Future many-core systems need to handle high power density and chip temperature effectively. Some cores in many-core systems need to be turned off or ‘dark’ to manage chip power and thermal density. This phenomenon is also known as the dark silicon problem. This problem prevents many-core systems from utilizing and gaining improved performance from a large number of processing cores. This paper presents a dynamic thermal-aware performance optimization of dark silicon many-core systems (DTaPO) technique for optimizing dark silicon a many-core system performance under temperature constraint. The proposed technique utilizes both task migration and dynamic voltage frequency scaling (DVFS) for optimizing the performance of a many-core system whi...
In the dark silicon era, a fundamental problem is given a real-time computation demand, how to deter...
In the dark silicon era, a fundamental problem is given a real-time computation demand, how to deter...
Limitation on power budget in many-core systems leaves a fraction of on-chip resources inactive, ref...
Contemporary thermally-constrained techniques for optimizing dark silicon many-core system performan...
Contemporary thermally-constrained techniques for optimizing dark silicon many-core system performan...
Power consumption in Complementary Metal Oxide Semiconductor (CMOS) technology has escalated to a po...
Management of a problem recently known as “dark silicon” is a new challenge in multicore designs. Pr...
As an effective scheme often adopted for performance tuning in many-core processors, task migration ...
A significant number of processing cores in any many-core systems nowadays and likely in the future ...
With continuous IC(Integrated Circuit) technology size scaling, more and more transistors are integr...
The inactive part of a chip, termed as Dark Silicon, is extending rapidly by introducing new technol...
Over the past decades, the shrinking transistor size enabled more transistors to be integrated into ...
Fueled by increasing human appetite for high computing performance, semiconductor technology has now...
Fueled by increasing human appetite for high computing performance, semiconductor technology has now...
Fueled by increasing human appetite for high computing performance, semiconductor technology has now...
In the dark silicon era, a fundamental problem is given a real-time computation demand, how to deter...
In the dark silicon era, a fundamental problem is given a real-time computation demand, how to deter...
Limitation on power budget in many-core systems leaves a fraction of on-chip resources inactive, ref...
Contemporary thermally-constrained techniques for optimizing dark silicon many-core system performan...
Contemporary thermally-constrained techniques for optimizing dark silicon many-core system performan...
Power consumption in Complementary Metal Oxide Semiconductor (CMOS) technology has escalated to a po...
Management of a problem recently known as “dark silicon” is a new challenge in multicore designs. Pr...
As an effective scheme often adopted for performance tuning in many-core processors, task migration ...
A significant number of processing cores in any many-core systems nowadays and likely in the future ...
With continuous IC(Integrated Circuit) technology size scaling, more and more transistors are integr...
The inactive part of a chip, termed as Dark Silicon, is extending rapidly by introducing new technol...
Over the past decades, the shrinking transistor size enabled more transistors to be integrated into ...
Fueled by increasing human appetite for high computing performance, semiconductor technology has now...
Fueled by increasing human appetite for high computing performance, semiconductor technology has now...
Fueled by increasing human appetite for high computing performance, semiconductor technology has now...
In the dark silicon era, a fundamental problem is given a real-time computation demand, how to deter...
In the dark silicon era, a fundamental problem is given a real-time computation demand, how to deter...
Limitation on power budget in many-core systems leaves a fraction of on-chip resources inactive, ref...