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Posted to issues@spark.apache.org by "Xiayun Sun (JIRA)" <ji...@apache.org> on 2017/09/15 03:30:02 UTC
[jira] [Comment Edited] (SPARK-21994) Spark 2.2 can not read
Parquet table created by itself
[ https://issues.apache.org/jira/browse/SPARK-21994?page=com.atlassian.jira.plugin.system.issuetabpanels:comment-tabpanel&focusedCommentId=16167276#comment-16167276 ]
Xiayun Sun edited comment on SPARK-21994 at 9/15/17 3:29 AM:
-------------------------------------------------------------
I'm unable to reproduce this for latest master build (commit a28728a, version 2.3.0-SNAPSHOT)
{code:java}
scala> spark.sql("create database test")
res0: org.apache.spark.sql.DataFrame = []
scala> val df = spark.sql("show databases")
df: org.apache.spark.sql.DataFrame = [databaseName: string]
scala> df.show()
+------------+
|databaseName|
+------------+
| default|
| test|
+------------+
scala> df.write.format("parquet").saveAsTable("test.spark22_test")
scala> spark.sql("select * from test.spark22_test").show()
+------------+
|databaseName|
+------------+
| default|
| test|
+------------+
{code}
was (Author: xiayunsun):
I'm unable to reproduce this for latest master build (commit a28728a, version 2.3.0-SNAPSHOT)
{{
scala> spark.sql("create database test")
res0: org.apache.spark.sql.DataFrame = []
scala> val df = spark.sql("show databases")
df: org.apache.spark.sql.DataFrame = [databaseName: string]
scala> df.show()
+------------+
|databaseName|
+------------+
| default|
| test|
+------------+
scala> df.write.format("parquet").saveAsTable("test.spark22_test")
scala> spark.sql("select * from test.spark22_test").show()
+------------+
|databaseName|
+------------+
| default|
| test|
+------------+
}}
> Spark 2.2 can not read Parquet table created by itself
> ------------------------------------------------------
>
> Key: SPARK-21994
> URL: https://issues.apache.org/jira/browse/SPARK-21994
> Project: Spark
> Issue Type: Bug
> Components: SQL
> Affects Versions: 2.2.0
> Environment: Spark 2.2 on Cloudera CDH 5.10.1, Hive 1.1
> Reporter: Jurgis Pods
>
> This seems to be a new bug introduced in Spark 2.2, since it did not occur under Spark 2.1.
> When writing a dataframe to a table in Parquet format, Spark SQL does not write the 'path' of the table to the Hive metastore, unlike in previous versions.
> As a consequence, Spark 2.2 is not able to read the table it just created. It just outputs the table header without any row content.
> A parallel installation of Spark 1.6 at least produces an appropriate error trace:
> {code:java}
> 17/09/13 10:22:12 WARN metastore.ObjectStore: Version information not found in metastore. hive.metastore.schema.verification is not enabled so recording the schema version 1.1.0
> 17/09/13 10:22:12 WARN metastore.ObjectStore: Failed to get database default, returning NoSuchObjectException
> org.spark-project.guava.util.concurrent.UncheckedExecutionException: java.util.NoSuchElementException: key not found: path
> [...]
> {code}
> h3. Steps to reproduce:
> Run the following in spark2-shell:
> {code:java}
> scala> val df = spark.sql("show databases")
> scala> df.show()
> +--------------------+
> | databaseName|
> +--------------------+
> | mydb1|
> | mydb2|
> | default|
> | test|
> +--------------------+
> scala> df.write.format("parquet").saveAsTable("test.spark22_test")
> scala> spark.sql("select * from test.spark22_test").show()
> +------------+
> |databaseName|
> +------------+
> +------------+{code}
> When manually setting the path, it works:
> {code:java}
> scala> df.write.option("path", "/hadoop/eco/hive/warehouse/test.db/spark22_parquet_with_path").format("parquet").saveAsTable("test.spark22_parquet_with_path")
> scala> spark.sql("select * from test.spark22_parquet_with_path").show()
> +--------------------+
> | databaseName|
> +--------------------+
> | mydb1|
> | mydb2|
> | default|
> | test|
> +--------------------+
> {code}
> It is kind of a disaster that we are not able to read tables created by the very same Spark version and have to manually specify the path as an explicit option.
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