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what is the query to get the list all index names, its column name and its table name of a postgresql database?

I have tried to get the list of all indexes in a db by using this query but how to get the list of indexes, its column names and its table names?

 SELECT *
 FROM pg_class, pg_index
 WHERE pg_class.oid = pg_index.indexrelid
 AND pg_class.oid IN (
     SELECT indexrelid
     FROM pg_index, pg_class
     WHERE pg_class.oid=pg_index.indrelid
     AND indisunique != 't'
     AND indisprimary != 't'
     AND relname !~ '^pg_');`
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1 Answer 1

up vote 27 down vote accepted

This will output all indexes with details (extracted from my view definitions):

SELECT i.relname as indname,
       i.relowner as indowner,
       idx.indrelid::regclass,
       am.amname as indam,
       idx.indkey,
       ARRAY(
       SELECT pg_get_indexdef(idx.indexrelid, k + 1, true)
       FROM generate_subscripts(idx.indkey, 1) as k
       ORDER BY k
       ) as indkey_names,
       idx.indexprs IS NOT NULL as indexprs,
       idx.indpred IS NOT NULL as indpred
FROM   pg_index as idx
JOIN   pg_class as i
ON     i.oid = idx.indexrelid
JOIN   pg_am as am
ON     i.relam = am.oid;

Optionally add an extra join to the end so as to trim the namespaces:

SELECT i.relname as indname,
       i.relowner as indowner,
       idx.indrelid::regclass,
       am.amname as indam,
       idx.indkey,
       ARRAY(
       SELECT pg_get_indexdef(idx.indexrelid, k + 1, true)
       FROM generate_subscripts(idx.indkey, 1) as k
       ORDER BY k
       ) as indkey_names,
       idx.indexprs IS NOT NULL as indexprs,
       idx.indpred IS NOT NULL as indpred
FROM   pg_index as idx
JOIN   pg_class as i
ON     i.oid = idx.indexrelid
JOIN   pg_am as am
ON     i.relam = am.oid
JOIN   pg_namespace as ns
ON     ns.oid = i.relnamespace
AND    ns.nspname = ANY(current_schemas(false));
share|improve this answer
    
great its working; for me i need only user defined indexes so i have another condition WHERE i.relname !~ '^(pg_|sql_)' –  vchitta Jul 21 '11 at 15:14
2  
You probably don't need that condition if you're using the second query I posted. It strips out anything that doesn't live in your path (minus the system schemas). –  Denis Jul 21 '11 at 15:23

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