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LeakDB : A benchmark dataset for leakage diagnosis in water distribution networks

Vrachimis, Stelios G.; Kyriakou, Marios S.; Eliades, Demetrios G.; Polycarpou, Marios M.


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  <identifier identifierType="DOI">10.5281/zenodo.1313116</identifier>
  <creators>
    <creator>
      <creatorName>Vrachimis, Stelios G.</creatorName>
      <givenName>Stelios G.</givenName>
      <familyName>Vrachimis</familyName>
      <nameIdentifier nameIdentifierScheme="ORCID" schemeURI="http://orcid.org/">0000-0001-8862-5205</nameIdentifier>
      <affiliation>KIOS Research and Innovation Center of Excellence</affiliation>
    </creator>
    <creator>
      <creatorName>Kyriakou, Marios S.</creatorName>
      <givenName>Marios S.</givenName>
      <familyName>Kyriakou</familyName>
      <affiliation>KIOS Research and Innovation Center of Excellence</affiliation>
    </creator>
    <creator>
      <creatorName>Eliades, Demetrios G.</creatorName>
      <givenName>Demetrios G.</givenName>
      <familyName>Eliades</familyName>
      <nameIdentifier nameIdentifierScheme="ORCID" schemeURI="http://orcid.org/">0000-0001-6184-6366</nameIdentifier>
      <affiliation>KIOS Research and Innovation Center of Excellence</affiliation>
    </creator>
    <creator>
      <creatorName>Polycarpou, Marios M.</creatorName>
      <givenName>Marios M.</givenName>
      <familyName>Polycarpou</familyName>
      <nameIdentifier nameIdentifierScheme="ORCID" schemeURI="http://orcid.org/">0000-0001-6495-9171</nameIdentifier>
      <affiliation>KIOS Research and Innovation Center of Excellence</affiliation>
    </creator>
  </creators>
  <titles>
    <title>LeakDB : A benchmark dataset for leakage diagnosis in water distribution networks</title>
  </titles>
  <publisher>Zenodo</publisher>
  <publicationYear>2018</publicationYear>
  <dates>
    <date dateType="Issued">2018-07-16</date>
  </dates>
  <resourceType resourceTypeGeneral="ConferencePaper"/>
  <alternateIdentifiers>
    <alternateIdentifier alternateIdentifierType="url">https://zenodo.org/record/1313116</alternateIdentifier>
  </alternateIdentifiers>
  <relatedIdentifiers>
    <relatedIdentifier relatedIdentifierType="URL" relationType="Documents" resourceTypeGeneral="Dataset">https://github.com/KIOS-Research/LeakDB</relatedIdentifier>
    <relatedIdentifier relatedIdentifierType="DOI" relationType="IsVersionOf">10.5281/zenodo.1313115</relatedIdentifier>
    <relatedIdentifier relatedIdentifierType="URL" relationType="IsPartOf">https://zenodo.org/communities/cyprus</relatedIdentifier>
    <relatedIdentifier relatedIdentifierType="URL" relationType="IsPartOf">https://zenodo.org/communities/kios-coe</relatedIdentifier>
    <relatedIdentifier relatedIdentifierType="URL" relationType="IsPartOf">https://zenodo.org/communities/smartwater-2020</relatedIdentifier>
  </relatedIdentifiers>
  <rightsList>
    <rights rightsURI="https://creativecommons.org/licenses/by/4.0/legalcode">Creative Commons Attribution 4.0 International</rights>
    <rights rightsURI="info:eu-repo/semantics/openAccess">Open Access</rights>
  </rightsList>
  <descriptions>
    <description descriptionType="Abstract">&lt;p&gt;The increase of streaming data from water utilities is enabling the development of real-time anomaly and fault detection algorithms that can detect events, such as pipe bursts and leakages. Currently, there is not a widely accessible dataset of real or realistic leakage scenarios, which could be used as a common benchmark to compare different algorithms, as well as to support research reproducibility. In this work we propose the design of a realistic leakage dataset, the Leakage Diagnosis Benchmark (LeakDB). The dataset is comprised of a large number of artificially created but realistic leakage scenarios, on different water distribution networks, under varying conditions. Additionally, a scoring algorithm was developed in MATLAB to evaluate the results of different algorithms using various metrics. The usage of the LeakDB dataset, is demonstrated by scoring four detection algorithms. The dataset is stored on an open research data repository, and will be updated in the future with new simulation scenarios. The source code of the toolkit that generates the leakage benchmark dataset, as well as the detection algorithms used, are released as open source.&lt;/p&gt;</description>
  </descriptions>
  <fundingReferences>
    <fundingReference>
      <funderName>European Commission</funderName>
      <funderIdentifier funderIdentifierType="Crossref Funder ID">10.13039/100010661</funderIdentifier>
      <awardNumber awardURI="info:eu-repo/grantAgreement/EC/H2020/739551/">739551</awardNumber>
      <awardTitle>KIOS Research and Innovation Centre of Excellence</awardTitle>
    </fundingReference>
  </fundingReferences>
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