online exam monitoring.

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Citations
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Journal ArticleDOI

A systematic review on machine learning models for online learning and examination systems

TL;DR: A systematic review of the role of Machine learning in Lockdown Exam Management Systems was conducted by evaluating 135 studies over the last five years and concluded with issues and challenges that machine learning imposes on the examination system.
Proceedings ArticleDOI

Fruits and Vegetables Recognition using YOLO

TL;DR: In this article , the authors applied the YOLO model for identifying different types of vegetables and fruits available in the vegetable market and hence the customer can know the updates the livestock of fruits and vegetables in that shop.
Proceedings ArticleDOI

Stock Movement Prediction using KNN Machine Learning Algorithm

TL;DR: In this paper , a machine learning model-based stock market prediction using K Nearest Neighbor (KNN) algorithm is proposed for predicting next day change in the stock value, KNN is very powerful in numeric prediction problems because it can process relation between the numeric data.
Proceedings ArticleDOI

A Time-Series Based Yield Forecasting Model Using Stacked Lstm To Predict The Yield Of Paddy In Cauvery Delta Zone In Tamilnadu

TL;DR: In this paper , a yield prediction model is proposed to predict the yield of paddy in Cauvery delta region considering the environmental factors along with the supplied nutrients, which makes use of Long Short Term Memory (LSTM) algorithm which is a popular deep learning algorithm, to forecast the yield.
Proceedings ArticleDOI

A Novel Real-time Automated Face Classification and Detection system using Machine Learning Technique

TL;DR: In this article , the authors presented various studies and how machine learning methods are become to solve many challenges present in the face detection system, which helps to assist many social applications such as during pandemics like covid-19 and personal identity, it can be verifying the mask worn persons.
References
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Journal ArticleDOI

An improved face recognition algorithm and its application in attendance management system

TL;DR: A new method using Local Binary Pattern (LBP) algorithm combined with advanced image processing techniques such as Contrast Adjustment, Bilateral Filter, Histogram Equalization and Image Blending to address some of the issues hampering face recognition accuracy so as to improve the LBP codes, thus improve the accuracy of the overall face recognition system.

Biometrics and Face Recognition Techniques

Renu Bhatia
TL;DR: In this paper different biometrics techniques such as Iris scan, retina scan and face recognition techniques are discussed.
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