English

Per-Bank Memory Bandwidth Regulation for Predictable and Performant Real-Time System

Hardware Architecture 2026-03-30 v1

Abstract

Modern multicore system-on-chips (SoCs) share off-chip DRAM across cores, where bank-level interference can significantly degrade performance and threaten real-time guarantees. While prior work has focused on per-core bandwidth regulation, these approaches treat main memory as a monolithic resource and overlook DRAM's inherent bank-level parallelism. We show that DRAM interference is fundamentally a bank-level phenomenon. We characterize the guaranteed bandwidth of modern DRAM, demonstrate that it remains effectively constant across generations, and show how this limitation can be exploited by single-bank attacks. These results highlight the need for bank-aware memory management for predictable and efficient real-time systems. We design and implement a novel per-bank memory bandwidth regulator in an open-source RISC-V SoC and evaluate it using FireSim with both synthetic and real-world workloads. Our evaluation demonstrates that per-bank regulation effectively mitigates adversarial bank contention and achieves a 5.74x average throughput improvement for best-effort workloads over traditional bank-oblivious approaches while providing the same-level of performance isolation guarantees for real-time workloads.

Keywords

Cite

@article{arxiv.2603.26054,
  title  = {Per-Bank Memory Bandwidth Regulation for Predictable and Performant Real-Time System},
  author = {Connor Rudy Sullivan and Amin Mamandipoor and Cole Ridge Strickler and Heechul Yun},
  journal= {arXiv preprint arXiv:2603.26054},
  year   = {2026}
}

Comments

RTAS 2026

R2 v1 2026-07-01T11:40:11.503Z