首页> 外文期刊>Journal of signal processing systems for signal, image, and video technology >DIFFS: A Low Power, Multi-Mode, Multi-Standard Flexible Digital Front-End for Sensing in Future Cognitive Radios
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DIFFS: A Low Power, Multi-Mode, Multi-Standard Flexible Digital Front-End for Sensing in Future Cognitive Radios

机译:DIFFS:用于未来认知无线电中的传感的低功耗,多模式,多标准,灵活的数字前端

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Cognitive Radios provide communication devices with the flexibility to adjust to varying network and channel conditions. For this to be fully realizable spectrum sensing and signal reception have to happen simultaneously and have to require as little power as necessary to function in handheld devices. This work argues for the need of flexible digital-front ends as indispensable building block, able to perform control operations over the analog front-end and to perform sensing and synchronization procedures without the need of power consuming baseband processors. A low power, reconfigurable digital front-end that supports concurrent synchronization and sensing of high-throughput wireless standards is presented. Multiple operating modes, useful for various communication standards, such as LTE, WLAN and DVB-T are introduced and analyzed. The digital front-end has been implemented in 65 nm CMOS technology resulting in a chip area of 6.4 mm2. Fine grain clock gating allows synchronization at 4 mW and sensing at 7 mW power consumption. Experiments in combination with a reconfigurable analog front-end show that a 1.7 GHz wide frequency band can be scanned based on energy detection in an exceptionally low time window of 10 ms while consuming 13 mW power and that coarse energy detection can speed-up the sensing process. Furthermore, advanced feature detection for DVB-T and LTE signals is implemented and measured. Low power sensing of DVB-T signals shows that a target false alarm rate of 10 % and a detection probability of 90 % at an input power level of-106 dBm while consuming 7 mW power are possible. Synchronization-aided FFT-based LTE sensing with leakage cancellation was experimentally validated for various bandwidths showing a power consumption of maximum 20 mW.
机译:认知无线电为通信设备提供了适应各种网络和信道条件的灵活性。为此,频谱感测和信号接收必须同时发生,并且所需的功率必须很小,才能在手持设备中发挥作用。这项工作要求灵活的数字前端作为必不可少的构建块,能够在模拟前端上执行控制操作并执行感测和同步过程,而无需消耗功率的基带处理器。提出了一种低功耗,可重配置的数字前端,该前端支持并发同步和感应高吞吐量无线标准。引入并分析了对各种通信标准(例如LTE,WLAN和DVB-T)有用的多种操作模式。数字前端采用65 nm CMOS技术实现,芯片面积为6.4 mm2。细粒度时钟门控允许4 mW的同步和7 mW的功耗检测。实验结合可重构模拟前端显示,基于能量检测,可以在10 ms的极低时间窗口中扫描1.7 GHz宽频带,同时消耗13 mW的功率,并且粗略的能量检测可以加快检测速度处理。此外,还实现并测量了DVB-T和LTE信号的高级功能检测。 DVB-T信号的低功率感测表明,在输入功率水平为-106 dBm的同时,消耗7 mW的功率时,目标误报警率为10%,检测概率为90%。通过实验验证了具有泄漏消除功能的基于同步的基于FFT的LTE感测对于各种带宽的最大功耗为20 mW。

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