Interactive shape modelling for mathematics visualization

Existing educational virtual spaces simulate either traditional education environments (e.g., lecture theatres, seminar rooms, laboratories) or various phenomena in the real world (e.g., volcano eruptions, tornados, micro and macro scenes). However, subjects richly infused with mathematics and geome...

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Main Author: Lai, Danbo
Other Authors: Zhao Dongsheng
Format: Theses and Dissertations
Language:English
Published: 2014
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Online Access:https://hdl.handle.net/10356/61850
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-618502023-03-04T00:42:19Z Interactive shape modelling for mathematics visualization Lai, Danbo Zhao Dongsheng Alexei Sourin School of Computer Engineering Institute for Media Innovation DRNTU::Engineering::Computer science and engineering::Computing methodologies::Computer graphics Existing educational virtual spaces simulate either traditional education environments (e.g., lecture theatres, seminar rooms, laboratories) or various phenomena in the real world (e.g., volcano eruptions, tornados, micro and macro scenes). However, subjects richly infused with mathematics and geometry, require from instructors principally new virtual educational spaces, which do not exist in real world. We propose a new approach called to mathematic visualization which emphasizes how complex geometry, colours, textures and other possible properties of virtual shapes can be defined with mathematical formulas and procedures. It immerses the learners into the world of mathematical definitions in explicit, implicit and parametric forms which can be rendered on any suitable graphics system. Since function definitions are small in size compared to traditionally used polygons, the educational environments can be easily used in shared virtual spaces on the internet. To achieve interactivity while working with visual representation of complex mathematical definitions, special measures have to be proposed to accelerate rendering of the shapes defined by implicit functions. We proposed an algorithm for accelerating such rendering for shape modelling where some initial shape defined by an implicit function is gradually modified by other implicitly-defined shapes (tools) with relatively smaller sizes compared to the final shape. It is based on minimization of the volume of the bounding boxes of the tools. The algorithm adds additional mathematical operations to the final function script while the shape is being modelled interactively. Hence, the final definition of the shape is still a function script that can be rendered faster. The proposed method also permits conversion of any originally unstructured function definitions into the accelerated function scripts. As a proof of concept, an educational software tool was implemented for teaching computer graphics and virtual reality to undergraduate and graduate students of Nanyang Technological University. DOCTOR OF PHILOSOPHY (SCE) 2014-11-19T00:54:47Z 2014-11-19T00:54:47Z 2014 2014 Thesis Lai, D. (2014). Interactive shape modelling for mathematics visualization. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/61850 10.32657/10356/61850 en 125 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Computer science and engineering::Computing methodologies::Computer graphics
spellingShingle DRNTU::Engineering::Computer science and engineering::Computing methodologies::Computer graphics
Lai, Danbo
Interactive shape modelling for mathematics visualization
description Existing educational virtual spaces simulate either traditional education environments (e.g., lecture theatres, seminar rooms, laboratories) or various phenomena in the real world (e.g., volcano eruptions, tornados, micro and macro scenes). However, subjects richly infused with mathematics and geometry, require from instructors principally new virtual educational spaces, which do not exist in real world. We propose a new approach called to mathematic visualization which emphasizes how complex geometry, colours, textures and other possible properties of virtual shapes can be defined with mathematical formulas and procedures. It immerses the learners into the world of mathematical definitions in explicit, implicit and parametric forms which can be rendered on any suitable graphics system. Since function definitions are small in size compared to traditionally used polygons, the educational environments can be easily used in shared virtual spaces on the internet. To achieve interactivity while working with visual representation of complex mathematical definitions, special measures have to be proposed to accelerate rendering of the shapes defined by implicit functions. We proposed an algorithm for accelerating such rendering for shape modelling where some initial shape defined by an implicit function is gradually modified by other implicitly-defined shapes (tools) with relatively smaller sizes compared to the final shape. It is based on minimization of the volume of the bounding boxes of the tools. The algorithm adds additional mathematical operations to the final function script while the shape is being modelled interactively. Hence, the final definition of the shape is still a function script that can be rendered faster. The proposed method also permits conversion of any originally unstructured function definitions into the accelerated function scripts. As a proof of concept, an educational software tool was implemented for teaching computer graphics and virtual reality to undergraduate and graduate students of Nanyang Technological University.
author2 Zhao Dongsheng
author_facet Zhao Dongsheng
Lai, Danbo
format Theses and Dissertations
author Lai, Danbo
author_sort Lai, Danbo
title Interactive shape modelling for mathematics visualization
title_short Interactive shape modelling for mathematics visualization
title_full Interactive shape modelling for mathematics visualization
title_fullStr Interactive shape modelling for mathematics visualization
title_full_unstemmed Interactive shape modelling for mathematics visualization
title_sort interactive shape modelling for mathematics visualization
publishDate 2014
url https://hdl.handle.net/10356/61850
_version_ 1759857419910905856