Github user davies commented on a diff in the pull request:
https://github.com/apache/spark/pull/14690#discussion_r77422471
--- Diff:
sql/core/src/main/scala/org/apache/spark/sql/execution/datasources/TableFileCatalog.scala
---
@@ -0,0 +1,102 @@
+/*
+ * Licensed to the Apache Software Foundation (ASF) under one or more
+ * contributor license agreements. See the NOTICE file distributed with
+ * this work for additional information regarding copyright ownership.
+ * The ASF licenses this file to You under the Apache License, Version 2.0
+ * (the "License"); you may not use this file except in compliance with
+ * the License. You may obtain a copy of the License at
+ *
+ * http://www.apache.org/licenses/LICENSE-2.0
+ *
+ * Unless required by applicable law or agreed to in writing, software
+ * distributed under the License is distributed on an "AS IS" BASIS,
+ * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
+ * See the License for the specific language governing permissions and
+ * limitations under the License.
+ */
+
+package org.apache.spark.sql.execution.datasources
+
+import org.apache.hadoop.fs.Path
+
+import org.apache.spark.sql.SparkSession
+import org.apache.spark.sql.catalyst.InternalRow
+import org.apache.spark.sql.catalyst.catalog.CatalogTablePartition
+import org.apache.spark.sql.catalyst.expressions._
+import org.apache.spark.sql.types.{StructField, StructType}
+
+
+/**
+ * A [[BasicFileCatalog]] for a metastore catalog table.
+ *
+ * @param sparkSession a [[SparkSession]]
+ * @param db the table's database name
+ * @param table the table's (unqualified) name
+ * @param partitionSchema the schema of a partitioned table's partition
columns
+ * @param sizeInBytes the table's data size in bytes
+ */
+class TableFileCatalog(
+ sparkSession: SparkSession,
+ db: String,
+ table: String,
+ partitionSchema: Option[StructType],
+ override val sizeInBytes: Long)
+ extends SessionFileCatalog(sparkSession) {
+
+ override protected val hadoopConf =
sparkSession.sessionState.newHadoopConf
+
+ private val externalCatalog = sparkSession.sharedState.externalCatalog
+
+ private val catalogTable = externalCatalog.getTable(db, table)
+
+ private val baseLocation = catalogTable.storage.locationUri
+
+ override def rootPaths: Seq[Path] = baseLocation.map(new Path(_)).toSeq
+
+ override def listFiles(filters: Seq[Expression]): Seq[Partition] =
partitionSchema match {
+ case Some(partitionSchema) =>
+ externalCatalog.listPartitionsByFilter(db, table, filters).flatMap {
+ case CatalogTablePartition(spec, storage, _) =>
+ storage.locationUri.map(new Path(_)).map { path =>
+ val files = listDataLeafFiles(path :: Nil).toSeq
+ val values =
+ InternalRow.fromSeq(partitionSchema.map { case
StructField(name, dataType, _, _) =>
+ Cast(Literal(spec(name)), dataType).eval()
+ })
+ Partition(values, files)
+ }
+ }
+ case None =>
+ Partition(InternalRow.empty, listDataLeafFiles(rootPaths).toSeq) ::
Nil
+ }
+
+ override def refresh(): Unit = {}
+
+
+ /**
+ * Returns a [[ListingFileCatalog]] for this table restricted to the
subset of partitions
+ * specified by the given partition-pruning filters.
+ *
+ * @param filters partition-pruning filters
+ */
+ def filterPartitions(filters: Seq[Expression]): ListingFileCatalog = {
--- End diff --
Usually the partitioned table is big (fact table), mostly broadcast join
will not be picked even having the pruned statistics. btw, we have broadcast
hint, it's fine to move the pruning into execution time, same as others.
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