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<title><![CDATA[HIGH-PERFORMANCE COMPUTING MEMETIC ALGORITHM (HPCMA) 
MODEL TO PROCESS IMAGE FINGERPRINT DATASET]]></title>
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<namePart>PRIATI ASSIROJ</namePart>
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<namePart>Harco Leslie Hendric Spits Warnars</namePart>
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<name type="Personal Name" authority="">
<namePart>Edi Abdurachman</namePart>
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<namePart>ACHMAD IMAM KISTIJANTORO</namePart>
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<name type="Personal Name" authority="">
<namePart>ANTOINE DOUCET</namePart>
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<publisher><![CDATA[SCIK Publishing Corporation]]></publisher>
<dateIssued><![CDATA[2021]]></dateIssued>
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<note>The terminology of the memetic refers to “meme”. The meme is a part of natural information of the 
individual population and this information can be transmitted among the individual of the population. The memetic 
algorithm (MA) uses the evolutionary concept based on the Genetic Algorithm (GA) and is combined with a local 
search feature. Thus, as in GA, MA employs the basic steps such as selection, crossover, and mutation with additional 
components a local search to improve the solution of candidates. The major challenge of this algorithm is how to 
develop a good local search operator that can do a good exploration of the entire population. Several methods have 
been proposed and we have studied several parallel methods implemented on MA (PMA) to increase the efficiency of 
processing time. The parallel method is included in cluster computing, and that is a part of high-performance 
computing systems. In this work, we proposed the two new models of the memetic algorithm that run in a high performance computing system (HPCMA) environment by utilizing the multi-threads feature of processor, so-called 
HPCMA1 and HPCMA2 model, to process fingerprints image dataset. The result shows that the HPCMA1 model runs 
with high inconsistency data caused by its overlaps in the macro-process and to address the problem from the 
HPCMA1 model we use the HPCMA2 model.</note>
<subject authority=""><topic><![CDATA[parallel ma]]></topic></subject>
<subject authority=""><topic><![CDATA[genetic algorithm]]></topic></subject>
<subject authority=""><topic><![CDATA[memetic algorithm]]></topic></subject>
<subject authority=""><topic><![CDATA[high-performance computing ma]]></topic></subject>
<classification><![CDATA[NONE]]></classification><identifier type="isbn"><![CDATA[19275307]]></identifier><location>
<physicalLocation><![CDATA[Repository Local Content Institut Transportasi dan Logistik TRISAKTI]]></physicalLocation>
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