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Panoptic DVS: A Fine-Grained Dynamic Voltage Scaling Framework for Energy Scalable CMOS Design

机译:Panoptic DVS:用于能量可扩展CMOS设计的细粒度动态电压缩放框架

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The energy efficiency of a CMOS architecture processing dynamic workloads directly affects its ability to provide long battery lifetimes while maintaining required application performance. Existing scalable architecture design approaches are often limited in scope, focusing either only on circuit-level optimizations or architectural adaptations individually. In this paper, we propose a circuit/architecture co-design methodology called Panoptic Dynamic Voltage Scaling (PDVS) that makes more efficient use of common circuit structures and algorithm-level processing rate control. PDVS expands upon prior work by using multiple component-level PMOS header switches to enable fine-grained rate control, allowing efficient dithering among statically scheduled algorithms with sub-block energy savings. This way, PDVS is able to achieve a wide variety of processing rates to match incoming workload as closely as possible, while each iteration takes less energy to process than on architectures with coarser levels of rate control. Measurements taken from a fabricated 90nm test chip characterize both savings and overheads and are used to inform PDVS synthesis decisions. Results show that PDVS consumes up to 34% and 44% less energy than Multi-VDD and Single-VDD systems, respectively.
机译:CMOS架构处理动态工作负载的能效直接影响其在保持所需应用性能的同时提供长电池寿命的能力。现有的可扩展架构设计方法通常在范围内限制,仅关注电路级优化或架构适应。在本文中,我们提出了一种称为Panoptic动态电压缩放(PDV)的电路/架构共设计方法,可以更有效地利用公共电路结构和算法级处理速率控制。 PDVS通过使用多个组件级PMOS头部开关在现有工作时展开,以实现细粒度控制,允许在具有子块节能的静态调度算法之间有效地抖动。这样,PDV能够实现各种处理速率以尽可能地匹配传入的工作量,而每次迭代的能量较少,而且比在具有粗略速率控制级别的架构上的架构进行加工。从制造的90nm测试芯片中取出的测量表征了储蓄和开销,并用于通知PDVS合成决策。结果表明,PDV分别消耗多达34%,低于多VDD和单VDD系统的能量较低。

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