106

So I have a list:

['x', 3, 'b']

And I want the output to be:

[x, 3, b]

How can I do this in python?

If I do str(['x', 3, 'b']), I get one with quotes, but I don't want quotes.

1
  • To explain why the list isn't "properly" printed, print(["Sam"]) calls repr("Sam"), which returns 'Sam' (with the quotes), unlike when you call print("Sam") and python calls str("Sam") which returns Sam (without the quotes). See difference between str and repr or Python str and lists for more info.
    – Anonymous
    Dec 1, 2019 at 9:48

9 Answers 9

201

In Python 2:

mylist = ['x', 3, 'b']
print '[%s]' % ', '.join(map(str, mylist))

In Python 3 (where print is a builtin function and not a syntax feature anymore):

mylist = ['x', 3, 'b']
print('[%s]' % ', '.join(map(str, mylist)))

Both return:

[x, 3, b]

This is using the map() function to call str for each element of mylist, creating a new list of strings that is then joined into one string with str.join(). Then, the % string formatting operator substitutes the string in instead of %s in "[%s]".

8
  • 4
    Thank you that works great. Can you explain a bit in detail on what are you doing in the second line? I am new to python.
    – Obaid
    Mar 26, 2011 at 23:12
  • 19
    He is using the map function to call str for each element of mylist, creating a new list of strings that he then joins into one string with str.join. Then, he uses the % string formatting operator to substitute the string in instead of %s in "[%s]".
    – li.davidm
    Mar 26, 2011 at 23:54
  • 6
    Another way to do it that's maybe a bit more modern: "[{0}]".format(", ".join(str(i) for i in mylist)) Sep 11, 2013 at 13:25
  • 2
    i tend to prefer map(f, xs) (or imap in python2.x) over (f(x) for x in xs), when f is a predefined callable; that tends to execute fewer bytecodes, and is usually more compact. Certainly dont map(lambda x:..., xs) thats much worse than (... for x in xs) Sep 11, 2013 at 15:01
  • 1
    @user1767754: really? Link? Jun 16, 2015 at 23:10
22

This is simple code, so if you are new you should understand it easily enough.

mylist = ["x", 3, "b"]
for items in mylist:
    print(items)

It prints all of them without quotes, like you wanted.

20

Using only print:

>>> l = ['x', 3, 'b']
>>> print(*l, sep='\n')
x
3
b
>>> print(*l, sep=', ')
x, 3, b
0
15

If you are using Python3:

print('[',end='');print(*L, sep=', ', end='');print(']')
4
  • 1
    what does print(*L) do here?
    – sandeeps
    Jul 28, 2017 at 5:24
  • 2
    @sandeeps: see docs.python.org/3/reference/expressions.html#calls
    – Kabie
    Jul 28, 2017 at 7:07
  • 1
    I am confused by this. Is the long data type filtering the list somehow?
    – dval
    Nov 13, 2017 at 14:06
  • A more concise version would be print(end='['); print(*l, sep=', ', end=']\n')
    – Anonymous
    Dec 1, 2019 at 9:37
10

Instead of using map, I'd recommend using a generator expression with the capability of join to accept an iterator:

def get_nice_string(list_or_iterator):
    return "[" + ", ".join( str(x) for x in list_or_iterator) + "]"

Here, join is a member function of the string class str. It takes one argument: a list (or iterator) of strings, then returns a new string with all of the elements concatenated by, in this case, ,.

3
  • 2
    A good optimization for Python 2, since map returns a list in 2.x. It returns a generator in 3.x, so it doesn't help as much there.
    – Tom Zych
    Mar 27, 2011 at 0:02
  • 7
    I would do return ", ".join( str(x) for x in list_or_iterator).join('[]')
    – eyquem
    Mar 27, 2011 at 12:23
  • @eyquem: Clever, I've not seen join used like that before. Still, that is a little more opaque to a beginner (since you're using the property that a string is an iterable container of one-character strings). Mar 27, 2011 at 13:10
6

You can delete all unwanted characters from a string using its translate() method with None for the table argument followed by a string containing the character(s) you want removed for its deletechars argument.

lst = ['x', 3, 'b']

print str(lst).translate(None, "'")

# [x, 3, b]

If you're using a version of Python before 2.6, you'll need to use the string module's translate() function instead because the ability to pass None as the table argument wasn't added until Python 2.6. Using it looks like this:

import string

print string.translate(str(lst), None, "'")

Using the string.translate() function will also work in 2.6+, so using it might be preferable.

2
  • 2
    Alas : lst = ["it isn't", 3, 'b'] ==> ["it isnt", 3, b] and also with lst = ['it isn\'t', 3, 'b']
    – eyquem
    Mar 27, 2011 at 12:20
  • 1
    @eyquem: Yes, avoiding the deletion of characters that are actually be part of your data (rather than strictly being used to delimit it) would naturally require slightly more elaborate/different logic if it's a possibility.
    – martineau
    Mar 27, 2011 at 20:39
3

Here's an interactive session showing some of the steps in @TokenMacGuy's one-liner. First he uses the map function to convert each item in the list to a string (actually, he's making a new list, not converting the items in the old list). Then he's using the string method join to combine those strings with ', ' between them. The rest is just string formatting, which is pretty straightforward. (Edit: this instance is straightforward; string formatting in general can be somewhat complex.)

Note that using join is a simple and efficient way to build up a string from several substrings, much more efficient than doing it by successively adding strings to strings, which involves a lot of copying behind the scenes.

>>> mylist = ['x', 3, 'b']
>>> m = map(str, mylist)
>>> m
['x', '3', 'b']
>>> j = ', '.join(m)
>>> j
'x, 3, b'
2

Using .format for string formatting,

mylist = ['x', 3, 'b']
print("[{0}]".format(', '.join(map(str, mylist))))

Output:

[x, 3, b]

Explanation:

  1. map is used to map each element of the list to string type.
  2. The elements are joined together into a string with , as separator.
  3. We use [ and ] in the print statement to show the list braces.

Reference: .format for string formatting PEP-3101

1
  • Great! I find using .format the most pythonic way. But, of course, I accept disagreements. ;) Jan 6, 2020 at 21:42
0

I was inspired by @AniMenon to write a pythonic more general solution.

mylist = ['x', 3, 'b']
print('[{}]'.format(', '.join(map('{}'.format, mylist))))

It only uses the format method. No trace of str, and it allows for the fine tuning of the elements format. For example, if you have float numbers as elements of the list, you can adjust their format, by adding a conversion specifier, in this case :.2f

mylist = [1.8493849, -6.329323, 4000.21222111]
print("[{}]".format(', '.join(map('{:.2f}'.format, mylist))))

The output is quite decent:

[1.85, -6.33, 4000.21]

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