Iterated function systems and shape representation
We propose the use of iterated function systems as an isomorphic shape representation scheme for use in a machine vision environment. A concise description of the basic theory and salient characteristics of iterated function systems is presented and from this we develop a formal framework within which to embed a representation scheme. Concentrating on the problem of obtaining automatically generated two-dimensional encodings we describe implementations of two solutions. The first is based on a deterministic algorithm and makes simplifying assumptions which limit its range of applicability. The second employs a novel formulation of a genetic algorithm and is intended to function with general data input. Keywords: Machine Vision, Shape Representation, Iterated Function Systems, Genetic Algorithms.
| Item Type | Thesis (Doctoral) |
|---|---|
| Divisions | Faculty of Science > Engineering, Department of |
| Historic department | Engineering and Applied Science |
| Date Deposited | 18 Dec 2012 12:07 |
| Last Modified | 16 Mar 2026 18:13 |
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