Improving the noise performance of communication systems: 1930s to early 1940s

M. Schwartz
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引用次数: 2

Abstract

This work came directly out of work done during the War on radar and control systems. Yet the radar work itself was an outgrowth of work beginning circa 1920 on improving the performance of communication systems in the presence of noise. We have previously reported on work carried out in this area during the 1920s in both radio (wireless) communications and wired telephony [1]. In this paper we focus on work done in the 1930s and early 1940s, which both enlarged on, and saw considerable strides ahead in, these earlier studies involving noise in communication systems. We do this by presenting developments during this period of time in three inter-related, and roughly chronological, areas: 1. Work by Armstrong on FM and Reeves on PCM showing, for the first time, that noise could be reduced by purposefully increasing the bandwidth (now known as the noise-bandwidth tradeoff). This work is discussed in the next section covering the period of the 1930s. 2. Studies attempting to understand the statistical properties of noise, leading to its now-well-known Gaussian amplitude characteristic. This work is described in the section covering the late 1930s to early 1940s. 3. The recognition that ldquomatched filteringrdquo provided optimum signal detection in noise. This work, described in the last section of this paper, arose out of the need during World War II to detect small, pulsed, radar signals in the presence of noise.
改进通信系统的噪声性能:20世纪30年代至40年代初
这项工作直接来自于战争期间对雷达和控制系统的研究。然而,雷达工作本身是1920年左右开始的一项工作的产物,这项工作旨在改善存在噪声的通信系统的性能。我们以前曾报道过20世纪20年代在无线电(无线)通信和有线电话领域开展的工作[1]。在本文中,我们将重点放在20世纪30年代和40年代初所做的工作上,这些工作既扩大了通信系统中噪声的早期研究,也看到了相当大的进步。为了做到这一点,我们从三个相互关联的、大致按时间顺序排列的领域来介绍这一时期的发展:阿姆斯特朗在调频上的研究和里夫斯在PCM上的研究首次表明,噪声可以通过有目的地增加带宽(现在被称为噪声-带宽权衡)来减少。这项工作将在下一节中讨论,这一节将涵盖20世纪30年代。2. 试图理解噪声的统计特性的研究,导致其现在众所周知的高斯振幅特性。这项工作在涵盖20世纪30年代末至40年代初的部分中进行了描述。3.在噪声条件下,低匹配滤波能提供最佳的信号检测效果。在本文的最后一节中描述的这项工作,产生于第二次世界大战期间在存在噪声的情况下检测小脉冲雷达信号的需要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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