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An ultra-low-power FSK receiver for space and terrestrial communications.

机译:用于空间和地面通信的超低功率FSK接收器。

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摘要

A very low power FSK receiver has been designed for dual-purpose operation: deep space applications and general purpose baseband processing. The receiver is based on a novel, almost all-digital architecture. It supports a wide range of data rates and is very robust against large and fast frequency offsets due to Doppler. The architecture utilizes subsampling and 1-bit data processing together with an FFT based detection scheme to enable power consumption dramatically lower than a conventional implementation. Novel and power efficient algorithms are derived for frequency and timing acquisition and tracking. Extensive system level simulations and analytical derivations are used to find the optimal and critical system level parameters. A system/hardware co-design approach allows us to use a number of circuit level power reduction techniques while still meeting system level constraints. In particular, we designed a combination of fully-parallel and word-serial decimation stages to simultaneously optimize power consumption and silicon area. We also designed a very efficient FFT block that uses approximate arithmetic and pruning to greatly reduce overall complexity. Additional modules, such as DDFS and magnitude computation, have also been optimized in view of the targeted system parameters: signal to noise ratio and BER. The entire architecture has been made maximally flexible and power efficient by utilizing local clock gating and a simple inter-stage handshaking mechanism. The receiver has been implemented in 0.25mum CMOS technology, and takes up under 1 mm2. The power consumption is below 100muW for data rates below 20 kbps. Rates up to 2Mbps are supported. The worst case BER performance of the receiver is just 2.5 dB and 0.5 dB below that of the optimal uncoded non-coherent FSK receiver for space and terrestrial applications respectively at a BER of 10-5.
机译:一种非常低功耗的FSK接收机已经设计用于双重用途:深空应用和通用基带处理。该接收器基于新颖的,几乎全数字的架构。它支持广泛的数据速率,并且对于多普勒引起的大而快速的频率偏移非常稳定。该架构利用子采样和1位数据处理以及基于FFT的检测方案,使功耗大大低于传统实现。推导了新颖且高效的算法,用于频率和时序采集与跟踪。广泛的系统级仿真和分析推导用于找到最佳和关键的系统级参数。系统/硬件协同设计方法使我们可以使用多种电路级功耗降低技术,同时仍然满足系统级约束。特别是,我们设计了完全并行和字串行抽取阶段的组合,以同时优化功耗和芯片面积。我们还设计了一个非常高效的FFT模块,该模块使用近似算术和修剪功能来大大降低总体复杂度。鉴于目标系统参数:信噪比和BER,还优化了其他模块,例如DDFS和幅度计算。利用本地时钟门控和简单的级间握手机制,使整个架构具有最大的灵活性和功率效率。该接收器采用0.25μmCMOS技术实现,占用空间不到1 mm2。对于低于20 kbps的数据速率,功耗低于100μW。支持最高2M​​bps的速率。接收机在最坏情况下的BER性能仅比BER为10-5的空间和地面应用的最佳最佳非编码非相干FSK接收机低2.5 dB和0.5 dB。

著录项

  • 作者

    Grayver, Eugene.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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