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MRI India Journals Vol. 13 No. 1 (2024)

An IoT Face-Recognition Door-Lock System

Authors

  • Anusha S Department of Electrical and Electronics Engineering, Stella Mary's College of Engineering, Aruthenganvilai, Kanyakumari District, Tamil Nadu 629202, India
  • Babitha Rajilin R. C Department of Electrical and Electronics Engineering, Stella Mary's College of Engineering, Aruthenganvilai, Kanyakumari District, Tamil Nadu 629202, India
  • Jeba Esther Babitha S Department of Electrical and Electronics Engineering, Stella Mary's College of Engineering, Aruthenganvilai, Kanyakumari District, Tamil Nadu 629202, India
  • Vinushiya N Department of Electrical and Electronics Engineering, Stella Mary's College of Engineering, Aruthenganvilai, Kanyakumari District, Tamil Nadu 629202, India
  • A. Annie Steffy Beula Department of Electrical and Electronics Engineering, Stella Mary's College of Engineering, Aruthenganvilai, Kanyakumari District, Tamil Nadu 629202, India

Keywords:

Face Recognition Door Lock Home Automation YOLOv4 Object Detection Arduino False Accept Rate Presentation Attack Detection Biometric Access Control Internet of Things Note on Sources for This Revision

Abstract

This paper reports the design of a face-recognition door-lock system for home automation, in which a webcam at the entrance feeds a computer running a YOLOv4 detector, a set of enrolled face images is held as a database, and an Arduino Uno drives the relay that releases the lock when a presented face matches the database. The paper formalises the detection, matching and decision relations the system rests on, and then examines what a lock of this kind has to be measured by. Three findings follow, and each is quantitative. First, YOLOv4 is an object detector: it answers whether a face is present and where, and does not answer whose face it is. Recognition additionally requires alignment, an embedding and a matching step against the enrolled set, and the algorithm performing that step is not named in the project record. Second, a door lock is a biometric access-control system and its security is the false accept rate at a stated threshold, not an accuracy percentage. Because the lock performs open-set identification against every enrolled person rather than verification against one, the system false accept rate grows with the number enrolled: a per-comparison rate of 0.1 per cent gives a system rate of about 1 per cent with ten residents enrolled and about 5 per cent with fifty. Converted into operational terms, at ten impostor presentations per day a system rate of 1 per cent admits a stranger about once every ten days. Third, a webcam-based system without liveness detection is defeated by a printed photograph, and no anti-spoofing stage appears in the described design. The paper also notes that the recognition decision is taken on the computer and conveyed to the Arduino as a serial command, so the serial link is the trust boundary, and that the behaviour on computer failure is unspecified. A four-trial measurement plan is given. This paper was prepared from the project abstract alone, so status entries are marked for confirmation rather than asserted.

 

 

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Published

2024-04-08

How to Cite

S, A., C, B. R. R., S, J. E. B., N, V., & Beula, A. A. S. (2024). An IoT Face-Recognition Door-Lock System . International Journal of Advanced Electrical and Electronics Engineering, 13(1), 13–22. Retrieved from https://journals.mriindia.com/index.php/ijaeee/article/view/4335

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