3,770 research outputs found
Predicting financial distress:A comparison of survival analysis and decision tree techniques
AbstractFinancial distress and then the consequent failure of a business is usually an extremely costly and disruptive event. Statistical financial distress prediction models attempt to predict whether a business will experience financial distress in the future. Discriminant analysis and logistic regression have been the most popular approaches, but there is also a large number of alternative cutting – edge data mining techniques that can be used. In this paper, a semi-parametric Cox survival analysis model and non-parametric CART decision trees have been applied to financial distress prediction and compared with each other as well as the most popular approaches. This analysis is done over a variety of cost ratios (Type I Error cost: Type II Error cost) and prediction intervals as these differ depending on the situation. The results show that decision trees and survival analysis models have good prediction accuracy that justifies their use and supports further investigation
New approach to nonrelativistic ideal magnetohydrodynamics
We provide a novel action principle for nonrelativistic ideal
magnetohydrodynamics in the Eulerian scheme exploiting a Clebsch-type
parametrisation. Both Lagrangian and Hamiltonian formulations have been
considered. Within the Hamiltonian framework, two complementary approaches have
been discussed using Dirac's constraint analysis. In one case the Hamiltonian
is canonical involving only physical variables but the brackets have a
noncanonical structure, while the other retains the canonical structure of
brackets by enlarging the phase space. The special case of incompressible
magnetohydrodynamics is also considered where, again, both the approaches are
discussed in the Hamiltonian framework. The conservation of the stress tensor
reveals interesting aspects of the theory.Comment: 20 pages, LaTeX, a new section on incompressible MHD included,
published in Eur. Phys. J.
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