Researcher Image
عمار حسين جاسم - Ammar Hussein Jassim
PhD - lecturer
College of Science for Women , Department of Computer Science
[email protected]
Research Interests
  1. Artificial Intelligence
  2. Machine Learning
  3. Advanced Machine Learning
  4. Deep neural network
Academic Area
  1. Machine Learning
  2. Advanced Machine Learning
  3. Image Processing
  4. Pattern Classification
  5. Computational Intelligence
  6. Signal, Image and Video Processing
  7. Object Recognition
  8. Image Segmentation
  9. Applied Artificial Intelligence
  10. Image Data Analysis
  11. Image Analysis
  12. Machine learning
Teaching materials
Material
College
Department
Stage
Download
Computation Theory Lecture-1
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-2
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-3
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-4
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-5
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-6
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-7
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-8
كلية العلوم للبنات
الحاسوب
Stage 2
Computation Theory Lecture-9
كلية العلوم للبنات
الحاسوب
Stage 2
mobile computing lecture summary (outline)-1
كلية العلوم للبنات
الحاسوب
Stage 4
mobile computing lecture summary (outline)-2
كلية العلوم للبنات
الحاسوب
Stage 4
mobile computing lecture summary (outline)-3
كلية العلوم للبنات
الحاسوب
Stage 4
mobile computing lecture summary (outline)-4
كلية العلوم للبنات
الحاسوب
Stage 4
mobile computing lecture summary (outline)-5
كلية العلوم للبنات
الحاسوب
Stage 4
mobile computing lecture summary (outline)-6
كلية العلوم للبنات
الحاسوب
Stage 4
mobile computing lecture summary (outline)-7
كلية العلوم للبنات
الحاسوب
Stage 4
mobile computing lecture summary (outline)-8
كلية العلوم للبنات
الحاسوب
Stage 4
Web Design and Programming
كلية العلوم للبنات
الحاسوب
Stage 2
Web Design and Programming
كلية العلوم للبنات
الحاسوب
Stage 2
Web Design and Programming
كلية العلوم للبنات
الحاسوب
Stage 2
Web Design and Programming
كلية العلوم للبنات
الحاسوب
Stage 2
Web Design and Programming
كلية العلوم للبنات
الحاسوب
Stage 2
Web Application Development
كلية العلوم للبنات
الحاسوب
Stage 3
Web Application Development
كلية العلوم للبنات
الحاسوب
Stage 3
Web Application Development
كلية العلوم للبنات
الحاسوب
Stage 3
Web Application Development
كلية العلوم للبنات
الحاسوب
Stage 3
Web Application Development
كلية العلوم للبنات
الحاسوب
Stage 3
Web Application Development
كلية العلوم للبنات
الحاسوب
Stage 3
Publication Date
Tue Jun 24 2025
Journal Name
Baghdad Science Journal
Accelerating Face Mask Detection Training Model Based on Multi-GPUs and Multi-core CPU
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Modern machine-learning applications require GPUs, and modern platforms can leverage numerous GPUs on one or more machines to increase performance. Contemporary deep-learning models are too huge for CPU or GPU training. Training these models with many GPUs without performance degradation is necessary to train them rapidly and maximize GPU consumption. Thus, training deep convolutional neural networks (DCNN) with multiple GPUs has become necessary for improving training. Therefore, we presented a parallel design and development of an efficient model for enhancing face mask CNN performance and improving resource efficiency. This DCNN model is a parallel training system over multiple GPUs, a multi-core CPU, and a multi-process GPU platform wit

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Publication Date
Fri Jul 19 2024
Journal Name
Baghdad Science Journal
An Analytical Comparison of the Behavior of Machine Learning and Deep Learning in Stock Market Prediction
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Machine learning is considered a powerful technique in many applications such as classification, clustering, recognition and prediction. Deep learning is a modern, vital and superior machine learning that gives stunning performance, especially with huge data. Stock market price prediction is the process of determining the future value of a prospect of a financial instrument traded in the market, to gain a great profit a successful prediction must be conducted, in order to achieve that machine learning is used, in this article, two approaches are proposed to predict the stock market prices and movement using two datasets, the first approach employs two machine learning models (J48 & logistic regression) while the second approach based on rec

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Publication Date
Mon Mar 30 2026
Journal Name
Iraqi Journal Of Science
Facial Expression Recognition Using Deep Learning EfficientNetB0
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Natural settings make it challenging to identify facial expressions since head position, illumination level, and ‎‎occlusion vary. Thus, developing a more generic model without front-facing images alone is quite crucial. This ‎research proposes a facial expression ‎recognition model based on pre-trained deep convolutional neural networks ‎with transfer learning. The model was trained ‎on several cases to classify face expressions into seven ‎classifications efficiently. The proposed system used the EfficientNetB0 model ‎that has one dense dropout layer. The model first rescales and norms the input dataset in the input ‎layer that takes images of a larger resolution to get better results. After entering 7 blocks sequential

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