Linear feature alignment based on vector potential field

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Siriba, David N.; Sester, Monika: Linear feature alignment based on vector potential field. In: International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences: [Joint International Conference On Theory, Data Handling And Modelling In Geospatial Information Science] 38 (2010), Nr. Part 2, S. 400-405

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To cite the version in the repository, please use this identifier: https://doi.org/10.15488/1133

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Sum total of downloads: 132




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Abstract: 
An approach to align a linear feature in one dataset with a corresponding feature in another dataset that is considered more accurate is presented. The approach is based on the active contours (snake) concept, but implements the external force as a vector potential field in which case the source of the force is in vector form; further the snake feature is implemented as a non-closed snake. This is different from the conventional implementation of the snake, where the source of the external force is an image and the force is implemented as a gradient flow and usually as a closed snake. In this approach two conditions: the length and alignment conditions have to be satisfied to obtain a good alignment. Whereas the length condition ensures that the length of the snake feature is nearly equal that of the reference feature, the alignment condition requires that the snake and the reference feature are properly aligned. The length condition is achieved by fixing the end points of the snake feature to those of the reference feature. The alignment condition is achieved by segmenting the reference feature so that there is uniform external force from all parts of the feature. One assumption in this approach is that the snake and the reference feature are matched prior to alignment. An outstanding challenge therefore is to find out how to consider the effects of non-corresponding but neighbouring reference features on a snake feature in circumstances where prior matching has not been undertaken.
License of this version: CC BY 3.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2010
Appears in Collections:Fakultät für Bauingenieurwesen und Geodäsie

distribution of downloads over the selected time period:

downloads by country:

pos. country downloads
total perc.
1 image of flag of Germany Germany 96 72.73%
2 image of flag of United States United States 16 12.12%
3 image of flag of China China 7 5.30%
4 image of flag of France France 4 3.03%
5 image of flag of Nepal Nepal 2 1.52%
6 image of flag of No geo information available No geo information available 1 0.76%
7 image of flag of Taiwan Taiwan 1 0.76%
8 image of flag of Sweden Sweden 1 0.76%
9 image of flag of Spain Spain 1 0.76%
10 image of flag of Austria Austria 1 0.76%
    other countries 2 1.52%

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