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On the relation of circuit theory and signals, systems and communications

机译:关于电路理论与信号,系统和通信的关系

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摘要

In signal processing, system theory, and in information theory signals are either complex valued waveforms or sequences of dimensionless complex numbers. The "power" of such signals is usually said to be the squared magnitude of these complex numbers. In an electrical circuit, power is always the product of voltage and current, both present at a port, i.e., at a pair of terminals. Here we ask the question: what is the relation between signal power and physical power? There are special cases, where the two notions of power are strictly proportional and, therefore, no conflict occurs. But in general, especially when we deal with vector signals, the commonly used squared Euclidean norm of the signal vector may not be a measure for the physical power associated with the voltages and currents, which correspond to the signal vector. In addition to the physically consistent computation of signal power, physically consistent modeling of the noise is crucial in all information processing systems. Again circuit theory provides a methodology to model how the noise comes into the system. Modeling is one of the most important tasks in engineering and, therefore, physically consistent modeling is very important for the education of electrical engineers. Circuit theory is the essential framework to ensure physical consistency across several levels of abstraction.
机译:在信号处理中,系统理论和信息论中的信号要么是复数值波形,要么是无量纲复数序列。通常称此类信号的“功率”为这些复数的平方大小。在电路中,功率始终是电压和电流的乘积,两者都存在于端口,即一对端子处。在这里,我们问一个问题:信号功率和物理功率之间是什么关系?在某些特殊情况下,两个权力概念严格成比例,因此不会发生冲突。但是总的来说,尤其是当我们处理矢量信号时,信号矢量的常用平方欧几里德范数可能无法衡量与信号矢量相对应的与电压和电流相关的物理功率。除了信号功率的物理一致性计算之外,噪声的物理一致性建模在所有信息处理系统中也至关重要。电路理论再次提供了一种方法来对噪声如何进入系统进行建模。建模是工程中最重要的任务之一,因此,物理一致的建模对于电气工程师的教育非常重要。电路理论是确保跨多个抽象级别的物理一致性的基本框架。

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