Reducing signal processing energy consumption in solar/battery powered ubiquitous networks: Joint optimization of communication algorithms/circuits, and software design/testing
Reducing signal processing energy consumption in solar/battery powered ubiquitous networks: Joint optimization of communication algorithms/circuits, and software design/testing
批准号:
356650-2007
负责人:
Khandani, AmirKeyvan
金额:
$7.01万
依托单位:
依托单位国家:
加拿大
项目类别:
Strategic Projects Supplemental Competition
财政年份:
2007
资助国家:
加拿大
项目状态:
已结题
起止时间:
2007-01-01 至 2008-12-31
中文摘要
无线网络不断发展,以更低的成本支持更高的数据速率和更广的覆盖范围。这反过来需要广泛的信号处理,这严重影响了现有的“电池寿命”的限制。与此同时,电池技术正在进步,但与预计的需求相比,速度要慢得多。这使得电池寿命成为未来许多无线网络成本效益实现的主要瓶颈。预计未来十年的需求远远超出当前技术的承受能力,需要突破才能实现这些迫切需求。传统上,电池寿命问题一直是资源有限的移动设备中的一个问题,然而,在许多新兴场景中,无线接入点也依赖于使用太阳能电池充电的电池。在加拿大这样一个人口密度低、通信基础设施有限的幅员辽阔的国家,获得这样的太阳能无线基础设施尤为重要。这种太阳能供电的无线网络将有可能为许多遥远的地区提供负担得起的通信,否则这将是不可能的,因为使用电线为远程无线节点供电的成本过高。另一个影响很大的例子是加拿大北部的野生动物监测,那里的人口密度非常低,以及艾伯塔省石油补丁的大规模基础设施监测。这项拟议的研究将探索几个新的方向,以提高无线系统的功率效率,无论是手持设备还是主干网络。这包括将软件工程应用于“最小功率消耗”问题的新方法。此外,无线节点上运行的大多数程序通常依赖于输入数据,由于底层无线网络的性质,输入数据具有随机延迟。研究调查了这种延迟的统计行为,以提供:(I)优化性能的设计规则,以及(Ii)测试技术,以评估在各种网络负载和传输可靠性下的性能。
英文摘要
Wireless networks are constantly evolving to support higher data rates and wider coverage at a lower cost. Thisin turn requires extensive signal processing which is severely affected by the existing limitations on "batterylife". Meanwhile, the battery technology is advancing, however, at a much slower rate as compared to theprojected needs. This makes the battery life the primary bottleneck in the cost effective realization of manyfuture wireless networks. The projected needs over the next decade are far beyond the reach of the currenttechnology and breakthroughs are needed to realize these urgent requirements. Traditionally, the problem ofbattery life has been an issue in the resource limited mobile units, however, there are many emerging scenariosin which the wireless access points also rely on batteries charged using solar cells. Access to suchsolar-powered wireless infrastructure is particularly important in a vast country like Canada with lowpopulation density and limited communication infrastructures. Such solar-powered wireless networks willmake it possible to provide affordable communication to many distant areas which would be impossibleotherwise due to the excessive cost in powering the remote wireless nodes using electrical wiring. Anotherexample of large impact is wild life monitoring in the Northern Canada which have very low populationdensity, and large-scale infrastructure surveillance in oil patch in Alberta. The proposed research willinvestigate several novel directions to increase the power efficiency of wireless systems, for both handheldunits and the backbone network. This includes novel methods in the application of software engineering to theproblem of "minimizing power consumption". In addition, most of the programs running on wireless nodesusually rely on input data that arrive with a random delay due to the nature of the underlying wireless network.The research investigates the statistical behavior of such delays towards providing: (i) design rules foroptimized performance, and (ii) testing techniques to evaluate the performance under various network loadsand transmission reliability.
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