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Dynamic kernel function for high-speed real-time fast Fourier transform processors.

机译:动态内核功能,用于高速实时快速傅立叶变换处理器。

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摘要

The fast Fourier transform (FFT) plays a critical role in many modern applications, such as acoustics, optics, telecommunications, wireless sensor networks, location sensing, patient monitoring, speech, signal detection, and image processing. The input dynamic range, data throughput rate, frequency resolution, bandwidth, design flexibility, hardware consumption, and power requirements for the various applications are vastly different, leading to significant research focusing on different aspects of FFT performance improvement.;The proposed dynamic kernel function uses an efficient fixed-point numerical representation of the twiddle factor and replaces the cumbersome multipliers with simple shift-and-add operations to enhance the data throughput rate for high-speed wideband signal detection. Numerical representation in hardware plays a role in determining the dynamic range and bit precision of FFT processors. Variable truncation scheme dynamically scales the computation data and maximizes the use of fixed-input and interstage wordlength in existing hardware efficient fixed-point FFT. The above data scaling algorithm enhances the dynamic range of fixed-point fixed-precision FFT designs and emulates the precision benefits of floating-point representation without complicated design additions. Novel algorithms and performance analysis for hardware efficient representation of twiddle factors are studied for multi-tone signal detection with dynamic kernel function FFT processors. The development of hardware performance estimation models based on different number of bits used for dynamic kernel function shows the relative trade-off between kernel bits to FFT spurious-free dynamic range (SFDR) and phase performance.;A 2.048 GSPS fixed-point fixed-precision dynamic kernel function FFT processor with variable truncation scheme is proposed, developed and implemented for real-time wideband signal detection. Using an Atmel 10-bit ADC, two-tone real-time signal detection is demonstrated for a bandwidth of 912 MHz with 16 MHz channelization and output throughput rates of 62.5 ns. The proposed design has an averaged single signal SFDR of 26 dB and the ability to detect a weak input signal at -42 dBm. The overall dynamic range (DR) of the system is 45 dB. This is possible for a fixed-precision FFT design due to the embedded variable truncation scheme to extend the total DR while preserving the instantaneous dynamic range (IDR) relationship. Additional case studies utilizing different dynamic kernel function and inter-stage precision shows important area and performance trade-offs when utilized in a high-speed wideband FFT processor without the use of decimators.
机译:快速傅立叶变换(FFT)在许多现代应用中扮演着至关重要的角色,例如声学,光学,电信,无线传感器网络,位置感测,患者监护,语音,信号检测和图像处理。各种应用的输入动态范围,数据吞吐率,频率分辨率,带宽,设计灵活性,硬件消耗和功耗要求有很大的不同,从而导致针对FFT性能改进的不同方面的大量研究。使用旋转因子的有效定点数值表示法,并通过简单的移位和加法运算来代替繁琐的乘法器,以提高用于高速宽带信号检测的数据吞吐率。硬件中的数字表示在确定FFT处理器的动态范围和位精度方面发挥着作用。可变截断方案可动态缩放计算数据,并在现有硬件有效的定点FFT中最大化使用固定输入和级间字长。上面的数据缩放算法扩大了定点定精度FFT设计的动态范围,并仿真了浮点表示的精度优势,而无需增加复杂的设计。研究了利用动态核函数FFT处理器进行多音信号检测的新型算法和性能分析,以有效地表示旋转因子。基于用于动态内核功能的不同位数的硬件性能评估模型的开发显示了内核位与FFT无杂散动态范围(SFDR)和相位性能之间的相对权衡。2.048 GSPS定点定点提出,开发并实现了具有可变截断方案的高精度动态核函数FFT处理器,用于实时宽带信号检测。使用Atmel 10位ADC,演示了针对912 MHz带宽,16 MHz信道化和62.5 ns输出吞吐速率的两音实时信号检测。提出的设计具有26 dB的平均单信号SFDR,并且能够检测-42 dBm的微弱输入信号。系统的整体动态范围(DR)为45 dB。由于嵌入式可变截断方案可以扩展总DR,同时保留瞬时动态范围(IDR)关系,因此对于固定精度FFT设计而言,这是可能的。在不使用抽取器的情况下,在高速宽带FFT处理器中使用时,利用不同动态内核功能和级间精度的其他案例研究显示出重要的面积和性能折衷。

著录项

  • 作者

    Lee, Yu-Heng George.;

  • 作者单位

    Wright State University.;

  • 授予单位 Wright State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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