Profile Image
Assistant Lecturer

Reem alheialy

Research Interests

digital image processing

artificial intelligence

Gender FEMALE
Place of Work Technical Engineering College for Computer and AI / Mosul
Position Assistant lecturer
Qualification master
Speciality computer engineering
Email Reem.qays@ntu.edu.iq
Phone 07738500238
Address aldndan, mosul, mosul, iraq
working experience

Academic Qualification

Bachelor of COMPUTER ENGINNERING
Sep 21, 2003 - Jul 15, 2007

Graduated FROM AL-MOSUL UNIVERSITY\ELECTRONIC AND COMPUTER ENGINEERING COLLEGE\COMPUTER ENGINEERING DEPARTMENT

MSC -COMPUTER ENGINEERING
Sep 21, 2019 - Jul 15, 2021

Graduated from Duhok university\ college of engineering

PHD STUDENT
Oct 23, 2023 - Present

STUDY AT DUHOK UNIVERSITY\ENGINEERING COLLEGE\ELECTRICAL AND COMPUTER ENGINEERING

Working Experience

Quality Assurance-Performance Evaluation [Quality Assurance and Performance Evaluation Office]
Jun 12, 2013 - May 1, 2014

"Responsible for ensuring quality standards across academic and administrative processes. Conducts performance evaluations, monitors compliance with institutional policies

Academic Documentation [Documents and Certificates Officer]
Sep 1, 2018 - Sep 1, 2019

Responsible for managing, organizing, and maintaining academic documents and certificates and provides support to students and staff regarding documentation needسز

Graduate Studies, Program Management, [Head of Postgraduate Studies department]
Sep 15, 2021 - Feb 15, 2023

Responsible for overseeing and managing all aspects of postgraduate programs, including student admissions, academic coordination, faculty support, and research administration and facilitates communication between students, faculty, and administration

Teaching [assistant lecturer]
Sep 1, 2021 - Jul 1, 2025

teaching undergraduate digital image processing and web design, supervising labs, and conducting research in digital image processing and deep learning

Teaching [ASSISTANT LECTURER]
Nov 15, 2025 - Present

teaching undergraduate ai course and conduct research in AI and medical image analysis

Publications

Image compression based on frequency domain reduction size
Dec 15, 2023

publisher 1ST INTERNATIONAL CONFERENCE ON SUSTAINABLE DEVELOPMENT TECHNIQUES (ICSDT2022

DOI https://doi.org/10.1063/5.0171385

Issue 1

Volume 2862

This work proposes a new image compression method based on a DCT (Discrete Cosine Transformed) combined with the Matrix Size Reduction algorithm. The compression algorithm starts by dividing the image into 8x8 blocks, then DCT is applied to each block independently, followed by uniform quantization. After that, a zigzag scan is applied to each block to be a one-dimensional array. Additionally, the array size is reduced by eliminating insignificant coefficients using the Matrix size-reduced algorithm. Afterward, the residual coefficients are compressed by Arithmetic Coding. The Matrix Reduction size algorithm is accomplished based on two different random keys. And then, two adjacent frequency domain coefficients are reduced to a single value. The decompression uses a searching method called Sequential Search Algorithm to decode the previously compressed data to retrieve residual coefficients. These residuals are padded with zeros to rebuild the original 8x8 blocks. Finally, inverse DCT is applied to reconstruct approximately the original image. The experimental results showed that our proposed image compression and decompression have achieved up to 98% compression ratio, keeping most of the visual image quality

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THE AUTOMATIC LICENSE PLATE RECOGNITION USING FEATURES EXTRACTION AND NEURAL NETWORKS
Dec 8, 2020

Journal Journal of University of Duhok

publisher 3rd international conference on recent innovations in engineering (ICRIE) Duhok,

Volume 23

The automatic license plate recognition (ALPR) system opens the trendy door to the researchers to think, discover techniques and reach to a result for its necessity. The important of the ALPR system is appeared in the transportation for many reasons such as parking, traffic violations and security. The aim of this paper is to suggest a scheme that will extract car number, country and province from the car images. The proposed scheme is based on digital image processing techniques and neural networks. The proposed algorithm is composite of preprocessing and recognition stages. The preprocessing stage includes: locate the car plate region, binarization, enhancement of the image quality, segment the image into the sub-images. The recognition stage will classify and recognize the segmented sub-images as numbers and characters. In this research, the localization is done through normal cross correlation method. The segmentation includes: segment the car plate into three regions, divide the number and separated character into individual and split the connected characters into separated characters are done through suggested algorithms. The recognition is accomplished using the back propagation neural network (BPNN). The recognizer operates on two sets of data. First set of data includes the whole pixels of the sub-images. The second set of data is based on 16 features extracted from the sub-images. A comparison between these two methods is made. The system is experienced on 99 images of Duhok and Erbil provinces, the environment work is done with MATLAB program. The percentage accuracy is: 100%,100% and 100% for the localization, distinguish and segmentation respectively. The recognition rate result for the first method is 94.5% and the second method is 91%.

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Conferences

Conferences

1ST INTERNATIONAL CONFERENCE ON SUSTAINABLE DEVELOPMENT TECHNIQUES (ICSDT2022)
Jun 29, 2022 - Jun 30, 2022

DOI https://doi.org/10.1063/5.0171385

Country iraq

Location Nineveh

Visit Conference

3rd International Conference on Recent Innovations in Engineering (ICRIE),
Sep 9, 2020 - Sep 10, 2020

Publisher Journal of University of Duhok

Country iraq

Location duhok