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最大熵原理的应用:从物理学到生态学。

Applications of the principle of maximum entropy: from physics to ecology.

机构信息

Department of Physics, 104 Davey Laboratory, The Pennsylvania State University, University Park, PA 16802, USA.

出版信息

J Phys Condens Matter. 2010 Feb 17;22(6):063101. doi: 10.1088/0953-8984/22/6/063101. Epub 2010 Jan 22.

Abstract

There are numerous situations in physics and other disciplines which can be described at different levels of detail in terms of probability distributions. Such descriptions arise either intrinsically as in quantum mechanics, or because of the vast amount of details necessary for a complete description as, for example, in Brownian motion and in many-body systems. We show that an application of the principle of maximum entropy for estimating the underlying probability distribution can depend on the variables used for describing the system. The choice of characterization of the system carries with it implicit assumptions about fundamental attributes such as whether the system is classical or quantum mechanical or equivalently whether the individuals are distinguishable or indistinguishable. We show that the correct procedure entails the maximization of the relative entropy subject to known constraints and, additionally, requires knowledge of the behavior of the system in the absence of these constraints. We present an application of the principle of maximum entropy to understanding species diversity in ecology and introduce a new statistical ensemble corresponding to the distribution of a variable population of individuals into a set of species not defined a priori.

摘要

物理学和其他学科中有许多情况可以用概率分布来描述不同的细节程度。这样的描述要么是内在的,如在量子力学中,要么是因为完全描述所需的大量细节,例如在布朗运动和多体系统中。我们表明,应用最大熵原理来估计潜在的概率分布可能取决于用于描述系统的变量。系统的特征化选择带有关于基本属性的隐含假设,例如系统是经典的还是量子力学的,或者等价地说,个体是可区分的还是不可区分的。我们表明,正确的程序需要在已知约束下最大化相对熵,并且还需要了解在没有这些约束的情况下系统的行为。我们将最大熵原理应用于理解生态学中的物种多样性,并引入了一个新的统计集合,对应于一个变量个体的种群在一组事先未定义的物种中的分布。

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