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<title>D2. 1–Report on Dynamic Data Reconciliation of Large-Scale Processes</title>
<creator>Pitarch Pérez, José Luis</creator>
<creator>Prada Moraga, César de</creator>
<contributor>EU-SPIRE</contributor>
<description>Producción Científica</description>
<description>Availability of reliable process information in real time is key in any decision-making procedure. Thus, good industrial decision-support implementations require dealing with gross errors and consideration of process transients in order to get a set of measurements which will be coherent with the basic underlying process dynamics. This report presents dynamic data reconciliation methods and tools adapted to the requirements of industrial environments (large-scale systems and noisy/faulty data). Moreover, basic concepts in literature are extended to artificially increase system redundancy as well as to cope with time-varying parameter estimation. The procedure summarized in this report has been tested in the Lenzing case study.</description>
<date>2019-01-09</date>
<date>2019-01-09</date>
<date>2018</date>
<type>info:eu-repo/semantics/report</type>
<identifier>J. L. Pitarch and C. de Prada, 2018. D2. 1-Report on dynamic data reconciliation of large-scale processes. Outcomes of the CoPro Project.</identifier>
<identifier>http://uvadoc.uva.es/handle/10324/33735</identifier>
<language>eng</language>
<relation>https://www.spire2030.eu/copro</relation>
<relation>info:eu-repo/grantAgreement/EC/H2020/723575</relation>
<rights>info:eu-repo/semantics/openAccess</rights>
<rights>http://creativecommons.org/licenses/by-sa/4.0/</rights>
<rights>EU-SPIRE</rights>
<rights>Attribution-ShareAlike 4.0 International</rights>
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