Invasive Tightly Coupled Processor Arrays / by VAHID LARI
By: Lari, Vahid
Material type:
E-bookSeries: Computer Architecture and Design MethodologiesPublisher: Singapore : Springer, 2016Description: 1 recurso en línea (XXIII, 149 p.) 52 il., 49 il. col..ISBN: 9789811010583.Subject: Microprocesadores
| Item type | Current library | Collection | Call number | Copy number | Status | Date due | Barcode | Item holds | |
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Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | QA76.5 L375 2016 EB (Browse shelf(Opens below)) | .i11616659 | Acceso electrónico | eBOOK .i11616659 |
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| QA76.5 ES International Journal of Parallel Programming | QA76.5 ES Business & Information Systems Engineering | QA76.5 ES The International Journal of High Performance Computing Applications | QA76.5 L375 2016 EB Invasive Tightly Coupled Processor Arrays | QA76.54 2008 EB Real-Time Massive Model Rendering | QA76.54 2018 EB Real-Time Modelling and Processing for Communication Systems : Applications and Practices | QA76.54 2019 EB Handbook of Real-Time Computing |
Introduction -- Invasive Tightly Coupled Processor Arrays -- Self-adaptive Power and Energy Management for TCPAs -- On-Demand Fault Tolerance on Massively Parallel Processor Arrays -- Conclusions and Future Work.
This book introduces new massively parallel computer (MPSoC) architectures called invasive tightly coupled processor arrays. It proposes strategies, architecture designs, and programming interfaces for invasive TCPAs that allow invading and subsequently executing loop programs with strict requirements or guarantees of non-functional execution qualities such as performance, power consumption, and reliability. For the first time, such a configurable processor array architecture consisting of locally interconnected VLIW processing elements can be claimed by programs, either in full or in part, using the principle of invasive computing. Invasive TCPAs provide unprecedented energy efficiency for the parallel execution of nested loop programs by avoiding any global memory access such as GPUs and may even support loops with complex dependencies such as loop-carried dependencies that are not amenable to parallel execution on GPUs. For this purpose, the book proposes different invasion strategies for claiming a desired number of processing elements (PEs) or region within a TCPA exclusively for an application according to performance requirements. It not only presents models for implementing invasion strategies in hardware, but also proposes two distinct design flavors for dedicated hardware components to support invasion control on TCPAs. .
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