Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes

The biochemical models describing complex and dynamic metabolic systems are typically multi-parametric and non-linear, thus the identification of their parameters requires nonlinear regression analysis of the experimental data. The stochastic nature of the experimental samples poses the necessity...

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Auteurs principaux: Tenekedjiev, Kiril Ivanov, Nikolova, Natalia Danailova, Kolev, Krasimir, Ivanov, Kiril, Danailova, Natalia
Format: Online
Langue:anglais
Publié: InTechOpen 2021
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Accès en ligne:627382
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author Tenekedjiev, Kiril Ivanov
Nikolova, Natalia Danailova
Kolev, Krasimir
Ivanov, Kiril
Danailova, Natalia
Kolev, Krasimir
author_browse Danailova, Natalia
Ivanov, Kiril
Kolev, Krasimir
Nikolova, Natalia Danailova
Tenekedjiev, Kiril Ivanov
author_facet Tenekedjiev, Kiril Ivanov
Nikolova, Natalia Danailova
Kolev, Krasimir
Ivanov, Kiril
Danailova, Natalia
Kolev, Krasimir
author_sort Tenekedjiev, Kiril Ivanov
collection Directory of Open Access Books
description The biochemical models describing complex and dynamic metabolic systems are typically multi-parametric and non-linear, thus the identification of their parameters requires nonlinear regression analysis of the experimental data. The stochastic nature of the experimental samples poses the necessity to estimate not only the values fitting best to the model, but also the distribution of the parameters, and to test statistical hypotheses about the values of these parameters. In such situations the application of analytical models for parameter distributions is totally inappropriate because their assumptions are not applicable for intrinsically non-linear regressions. That is why, Monte Carlo simulations are a powerful tool to model biochemical processes.
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institution Directory of Open Access Books
language eng
publishDate 2021
publishDateRange 2021
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publisherStr InTechOpen
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spelling doab-20.500.12854ir-347222025-01-25T06:54:17Z Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes Tenekedjiev, Kiril Ivanov Nikolova, Natalia Danailova Kolev, Krasimir Ivanov, Kiril Danailova, Natalia Kolev, Krasimir biochemistry monte carlo simulation biochemistry monte carlo simulation Confidence interval Confidence region Enzyme Enzyme kinetics Fatty acid Plasmin Random variable thema EDItEUR::P Mathematics and Science::PS Biology, life sciences::PSB Biochemistry The biochemical models describing complex and dynamic metabolic systems are typically multi-parametric and non-linear, thus the identification of their parameters requires nonlinear regression analysis of the experimental data. The stochastic nature of the experimental samples poses the necessity to estimate not only the values fitting best to the model, but also the distribution of the parameters, and to test statistical hypotheses about the values of these parameters. In such situations the application of analytical models for parameter distributions is totally inappropriate because their assumptions are not applicable for intrinsically non-linear regressions. That is why, Monte Carlo simulations are a powerful tool to model biochemical processes. 2021-02-10T12:58:18Z 2019-10-04 14:49:35 2020-04-01T13:38:50Z 2017-04-12 23:55 2019-10-04 14:49:35 2020-04-01T13:38:50Z 2017-03-01 23:55:55 2019-10-04 14:49:35 2020-04-01T13:38:50Z 2012 chapter 627382 OCN: 1030816752 http://library.oapen.org/handle/20.500.12657/31531 https://directory.doabooks.org/handle/20.500.12854/34722 eng open access image/jpeg image/jpeg image/jpeg image/jpeg n/a n/a n/a n/a https://library.oapen.org/bitstream/20.500.12657/31531/1/627382.pdf https://library.oapen.org/bitstream/20.500.12657/31531/1/627382.pdf https://library.oapen.org/bitstream/20.500.12657/31531/1/627382.pdf https://library.oapen.org/bitstream/20.500.12657/31531/1/627382.pdf InTechOpen 10.5772/14984 10.5772/14984 035ecc65-6737-43cf-a13a-6bdf67ce01f4 Applications of Monte Carlo Methods in Biology, Medicine and Other Fields of Science Wellcome Trust d859fbd3-d884-4090-a0ec-baf821c9abfd Wellcome 083174 open access
spellingShingle biochemistry
monte carlo simulation
biochemistry
monte carlo simulation
Confidence interval
Confidence region
Enzyme
Enzyme kinetics
Fatty acid
Plasmin
Random variable
thema EDItEUR::P Mathematics and Science::PS Biology, life sciences::PSB Biochemistry
Tenekedjiev, Kiril Ivanov
Nikolova, Natalia Danailova
Kolev, Krasimir
Ivanov, Kiril
Danailova, Natalia
Kolev, Krasimir
Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes
title Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes
title_full Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes
title_fullStr Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes
title_full_unstemmed Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes
title_short Chapter 4 Applications of Monte Carlo Simulation in Modelling of Biochemical Processes
title_sort chapter 4 applications of monte carlo simulation in modelling of biochemical processes
topic biochemistry
monte carlo simulation
biochemistry
monte carlo simulation
Confidence interval
Confidence region
Enzyme
Enzyme kinetics
Fatty acid
Plasmin
Random variable
thema EDItEUR::P Mathematics and Science::PS Biology, life sciences::PSB Biochemistry
topic_facet biochemistry
monte carlo simulation
biochemistry
monte carlo simulation
Confidence interval
Confidence region
Enzyme
Enzyme kinetics
Fatty acid
Plasmin
Random variable
thema EDItEUR::P Mathematics and Science::PS Biology, life sciences::PSB Biochemistry
url 627382
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