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<bibitem type="C">   <ARLID>0462468</ARLID> <utime>20240111140924.3</utime><mtime>20160912235959.9</mtime>   <SCOPUS>84996555014</SCOPUS> <WOS>000389524200094</WOS>  <DOI>10.1109/ETFA.2016.7733587</DOI>           <title language="eng" primary="1">Adaptive Fault Diagnoser based on PSO Algorithm for a class of Timed Continuous Petri Nets</title>  <specification> <page_count>7 s.</page_count> <media_type>C</media_type> </specification>   <serial><ARLID>cav_un_epca*0462467</ARLID><ISBN>978-1-5090-1314-2</ISBN><title>Proceedings of 2016 IEEE 21th Conference on Emerging Technologies &amp; Factory Automation (ETFA)</title><part_num/><part_title>IEEE catalog number: CFP16ETF-ART</part_title><page_num>1-7</page_num><publisher><place>Berlin</place><name>IEEE</name><year>2016</year></publisher></serial>    <keyword>Fault detection</keyword>   <keyword>Timed Petri Nets</keyword>    <author primary="1"> <ARLID>cav_un_auth*0333178</ARLID>  <name1>Casas-Carrillo</name1> <name2>R.</name2> <country>MX</country> </author> <author primary="0"> <ARLID>cav_un_auth*0333179</ARLID>  <name1>Begovich</name1> <name2>O.</name2> <country>MX</country> </author> <author primary="0"> <ARLID>cav_un_auth*0213231</ARLID>  <name1>Ruiz-León</name1> <name2>J.</name2> <country>MX</country> </author> <author primary="0"> <ARLID>cav_un_auth*0101074</ARLID> <full_dept language="cz">Teorie řízení</full_dept> <full_dept>Department of Control Theory </full_dept> <department language="cz">TŘ</department> <department>TR</department> <full_dept>Department of Control Theory</full_dept>  <name1>Čelikovský</name1> <name2>Sergej</name2> <institution>UTIA-B</institution> <fullinstit>Ústav teorie informace a automatizace AV ČR, v. v. i.</fullinstit> </author>   <source> <source_type>příspěvek na konferenci</source_type> <url>http://www.ieeeexplore.ws/document/7733587/</url> <source_size>3,06 MB</source_size> </source>        <cas_special> <project> <ARLID>cav_un_auth*0292613</ARLID> <project_id>GA13-20433S</project_id> <agency>GA ČR</agency> </project>  <abstract language="eng" primary="1">This work is concerned with the implementation of  an Adaptive Fault Diagnoser (AFD) for a system modeled by  Timed Continuous Petri Nets under infinite server semantics,  where the set of potential faults is a priori known, however  their presence during system evolution, type, location, occurrence  time, magnitude and behavior over time are unknown. There  exist previous works reported in literature, where this problem  has been solved, unfortunately the number of diagnosers used  to detect, isolate and identify the fault is too large. Now, this  work proposes a single diagnoser model where its structure  is known and some of its parameters are updated depending  on the fault occurrence. Considering this model, identification  algorithms, based on heuristic optimization methods, are used  to identify these unknown fault parameters. The analysis of  the diagnoser parameters allows the faults detection, isolation  and identification. The effectiveness of the proposed diagnoser is  shown through two examples with different fault behaviors.</abstract>    <action target="EUR"> <ARLID>cav_un_auth*0333180</ARLID> <name>The 2016 IEEE 21th Conference on Emerging Technologies &amp; Factory Automation (ETFA)</name> <dates>06.09.2016-09.09.2016</dates> <place>Berlin</place> <country>DE</country>  </action>  <RIV>BC</RIV>    <reportyear>2017</reportyear>      <num_of_auth>4</num_of_auth>  <presentation_type> PR </presentation_type> <inst_support> RVO:67985556 </inst_support>  <permalink>http://hdl.handle.net/11104/0261934</permalink>  <unknown tag="mrcbC61"> 1 </unknown> <cooperation> <ARLID>cav_un_auth*0333181</ARLID> <name>CINVESTAV Unidad Guadalajara, Zapopan, Jalisco, Mexico</name> <institution>CINVESTAV</institution> <country>MX</country> </cooperation>  <confidential>S</confidential>  <unknown tag="mrcbC86"> 3+4 Proceedings Paper Automation Control Systems  </unknown>       <arlyear>2016</arlyear>       <unknown tag="mrcbU14"> 84996555014 SCOPUS </unknown> <unknown tag="mrcbU34"> 000389524200094 WOS </unknown> <unknown tag="mrcbU56"> příspěvek na konferenci 3,06 MB </unknown> <unknown tag="mrcbU63"> cav_un_epca*0462467 Proceedings of 2016 IEEE 21th Conference on Emerging Technologies &amp; Factory Automation (ETFA) 978-1-5090-1314-2 1 7 Berlin IEEE 2016 IEEE catalog number: CFP16ETF-ART </unknown> </cas_special> </bibitem>