I am trying to perform a regex query using pymongo against a mongodb server. The document structure is as follows

{
  "files": [
    "File 1",
    "File 2",
    "File 3",
    "File 4"
  ],
  "rootFolder": "/Location/Of/Files"
}

I want to get all the files that match the pattern *File. I tried doing this as such

db.collectionName.find({'files':'/^File/'})

Yet i get nothing back , am i missing something because according to the mongodb docs this should be possible. If I perform the query in the mongo console it works fine , does this mean the api doesnt support it or am I just using it incorrectly

If you want to include regular expression options (such as ignore case), try this:

import re
regx = re.compile("^foo", re.IGNORECASE)
db.users.find_one({"files": regx})
  • 6
    Note also that regex's anchored at the start (ie: starting with ^) are able to use indexes in the db, and will run much faster in that case. – drevicko Aug 13 '13 at 23:31
  • 1
    Regex's starting with ^ can only use an index in certain cases. When using re.IGNORECASE I believe mongo can't use an index to perform the query. – nonagon Apr 8 '15 at 18:08
  • Is this usage documented somewhere? I can't find this in the official pymongo API doc. – Hieu Oct 16 '17 at 22:38
  • Works for me in pymongo! Thanks!!! – blueDroid Apr 22 at 4:00
up vote 125 down vote accepted

Turns out regex searches are done a little differently in pymongo but is just as easy.

Regex is done as follows :

db.collectionname.find({'files':{'$regex':'^File'}})

This will match all documents that have a files property that has a item within that starts with File

  • 8
    Actually, what you have here is also the way it's done in javascript (and probably other languages too) if you use $regex. @Eric's answer is the python way that's a little different. – drevicko Aug 13 '13 at 23:33
  • what's the difference? They're both using python pymongo correct? It is part of mongodb queries so I don't see the issue really. – Dexter Dec 22 '14 at 18:40
  • 5
    Ignorecase is possible in regex of mongodb JScript also viz. db.collectionname.find({'files':{'$regex':'^File','$options':'i'}}) – Ajay Gupta Apr 25 '15 at 10:37
  • 4
    This answer looks better to my eyes. Why bother compiling a Python RE if you're just going to stringify it so that Mongo can compile it again? Mongo's $regex operator takes an $options argument. – Mark E. Haase May 16 '15 at 15:56
  • 3
    Please use r'^File' instead of '^File' to avoid other problem – Aminah Nuraini Dec 2 '15 at 13:33

To avoid the double compilation you can use the bson regex wrapper that comes with PyMongo:

>>> regx = bson.regex.Regex('^foo')
>>> db.users.find_one({"files": regx})

Regex just stores the string without trying to compile it, so find_one can then detect the argument as a 'Regex' type and form the appropriate Mongo query.

I feel this way is slightly more Pythonic than the other top answer, e.g.:

>>> db.collectionname.find({'files':{'$regex':'^File'}})

It's worth reading up on the bson Regex documentation if you plan to use regex queries because there are some caveats.

  • If you need to match agains an array using $in then $regex would not work for you. bson.regex.Regex will do the trick! – odedfos Jul 4 at 13:27
import re

def get_pattern_query(pattern,starting_with=False,ending_with=False,ignore_case=False):
    start = '^' if starting_with else '.*'
    end = '$' if ending_with else '.*'
    pattern = start + re.escape(pattern) + end
    return re.compile(pattern, re.IGNORECASE) if ignore_case else re.compile(pattern)

Escaping the pattern before compiling handles all characters.

The solution of re doesn't use the index at all. You should use commands like:

db.collectionname.find({'files':{'$regex':'^File'}})

( I cannot comment below their replies, so I reply here )

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