On geometric properties of spherical conics and generalization of π in navigation and mapping
First, we cover the conical curves on 2-dimensional modeling sphere S 2 showing their geometric properties affecting the hyperbolic navigation. We place emphasis on the geometric definition of spherical parabola and relate it to the notions of spherical ellipse and hyperbola and give simple geometr...
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Vilnius Gediminas Technical University
2012-12-01
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doaj-4ef9dced57ff4ae197d911ae9f2efc6f2021-07-02T10:28:50ZengVilnius Gediminas Technical UniversityGeodesy and Cartography2029-69912029-70092012-12-0138410.3846/20296991.2012.756995On geometric properties of spherical conics and generalization of π in navigation and mappingPiotr Kopacz0Faculty of Navigation, Gdynia Maritime University, Aleja Jana Pawła II 3, 81-345 Gdynia, Poland First, we cover the conical curves on 2-dimensional modeling sphere S 2 showing their geometric properties affecting the hyperbolic navigation. We place emphasis on the geometric definition of spherical parabola and relate it to the notions of spherical ellipse and hyperbola and give simple geometric proofs for relations between conical curves on the sphere. In the second part of the paper function representing the ratio of the circle's circumference to its diameter has been defined and researched to analyze the potential discrepancies in the spherical and conical projective models on which the navigational computations are based on. We compare some non-Euclidean geometric properties of curved surfaces and its Euclidean plane model in reference to the local and global approximation. As a working tool we use function for geometric comparison analysis in the theory of long-range navigation and cartographic projection. We state the existence of the infinite number of the circles having the same radius but different circumference on the conical surface. Finally, we survey the exemplary proposals of generalization of function . In particular, we focus on the geometric structure of applied model treated as a metric space showing the differences in the outputting computations if the changes in a metric are made. We also relate the function to Tissot's indicatrix of distortion. https://journals.vgtu.lt/index.php/GAC/article/view/4766geometry of navigationmappingspherical conicnumber π |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Piotr Kopacz |
spellingShingle |
Piotr Kopacz On geometric properties of spherical conics and generalization of π in navigation and mapping Geodesy and Cartography geometry of navigation mapping spherical conic number π |
author_facet |
Piotr Kopacz |
author_sort |
Piotr Kopacz |
title |
On geometric properties of spherical conics and generalization of π in navigation and mapping |
title_short |
On geometric properties of spherical conics and generalization of π in navigation and mapping |
title_full |
On geometric properties of spherical conics and generalization of π in navigation and mapping |
title_fullStr |
On geometric properties of spherical conics and generalization of π in navigation and mapping |
title_full_unstemmed |
On geometric properties of spherical conics and generalization of π in navigation and mapping |
title_sort |
on geometric properties of spherical conics and generalization of π in navigation and mapping |
publisher |
Vilnius Gediminas Technical University |
series |
Geodesy and Cartography |
issn |
2029-6991 2029-7009 |
publishDate |
2012-12-01 |
description |
First, we cover the conical curves on 2-dimensional modeling sphere S 2 showing their geometric properties affecting the hyperbolic navigation. We place emphasis on the geometric definition of spherical parabola and relate it to the notions of spherical ellipse and hyperbola and give simple geometric proofs for relations between conical curves on the sphere. In the second part of the paper function representing the ratio of the circle's circumference to its diameter has been defined and researched to analyze the potential discrepancies in the spherical and conical projective models on which the navigational computations are based on. We compare some non-Euclidean geometric properties of curved surfaces and its Euclidean plane model in reference to the local and global approximation. As a working tool we use function for geometric comparison analysis in the theory of long-range navigation and cartographic projection. We state the existence of the infinite number of the circles having the same radius but different circumference on the conical surface. Finally, we survey the exemplary proposals of generalization of function . In particular, we focus on the geometric structure of applied model treated as a metric space showing the differences in the outputting computations if the changes in a metric are made. We also relate the function to Tissot's indicatrix of distortion.
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topic |
geometry of navigation mapping spherical conic number π |
url |
https://journals.vgtu.lt/index.php/GAC/article/view/4766 |
work_keys_str_mv |
AT piotrkopacz ongeometricpropertiesofsphericalconicsandgeneralizationofpinnavigationandmapping |
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