Classification, Detection and detection using Machine Learning

Submission Number: 210
Submission ID: 5982
Submission UUID: 3a4e840a-361e-4965-9a31-34cc2fd5fdf8
Submission URI: /form/project

Created: Tue, 01/27/2026 - 13:30
Completed: Tue, 01/27/2026 - 13:30
Changed: Tue, 01/27/2026 - 13:30

Remote IP address: 144.80.185.70
Submitted by: SOUNDARARAJAN EZEKIEL
Language: English

Is draft: No
Webform: Project
Received Sent: 0
Accept and Publish Sent: 0
Project Title: Classification, Detection and detection using Machine Learning 
Program:
PA Science (933)

Project Leader
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Project Leader:
SOUNDARARAJAN EZEKIEL

Email: SEZEKIEL@IUP.EDU

Project Information
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Project Description:
Image classification is a fundamental problem in computer vision with applications spanning healthcare, security, agriculture, and autonomous systems. This project focuses on the design and implementation of an image classification system using machine learning techniques. The proposed system utilizes a Convolutional Neural Network (CNN) and Vision Transformation algorithms  to automatically learn and extract relevant features from input images and classify them into predefined categories. The model is trained on a labeled image dataset, where preprocessing techniques such as image resizing and normalization are applied to improve learning efficiency and accuracy. The performance of the model is evaluated using standard metrics such as accuracy and validation loss. Experimental results demonstrate that the system is capable of effectively distinguishing between different image classes, highlighting the effectiveness of deep learning approaches for image classification tasks. This project provides a scalable and efficient framework that can be extended to more complex datasets and real-world applications.