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Cheriton School of Computer Science

Master's Thesis Presentation • Computer Graphics • VR GAViewer: Immersive Visualisation and Direct Manipulation of the Conformal Model in Virtual Reality | Cheriton School of Computer Science | University of Waterloo Seminar • Algorithms and Complexity • Lower Bounds for Private Optimization Via Reconstruction Attacks | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Data Systems • Efficient Oblivious Query Processing for Property Graph Databases | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Artificial Intelligence | Machine Learning • Inferred Author Gender as a Variable Affecting LLM Behaviour | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Bioinformatics • From Candidates to Evidence: Diagnostics for Trustworthy Biological Discovery | Cheriton School of Computer Science | University of Waterloo PhD Defence • Algorithms and Complexity • Graph Property Testing and the Container Method | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Software Engineering • An Empirical Study of Transitive Vulnerability Exposure in PyPI | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Human–Computer Interaction • The Design and Development of a Virtual Patient System for Medical Education | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Software Engineering • Decoupling CLI Agent Scaffolding to Internalize Planning Across Scaffolds | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Algorithms and Complexity • On the Black-Box Impossibility of Hardness in TFNP from One-Way Functions | Cheriton School of Computer Science | University of Waterloo Seminar • Algorithms and Complexity • Geometric Distances for Curves and Graphs: From Matching to Simplification | Cheriton School of Computer Science | University of Waterloo PhD Defence • Computer Algebra | Symbolic Computation • On the Effective Algebraic Geometry of Determinantal Varieties | Cheriton School of Computer Science | University of Waterloo Seminar • Algorithms and Complexity • Computing with Full Memory in 2026 | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Algorithms and Complexity • Bipartite Density: From Mixing Time to Local Algorithms for Dense Subgraphs | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Cryptography, Security, and Privacy (CrySP) • Upgrading Security Properties for Updatable Public-Key Encryption through Modular Transformations | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Programming Languages • The Defensive Tax: Price of Defenses That Never Defend | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Algorithms and Complexity • Algorithms for Analytic Combinatorics: Positivity Bounds and D-finite Operators | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Cryptography, Security, and Privacy (CrySP) • IPFSCover: Examining Website Fingerprinting Threats in the InterPlanetary File System | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Programming Languages • Reified Generic Types for Scala 3 on the JVM | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Artificial Intelligence | Machine Learning • Abstract Reasoning with Vector Symbolic Algebras | Cheriton School of Computer Science | University of Waterloo Master’s Thesis Presentation • Artificial Intelligence | Machine Learning • Learning at Test Time: Adapting Models with Synthetic Data and Environment Interaction | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Formal Methods • Counterexample Guided Abstraction and Refinement in Dash Models | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Artificial Intelligence | Machine Learning • Beyond Semantic Similarity: Direct Corpus Interaction for Agentic Search | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Artificial Intelligence | Machine Learning • OpenResearcher: Reproducible Training for Long-Horizon Deep Research Agents | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Software Engineering • SLA-Awareness for AI-assisted coding | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Software Engineering • Context-Aware CodeLLM Eviction for AI-assisted Coding | Cheriton School of Computer Science | University of Waterloo PhD Seminar • Bioinformatics • Recurrent Energy-Based Modeling of Side-Chain Allostery | Cheriton School of Computer Science | University of Waterloo Seminar • Bioinformatics | Artificial Intelligence • Advancing Drug Discovery with FAIR Data and Explainable AI in Biomedical Research | Cheriton School of Computer Science | University of Waterloo PhD Defence • Artificial Intelligence | Machine Learning | Bioinformatics • Generative Synthetic Data for Pre-Clinical Drug Discovery | Cheriton School of Computer Science | University of Waterloo PhD Defence • Human–Computer Interaction • Tangible World-in-Miniature Interaction in Virtual Reality | Cheriton School of Computer Science | University of Waterloo
Master’s Thesis Presentation • Systems and Networking • R...
Mayuri Punithan · 2026-07-28 · via Cheriton School of Computer Science

Please note: This master’s thesis presentation will take place in DC 2314.

Qishen Wu, Master’s candidate
David R. Cheriton School of Computer Science

Supervisor: Professor Martin Karsten

Graphics processing units (GPUs) have become prevalent accelerators for modern computational workloads. However, GPUs consume an ever-increasing amount of energy, both in absolute and relative terms, so their economic and environmental impact has made energy efficiency an important systems objective. Improving the energy efficiency of GPU workload execution can be approached at multiple layers: hardware design, software implementation, and runtime configuration. Focusing on runtime parameters, this work does not aim to redesign hardware or modify software implementations. Instead, it builds upon first principles of hardware power modeling and microbenchmark observations to establish a conceptual framework for GPU power draw. The corresponding hardware-level power draw model is transformed into an intuitive workload execution model that uses externally controllable input parameters: processor frequency and workload batching. These parameters lend themselves to straightforward configuration rules that do not require extensive energy profiling or workload-specific parameter exploration. The findings are evaluated through experiments with large language model (LLM) inference workloads and the model is shown to closely approximate the energy consumption trends of real-world workloads. This demonstrates that the given rules can serve as lightweight yet effective guidance for improving the energy efficiency of practical GPU workload executions.