Prof. Dr. Tzu-Chien Wang | Machine Learning | Best Researcher Award

Prof. Dr. Tzu-Chien Wang | Machine Learning | Best Researcher Award

Prof. Dr. Tzu-Chien Wang | Machine Learning – Assistant Professor at Soochow University, Taiwan

Tzu-Chien Wang is an accomplished academic and researcher specializing in data science, artificial intelligence, and decision support systems. Currently serving as an assistant professor in the Department of Computer Science & Information Management at Soochow University, Taiwan, he holds a Ph.D. from National Taiwan University. Wang’s research revolves around leveraging advanced data mining techniques, machine learning algorithms, and natural language processing to develop innovative solutions for real-world applications. His expertise spans across industries, including healthcare, finance, and manufacturing, showcasing his ability to transform complex data into actionable insights.

Profile:

Orcid

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Education:


Tzu-Chien Wang earned his Ph.D. in Business Administration from National Taiwan University, where he focused on the integration of data analytics into strategic decision-making. His academic journey reflects a strong foundation in both theoretical frameworks and practical applications, equipping him with the skills necessary to excel in the rapidly evolving fields of data science and artificial intelligence.

Experience:


With over a decade of professional experience, Wang has held key academic and industry positions. He currently serves as an assistant professor at Soochow University, where he mentors graduate students and leads research projects. Previously, he worked as a manager in the Data Development Department at VISUALSOFT INFORMATION SYSTEM CO., LTD., and served as a senior data analyst at Fubon Life Insurance Co., Ltd. His roles have involved extensive project planning, data model construction, and collaboration with multidisciplinary teams to drive data-driven innovations.

Research Interests:


Wang’s research interests are diverse, focusing on data mining, machine learning, decision support systems, and process improvement techniques. He employs methodologies such as clustering, classification, natural language processing (NLP), optimization, heuristics, and predictive model building. His work aims to enhance operational efficiency, support strategic decision-making, and develop proof-of-concept models that address sector-specific challenges.

Awards:

  • High-Performance Health Smart Medical Alliance (2025-2028) – National Science and Technology Council, Taiwan 🏆

  • AI+BI Agile Development Data Platform Construction Project (2022) – Department of Industrial Technology, Ministry of Economic Affairs, Taiwan 🏅

  • Consumer Data-Driven Precision R&D Manufacturing (2021) – Bureau of Energy, Ministry of Economic Affairs, Taiwan 🎖️

Publications:

  1. Multi-Stage Data-Driven Framework for Customer Journey Optimization (2025) 📊
  2. Deep Learning-Based Prediction and Revenue Optimization for Online Platform User Journeys (2024) 📈
  3. Method for Determining Requirements of Customers (2024) 🧠
  4. Integrating Latent Dirichlet Allocation and Gradient Boosting Tree Methodology for Insurance Product Development Recommendation (2024) 📊
  5. An Integrated Data-Driven Procedure for Product Specification Recommendation Optimization (2023) 🔍
  6. Integrated Approach for Product Development Using Latent Dirichlet Allocation and Gradient Boosting Decision Tree Methods (2023) 🚀
  7. Data Mining Methods to Support C2M Product-Service Systems Design (2022) 🖥️

Conclusion:


Tzu-Chien Wang’s remarkable contributions to data science and artificial intelligence, combined with his extensive academic and professional experience, make him a strong candidate for the Best Researcher Award. His innovative research, leadership in data-driven projects, and dedication to advancing technology reflect his commitment to excellence. Wang’s ability to bridge the gap between theoretical research and practical applications has significantly impacted various industries, making him a distinguished scholar and an inspiring figure in the academic community. Recognizing his achievements with this prestigious award would not only honor his past contributions but also encourage continued advancements in the field of data science and artificial intelligence.

Dr. Ardalan Awlla | Machine Learning for Big Data | Best Researcher Award

Dr. Ardalan Awlla| Machine Learning for Big Data | Best Researcher Award

Dr. Ardalan Awlla, Cihan University Sulaimaniya, Iraq

Dr. Ardalan Awlla is a dedicated computer science educator and researcher, currently pursuing his Ph.D. at Sulaimani Polytechnic University. With a Master’s in Computer Science from Nanjing University of Information Science and Technology (NUIST), where he earned the Outstanding International Graduate Student and Academic Excellence awards, Dr. Awlla has built a strong academic foundation. He has taught a wide range of subjects, including Software Engineering, System Integration, Game Programming, and Data Structures, as a faculty member at institutions such as the University of Human Development and Qaiwan International University. His research focuses on network and information security, machine learning, and big data, reflecting his commitment to advancing technology and education in the region.

Professional Profile:

Google Scholar
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Suitability for the Award:

Dr. Awlla’s focus on network security and machine learning applications demonstrates a commitment to solving critical technological issues that have both academic and practical significance. His achievements, particularly in botnet detection research, position him as an asset to the cybersecurity field. Additionally, his contributions to academic excellence in teaching core computer science subjects strengthen his candidacy, as he shapes the next generation of computer scientists with knowledge in current, high-demand areas.

Education & Expertise:

Dr. Taku Ito holds a Doctor of Medicine degree from Tokyo Medical and Dental University, where he has developed extensive expertise in Otorhinolaryngology (ENT) and Cognitive-Behavioral Medicine applications in ENT care.

Professional Roles:

Currently serving as an Associate Professor in the Department of Otorhinolaryngology at Tokyo Medical and Dental University, Dr. Ito has previously held positions as an Assistant Professor and Visiting Lecturer in the same department, demonstrating his commitment to advancing ENT medicine and education.

Research Interests & Innovations:

His research focuses on clinical and surgical innovations in otolaryngology, improved imaging and diagnostic techniques, and the integration of cognitive-behavioral medicine within ENT. His work has driven forward critical improvements in surgical outcomes and diagnostic accuracy.

Achievements & Recognition:

With over 20 publications in peer-reviewed journals, numerous presentations at global conferences, and several research grants, Dr. Ito is a recognized leader in his field. He has also developed clinical protocols that significantly enhance patient outcomes in ENT surgeries.

Publications Top Notes:

  • Performance Analysis and Prediction Student Performance to build effective student Using Data Mining Techniques
    • Citations: 10
    • Year: 2019
  • Botnet detection based on genetic neural network
    • Citations: 9
    • Year: 2015
  • Prediction of CoVid-19 mortality in Iraq-Kurdistan by using Machine learning
    • Citations: 5
    • Year: 2021
  • Secure device to device communication for 5G network based on improved AES
    • Citations: 3
    • Year: 2021
  • A Hybrid Simulated Annealing and Back-propagation Algorithm for Feed-forward Neural Network to Detect Credit Card Fraud
    • Citations: 2
    • Year: 2017