added normalization step to the doi
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@ -2,6 +2,7 @@ package eu.dnetlib.doiboost.mag
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import eu.dnetlib.dhp.application.ArgumentApplicationParser
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import eu.dnetlib.dhp.schema.oaf.Publication
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import eu.dnetlib.doiboost.DoiBoostMappingUtil
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import org.apache.commons.io.IOUtils
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import org.apache.spark.SparkConf
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import org.apache.spark.rdd.RDD
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@ -12,6 +13,23 @@ import org.slf4j.{Logger, LoggerFactory}
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import scala.collection.JavaConverters._
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object SparkProcessMAG {
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def getDistinctResults (d:Dataset[MagPapers]):Dataset[MagPapers]={
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d.where(col("Doi").isNotNull)
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.groupByKey(mp => DoiBoostMappingUtil.normalizeDoi(mp.Doi))(Encoders.STRING)
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.reduceGroups((p1:MagPapers,p2:MagPapers) => ConversionUtil.choiceLatestMagArtitcle(p1,p2))
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.map(_._2)(Encoders.product[MagPapers])
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.map(mp => {
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new MagPapers(mp.PaperId, mp.Rank, DoiBoostMappingUtil.normalizeDoi(mp.Doi),
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mp.DocType, mp.PaperTitle, mp.OriginalTitle,
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mp.BookTitle, mp.Year, mp.Date, mp.Publisher: String,
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mp.JournalId, mp.ConferenceSeriesId, mp.ConferenceInstanceId,
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mp.Volume, mp.Issue, mp.FirstPage, mp.LastPage,
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mp.ReferenceCount, mp.CitationCount, mp.EstimatedCitation,
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mp.OriginalVenue, mp.FamilyId, mp.CreatedDate)
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})(Encoders.product[MagPapers])
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}
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def main(args: Array[String]): Unit = {
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val logger: Logger = LoggerFactory.getLogger(getClass)
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@ -33,17 +51,11 @@ object SparkProcessMAG {
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implicit val mapEncoderPubs: Encoder[Publication] = org.apache.spark.sql.Encoders.kryo[Publication]
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implicit val tupleForJoinEncoder: Encoder[(String, Publication)] = Encoders.tuple(Encoders.STRING, mapEncoderPubs)
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logger.info("Phase 1) make uninque DOI in Papers:")
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logger.info("Phase 1) make uninue DOI in Papers:")
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val d: Dataset[MagPapers] = spark.read.load(s"$sourcePath/Papers").as[MagPapers]
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// Filtering Papers with DOI, and since for the same DOI we have multiple version of item with different PapersId we get the last one
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val result: RDD[MagPapers] = d.where(col("Doi").isNotNull)
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.rdd
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.map{ p: MagPapers => Tuple2(p.Doi, p) }
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.reduceByKey((p1:MagPapers,p2:MagPapers) => ConversionUtil.choiceLatestMagArtitcle(p1,p2))
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.map(_._2)
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val distinctPaper: Dataset[MagPapers] = spark.createDataset(result)
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val distinctPaper: Dataset[MagPapers] = getDistinctResults(d)
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distinctPaper.write.mode(SaveMode.Overwrite).save(s"$workingPath/Papers_distinct")
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