Distributed compilation
Qubit mapping, circuit transformation, Telegate and Teledata scheduling, and dependency-aware execution across capacity-constrained QPUs.
Quantum systems · networking · fault tolerance
I develop system-level methods for reliable and scalable quantum computation across interconnected QPUs, connecting fault tolerance, quantum networking, compilation, and resource optimization.

Research
My research centers on distributed and fault-tolerant quantum computing. I study how logical operations, error correction, entanglement supply, communication, and constrained hardware resources interact when quantum workloads span multiple processors.
Qubit mapping, circuit transformation, Telegate and Teledata scheduling, and dependency-aware execution across capacity-constrained QPUs.
Surface-code-based computation, logical operations, magic-state factories, buffers, and QEC-aware allocation and scheduling.
End-to-end models spanning generation, purification, encoding, QEC, storage aging, and remote logical execution.
Photonic interconnects, scalable switching and routing, communication-aware resource management, and performance modeling.
Selected work
Background
Advisor: Prof. Yuanyuan Yang. Research in distributed quantum systems, fault-tolerant architectures, compilation, scheduling, resource allocation, and quantum interconnects.
ESE 333 Real-Time Operating Systems, ESE 123 Introduction to Electrical and Computer Engineering, and ESE 272 Electronics.
Developed and evaluated CNN-, ResNet-, and Transformer-based breast-ultrasound classification pipelines using Python and PyTorch.
Methods
Contact
I am interested in research collaborations and opportunities in distributed quantum computing, fault-tolerant systems, quantum networking, compilation, and architecture.