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首页> 外文期刊>IEEE transactions on multimedia >Complexity Model Based Proactive Dynamic Voltage Scaling for Video Decoding Systems
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Complexity Model Based Proactive Dynamic Voltage Scaling for Video Decoding Systems

机译:基于复杂度模型的视频解码系统主动动态电压缩放

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摘要

Significant power savings can be achieved on voltage/ frequency configurable platforms by dynamically adapting the frequency and voltage according to the workload (complexity). Video decoding is one of the most complex tasks performed on such systems due to its computationally demanding operations like inverse filtering, interpolation, motion compensation and entropy decoding. Dynamically adapting the frequency and voltage for video decoding is attractive due to the time-varying workload and because the utility of decoding a frame is dependent only on decoding the frame before the display deadline. Our contribution in this paper is twofold. First, we adopt a complexity model that explicitly considers the video compression and platform specifics to accurately predict execution times. Second, based on this complexity model, we propose a dynamic voltage scaling algorithm that changes effective deadlines of frame decoding jobs. We pose our problem as a buffer-constrained optimization and show that significant improvements can be achieved over the state-of-the-art dynamic voltage scaling techniques without any performance degradation.
机译:通过根据工作负载(复杂度)动态调整频率和电压,可以在电压/频率可配置平台上实现大量的功率节省。视频解码是在此类系统上执行的最复杂的任务之一,这是因为视频解码对计算的要求很高,例如逆滤波,内插,运动补偿和熵解码。由于工作量随时间变化并且动态地调整视频解码的频率和电压是有吸引力的,并且因为解码帧的效用仅取决于在显示截止日期之前对帧进行解码。我们在本文中的贡献是双重的。首先,我们采用复杂性模型,该模型明确考虑了视频压缩和平台细节,以准确预测执行时间。其次,基于此复杂度模型,我们提出了一种动态电压缩放算法,该算法可更改帧解码作业的有效期限。我们将问题摆在缓冲区受限的优化位置,并表明可以在不降低性能的情况下,对最新的动态电压缩放技术进行重大改进。

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