396

I need to add leading zeros to integer to make a string with defined quantity of digits ($cnt). What the best way to translate this simple function from PHP to Python:

function add_nulls($int, $cnt=2) {
    $int = intval($int);
    for($i=0; $i<($cnt-strlen($int)); $i++)
        $nulls .= '0';
    return $nulls.$int;
}

Is there a function that can do this?

4
  • your code is producing notice, btw Apr 9, 2009 at 9:22
  • 1
    php.net/printf is the way to go in php Apr 9, 2009 at 9:29
  • 2
    @SilentGhost, or str_pad Apr 9, 2009 at 11:43
  • 4
    Why use $ before variables?
    – user4396006
    Aug 21, 2018 at 14:56

10 Answers 10

776

You can use the zfill() method to pad a string with zeros:

In [3]: str(1).zfill(2)
Out[3]: '01'
7
  • 2
    Is there a way to do the same only return an actual integer like 004 not a string like '004'?
    – Ajay
    Jul 29, 2014 at 20:10
  • 68
    @Ajay 004 isn't an actual integer
    – Alvaro
    Jan 29, 2015 at 18:37
  • 23
    The way 004 is parsed by the compiler, and then represented in memory, is exactly the same as 4. The only time a difference is visible is in the .py source code. If you need to store information like "format this number with leading zeros until the hundreds place", integers alone cannot provide that - you need to use alternate data structures (string work well in this case) Nov 11, 2015 at 16:20
  • 28
    Need to say that this is not correct. The fact that 004 == 4 is kinda fortune. The way interpreter (python is not compiled) parses ints is different for ints starting with a leading 0. If a number starts with 0 then it is considered as 8-nary number. So yeah, 004 == 4, but 040 != 40 because 040 = 4 * 8 + 0 = 32.
    – sbeliakov
    Jan 9, 2017 at 15:01
  • 12
    To clarify a couple of things: 1. That is true only for parsing of integer literals, not for conversion of strings to ints - eg. if you do a = 010 then the value of a will be 8 but if you do a = int("010") the value of a will be 10. 2. Only Python 2 behaves this way - in python 3, a = 010 would give a syntax error. Octals in python 3 start with 0o, eg. 0o10 (presumably to avoid this exact confusion).
    – Tom
    Mar 31, 2017 at 8:58
230

The standard way is to use format string modifiers. These format string methods are available in most programming languages (via the sprintf function in c for example) and are a handy tool to know about.

To output a string of length 5:


... in Python 3.5 and above: f-strings.

i = random.randint(0, 99999)
print(f'{i:05d}')

Search for f-strings here for more details.


... Python 2.6 and above:

print '{0:05d}'.format(i)

... before Python 2.6:

print "%05d" % i

See: https://docs.python.org/3/library/string.html

5
  • So what if you don't know the number of zeros before runtime? Let's say the length of a list? Aug 16, 2015 at 23:26
  • 3
    @Zelphir you can dynamically create the formatting string, [('{{0:0{0:d}d}}').format(len(my_list)).format(k) for k in my_list]
    – Mark
    Aug 28, 2015 at 8:31
  • I've chosen to concat the format string instead, inserting the length of a list for example. Are there any advantages of your way of doing it? Aug 29, 2015 at 10:19
  • 3
    There is no need to use str.format() when all the template contains is one {...} placeholder. Avoid parsing the template and use the format() function instead: format(i, '05d')
    – Martijn Pieters
    Sep 29, 2016 at 19:01
  • @Mark There is no need to use nested/stacked formats. The number of digits can be variable: [('{0:0{1}d}').format(k, len(my_list)) for k in my_list] --- with f-string: [f'{k:0{len(my_list)}d}' for k in my_list] --- It is weird that the number of digits is determined by the number of items. You probably want to prepare max_digits and use [f'{k:0{max_digits}d}' for k in my_list] Jun 20 at 8:44
115

Python 3.6 f-strings allows us to add leading zeros easily:

number = 5
print(f' now we have leading zeros in {number:02d}')

Have a look at this good post about this feature.

2
  • 3
    This is the most pythonic, and certainly my favourite of the answers so far. Sep 3, 2018 at 6:40
  • 5
    This should now be the accepted answer Nov 28, 2018 at 3:22
74

You most likely just need to format your integer:

'%0*d' % (fill, your_int)

For example,

>>> '%0*d' % (3, 4)
'004'
3
  • 1
    The question is - how to add not permanent quantity of zeros
    – ramusus
    Apr 9, 2009 at 9:20
  • 2
    This is not permanent - in fact you cannot add zeroes permanently to the from of an int - that would then be interpreted as an octal value. Apr 9, 2009 at 11:56
  • 2
    @Matthew Schnickel: I think the OP wants to know a method to compute the number of zeros he needs. Formatting handles that fine. And int(x, 10) handles the leading zeros.
    – unbeknown
    Apr 9, 2009 at 12:15
23

Python 2.6 allows this:

add_nulls = lambda number, zero_count : "{0:0{1}d}".format(number, zero_count)

>>>add_nulls(2,3)
'002'
19

For Python 3 and beyond: str.zfill() is still the most readable option

But it is a good idea to look into the new and powerful str.format(), what if you want to pad something that is not 0?

    # if we want to pad 22 with zeros in front, to be 5 digits in length:
    str_output = '{:0>5}'.format(22)
    print(str_output)
    # >>> 00022
    # {:0>5} meaning: ":0" means: pad with 0, ">" means move 22 to right most, "5" means the total length is 5

    # another example for comparision
    str_output = '{:#<4}'.format(11)
    print(str_output)
    # >>> 11##

    # to put it in a less hard-coded format:
    int_inputArg = 22
    int_desiredLength = 5
    str_output = '{str_0:0>{str_1}}'.format(str_0=int_inputArg, str_1=int_desiredLength)
    print(str_output)
    # >>> 00022
7

You have at least two options:

  • str.zfill: lambda n, cnt=2: str(n).zfill(cnt)
  • % formatting: lambda n, cnt=2: "%0*d" % (cnt, n)

If on Python >2.5, see a third option in clorz's answer.

2

One-liner alternative to the built-in zfill.

This function takes x and converts it to a string, and adds zeros in the beginning only and only if the length is too short:

def zfill_alternative(x,len=4): return ( (('0'*len)+str(x))[-l:] if len(str(x))<len else str(x) )

To sum it up - build-in: zfill is good enough, but if someone is curious on how to implement this by hand, here is one more example.

0

A straightforward conversion would be (again with a function):

def add_nulls2(int, cnt):
    nulls = str(int)
    for i in range(cnt - len(str(int))):
        nulls = '0' + nulls
    return nulls
-2

This is my Python function:

def add_nulls(num, cnt=2):
  cnt = cnt - len(str(num))
  nulls = '0' * cnt
  return '%s%s' % (nulls, num)
2
  • 2
    Which is what str.zfill does :)
    – tzot
    Apr 9, 2009 at 11:33
  • yes :) another method is this: '%03d' % 8
    – Emre Köse
    Apr 9, 2009 at 12:19

Not the answer you're looking for? Browse other questions tagged or ask your own question.