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Posts
Blog Post number 4
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Blog Post number 3
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Blog Post number 2
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Blog Post number 1
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portfolio
Aspire Leaders Program – Harvard Founded Leadership Development
Published:
Completed all stages of the 2024 Aspire Leaders Program
Outstanding Academic Result
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Student of Dept. of Information and Communication Engineering (ICE) at Pabna University of Science and Technology (PUST)
Competitive Programming & Coding Practice
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Active Problem Solver on HackerRank, LeetCode & Codeforces
Leadership & Organizational Experience
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English Club Secretary, Executive Member, Student Ambassador
Industry Job Simulations & Virtual Internships
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BCG, J.P. Morgan, HackerRank & Forage Job Simulations
Course Completion & Professional Certifications
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Artificial Intelligence, Data Science, Programming & Professional Development Certifications
Academic Service & Reviewing Experience
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Conference Reviewer
publications
Facial Expression Recognition: A Machine Learning Approach with SVM, Random Forest, KNN, and Decision Tree Using Grid Search Method
Published in International Workshop on Nonlinear Circuits, Communications and Signal Processing (RISP), Pulau Pinang, Malaysia, 2025
The study aims to investigate the effectiveness of deep learning approaches in recognizing emotions from BC speech while addressing challenges such as degradation and information loss in neural networks.
Recommended citation: Hossen, M. R., Mia, M. U., Islam, R., Hosain, M. S., Hasan, D. M. K., & Shimamura, T. (2025, February 27). Facial Expression Recognition: A Machine Learning Approach with SVM, Random Forest, KNN, and Decision Tree Using Grid Search Method. International Workshop on Nonlinear Circuits, Communications and Signal Processing 2025, Pulau Pinang, Malaysia. https://doi.org/10.5281/zenodo.14937923
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Exploring the EmoBone Dataset with Bi-Directional LSTM for Emotion Recognition via Bone Conducted Speech
Published in International Workshop on Nonlinear Circuits, Communications and Signal Processing (RISP), Pulau Pinang, Malaysia, 2025
This study explores the performance of machine learning classifiers—SVM, Random Forest, KNN, and Decision Tree—on the CK+ dataset, a benchmark for FER research.
Recommended citation: Hosain, M. S., Hossen, M. R., Mia, M. U., Sugiura, Y., & Shimamura, T. (2025, February 28). Exploring the EmoBone Dataset with Bi-Directional LSTM for Emotion Recognition via Bone Conducted Speech. International Workshop on Nonlinear Circuits, Communications and Signal Processing 2025 (NCSP'25), Pulau Pinang, Malaysia. https://doi.org/10.5281/zenodo.17384107
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Multi-Source Dental X-Ray Dataset Using Image-to-Image Transformation
Published in , 2025
The Teeth View X-ray Image Dataset is a collection of dental X-ray images gathered from different dental clinics. It is designed for machine learning tasks such as object detection. The dataset is organized into one main folder: the object detection dataset.
Recommended citation: Aurnob, Al Rafi; Hossen, Md. Rifat ; Tanim, Sharia Arfin (2025), “Multi-Source Dental X-Ray Dataset Using Image-to-Image Transformation”, Mendeley Data, V1, doi: 10.17632/cgwnxmdp3b.1
Machine learning–assisted optimization of a terahertz photonic metamaterial absorber for blood cancer detection NEW
Published in Plos One, 2025
Several machine learning models were also employed for design prediction, with Gradient Boosting demonstrating excellent performance and enabling up to a 60% reduction in optimization time. The combination of a multi-band, high-absorption design and ML-assisted approach provides a robust, ultrathin, and high-sensitivity platform, offering a promising route toward next-generation terahertz biophotonic sensors for accurate and sensitive blood cancer detection.
Recommended citation: A. Miah, S. Al Zafir, J. Das, J. Al-Faruk, S. I. Zim, R. Ahmad, M. R. Hossen, S. M. A. Haque, A. Wahed, “Machine Learning–Assisted Optimization of a Terahertz Photonic Metamaterial Absorber for Blood Cancer Detection,” PLOS ONE, vol. 21, no. 2, e0340492.
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Tversky Loss Mechanisms: A ResUNet Approach to Improving Brain Tumor Segmentation
Published in International Conference on Quantum Photonics, Artificial Intelligence, and Networking (QPAIN), Rangpur, Bangladesh, 2025
This study introduces the ResUNET segmentation network utilizing a Tversky loss function. It tackles class imbalance,a significant challenge in brain tumor segmentation. We surpassUNET in segmentation outcomes by addressing class imbalanceand accurately segmenting the smaller, critical areas of the tumor.
Recommended citation: M. R. Hossen, E. Hossain, J. Al-Faruk, J. Sultana, M. B. Islam and M. S. Hosain, "Tversky Loss Mechanisms: A ResUNet Approach to Improving Brain Tumor Segmentation," 2025 International Conference on Quantum Photonics, Artificial Intelligence, and Networking (QPAIN), Rangpur, Bangladesh, 2025, pp. 1-6, doi: 10.1109/QPAIN66474.2025.11171708.
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Towards Explainable Plant Pathology: Vision TransformerBased Grape Leaf Disease Classification with LIME and SHAP
Published in , 2025
1st Revision Done in Plos One, [Q1]
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Rethinking Green AI for Sustainable Computing: A Review
Published in , 2025
Under Review in Computers & Electrical Engineering [Q1]
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Attention Enhanced EfficientNet-B4 Framework for Robust Jute Pest Detection in Precision Agriculture
Published in , 2025
Under Review in IET Image Processing, Wiley [Q2]
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Evaluating Targeted Productivity in Bangladesh’s Garment Sector Using Machine Learning and Deep Learning with Explainable AI: A Data-Driven Method for Enhanced Production Planning
Published in In: Proceedings of the 3rd International Conference on Big Data, IoT and Machine Learning (BIM 2025), Taylor & Francis, 2025
This study introduces a data-driven framework utilizing machine learning (ML) and deep learning (DL) methods to accurately predict productivity targets, supplemented by Explainable AI (XAI) tools such as SHAP and LIME.
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Enhancing DeepFake Classification Performance Using a CNN and XceptionNet-Based Pipeline
Published in IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS 2025), Kushtia, Bangladesh, 2025
To combat this, the study introduces a dual-model deepfake detection system that combines a custom lightweight convolutional neural network (CNN) with a transfer learning-based XceptionNet.
Recommended citation: N. T. Susmi, M. Chandra Chanda, M. S. Hosain, M. Rifat Hossen, M. A. Hossain and A. Fazal Mohammad Zainul Abadin, "Enhancing DeepFake Classification Performance Using a CNN and XceptionNet-Based Pipeline," 2025 IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS), Kushtia, Bangladesh, 2025, pp. 1-6, doi: 10.1109/COMPAS67506.2025.11381636.
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Attention-Based Deep Learning for Scalable Speech Emotion Recognition with Synthetic Bone-Conducted Speech
Published in IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS 2025), Kushtia, Bangladesh, 2025
This work contributes a scalable and robust solution for SER, grounded in the benefits of synthetic BC speech modeling that can enhance the reliability of emotion recognition systems in real-world applications.
Recommended citation: M. I. Shihab Shad, S. Khan, M. S. Hosain, A. Mahdi, M. C. Chanda and M. R. Hossain, "Attention-Based Deep Learning for Scalable Speech Emotion Recognition with Synthetic Bone-Conducted Speech," 2025 IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS), Kushtia, Bangladesh, 2025, pp. 1-6, doi: 10.1109/COMPAS67506.2025.11381631.
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Brain Tumor Detection in MRI Images with YOLOv12
Published in IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS 2025), Kushtia, Bangladesh, 2025
In this research, we introduce an enhanced approach for brain tumor detection that employs the latest YOLOv12 object detection framework. We assess and contrast the performance of YOLOv12 with several other leading models, illustrating its supe- rior detection accuracy.
Recommended citation: M. U. Mia, M. S. Hosain, M. T. W. Mulk, M. N. Bhuiyan, M. R. Hossen and L. C. Paul, "Brain Tumor Detection in MRI Images with YOLOv12," 2025 IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS), Kushtia, Bangladesh, 2025, pp. 1-6, doi: 10.1109/COMPAS67506.2025.11381885.
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Explainable Machine Learning Framework for Detecting Lumpy Skin Disease with Environmental and Climate Factors
Published in IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS 2025), Kushtia, Bangladesh, 2025
This study presents a comprehensive comparative analysis of eleven machine learning algorithms specifically aimed at binary classification within an environmental context.
Recommended citation: M. R. Hossen, M. U. Mia, M. N. Bhuiyan, M. K. Saha, R. Islam and M. S. Hosain, "Explainable Machine Learning Framework for Detecting Lumpy Skin Disease with Environmental and Climate Factors," 2025 IEEE 2nd International Conference on Computing, Applications and Systems (COMPAS), Kushtia, Bangladesh, 2025, pp. 1-6, doi: 10.1109/COMPAS67506.2025.11381718
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Enhancing Robustness and Accuracy of Bone-Conducted Speech Emotion Recognition via Transformer Models
Published in 10th International Conference on Electrical Engineering and Informatics (ICEEI2025), Malaysia, 2025
This research presents a high-performance SER model based on the Wav2Vec2.0 transformer framework, fine-tuned with a custom dataset named audio EmoBon, created with bone-conducted (BC) speech from Malaysian speakers.
Recommended citation: M. R. Hossen, K. A. A. Bakar, M. U. Mia, M. N. Hossain and M. S. Hosain, "Enhancing Robustness and Accuracy of Bone-Conducted Speech Emotion Recognition via Transformer Models." 2025 International Conference on Electrical Engineering and Informatics (ICEEI), Kuching, Malaysia, 2025, pp. 1-6, doi: 10.1109/ICEEI68459.2025.11330456.
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Speech Emotion Recognition from Bone-Conducted Speech Using Wav2Vec2 Transformer Mode
Published in IEEE 7th International Conference on Sustainable Technologies for Industry 5.0 (STI 2025) Dhaka, Bangladesh, 2025
This paper introduces an end-to-end SER system based on the Wav2Vec2.0 transformer model, fine-tuned with the EmoBone dataset—a comprehensive, multi-national BC speech dataset featuring eight emotion categories collected from 29 speakers in 10 countries.
Recommended citation: M. K. Saha, M. S. Hosain, M. R. Hossen, S. K. Ray, L. C. Paul and M. S. Uddin, "Speech Emotion Recognition from Bone-Conducted Speech Using Wav2Vec2 Transformer Model," 2025 IEEE 7th International Conference on Sustainable Technologies For Industry 5.0 (STI), Dhaka, Bangladesh, 2025, pp. 1-6, doi: 10.1109/STI69347.2025.11367517.
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QCNN-SER: A Noise-Robust Quantum Convolutional Neural Network with Enhanced Cross-Domain Generalization for Speech Emotion Recognition
Published in 28th International Conference on Computer and Information Technology (ICCIT), Cox's Bazar, Bangladesh, 2025
By Utilizing quantum principles like superposition and entanglement within a 6-qubit, 8-layer parameterized circuit, the model derives high- dimensional, noise-resistant features from speech signals.
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Research Assistance in Bangla Speech Emotion Recognition using Emoformer
Published in M.Sc Thesis (Assisted), Pabna University of Science and Technology, 2026
Contributed to an M.Sc thesis on Bangla Speech Emotion Recognition using an attention-driven Emoformer architecture.
talks
Smart Waste Management System
Published:
Intelligent Overspeed Control in Autonomous Vehicles with DQN Deep Reinforcement Learning.
Published:
teaching
Teaching experience 1
Undergraduate course, University 1, Department, 2014
This is a description of a teaching experience. You can use markdown like any other post.
Teaching experience 2
Workshop, University 1, Department, 2015
This is a description of a teaching experience. You can use markdown like any other post.
