
About
Rubi Debnath is a researcher at the Technische Universität München (TUM) affiliated with the Department of Embedded Systems and Internet of Things. They focus on Time-Sensitive Networking (TSN), Machine Learning for TSN, and Optimization of TSN Scheduling Algorithms using heuristics, ILP, and DRL.
- Specializes in TSN Scheduling, Runtime Reconfiguration, and Wireless-TSN
- Actively teaches IoT Security, Software Architecture for Distributed Embedded Systems, and System Design for IoT since Winter Semester 2018/2019
- Supervised over 15 Master's and Bachelor's theses on TSN, ML, and 5G-TSN integration
- Developed simulation frameworks like CyclicSim and 5GTQ
Research Trends: Recent publications address TSN scheduling optimization, ML-assisted traffic classification, and 5G-TSN integration, with a focus on low-latency communication and industrial automation.
Scientific Awards:
- IEEE ComSoc Four Minute PhD Thesis Competition - Third Prize Winner (Round 2), Round 1 Winner
- Global Fellows Program - Imperial College London, TUM, and NTU Singapore
Advising and Grants: Supervised 15+ theses on TSN, ML, and 5G-TSN. Involved in the 6G Research Hub "6G-Life" and nIoVe cybersecurity framework for IoT.
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