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Algorithm Kings: The Birth of Digital Signal Processing

机译:算法之王:数字信号处理的诞生

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There will always be signals; they will always need to be processed; and there will always be new technologies and algorithms for implementing the processing. That conviction has given me a feeling of job security ever since I first fell in love with signal processing as an undergraduate student at MIT in the mid-1950s. Added to that is the fact that new mathematical insights and formalisms inevitably change the structure of algorithms and the types of processors used to implement them. The technology and mathematics for signal processing continue to evolve, and clearly the signal processing algorithms and platforms of today would have been viewed as witchcraft during my undergraduate years. Figure 1 is a photograph of a state-of-the-art spectrum analyzer used at Pratt and Whitney in the early 1960s for analyzing jet engine noise. The technology consisted of discrete components, including individually packaged transistors and probably vacuum tubes as well. In contrast, spectrum analyzers today are primarily software-based digital processors that take full advantage of the fast Fourier transform algorithm and other sophisticated signal processing algorithm techniques based on mathematical insights and using implementation technologies that were not available at the time the picture was taken.
机译:总会有信号;他们将始终需要进行处理;并且总会有新技术和算法来实现该处理。自从我1950年代中期在麻省理工学院读本科时第一次爱上信号处理以来,这种信念就给我一种工作安全感。除此之外,新的数学见解和形式主义不可避免地会改变算法的结构以及用于实现它们的处理器类型。信号处理的技术和数学在不断发展,显然,在我的大学时代,今天的信号处理算法和平台将被视为巫术。图1是1960年代初期在Pratt和Whitney用来分析喷气发动机噪音的最新频谱分析仪的照片。该技术由分立组件组成,包括单独封装的晶体管以及可能还有真空管。相比之下,当今的频谱分析仪主要是基于软件的数字处理器,它们充分利用了快速傅里叶变换算法和其他基于数学见解并使用照片拍摄时不可用的实现技术的复杂信号处理算法技术。

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