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Ultra-Low Power Data Storage for Sensor Networks

机译:用于传感器网络的超低功耗数据存储

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摘要

Local storage is required in many sensor network applications, both for archival of detailed event information, as well as to overcome sensor platform memory constraints. While extensive measurement studies have been performed to highlight the trade-off between computation and communication in sensor networks, the role of storage has received little attention. The storage subsystems on currently available sensor platforms have not exploited technology trends, and consequently the energy cost of storage on these platforms is as high as that of communication. Current flash memories, however, offer a low-priced, high-capacity and extremely energy-efficient storage solution. In this paper, we perform a comprehensive evaluation of the active and sleep-mode energy consumption of available flash-based storage options for sensor platforms. Our results demonstrate more than a 100-fold decrease in per-byte energy consumption for surface-mount parallel NAND flash in comparison with the MicaZ on-board serial flash. In addition, this dramatically reduces storage energy costs relative to communication, introducing a new dimension in traditional computation vs communication trade-offs. Our results have significant ramifications on the design of sensor platforms as well as on the energy consumption of sensing applications. We quantify the potential energy gains for two commonly used sensor network services: communication and in-network data aggregation. Our measurements show significant improvements in each service: 50-fold and up to 10-fold reductions in energy for communication and data aggregation respectively.
机译:在许多传感器网络应用程序中都需要本地存储,既可用于存档详细的事件信息,又可克服传感器平台内存的限制。尽管已经进行了广泛的测量研究以强调传感器网络中计算与通信之间的折衷,但是存储的作用却很少受到关注。当前可用的传感器平台上的存储子系统尚未利用技术趋势,因此这些平台上的存储能源成本与通信成本一样高。但是,当前的闪存提供了一种低价,大容量和极节能的存储解决方案。在本文中,我们对传感器平台可用的基于闪存的存储选项的活动和睡眠模式能耗进行了全面评估。我们的结果表明,与MicaZ板载串行闪存相比,表贴并行NAND闪存的每字节能耗降低了100倍以上。此外,与通信相比,这大大降低了存储能源成本,在传统计算与通信的权衡之间引入了新的维度。我们的结果对传感器平台的设计以及传感应用的能耗产生了重大影响。我们量化了两种常用传感器网络服务的潜在能量收益:通信和网络内数据聚合。我们的测量结果表明,每项服务都有显着改进:通信和数据聚合的能耗分别降低了50倍和10倍。

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    Mathur, Gaurav;

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  • 年度 2006
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