Probabilistic Nodes Combination (PNC)

Author:

Jakóbczak Dariusz Jacek1ORCID

Affiliation:

1. Technical University of Koszalin, Poland

Abstract

The method of Probabilistic Nodes Combination (PNC) enables interpolation and modeling of two-dimensional curves using nodes combinations and different coefficients γ: polynomial, sinusoidal, cosinusoidal, tangent, cotangent, logarithmic, exponential, arc sin, arc cos, arc tan, arc cot or power function, also inverse functions. This probabilistic view is novel approach a problem of modeling and interpolation. Computer vision and pattern recognition are interested in appropriate methods of shape representation and curve modeling. PNC method represents the possibilities of shape reconstruction and curve interpolation via the choice of nodes combination and probability distribution function for interpolated points. It seems to be quite new look at the problem of contour representation and curve modeling in artificial intelligence and computer vision. Function for γ calculations is chosen individually at each curve modeling and it is treated as probability distribution function: γ depends on initial requirements and curve specifications.

Publisher

IGI Global

Reference27 articles.

1. Characterization of the Marginal Distributions of Markov Processes Used in Dynamic Reliability. Journal of Applied Mathematics and Stochastic Analysis;C.Cocozza-Thivent,2006

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