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In PostgreSQL 9.3 Beta 2 (?), how do I create an index on a JSON field? I tried it using the -> operator used for hstore but got the following error:

 CREATE TABLE publishers(id INT, info JSON);
 CREATE INDEX ON publishers((info->'name'));

ERROR: data type json has no default operator class for access method "btree" HINT: You must specify an operator class for the index or define a default operator class for the data type.

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  • 12
    "Where's the question?" - IN the title
    – rlib
    Jul 23, 2013 at 11:01
  • 3
    In future please take a look at stackoverflow.com/tags/postgresql/info, the "asking better questions" section; it might help get better answers sooner with fewer annoying questions. Jul 23, 2013 at 11:42

1 Answer 1

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Found:

CREATE TABLE publishers(id INT, info JSON); 
CREATE INDEX ON publishers((info->>'name'));

As stated in the comments, the subtle difference here is ->> instead of ->. The former one returns the value as text, the latter as a JSON object.

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    Just in case you are looking for the difference: It is ->> instead of ->. The former one returns the value as text, the latter one returns a JSON object. Oct 22, 2013 at 20:53
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    The double-parentheses are also important.
    – Ron
    May 27, 2014 at 20:59
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    @Jac_opo It extracts them as TEXT, though. If you want to do integer comparisons instead of string comparisons, you have to add a cast: ((info->>'name')::INT).
    – jpmc26
    Oct 6, 2015 at 19:44
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    Works also for unique indexes: CREATE UNIQUE INDEX ON publishers((info->>'name'));
    – maicher
    Nov 26, 2015 at 12:03
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    If you want to create an index on a field inside a sub-object of your JSON column, thanks to @DanielRikowski I figured out I needed to do create index idx_name on table_name ((json_column->'child_obj'->>'child_obj_field')); We first need to use -> to get the JSON object and then ->> to get the child object value as text.
    – Corey Cole
    Oct 2, 2018 at 0:22

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