trait HasPartitionStatistics extends InputPartition
A mix-in for input partitions whose records are clustered on the same set of partition keys
(provided via SupportsReportPartitioning, see below). Data sources can opt-in to
implement this interface for the partitions they report to Spark, which will use the info
to decide whether partition grouping should be applied or not.
- Source
- HasPartitionStatistics.java
- Since
- 4.0.0 
- See also
- org.apache.spark.sql.connector.read.SupportsReportPartitioning 
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-   abstract  def filesCount(): OptionalLongReturns the count of files in the partition statistics associated to this partition. 
-   abstract  def numRows(): OptionalLongReturns the number of rows in the partition statistics associated to this partition. 
-   abstract  def sizeInBytes(): OptionalLongReturns the size in bytes of the partition statistics associated to this partition. 
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-    def preferredLocations(): Array[String]The preferred locations where the input partition reader returned by this partition can run faster, but Spark does not guarantee to run the input partition reader on these locations. The preferred locations where the input partition reader returned by this partition can run faster, but Spark does not guarantee to run the input partition reader on these locations. The implementations should make sure that it can be run on any location. The location is a string representing the host name. Note that if a host name cannot be recognized by Spark, it will be ignored as it was not in the returned locations. The default return value is empty string array, which means this input partition's reader has no location preference. If this method fails (by throwing an exception), the action will fail and no Spark job will be submitted. - Definition Classes
- InputPartition
 
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- (Since version 9)