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Always-on motion detection with application-level error control on a near-threshold approximate computing platform

机译:在近阈值近似计算平台上的应用级别错误控制始终开启运动检测

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Pushing supply voltages in the near-threshold region is today one of the main avenues to minimize power consumption in digital integrated circuits. This works well with logic units, but memory operations on standard six-transistor static RAM (6T-SRAM) cells become unreliable at low voltages. Standard cell memory (SCM) works fully reliably at near-threshold voltages, but has much lower area density than 6T-SRAM and thus it is too costly. Hybrid memory designs based on a combination of 6T-SRAM and SCM have the potential to combine the best from both worlds, provided that appropriate software techniques for their management are used. Several embedded applications exhibit inherent tolerance to data approximation: this feature can be exploited by mapping error-tolerant data onto unreliable 6T-SRAM while keeping critical information error-free in SCM. However, one key issue is bounding error when it is input-data dependent. In this work we consider the motion detection stage of a computer vision pipeline, which is a major power bottleneck in always-on computer vision systems. We introduce an application-level metric for defining suitable tolerance thresholds and an associated runtime mechanism for their control. At each accuracy checkpoint the error on the computation is checked. If the runtime detects that an error threshold has been exceeded, the voltage settings are adjusted. Using this methodology, we achieve a significant reduction of the total energy consumption (up to 33% in the best case) while maintaining a tight control on quality of results.
机译:推动近阈值区域中的电源电压是如今的主要途径,以最大限度地减少数字集成电路的功耗。这适用于逻辑单元,但标准六晶体管静态RAM(6T-SRAM)电池的内存操作在低电压下变得不可靠。标准单元存储器(SCM)在接近阈值电压下完全可靠地工作,但具有远低于6T-SRAM的区域密度,因此它太昂贵了。基于6T-SRAM和SCM组合的混合存储器设计有可能与两全其世界相结合的可能性,只要使用适当的软件技术。若干嵌入式应用程序表现出对数据近似的固有公差:可以通过将差错数据映射到不可靠的6T-SRAM上的,同时保持SCM中无差错的信息来利用此功能。但是,当依赖于输入数据时,一个关键问题是界定错误。在这项工作中,我们考虑计算机视觉管道的运动检测阶段,这是始终是关于计算机视觉系统的主要功率瓶颈。我们介绍了一个用于定义合适的公差阈值和相关的运行时机制的应用程序级指标。在每个准确性检查点,检查计算上的错误。如果运行时检测到已超过错误阈值,则调整电压设置。使用这种方法,我们实现了总能量消耗的显着降低(最佳情况下最多33%),同时保持对结果质量的紧密控制。

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