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Communication Dans Un Congrès Année : 2020

Broadcast Mechanism Based on Hybrid Wireless/Wired NoC for Efficient Barrier Synchronization in Parallel Computing

Résumé

Parallel computing is essential to achieve the manycore architecture performance potential, since it utilizes the parallel nature provided by the hardware for its computing. These applications will inevitably have to synchronize its parallel execution: for instance, broadcast operations for barrier synchronization. Conventional network-on-chip architectures for broadcast operations limit the performance as the synchronization is affected significantly due to the critical path communications that increase the network latency and degrade the performance drastically. A Wireless network-on-chip offers a promising solution to reduce the critical path communication bottlenecks of such conventional architectures by providing hardware broadcast support. We propose efficient barrier synchronization support using hybrid wireless/wired NoC to reduce the cost of broadcast operations. The proposed architecture reduces the barrier synchronization cost up to 42.79% regarding network latency and saves up to 42.65% communication energy consumption for a subset of applications from the PARSEC benchmark.
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Dates et versions

hal-02456717 , version 1 (27-01-2020)

Identifiants

  • HAL Id : hal-02456717 , version 1

Citer

Hemanta Kumar Mondal, Navonil Chatterjee, Rodrigo Cataldo, Jean-Philippe Diguet. Broadcast Mechanism Based on Hybrid Wireless/Wired NoC for Efficient Barrier Synchronization in Parallel Computing. Asia and South Pacific Design Automation Conference (ASP-DAC), Jan 2020, Beijing, China. ⟨hal-02456717⟩
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