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What is the most efficient way to get the number of partitions created in the database? I am using *postgresq*l APi for c++.

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2 Answers 2

up vote 4 down vote accepted

This is how you can select all the names of the table partitions:

SELECT
    nmsp_parent.nspname AS parent_schema,
    parent.relname      AS parent,
    nmsp_child.nspname  AS child,
    child.relname       AS child_schema
FROM pg_inherits
    JOIN pg_class parent        ON pg_inherits.inhparent = parent.oid
    JOIN pg_class child         ON pg_inherits.inhrelid   = child.oid
    JOIN pg_namespace nmsp_parent   ON nmsp_parent.oid  = parent.relnamespace
    JOIN pg_namespace nmsp_child    ON nmsp_child.oid   = child.relnamespace

It can be used to count as well:

SELECT
    nmsp_parent.nspname     AS parent_schema,
    parent.relname          AS parent,
    COUNT(*)
FROM pg_inherits
    JOIN pg_class parent        ON pg_inherits.inhparent = parent.oid
    JOIN pg_class child     ON pg_inherits.inhrelid   = child.oid
    JOIN pg_namespace nmsp_parent   ON nmsp_parent.oid  = parent.relnamespace
    JOIN pg_namespace nmsp_child    ON nmsp_child.oid   = child.relnamespace
GROUP BY
    parent_schema,
    parent;
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And how do I delete the oldest partition? (The partition which was created first?) –  Shay Dec 26 '11 at 10:28
    
If the lowest OID is the oldest partition, you could use MIN(child.oid) to find this partition. You can use this to find the name and schema for this table and use it to DROP this table. A stored procedure makes it a bit easier to maintain. –  Frank Heikens Dec 26 '11 at 11:27

This question is old. But a new question on dba.SE references it, and I feel compelled to add a simpler solution.

According to the question, to ...

get the number of partitions created in the database:

Using inheritance and for a specific parent table, I assume:

SELECT count(*) AS partitions
FROM   pg_inherits i
WHERE  i.inhparent = 'my_schema.my_parent_tbl'::regclass;

More details in the related answer on dba.SE:
Get all partition names for a table

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