Photon counting: A problem in classical noise theory
Open Access
- 1 November 1970
- journal article
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Information Theory
- Vol. 16 (6), 672-680
- https://doi.org/10.1109/tit.1970.1054544
Abstract
In this paper we formulate the general problem of determining the photoelectron "counting" distribution resulting from an electromagnetic field impinging on a quantum detector. Although the detector model used was derived quantum mechanically, our treatment is wholly classical and includes all results known to date. This combination is commonly referred to as the semiclassical approach. The emphasis, however, lies in directing the problem towards optical communication. The electromagnetic field is assumed to be the sum of a deterministic signal and a zero-mean narrow-band Gaussian random process, and is expanded in a Karhunen-Loève series of orthogonal functions. Several examples are given. It is shown that all the results obtainable can be written explicitly in terms of the noise covariance function. Particular attention is given to the case of a signal plus white Gaussian noise, both of which are band-limited to \pm B Hz. Since the result is a fundamental one, to add some physical insight, we show four methods by which it can be obtained. Various limiting forms of this distribution are derived, including the necessary conditions for those commonly accepted. The likelihood functional is established and is shown to be the product of Laguerre polynomials. For the problem of continuous estimation, the Fisher information kernel is derived and an important limiting form is obtained. The maximum a posteriori (MAP) and maximum-likelihood (ML) estimation equations are also derived. In the latter case the results are also functions of Laguerre polynomials.Keywords
This publication has 15 references indexed in Scilit:
- Information rates for photocount detection systemsIEEE Transactions on Information Theory, 1969
- Intensity fluctuation of stationary random noise containing an arbitrary signal waveProceedings of the IEEE, 1969
- M-ary Poisson Detection and Optical CommunicationsIEEE Transactions on Communications, 1969
- The intensity-fluctuation distribution of Gaussian lightJournal of Physics A: General Physics, 1968
- Photon Counting Statistics of Gaussian LightPhysical Review B, 1966
- Fluctuations of Random Noise Power*Bell System Technical Journal, 1958
- A systematic approach to a class of problems in the theory of noise and other random phenomena--IIEEE Transactions on Information Theory, 1957
- A systematic approach to a class of problems in the theory of noise and other random phenomena--II: ExamplesIEEE Transactions on Information Theory, 1957
- First Probability Densities for Receivers with Square Law DetectorsJournal of Applied Physics, 1953
- On the Theory of Noise in Radio Receivers with Square Law DetectorsJournal of Applied Physics, 1947