195

How to print functions and triggers sourcecode in postgresql? please let me know if any one know the query to display the function, triggers source code.

1
  • 11
    as a note for followers who got here trying to figure out how to list all triggers, it's select * from pg_trigger; or, if you also want to see which table each trigger applies to select tgrelid::regclass, tgname from pg_trigger; FWIW ` – rogerdpack Oct 1 '14 at 17:33
182

\df+ in psql gives you the sourcecode.

4
  • 22
    Nice one :) I suggest using \df to find the name of your function, then \x for expanded output, then \df+ name_of_function – Sam Watkins Sep 3 '14 at 7:47
  • 47
    \df+ outputs a lot more than the code. If all you want is the code, \sf will do the trick! – Telic May 10 '17 at 22:47
  • 1
    How to see functions of an installed EXTENSION? Example I am using ltree, but there are no response with \df ltxtquery. – Peter Krauss Jan 4 '18 at 19:02
  • \x ON is a must for transposed display – andilabs Jun 15 '20 at 12:49
138

For function:

you can query the pg_proc view , just as the following

select proname,prosrc from pg_proc where proname= your_function_name; 

Another way is that just execute the commont \df and \ef which can list the functions.

skytf=> \df           
                                             List of functions
 Schema |         Name         | Result data type |              Argument data types               |  Type  
--------+----------------------+------------------+------------------------------------------------+--------
 public | pg_buffercache_pages | SETOF record     |                                                | normal


skytf=> \ef  pg_buffercache_pages

It will show the source code of the function.

For triggers:

I dont't know if there is a direct way to get the source code. Just know the following way, may be it will help you!

  • step 1 : Get the table oid of the trigger:
    skytf=> select tgrelid from pg_trigger  where tgname='insert_tbl_tmp_trigger';
      tgrelid
    ---------
       26599
    (1 row)
  • step 2: Get the table name of the above oid !
    skytf=> select oid,relname  from pg_class where oid=26599;
      oid  |           relname           
    -------+-----------------------------
     26599 | tbl_tmp
    (1 row)
  • step 3: list the table information
    skytf=> \d tbl_tmp

It will show you the details of the trigger of the table . Usually a trigger uses a function. So you can get the source code of the trigger function just as the above that I pointed out !

0
47

Here are few examples from PostgreSQL-9.5

Display list:

  1. Functions: \df+
  2. Triggers : \dy+

Display Definition:

postgres=# \sf
function name is required

postgres=# \sf pg_reload_conf()
CREATE OR REPLACE FUNCTION pg_catalog.pg_reload_conf()
 RETURNS boolean
 LANGUAGE internal
 STRICT
AS $function$pg_reload_conf$function$

postgres=# \sf pg_encoding_to_char
CREATE OR REPLACE FUNCTION pg_catalog.pg_encoding_to_char(integer)
 RETURNS name
 LANGUAGE internal
 STABLE STRICT
AS $function$PG_encoding_to_char$function$
1
  • 8
    Using \x first to turn on expanded display also helps with readability. – Pocketsand Jun 29 '18 at 13:09
27

There are many possibilities. Simplest way is to just use pgAdmin and get this from SQL window. However if you want to get this programmatically then examinate pg_proc and pg_trigger system catalogs or routines and triggers views from information schema (that's SQL standard way, but it might not cover all features especially PostgreSQL-specific). For example:

SELECT
    routine_definition 
FROM
    information_schema.routines 
WHERE
    specific_schema LIKE 'public'
    AND routine_name LIKE 'functionName';
4
  • 3
    Mmmm.. I have PGPSQL functions, that have an empty routine_defintion, and state 'EXTERNAL' in the field routine_body. Any hint where i can find those? – alfonx Jan 12 '12 at 22:44
  • 2
    +1 This is more standard/portable solution. For views the SQL is: SELECT view_definition FROM information_schema.views WHERE table_schema = ? AND table_name = ? – Franta Mar 1 '15 at 10:25
  • But what about the case where a function name is not unique because someone made functions with the same name and different function arguments? stackoverflow.com/questions/47341513/… – mg1075 Nov 17 '17 at 1:00
  • @alfonx see pgproc.prosrc column – Tomáš Záluský Apr 1 '19 at 14:19
14

Slightly more than just displaying the function, how about getting the edit in-place facility as well.

\ef <function_name> is very handy. It will open the source code of the function in editable format. You will not only be able to view it, you can edit and execute it as well.

Just \ef without function_name will open editable CREATE FUNCTION template.

For further reference -> https://www.postgresql.org/docs/9.6/static/app-psql.html

1
  • After editing function need to enter \g command to update function. – Abdusoli May 9 at 11:11
12

\sf function_name in psql yields editable source code of a single function.

From https://www.postgresql.org/docs/9.6/static/app-psql.html:

\sf[+] function_description This command fetches and shows the definition of the named function, in the form of a CREATE OR REPLACE FUNCTION command.

If + is appended to the command name, then the output lines are numbered, with the first line of the function body being line 1.

1
  • shows the source code of a function. \ef function name opens it in editable templet – amar Apr 7 '19 at 6:25
9

additionally to @franc's answer you can use this from sql interface:

select 
    prosrc
from pg_trigger, pg_proc
where
 pg_proc.oid=pg_trigger.tgfoid
 and pg_trigger.tgname like '<name>'

(taken from here: http://www.postgresql.org/message-id/Pine.BSF.4.10.10009140858080.28013-100000@megazone23.bigpanda.com)

5

Since Version: psql (9.6.17, server 11.6)

I have tried all of above answer but For me

postgres=> \sf jsonb_extract_path_text
CREATE OR REPLACE FUNCTION pg_catalog.jsonb_extract_path_text(from_json jsonb, VARIADIC path_elems text[])
 RETURNS text
 LANGUAGE internal
 IMMUTABLE PARALLEL SAFE STRICT
AS $function$jsonb_extract_path_text$function$



postgres=> \df+
ERROR:  column p.proisagg does not exist
LINE 6:   WHEN p.proisagg THEN 'agg'
               ^
HINT:  Perhaps you meant to reference the column "p.prolang".

df seems not working for me.

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