International Journal For Multidisciplinary Research
E-ISSN: 2582-2160
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Volume 6 Issue 6
November-December 2024
Indexing Partners
Automating Student Attendance Through Face Recognition and Machine Learning Techniques
Author(s) | Pratik Patil, Parth Kulat, Krishna Jodh, Shivanjali Khodade, Manisha Mali |
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Country | India |
Abstract | In recent years, facial detection and recognition technologies have become increasingly important in various fields, including smartphones, defence, and secure information centres. Acknowledging their potential, we intend to create a device that uses facial recognition as an effective and innovative substitute for conventional attendance methods, such as paper and fingerprint systems. The primary goal of this project is to establish a unified attendance system that employs facial recognition technology to confirm student identities and simplify the attendance process. This method provides a smooth, secure, and precise solution for contemporary academic settings. The system employs a machine learning algorithm developed for use in Python, allowing it to take pictures of students using the camera on a computer or laptop. Moreover, external cameras can be utilized as long as they are linked to the system. The face recognition capability is implemented through the Haarcascade algorithm, which is incorporated into the software. |
Keywords | Facial detection and recognition technologies, Automated student attendance system, Haarcascade algorithm, Machine learning |
Field | Computer |
Published In | Volume 6, Issue 6, November-December 2024 |
Published On | 2024-12-01 |
Cite This | Automating Student Attendance Through Face Recognition and Machine Learning Techniques - Pratik Patil, Parth Kulat, Krishna Jodh, Shivanjali Khodade, Manisha Mali - IJFMR Volume 6, Issue 6, November-December 2024. DOI 10.36948/ijfmr.2024.v06i06.32008 |
DOI | https://doi.org/10.36948/ijfmr.2024.v06i06.32008 |
Short DOI | https://doi.org/g8tgq2 |
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