01 Synopsis
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- Up to 30 pages
- Only 1 diagram included
- Problem statement & objectives
- Ready for college submission
Complete B.Tech final-year project report with documentation, diagrams and viva-ready structure. Instant PDF & Word download — plagiarism-free and faculty-aligned.
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01 Synopsis
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02 Pre Defined Project Report
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03 Customized Report
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04 Originality Reviewed
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Abstract
Table of Content
Introduction
Problem Statement
Existing System
Proposed System
Objectives
System Architecture
Major Functional Modules
Hardware Requirements
Software Requirements
Future Enhancement
Conclusion
References
Abstract
Table of Content
Chapter 1 — Introduction
Chapter 2 — Literature Review / System Study
Chapter 3 — System Analysis
Chapter 4 — System Design
Chapter 5 — System Implementation
Chapter 6 — Testing
Chapter 7 — Results and Discussion
Chapter 8 — Conclusion and Future Enhancements
Chapter 9 — References
Facial Recognition Attendance System is a final year project built with Python Flask, OpenCV, TensorFlow/Keras, and SQLite for students who want an AI-based college attendance web application. This final year project uses Haar cascade face detection, MobileNetV2 embeddings, and cosine similarity matching to identify students and mark attendance through a browser camera workflow. It includes separate portals for administrators, faculty, and students. Admins can manage departments, courses, semesters, sections, subjects, faculty, students, face datasets, system settings, attendance, notices, and reports. Faculty can mark or correct attendance for assigned classes and export reports. Students can view attendance history, download CSV reports, read notices, and request face-data refresh. With configurable attendance rules, reports, and camera-based marking, this project is suitable for a final year major project in Flask, OpenCV, TensorFlow, and computer vision.
Administrator
adminadmin123Faculty after seed
adesai / faculty123rverma / faculty123Student after seed
BEC24CS001priya.sharmastudent123BEC24CS001 to BEC24CS008/student/mark/api/mark endpoint for base64 camera image attendance marking.npy per studentpython -m venv .venv.venv\Scripts\activatesource .venv/bin/activatepip install -r requirements.txtpython seed.pypython seed.py --forcepython app.pyhttp://127.0.0.1:5000Administrator
adminadmin123Faculty after seed
adesai / faculty123rverma / faculty123Student after seed
BEC24CS001priya.sharmastudent123BEC24CS001 to BEC24CS008