244

I am a big fan of using dictionaries to format strings. It helps me read the string format I am using as well as let me take advantage of existing dictionaries. For example:

class MyClass:
    def __init__(self):
        self.title = 'Title'

a = MyClass()
print 'The title is %(title)s' % a.__dict__

path = '/path/to/a/file'
print 'You put your file here: %(path)s' % locals()

However I cannot figure out the python 3.x syntax for doing the same (or if that is even possible). I would like to do the following

# Fails, KeyError 'latitude'
geopoint = {'latitude':41.123,'longitude':71.091}
print '{latitude} {longitude}'.format(geopoint)

# Succeeds
print '{latitude} {longitude}'.format(latitude=41.123,longitude=71.091)
0

9 Answers 9

487

Is this good for you?

geopoint = {'latitude':41.123,'longitude':71.091}
print('{latitude} {longitude}'.format(**geopoint))
6
  • 3
    Tried this and it worked. But I don't understand the use of the 'pointer notation'. I know Python doesn't use pointers, is this an example of kwargs? Jun 13, 2012 at 13:23
  • 4
    @HomunculusReticulli That is a format parameter (Minimum field width), not a pointer to a pointer C++ style. docs.python.org/release/2.4.4/lib/typesseq-strings.html
    – D.Rosado
    Jul 6, 2012 at 13:18
  • 34
    Python 3.2 introduced format_map. Similar to str.format(**mapping), except that mapping is used directly and not copied to a dict. This is useful if for example mapping is a dict subclass
    – diapir
    Jan 17, 2015 at 14:25
  • 1
    @eugene What does ** do to a python dictionary? I don't think that it creates an object because print(**geopoint) fails giving syntax error Apr 8, 2017 at 18:35
  • 8
    @NityeshAgarwal it spreads the dictionary with the name=value pairs as individual arguments i.e. print(**geopoint) is same as print(longitude=71.091, latitude=41.123). In many languages, it is known as splat operator. In JavaScript, it's called spread operator. In python, there is no particular name given to this operator.
    – abhisekp
    Apr 15, 2017 at 12:01
86

To unpack a dictionary into keyword arguments, use **. Also,, new-style formatting supports referring to attributes of objects and items of mappings:

'{0[latitude]} {0[longitude]}'.format(geopoint)
'The title is {0.title}s'.format(a) # the a from your first example
2
  • 3
    I find this answer better, as adding the positional index for the placeholder makes the code more explicit, and easier to use. Especially if one has something like this: '{0[latitude]} {1[latitude]} {0[longitude]} {1[longitude]}'.format(geopoint0, geopoint1)
    – Løiten
    Sep 6, 2016 at 13:01
  • 1
    This is useful if you're using a defaultdict and don't have all the keys
    – Whymarrh
    Jan 9, 2017 at 17:12
81

As Python 3.0 and 3.1 are EOL'ed and no one uses them, you can and should use str.format_map(mapping) (Python 3.2+):

Similar to str.format(**mapping), except that mapping is used directly and not copied to a dict. This is useful if for example mapping is a dict subclass.

What this means is that you can use for example a defaultdict that would set (and return) a default value for keys that are missing:

>>> from collections import defaultdict
>>> vals = defaultdict(lambda: '<unset>', {'bar': 'baz'})
>>> 'foo is {foo} and bar is {bar}'.format_map(vals)
'foo is <unset> and bar is baz'

Even if the mapping provided is a dict, not a subclass, this would probably still be slightly faster.

The difference is not big though, given

>>> d = dict(foo='x', bar='y', baz='z')

then

>>> 'foo is {foo}, bar is {bar} and baz is {baz}'.format_map(d)

is about 10 ns (2 %) faster than

>>> 'foo is {foo}, bar is {bar} and baz is {baz}'.format(**d)

on my Python 3.4.3. The difference would probably be larger as more keys are in the dictionary, and


Note that the format language is much more flexible than that though; they can contain indexed expressions, attribute accesses and so on, so you can format a whole object, or 2 of them:

>>> p1 = {'latitude':41.123,'longitude':71.091}
>>> p2 = {'latitude':56.456,'longitude':23.456}
>>> '{0[latitude]} {0[longitude]} - {1[latitude]} {1[longitude]}'.format(p1, p2)
'41.123 71.091 - 56.456 23.456'

Starting from 3.6 you can use the interpolated strings too:

>>> f'lat:{p1["latitude"]} lng:{p1["longitude"]}'
'lat:41.123 lng:71.091'

You just need to remember to use the other quote characters within the nested quotes. Another upside of this approach is that it is much faster than calling a formatting method.

3
  • Nice one, Is there any performance improvements over format? (Given that it is not copied to a dict) Apr 14, 2016 at 8:01
  • 2
    @BhargavRao not much, 2 % :D Apr 14, 2016 at 8:07
  • @BhargavRao if you're looking for performance, use this '%(latitude)s %(longitude)s'%geopoint ;)
    – Tcll
    Apr 17, 2020 at 22:23
38
print("{latitude} {longitude}".format(**geopoint))
2
  • 1
    Thanks! I don't know why this doesn't have more votes.
    – JohnMudd
    Aug 13, 2020 at 10:24
  • 2
    This is the simplest option, TBH. It's also the similar way as you transform a list to varargs. This should be the way. Feb 12, 2021 at 13:34
37

Since the question is specific to Python 3, here's using the new f-string syntax, available since Python 3.6:

>>> geopoint = {'latitude':41.123,'longitude':71.091}
>>> print(f'{geopoint["latitude"]} {geopoint["longitude"]}')
41.123 71.091

Note the outer single quotes and inner double quotes (you could also do it the other way around).

2
  • I would say that use of the f-string is more aligned to python3 approach.
    – Jonatas CD
    May 25, 2018 at 12:00
  • 2
    Keep in mind that f-strings are new to Python 3.6, and not in 3.5.
    – Hugo
    Dec 4, 2019 at 12:16
6

The Python 2 syntax works in Python 3 as well:

>>> class MyClass:
...     def __init__(self):
...         self.title = 'Title'
... 
>>> a = MyClass()
>>> print('The title is %(title)s' % a.__dict__)
The title is Title
>>> 
>>> path = '/path/to/a/file'
>>> print('You put your file here: %(path)s' % locals())
You put your file here: /path/to/a/file
1
  • plus it's also noticably more performant than f"" or "".format() ;)
    – Tcll
    Apr 17, 2020 at 22:14
3
geopoint = {'latitude':41.123,'longitude':71.091}

# working examples.
print(f'{geopoint["latitude"]} {geopoint["longitude"]}') # from above answer
print('{geopoint[latitude]} {geopoint[longitude]}'.format(geopoint=geopoint)) # alternate for format method  (including dict name in string).
print('%(latitude)s %(longitude)s'%geopoint) # thanks @tcll
2
  • 1
    you missed one ;) print('%(latitude)s %(longitude)s'%geopoint) this is also significantly faster than the other 2
    – Tcll
    Apr 17, 2020 at 22:16
  • @tcll Actually I wanted the examples, where I can use the dictionary name inside the string. Something like this '%(geopoint["latitude"])s %(geopoint["longitude"])s'%{"geopoint":geopoint} Apr 21, 2020 at 14:41
1

Most answers formatted only the values of the dict.

If you want to also format the key into the string you can use dict.items():

geopoint = {'latitude':41.123,'longitude':71.091}
print("{} {}".format(*geopoint.items()))

Output:

('latitude', 41.123) ('longitude', 71.091)

If you want to format in an arbitry way, that is, not showing the key-values like tuples:

from functools import reduce
print("{} is {} and {} is {}".format(*reduce((lambda x, y: x + y), [list(item) for item in geopoint.items()])))

Output:

latitude is 41.123 and longitude is 71.091

1
  • note there's a chance 'longitude' could come before 'latitude' from geopoint.items() ;)
    – Tcll
    Apr 17, 2020 at 22:20
1

Use format_map to do what you want

print('{latitude} {longitude}'.format_map(geopoint))

This has the advantage that

  • the dictionary does not have to be blown up into parameters (compared to **geopoint) and that
  • the format string only has access to the provided map and not the entire scope of variables (compared to F-strings).

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