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Stochastic Modeling

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Stochastic Modeling
Najniższa cena (z dostawą)
70,35 EUR
Typowa cena445,46 PLN
Najniższa (90 dni)38,71 PLN
Liczba ofert4
Ostatnia aktualizacja1 tydzień temu
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Historia ceny (90 dni)
Pełna historia
2026-08-08 2026-08-15
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ZaktualizowanoCena
2026-08-0838,71
2026-08-1563,66
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SP SpringerNatureLink Shop INT 70,35 EUR 0 zł 70,35 EUR Dostępny 6 dni temu Zobacz ofertę
SP SpringerNatureLink Shop INT 12 154,00 JPY 29,00 JPY 12 183,00 JPY Dostępny 5 dni temu Zobacz ofertę
SP Springer Nature Author 12 154,00 JPY 0 zł 12 154,00 JPY Dostępny 1 tydzień temu Zobacz ofertę
VI VitalSource 512,31 ZAR 25,00 ZAR 537,31 ZAR Dostępny 1 tydzień temu Zobacz ofertę

Ceny i dostępność mogą ulec zmianie. Ostatnia aktualizacja: 08.08.2026 06:10.

EAN 9783319500379
Springer Nature
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Three coherent parts form the material covered in this text, portions of which have not been widely covered in traditional textbooks. In this coverage the reader is quickly introduced to several different topics enriched with 175 exercises which focus on real-world problems. Exercises range from the classics of probability theory to more exotic research-oriented problems based on numerical simulations. Intended for graduate students in mathematics and applied sciences, the text provides the tools and training needed to write and use programs for research purposes. The first part of the text begins with a brief review of measure theory and revisits the main concepts of probability theory, from random variables to the standard limit theorems. The second part covers traditional material on stochastic processes, including martingales, discrete-time Markov chains, Poisson processes, and continuous-time Markov chains. The theory developed is illustrated by a variety of examples surrounding applications such as the gambler’s ruin chain, branching processes, symmetric random walks, and queueing systems. The third, more research-oriented part of the text, discusses special stochastic processes of interest in physics, biology, and sociology. Additional emphasis is placed on minimal models that have been used historically to develop new mathematical techniques in the field of stochastic processes: the logistic growth process, the Wright –Fisher model, Kingman’s coalescent, percolation models, the contact process, and the voter model. Further treatment of the material explains how these special processes are connected to each other from a modeling perspective as well as their simulation capabilities in C and Matlab™.

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