Shuhao Shen | Cybersecurity | Best Researcher Award
Shuhao Shen, Huazhong University of Science and Technology, China
Shuhao Shen is a dedicated Ph.D. student in Cyberspace Security at Huazhong University of Science and Technology (HUST) ๐. As a member of Professor Cai Fuโs team, he focuses on cutting-edge areas such as binary vulnerability detection, graph neural networks (GNNs), and large language model (LLM) applications ๐ค. Shuhao ranks in the top 25% of his Ph.D. cohort and previously ranked 12th during his undergraduate studies. He has contributed to national-level cybersecurity projects and collaborated with QiAnXin Group on binary component analysis ๐ก๏ธ. Known for his diligence, curiosity, and adaptability, Shuhao aspires to lead in cybersecurity innovation ๐.
Professional profile :
Suitability for Best Researcher Award :
Shuhao Shen is a promising Ph.D. researcher at Huazhong University of Science and Technology (HUST), actively contributing to the fields of binary vulnerability detection, graph neural networks (GNNs), and large language model (LLM) applications. His work addresses some of the most pressing challenges in cybersecurity, including the secure analysis of binary componentsโan area critical to national infrastructure and digital defense. His academic performance, demonstrated by being in the top 25% of his Ph.D. cohort and previously ranking 12th in his undergraduate class, reflects consistent excellence and intellectual rigor.
Education & Experience :
๐ Ph.D. in Cyberspace Security โ Huazhong University of Science and Technology (HUST)
๐ Wuhan, China | โณ Sep 2023 โ Jun 2028 (Expected)
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๐งโ๐ซ Under Prof. Cai Fu’s supervision
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๐ Top 25% in academic ranking
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๐๏ธ First-Class Academic Scholarship (2023)
๐ Bachelor’s in Cyberspace Security โ HUST
๐ Wuhan, China | โณ Sep 2020 โ Jun 2024 (Expected)
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๐ Ranked 12th in major
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๐ Honors: Outstanding Student Cadre, Excellent Communist Youth League Cadre
๐ผ Algorithm Engineer Intern โ Wuhan CGCL Lab
๐ Wuhan, China | โณ Jul 2023 โ Dec 2024
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๐ Focus on graph neural networks and binary vulnerability detection
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๐ค Collaboration with QiAnXin Group and national-level LLM projects
Professional Development :
Shuhao Shen has developed strong skills in Python ๐ and C++ ๐ป, mastering deep learning frameworks and tools like LangChain and vLLM for large model deployment. Heโs proficient with vulnerability detection tools such as angr ๐ ๏ธ and IDA Pro ๐ง , allowing him to design efficient rule-based and AI-assisted detection schemes. His hands-on experience includes publishing in the Journal of Systems and Software and contributing to significant projects involving binary analysis ๐ฌ, function embedding, and open-source component recognition ๐งฉ. Shuhaoโs balanced skill set and real-world project exposure position him for continued growth in advanced cybersecurity development ๐.
Research Focus :
Shuhao Shenโs research is centered on cyberspace security ๐, particularly in binary vulnerability detection, graph neural networks (GNNs) ๐, and large language models (LLMs) ๐ค for software analysis. His recent work includes utilizing angr and IDA Pro for binary feature extraction and applying function embeddings for open-source component detection in C/C++ binaries ๐งฉ. He is actively exploring the intersection of machine learning and cybersecurity, aiming to create intelligent, automated vulnerability detection systems ๐. His research aligns with next-generation software supply chain protection, secure development environments, and AI-augmented security tools ๐.
Awards & Honors :
๐ National First Prize โ Undergraduate Innovation and Entrepreneurship Program (Nov 2023)
๐๏ธ First-Class Academic Scholarship โ HUST (2023)
๐ Outstanding Student Cadre โ HUST
๐ฃ Excellent Communist Youth League Cadre โ HUST
Publication Top Notes :ย
Title:ย BinCoFer: Three-stage purification for effective C/C++ binary third-party library detection
Author: Shuhao Shen
Publication Type: Journal article
Citation (placeholder): Shen, S. (Year). BinCoFer: Three-stage purification for effective C/C++ binary third-party library detection. Journal Name, Volume(Issue), pages. DOI
Conclusion :
Shuhao Shen demonstrates the research depth, technical innovation, and real-world impact that align perfectly with the goals of the Best Researcher Award. His advanced work in cybersecurity, particularly in leveraging AI to tackle binary vulnerabilities, is not only timely but also critical in an era of escalating digital threats. Given his contributions to both academic and industrial spheres, Shuhao is well-positioned to become a future leader in cybersecurity research, making him a highly deserving candidate for this recognition.
ย Dr. Jinyan Wang is a renowned professor at the School of Computer Science and Engineering, Guangxi Normal University, China. With expertise inย machine learningย and
ย She has authored over 50 impactful publications in prestigious international journals and conferences, contributing significantly to the advancement of computer science.ย
ย Dr. Wangโs academic journey includes advanced degrees in computer science and a visiting scholar position at East China Normal University.ย
ย As an educator and researcher, she is dedicated to fostering innovation and mentoring future technology leaders.ย 

ย Professor, School of Computer Science and Engineering, Guangxi Normal University, China (Current).
ย Dr. Jinyan Wang has established herself as a leading figure in computer science, specializing inย machine learningย and
ย Her academic journey includes earning three degrees from Northeast Normal University and gaining international exposure as a visiting scholar at East China Normal University. Beyond her research, Dr. Wang is dedicated to mentoring the next generation of computer scientists, contributing to both education and innovation in technology.ย
ย Simultaneously, her contributions to information security aim to safeguard digital systems and protect sensitive data from cyber threats.ย
ย With over 50 publications in leading journals and conferences, Dr. Wang is at the forefront of innovative solutions, combining theoretical insights with practical applications to address real-world challenges.ย 

ย Best Paper Awardย โ Recognized for excellence in vision-language research.
ย Graduate Fellowshipย โ National Tsing Hua University, Taiwan.
ย Outstanding Thesis Awardย โ Shaanxi Normal University, China.
ย Research Excellence Recognitionย โ vivo AI Lab, 2019.



