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Inference and Prediction in Large Dimensions Inference and Prediction in Large Dimensions

Автор: Denis Bosq

Год издания: 0000

This book offers a predominantly theoretical coverage of statistical prediction, with some potential applications discussed, when data and/ or parameters belong to a large or infinite dimensional space. It develops the theory of statistical prediction, non-parametric estimation by adaptive projection – with applications to tests of fit and prediction, and theory of linear processes in function spaces with applications to prediction of continuous time processes. This work is in the Wiley-Dunod Series co-published between Dunod (www.dunod.com) and John Wiley and Sons, Ltd.
Les predictions de Jean Gorani, citoyen francais, sur la revolution de France Les predictions de Jean Gorani, citoyen francais, sur la revolution de France

Автор: Jean Gorani

Год издания: 

Полный вариант заголовка: «Les predictions de Jean Gorani, citoyen francais, sur la Revolution de France».

Puppets at Large: Scenes and Subjects from Mr Punch's Show Puppets at Large: Scenes and Subjects from Mr Punch's Show

Автор: Anstey F.

Год издания: 


At Large At Large

Автор: Hornung Ernest William

Год издания: 


The Evolutionist at Large The Evolutionist at Large

Автор: Allen Grant

Год издания: 


Mivar NETs and logical inference with the linear complexity Mivar NETs and logical inference with the linear complexity

Автор: Олег Варламов

Год издания: 

MIVAR: Transition from Productions to Bipartite Graphs MIVAR Nets and Practical Realization of Automated Constructor of Algorithms Handling More than Three Million Production Rules. The theoretical transition from the graphs of production systems to the bipartite graphs of the MIVAR nets is shown. Examples of the implementation of the MIVAR nets in the formalisms of matrixes and graphs are given. The linear computational complexity of algorithms for automated building of objects and rules of the MIVAR nets is theoretically proved. On the basis of the MIVAR nets the UDAV software complex is developed, handling more than 1.17 million objects and more than 3.5 million rules on ordinary computers. The results of experiments that confirm a linear computational complexity of the MIVAR method of information processing are given.