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ON-LINE SUPPLY VOLTAGE SCALING BASED ON IN SITU DELAY MONITORING TO ADAPT FOR PVTA VARIATIONS

机译:基于原位延迟监控以适应PVTA变化的在线电源电压标度

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The presented Pre-Error Adaptive Voltage Scaling (AVS) approach tunes the supply voltage of digital circuits dependent on the present Process, Voltage and Temperature variations as well as Aging (PVTA). By exploiting unused timing margin, produced by state-of-the-art worst-case designs, power consumption is minimized. Timing information of the circuit is obtained by in situ delay monitors (Pre-Error flip-flops), detecting late-arriving signals (pre-errors) in critical paths. Based on the occurrence of pre-errors, the voltage is adjusted by a low-overhead control unit connected to the on-chip voltage regulator. As the voltage is adapted during normal circuit operation (on-line), the randomness of the applied input pattern has to be considered. We developed a Markov chain model, based on transistor level simulations, to describe the resulting statistics of the closed-loop voltage control. With this model, the risk of overcritical voltage reductions and the effect of global and local variations on the closed-loop control can be analyzed. For an arithmetic circuit, synthesized in an industrial 65nm design-flow, an average power saving of 23% (including all overheads) is achieved for very low error rates below 1E-11.
机译:提出的预误差自适应电压缩放(AVS)方法根据当前的过程,电压和温度变化以及时效(PVTA)来调整数字电路的电源电压。通过利用由最先进的最坏情况设计产生的未使用的时序余量,可以将功耗降至最低。电路的时序信息是通过原位延迟监视器(预误差触发器)获得的,它检测关键路径中的迟到信号(预误差)。根据预错误的发生,通过连接到片上稳压器的低开销控制单元来调节电压。由于电压是在正常电路操作(在线)期间适应的,因此必须考虑所施加输入模式的随机性。我们基于晶体管级仿真开发了一个马尔可夫链模型,以描述闭环电压控制的最终统计数据。使用该模型,可以分析过临界电压降低的风险以及全局和局部变化对闭环控制的影响。对于以65nm工业设计流程合成的算术电路,对于低于1E-11的极低误码率,平均功耗可节省23%(包括所有开销)。

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