Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest

Pre-disaster programs, especially for seismic hazards, are necessary to quickly recover the services of a lifeline network. In the case of a multi-source (or multi-root) water lifeline network, an efficient repair schedule must be implemented immediately after an earthquake to assist in post-disaste...

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Main Authors: Garciano, Lessandro Estelito, Garciano, Agnes, Tolentino, Mark, Carandang, Abraham Matthew
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Published: Animo Repository 2019
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/2975
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Institution: De La Salle University
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-39742021-11-18T06:18:54Z Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest Garciano, Lessandro Estelito Garciano, Agnes Tolentino, Mark Carandang, Abraham Matthew Pre-disaster programs, especially for seismic hazards, are necessary to quickly recover the services of a lifeline network. In the case of a multi-source (or multi-root) water lifeline network, an efficient repair schedule must be implemented immediately after an earthquake to assist in post-disaster activities as well as to minimize the subsequent health problems caused by the lack of potable water supply. As such water lifeline operators must establish restoration strategies especially if the supply of water comes from different sources and spatially distributed. For a single-source water network, Horn's algorithm can be used to determine an optimal restoration strategy. However, a variation of this algorithm is necessary in order to allow simultaneous repairs at any given time for a multiple-source lifeline water network. In this research, the authors employ a constrained spanning forest (CSF) algorithm to decompose the network into trees rooted at each source. After the decomposition, Horn's algorithm is used to determine the optimal restoration strategy for each tree in the network with the objective of minimizing a penalty value. Restoration of each node in the spanning forest is carried in sequence according to availability of the crew and allows simultaneous jobs to be done on consecutive arcs in the sequence. © Int. J. of GEOMATE. 2019-01-01T08:00:00Z text https://animorepository.dlsu.edu.ph/faculty_research/2975 Faculty Research Work Animo Repository Water-supply Water—Distribution Disaster relief Spanning trees (Graph theory) Civil and Environmental Engineering
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Water-supply
Water—Distribution
Disaster relief
Spanning trees (Graph theory)
Civil and Environmental Engineering
spellingShingle Water-supply
Water—Distribution
Disaster relief
Spanning trees (Graph theory)
Civil and Environmental Engineering
Garciano, Lessandro Estelito
Garciano, Agnes
Tolentino, Mark
Carandang, Abraham Matthew
Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest
description Pre-disaster programs, especially for seismic hazards, are necessary to quickly recover the services of a lifeline network. In the case of a multi-source (or multi-root) water lifeline network, an efficient repair schedule must be implemented immediately after an earthquake to assist in post-disaster activities as well as to minimize the subsequent health problems caused by the lack of potable water supply. As such water lifeline operators must establish restoration strategies especially if the supply of water comes from different sources and spatially distributed. For a single-source water network, Horn's algorithm can be used to determine an optimal restoration strategy. However, a variation of this algorithm is necessary in order to allow simultaneous repairs at any given time for a multiple-source lifeline water network. In this research, the authors employ a constrained spanning forest (CSF) algorithm to decompose the network into trees rooted at each source. After the decomposition, Horn's algorithm is used to determine the optimal restoration strategy for each tree in the network with the objective of minimizing a penalty value. Restoration of each node in the spanning forest is carried in sequence according to availability of the crew and allows simultaneous jobs to be done on consecutive arcs in the sequence. © Int. J. of GEOMATE.
format text
author Garciano, Lessandro Estelito
Garciano, Agnes
Tolentino, Mark
Carandang, Abraham Matthew
author_facet Garciano, Lessandro Estelito
Garciano, Agnes
Tolentino, Mark
Carandang, Abraham Matthew
author_sort Garciano, Lessandro Estelito
title Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest
title_short Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest
title_full Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest
title_fullStr Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest
title_full_unstemmed Efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest
title_sort efficient repair scheduling strategy of a multi-source lifeline network using constrained spanning forest
publisher Animo Repository
publishDate 2019
url https://animorepository.dlsu.edu.ph/faculty_research/2975
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