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統(tǒng)計(jì)物理學(xué)中的蒙特卡羅模擬-第5版 版權(quán)信息
- ISBN:9787510070761
- 條形碼:9787510070761 ; 978-7-5100-7076-1
- 裝幀:一般膠版紙
- 冊數(shù):暫無
- 重量:暫無
- 所屬分類:>>
統(tǒng)計(jì)物理學(xué)中的蒙特卡羅模擬-第5版 本書特色
統(tǒng)計(jì)物理學(xué)中的蒙特卡洛模擬主要處理凝聚態(tài)物理學(xué)的多體系統(tǒng)和相關(guān)物理學(xué)、化學(xué)及其他方面的計(jì)算模擬,甚至滲透到交通流、股票市場波動(dòng)等等領(lǐng)域。書中描述了多變量蒙特卡洛模擬方法的理論背景,給出了初學(xué)者學(xué)習(xí)進(jìn)行模擬和結(jié)果分析的系統(tǒng)演示!督y(tǒng)計(jì)物理學(xué)中的蒙特卡羅模擬(第5版,英文版)》是第五版,不僅包括經(jīng)典方法,也包括蒙特卡洛模擬方法;增加了一章專門講述自由能景觀采樣。
統(tǒng)計(jì)物理學(xué)中的蒙特卡羅模擬-第5版 內(nèi)容簡介
統(tǒng)計(jì)物理學(xué)中的蒙特卡洛模擬主要處理凝聚態(tài)物理學(xué)的多體系統(tǒng)和相關(guān)物理學(xué)、化學(xué)及其他方面的計(jì)算模擬,甚至滲透到交通流、股票市場波動(dòng)等等領(lǐng)域。書中描述了多變量蒙特卡洛模擬方法的理論背景,給出了初學(xué)者學(xué)習(xí)進(jìn)行模擬和結(jié)果分析的系統(tǒng)演示。本書是第五版,不僅包括經(jīng)典方法,也包括蒙特卡洛模擬方法;增加了一章專門講述自由能景觀采樣。目次:導(dǎo)論:該書的遵旨和內(nèi)容范圍;蒙特卡洛方法的理論基礎(chǔ)及其在統(tǒng)計(jì)物理學(xué)中的應(yīng)用;蒙特卡洛方法實(shí)際應(yīng)用指導(dǎo);蒙特卡洛方法論的*近重要進(jìn)展;量子蒙特卡洛模擬入門;自由能景觀樣本的蒙特卡洛方法。
統(tǒng)計(jì)物理學(xué)中的蒙特卡羅模擬-第5版 目錄
2 theoretical foundations of the monte carlo method and its applications in statistical physics
2.1 simple sampling versus importance sampling
2.l.1 models
2.1.2 simple sampling
2.1.3 random walks and self-avoiding walks
2.1.4 thermal averages by the simple sampling method
2.1.5 advantages and limitations of simple sampling
2.1.6 importance sampling
2.1.7 more about models and algorithms
2.2 organization of monte carlo programs, and the dynamic interpretation of monte carlo sampling
2.2.1 first comments on the simulation of the ising model
2.2.2 boundary conditions
2.2.3 the dynamic interpretation of the importance sampling monte carlo method
2.2.4 statistical errors and time-displaced relaxation functions
2.3 finite-size effects
2.3.1 finite-size effects at the percolation transition
2.3.2 finite-size scaling for the percolation problem
2.3.3 broken symmetry and finite-size effects at thermal phase transitions
2.3.4 the order parameter probability distribution and its use to justify finite-size scaling and phenomenological renormalization
2.3.5 finite-size behavior of relaxation times
2.3.6 finite-size scaling without "hyperscaling".
2.3.7 finite-size scaling for first-order phase transitions
2.3.8 finite-size behavior of statistical errors and the problem of self-averaging
2.4 remarks on the scope of the theory chapter
3 guide to practical work with the monte carlo method
3.1 aims of the guide
3.2 simple sampling
3.2.1 random walk
3.2.2 nonreversal random walk
3.2.3 self-avoiding random walk
3.2.4 percolation
3.3 biased sampling
3.3.1 self-avoiding random walk
3.4 importance sampling
3.4.1 ising model
3.4.2 self-avoiding random walk
4 some important recent developments of the monte carlo methodology
4.1 introduction
4.2 application of the swendsen-wang cluster algorithm to the ising model
4.3 reweighting methods in the study of phase diagrams,first-order phase transitions, and interfacial tensions
4.4 some comments on advances with finite-size scaling analyses
5 quantum monte carlo simulations: an introduction
5.1 quantum statistical mechanics versus classical statistical mechanics
5.2 the path integral quantum monte carlo method
5.3 quantum monte carlo for lattice models
5.4 concluding remarks
6 monte carlo methods for the sampling of free energy landscapes.
6.1 introduction and overview
6.2 umbrella sampling
6.3 multicanonical sampling and other "extended ensemble" methods
6.4 wang-landau sampling
6.5 transition path sampling
6.6 concluding remarks
appendix
a.1 algorithm for the random walk problem
a.2 algorithm for cluster identification
references
bibliography
subject index
統(tǒng)計(jì)物理學(xué)中的蒙特卡羅模擬-第5版 作者簡介
Kurt Binder, Dieter W. Heermann是國際知名學(xué)者,在數(shù)學(xué)和物理學(xué)界享有盛譽(yù)。本書凝聚了作者多年科研和教學(xué)成果,適用于科研工作者、高校教師和研究生。
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