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Design-for-testability and fault-tolerant techniques for FFT processors

机译:FFT处理器的可测试性和容错技术设计

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In this paper, we first propose a novel design-for-testability approach based on M-testability conditions for module-level systolic fast Fourier transform (FFT) arrays. Our M-testability conditions guarantee 100% single-module-fault testability with a minimum number of test patterns. Based on this testable design, fault-tolerant approaches at the bit level and the multiply-subtract-add (MSA) module level are proposed, respectively. If the reconfiguration is performed at the bit level, then the FFT/sub BIT/ network is constructed. Two types of reconfiguration schemes (Type-I FFT/sub MSA/ and Type-II FFT/sub MSA/) are proposed at the MSA module level. Since both the design for testability (DFT) and the design for yield (DFY) issues are considered at the same time for all these proposed approaches, the resulting architectures are simpler as compared with previous works. The reliability of the FFT system increases significantly. The hardware overhead is low-about 12% and 1/2N for the FFT/sub BIT/ network and the Type-II FFT/sub MSA/ network, respectively. An experimental chip is also implemented to verify our approaches. Reliabilities and hardware overhead are also evaluated and compared with previous works.
机译:在本文中,我们首先针对模块级脉动快速傅立叶变换(FFT)阵列提出了一种基于M可测试性条件的可测试性设计新方法。我们的M可测试性条件以最少数量的测试模式保证了100%的单模块故障可测试性。基于这种可测试的设计,分别提出了在比特级别和乘减加法(MSA)模块级别的容错方法。如果在位级别执行重新配置,则将构建FFT / sub BIT /网络。在MSA模块级别上,提出了两种类型的重新配置方案(I型FFT / sub MSA /和II型FFT / sub MSA /)。由于所有这些提议的方法都同时考虑了可测性设计(DFT)和成品率设计(DFY)问题,因此与以前的工作相比,最终的体系结构更简单。 FFT系统的可靠性大大提高。 FFT / sub BIT /网络和II型FFT / sub MSA /网络的硬件开销分别低至大约12%和1 / 2N。还实施了实验芯片来验证我们的方法。还评估了可靠性和硬件开销,并将其与以前的工作进行了比较。

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