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https://issues.apache.org/jira/browse/SPARK-59620?page=com.atlassian.jira.plugin.system.issuetabpanels:all-tabpanel
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ASF GitHub Bot updated SPARK-59620:
-----------------------------------
    Labels: pull-request-available  (was: )

> Late-materialization storage-filter pushdown via splicing
> ---------------------------------------------------------
>
>                 Key: SPARK-59620
>                 URL: https://issues.apache.org/jira/browse/SPARK-59620
>             Project: Spark
>          Issue Type: New Feature
>          Components: SQL
>    Affects Versions: 5.0.0
>            Reporter: Peter Toth
>            Priority: Major
>              Labels: pull-request-available
>
> A runtime bloom filter from join runtime filtering is applied today as a 
> Filter above the scan. The scan still reads every value page of every row 
> group, even where the filter drops almost every row. On a selective join over 
> a wide table that read is the dominant cost.
> This asks for such a filter to be pushed into the scan instead, so the 
> vectorized Parquet reader can read the filter's key column first, decide 
> which rows survive, and skip the column pages that no surviving row touches. 
> A row group where nothing survives then costs one key-column read and no 
> value-column IO at all.
> The scan reports what it saved through new SQL metrics, so a user can see 
> when the filter is paying off and when it is not.
> Behind a new SQL config, off by default.



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