
Virtualisation first and cloud computing later has led to a consolidation of workload in data centres that also comprises latency-sensitive application domains such as High Performance Computing and telecommunication. These types of applications require strict latency guarantees to maintain their Quality of Service. In virtualised environments with their churn, this demands for adaptability and flexibility to satisfy. At the same time, the mere scale of the infrastructures favours commodity (Ethernet) over specialised (Infiniband) hardware. For that purpose, this paper introduces a novel traffic management algorithm that combines Rate-limited Strict Priority and Deficit round-robin for latency-aware and fair scheduling respectively. In addition, we present an implementation of this algorithm on the bmv2 P4 software switch by evaluating it against standard priority-based and best-effort scheduling.
8th IEEE International Conference on Cloud Networking (IEEE CloudNet 2019)
Software-defined networking (Computer network technology), Networking and Internet Architecture (cs.NI), FOS: Computer and information sciences, OpenFlow (Computer network protocol), Cloud Computing, Computer Science - Networking and Internet Architecture, OpenFlow, Traffic Management, Cloud computing, Software-defined networking, High performance computing, Hochleistungsrechnen, info:eu-repo/classification/ddc/004
Software-defined networking (Computer network technology), Networking and Internet Architecture (cs.NI), FOS: Computer and information sciences, OpenFlow (Computer network protocol), Cloud Computing, Computer Science - Networking and Internet Architecture, OpenFlow, Traffic Management, Cloud computing, Software-defined networking, High performance computing, Hochleistungsrechnen, info:eu-repo/classification/ddc/004
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| influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | Average | |
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