Researcher Image
هاله حسن محمود - Halah Hasan Mahmoud
PhD - lecturer
Computer Center , Computer Center
[email protected]
Summary
  1. National Identification, University of Baghdad, College of Science, 2017.
Qualifications
  1. National Identification, University of Baghdad, College of Science, 2017.
Responsibility
  1. National Identification, University of Baghdad, College of Science, 2017.
Awards and Memberships
  1. National Identification, University of Baghdad, College of Science, 2017.
Research Interests
  1. National Identification, University of Baghdad, College of Science, 2017.
Academic Area
  1. National Identification, University of Baghdad, College of Science, 2017.
Teaching materials
Material
College
Department
Stage
Download
مهارات الحاسوب- نظم التشغيل والويندوز
كلية العلوم للبنات
علوم الحياة
Stage 1
مهارات الحاسوب- مستكشف الملفات
كلية العلوم للبنات
علوم الحياة
Stage 1
مهارات الحاسوب- سطح الكتب
كلية العلوم للبنات
علوم الحياة
Stage 1
مهارات الحاسوب - لوحة النحكم
كلية العلوم للبنات
علوم الحياة
Stage 1
مهارات الحاسوب- وورد
كلية العلوم للبنات
علوم الحياة
Stage 1
Data Structure-String
كلية العلوم للبنات
الحاسوب
Stage 2
Data Structure-List
كلية العلوم للبنات
الحاسوب
Stage 2
Data Structure - Classes
كلية العلوم للبنات
الحاسوب
Stage 2
Data Structure Stack
كلية العلوم للبنات
الحاسوب
Stage 2
Data Structure Tuple
كلية العلوم للبنات
الحاسوب
Stage 2
Data Structure Queue
كلية العلوم للبنات
الحاسوب
Stage 2
Data Structure Linked List
كلية العلوم للبنات
الحاسوب
Stage 2
Teaching

ccna

Supervision

none

Publication Date
Sun Jun 30 2024
Journal Name
International Journal Of Intelligent Engineering And Systems
Eco-friendly and Secure Data Center to Detection Compromised Devices Utilizing Swarm Approach
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Modern civilization increasingly relies on sustainable and eco-friendly data centers as the core hubs of intelligent computing. However, these data centers, while vital, also face heightened vulnerability to hacking due to their role as the convergence points of numerous network connection nodes. Recognizing and addressing this vulnerability, particularly within the confines of green data centers, is a pressing concern. This paper proposes a novel approach to mitigate this threat by leveraging swarm intelligence techniques to detect prospective and hidden compromised devices within the data center environment. The core objective is to ensure sustainable intelligent computing through a colony strategy. The research primarily focusses on the

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Scopus (4)
Scopus Crossref
Publication Date
Tue Sep 25 2018
Effect of Successive Convolution Layers to Detect Gender
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Image classification can be defined as one of the most important tasks in the area of machine learning. Recently, deep neural networks, especially deep convolution networks, have participated greatly in end-to-end learning which reduce need for human designed features in the image recognition like Convolution Neural Network. It is offers the computation models which are made up of several processing layers for learning data representations with several abstraction levels. In this work, a pre-trained deep CNN is utilized according to some parameters like filter size, no of convolution, pooling, fully connected and type of activation function which includes 300 images for training and predict 100 image gender using probability measures. Re

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Title
Category
Date
الانظمة الالكترونية لادارة المدارس
Symposiums and Seminars الندوات
2025-04-24
الزراعة الذكية
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ادمان المخدرات بين المراهقين
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2025-02-20