On a Distribution Associated with a Stochastic Process in Ecology

Poisson processes {X(t), t ≥ 0} are suitable models for a broad variety of counting processes in Ecology. For example, when analyzing data that apparently came from Poisson population, over‐dispersion [i.e. V(X(t)) > E(X(t))] or under‐dispersion [i.e. V(X(t)) < E(X(t))] is encountered. This le...

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Published inBiometrical journal Vol. 44; no. 4; pp. 510 - 522
Main Author Janardan, K.G.
Format Journal Article
LanguageEnglish
Published Berlin WILEY-VCH Verlag Berlin GmbH 01.06.2002
WILEY‐VCH Verlag Berlin GmbH
Wiley-VCH
Subjects
Online AccessGet full text
ISSN0323-3847
1521-4036
DOI10.1002/1521-4036(200206)44:4<510::AID-BIMJ510>3.0.CO;2-K

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Abstract Poisson processes {X(t), t ≥ 0} are suitable models for a broad variety of counting processes in Ecology. For example, when analyzing data that apparently came from Poisson population, over‐dispersion [i.e. V(X(t)) > E(X(t))] or under‐dispersion [i.e. V(X(t)) < E(X(t))] is encountered. This led Consul and Jain (1973), and Janardan and Schaeffer (1977) to consider a generalization of the Poisson distribution called Lagrangian Poisson distribution. Janardan (1980) modified the Poisson process and derived a stochastic model for the number of eggs laid by a parasite on a host. This distribution is very suitable for fitting data with over‐ (or under‐) dispersion. Janardan et al. (1981) considered this stochastic model and applied it to study the variation of the distribution of chromosome aberrations in human and animal cells subject to radiation or chemical insults. Here, we present a new approach for the derivation of this distribution and provide some alternative chance mechanisms for the genesis of the distribution. Moments, moment properties, and some applications are also given.
AbstractList Poisson processes {X(t), t 0} are suitable models for a broad variety of counting processes in Ecology. For example, when analyzing data that apparently came from Poisson population, over-dispersion [i.e. V(X(t)) > E(X(t))] or under-dispersion [i.e. V(X(t)) < E(X(t))] is encountered. This led Consul and Jain (1973), and Janardan and Schaeffer (1977) to consider a generalization of the Poisson distribution called Lagrangian Poisson distribution. Janardan (1980) modified the Poisson process and derived a stochastic model for the number of eggs laid by a parasite on a host. This distribution is very suitable for fitting data with over- (or under-) dispersion. Janardan et al. (1981) considered this stochastic model and applied it to study the variation of the distribution of chromosome aberrations in human and animal cells subject to radiation or chemical insults. Here, we present a new approach for the derivation of this distribution and provide some alternative chance mechanisms for the genesis of the distribution. Moments, moment properties, and some applications are also given.
Poisson processes {X(t), t ≥ 0} are suitable models for a broad variety of counting processes in Ecology. For example, when analyzing data that apparently came from Poisson population, over‐dispersion [i.e. V(X(t)) > E(X(t))] or under‐dispersion [i.e. V(X(t)) < E(X(t))] is encountered. This led Consul and Jain (1973), and Janardan and Schaeffer (1977) to consider a generalization of the Poisson distribution called Lagrangian Poisson distribution. Janardan (1980) modified the Poisson process and derived a stochastic model for the number of eggs laid by a parasite on a host. This distribution is very suitable for fitting data with over‐ (or under‐) dispersion. Janardan et al. (1981) considered this stochastic model and applied it to study the variation of the distribution of chromosome aberrations in human and animal cells subject to radiation or chemical insults. Here, we present a new approach for the derivation of this distribution and provide some alternative chance mechanisms for the genesis of the distribution. Moments, moment properties, and some applications are also given.
Author Janardan, K.G.
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Issue 4
Keywords Stochastic model
Generating function
Parasite
Continuous time
Ecology
Poisson distribution
Stochastic process
Poisson process
Birth process
Poisson geometric distribution
Dispersion
Markov chain
Probability density
Poisson binomial distribution
Binomial distribution
Integral representation
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References Norma, A. and Sasaki, M.S., 1966: Chromosome Exchange Aberrations in Human Lympocytes. Int. Jour. Radiation Biology 9, 53-65.
DuFrain, R.J., Littlefield, L.G., Joiner, E.E., and Frome, E., 1979: Human cytogenetic dosimetry. A dose-response relationship for alpha particle radiation from 241 Am. Health Physics 37, 279-289.
Janardan, K.G., 1980: A Stochastic Model for the Study of Oviposition Evolution of the Pest Callosobruchus Maculatus on Mung Beans, Phaseolus aureus, Math. Biosciences 50, 231-238.
Bakker, K., Bagchee, S.N., Van Zwet, W.R., and Meelis, E., 1967: Host Discrimination in Pseudeucoila Bochei (Hymenoptera: Cynipidae), Entomologia Experimentalis et Applicata 10, 295-311.
Mitchell, R., 1975: The evolution of oviposition tactics in the bean weevil, Callosobruchus Maculatus. Ecology 56, 696-702.
Simmonds, F.J., 1956: Superparasitism by Spalangia drosophilae, Ashm. Bulletin of Entomological Research 47, 361-376.
Janardan, K.G. and Schaeffer, D.J., 1977: Models for the Analysis of Aberrations in Human Leukocytes. Biometrical Journal 19, 599-612.
Janardan, K.G., Kerster, H.W., and Schaeffer, D.J., 1979: Biological Applications of the Lagrangian Poisson distribution, BioScience 29, 599-602.
Kohler, W., Loeschcke, and Obe, G., 1976: Analysis of Intercellular Distributions of Chromatid Aberrations. Mutation Research 34, 427-436.
Consul, P.C. and Jain, G.C., 1973: A Generalization of the Poisson Distribution, Technometrics 15, 791-799.
1965
1956; 47
1975; 56
1979; 29
1979; 37
1981
1976; 34
1967; 10
1980; 50
1966; 9
1973; 15
1977; 19
References_xml – reference: Consul, P.C. and Jain, G.C., 1973: A Generalization of the Poisson Distribution, Technometrics 15, 791-799.
– reference: DuFrain, R.J., Littlefield, L.G., Joiner, E.E., and Frome, E., 1979: Human cytogenetic dosimetry. A dose-response relationship for alpha particle radiation from 241 Am. Health Physics 37, 279-289.
– reference: Mitchell, R., 1975: The evolution of oviposition tactics in the bean weevil, Callosobruchus Maculatus. Ecology 56, 696-702.
– reference: Bakker, K., Bagchee, S.N., Van Zwet, W.R., and Meelis, E., 1967: Host Discrimination in Pseudeucoila Bochei (Hymenoptera: Cynipidae), Entomologia Experimentalis et Applicata 10, 295-311.
– reference: Janardan, K.G. and Schaeffer, D.J., 1977: Models for the Analysis of Aberrations in Human Leukocytes. Biometrical Journal 19, 599-612.
– reference: Janardan, K.G., 1980: A Stochastic Model for the Study of Oviposition Evolution of the Pest Callosobruchus Maculatus on Mung Beans, Phaseolus aureus, Math. Biosciences 50, 231-238.
– reference: Janardan, K.G., Kerster, H.W., and Schaeffer, D.J., 1979: Biological Applications of the Lagrangian Poisson distribution, BioScience 29, 599-602.
– reference: Simmonds, F.J., 1956: Superparasitism by Spalangia drosophilae, Ashm. Bulletin of Entomological Research 47, 361-376.
– reference: Norma, A. and Sasaki, M.S., 1966: Chromosome Exchange Aberrations in Human Lympocytes. Int. Jour. Radiation Biology 9, 53-65.
– reference: Kohler, W., Loeschcke, and Obe, G., 1976: Analysis of Intercellular Distributions of Chromatid Aberrations. Mutation Research 34, 427-436.
– volume: 29
  start-page: 599
  year: 1979
  end-page: 602
  article-title: Biological Applications of the Lagrangian Poisson distribution
  publication-title: BioScience
– volume: 37
  start-page: 279
  year: 1979
  end-page: 289
  article-title: Human cytogenetic dosimetry. A dose‐response relationship for alpha particle radiation from
  publication-title: Am. Health Physics
– volume: 56
  start-page: 696
  year: 1975
  end-page: 702
  article-title: The evolution of oviposition tactics in the bean weevil, Callosobruchus Maculatus
  publication-title: Ecology
– volume: 47
  start-page: 361
  year: 1956
  end-page: 376
  article-title: Superparasitism by Spalangia drosophilae, Ashm
  publication-title: Bulletin of Entomological Research
– year: 1981
– volume: 10
  start-page: 295
  year: 1967
  end-page: 311
  article-title: Host Discrimination in Pseudeucoila Bochei (Hymenoptera: Cynipidae)
  publication-title: Entomologia Experimentalis et Applicata
– year: 1965
– volume: 50
  start-page: 231
  year: 1980
  end-page: 238
  article-title: A Stochastic Model for the Study of Oviposition Evolution of the Pest Callosobruchus Maculatus on Mung Beans, Phaseolus aureus, Math
  publication-title: Biosciences
– volume: 34
  start-page: 427
  year: 1976
  end-page: 436
  article-title: Analysis of Intercellular Distributions of Chromatid Aberrations
  publication-title: Mutation Research
– volume: 15
  start-page: 791
  year: 1973
  end-page: 799
  article-title: A Generalization of the Poisson Distribution
  publication-title: Technometrics
– volume: 9
  start-page: 53
  year: 1966
  end-page: 65
  article-title: Chromosome Exchange Aberrations in Human Lympocytes
  publication-title: Int. Jour. Radiation Biology
– volume: 19
  start-page: 599
  year: 1977
  end-page: 612
  article-title: Models for the Analysis of Aberrations in Human Leukocytes
  publication-title: Biometrical Journal
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Snippet Poisson processes {X(t), t ≥ 0} are suitable models for a broad variety of counting processes in Ecology. For example, when analyzing data that apparently came...
Poisson processes {X(t), t 0} are suitable models for a broad variety of counting processes in Ecology. For example, when analyzing data that apparently came...
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SubjectTerms Analysis. Health state
Biological and medical sciences
Birth process
Continuous time Markov chain
Epidemiology
General aspects
Integral representation
Medical sciences
Over- (under-) dispersion
Oviposition
Parasites
Poisson process
Poisson-binomial
Poisson-geometric
Public health. Hygiene
Public health. Hygiene-occupational medicine
Stochastic models
Title On a Distribution Associated with a Stochastic Process in Ecology
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