Researcher Image
ولدان جميل هادي - Wildan Jameel Hadi
PhD - lecturer
College of Science for Women , Department of Computer Science
[email protected]
Research Interests

Image processing Multimedia Aritificial Intelligent

Academic Area

B Sc. in Computer Science (2002-2006) M Sc. in Computer Science(2006-2008) Phd in Computer Science(2019-2022)

Teaching materials
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Compiler Lecture1
كلية العلوم للبنات
الحاسوب
Stage 3
Compiler Lecture 2
كلية العلوم للبنات
الحاسوب
Stage 3
Compiler Lecture 3
كلية العلوم للبنات
الحاسوب
Stage 3
Compiler Lecture 4
كلية العلوم للبنات
الحاسوب
Stage 3
Compiler Lecture 5
كلية العلوم للبنات
الحاسوب
Stage 3
Compiler Lecture 6
كلية العلوم للبنات
الحاسوب
Stage 3
Teaching

Compiler Computation Theory Object Oriented Programming Software Engineering Rsearch Methodology

Publication Date
Fri Mar 18 2022
Journal Name
Aro-the Scientific Journal Of Koya University
Detecting Deepfakes with Deep Learning and Gabor Filters

The proliferation of many editing programs based on artificial intelligence techniques has contributed to the emergence of deepfake technology. Deepfakes are committed to fabricating and falsifying facts by making a person do actions or say words that he never did or said. So that developing an algorithm for deepfakes detection is very important to discriminate real from fake media. Convolutional neural networks (CNNs) are among the most complex classifiers, but choosing the nature of the data fed to these networks is extremely important. For this reason, we capture fine texture details of input data frames using 16 Gabor filters indifferent directions and then feed them to a binary CNN classifier instead of using the red-green-blue

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Publication Date
Mon Aug 01 2022
Journal Name
International Journal Of Electrical And Computer Engineering (ijece)
A survey of deepfakes in terms of deep learning and multimedia forensics

Artificial intelligence techniques are reaching us in several forms, some of which are useful but can be exploited in a way that harms us. One of these forms is called deepfakes. Deepfakes is used to completely modify video (or image) content to display something that was not in it originally. The danger of deepfake technology impact on society through the loss of confidence in everything is published. Therefore, in this paper, we focus on deepfakedetection technology from the view of two concepts which are deep learning and forensic tools. The purpose of this survey is to give the reader a deeper overview of i) the environment of deepfake creation and detection, ii) how deep learning and forensic tools contributed to the detection

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Publication Date
Wed Jun 01 2022
Journal Name
International Journal Of Electrical And Computer Engineering (ijece)
Fast discrimination of fake video manipulation

<span>Deepfakes have become possible using artificial intelligence techniques, replacing one person’s face with another person’s face (primarily a public figure), making the latter do or say things he would not have done. Therefore, contributing to a solution for video credibility has become a critical goal that we will address in this paper. Our work exploits the visible artifacts (blur inconsistencies) which are generated by the manipulation process. We analyze focus quality and its ability to detect these artifacts. Focus measure operators in this paper include image Laplacian and image gradient groups, which are very fast to compute and do not need a large dataset for training. The results showed that i) the Laplacian

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