Accurate and Low-Overhead Dynamic Detection and Prediction of Program Phases Using Branch Signatures
Resumo
We introduce a hardware-only program phase detection and prediction architecture, which improves on the existing proposal by forming the execution footprints using simple bit-vectors called "branch signatures" to capture the set of branches touched during an execution interval. Previous work, in contrast, used the number of instructions executed between the branches to form the footprints. Such a modification significantly simplifies the phase detection logic and also affords numerous additional advantages, such as the detection of fewer distinct phases, less frequent phase transitions and higher phase prediction accuracies. We also show, through extensive simulations, that our simplified phase detection logic performs on par with the original proposal on several phase-based optimizations, such as the issue width adaptation and the exploitation of frequent value locality. At the same time, the proposed logic requires only a fraction of the storage needed by the previous scheme to keep the phase-related information.
Palavras-chave:
Phase detection, Hardware, Computer architecture, Proposals, Phase frequency detector, Logic arrays, Phased arrays, High performance computing, Computer science, Accuracy, program phases
Publicado
29/10/2008
Como Citar
VIJAYN, Balaji; PONOMAREV, Dmitry V..
Accurate and Low-Overhead Dynamic Detection and Prediction of Program Phases Using Branch Signatures. In: INTERNATIONAL SYMPOSIUM ON COMPUTER ARCHITECTURE AND HIGH PERFORMANCE COMPUTING (SBAC-PAD), 20. , 2008, Campo Grande/MS.
Anais [...].
Porto Alegre: Sociedade Brasileira de Computação,
2008
.
p. 3-10.
