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Low power design methodology for signal processing systems using lightweight dataflow techniques

机译:低功耗设计方法,用于使用轻量级数据流技术的信号处理系统

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Dataflow modeling techniques facilitate many aspects of design exploration and optimization for signal processing systems, such as efficient scheduling, memory management, and task synchronization. The lightweight dataflow (LWDF) programming methodology provides an abstract programming model that supports dataflow-based design and implementation of signal processing hardware and software components and systems. Previous work on LWDF techniques has emphasized their application to DSP software implementation. In this paper, we present new extensions of the LWDF methodology for effective integration with hardware description languages (HDLs), and we apply these extensions to develop efficient methods for low power DSP hardware implementation. Through a case study of a deep neural network application for vehicle classification, we demonstrate our proposed LWDF-based hardware design methodology, and its effectiveness in low power implementation of complex signal processing systems.
机译:DataFlow建模技术有助于对信号处理系统的设计探索和优化的许多方面,例如有效的调度,内存管理和任务同步。轻量级数据流(LWDF)编程方法提供了一种抽象编程模型,支持基于数据流的设计和实现信号处理硬件和软件组件和系统。以前的LWDF技术在DSP软件实现中强调了它们的应用。在本文中,我们呈现了LWDF方法的新扩展,以便与硬件描述语言(HDL)进行有效集成,我们应用这些扩展以开发用于低功耗DSP硬件实现的有效方法。通过对车辆分类深度神经网络应用的案例研究,我们展示了我们所提出的基于LWDF的​​硬件设计方法,以及其在复杂信号处理系统的低功耗实现中的有效性。

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