1428

How do I display a leading zero for all numbers with less than two digits?

1    →  01
10   →  10
100  →  100
0

19 Answers 19

1908

In Python 2 (and Python 3) you can do:

number = 1
print("%02d" % (number,))

Basically % is like printf or sprintf (see docs).


For Python 3.+, the same behavior can also be achieved with format:

number = 1
print("{:02d}".format(number))

For Python 3.6+ the same behavior can be achieved with f-strings:

number = 1
print(f"{number:02d}")
9
  • 14
    Example: print "%05d" % result['postalCode'] for a 5 digit postal code. Commented Jun 5, 2012 at 12:08
  • 6
    x = "%02d.txt" % i raises TypeError (cannot concatenate 'str' and 'int' objects), but x = "%02d.txt" % (i,) does not. Interesting. I wonder where is that documented
    – theta
    Commented Nov 5, 2012 at 18:10
  • 2
    @theta In 2.7.6, I don't get an error. Maybe this was a bug in a specific version of Python that they've since fixed?
    – Jack M.
    Commented Apr 4, 2014 at 14:51
  • 3
    Maybe. In 2.7.6 there is no exception if format value isn't tuple (at least for this example). Looking at the date of my comment I guess I was running 2.7.3 back then, and at that time I didn't know that putting single variable in a tuple gets you on a safe side while using % string formater.
    – theta
    Commented Apr 4, 2014 at 15:41
  • 7
    To elaborate, the docs explain this here: "When no explicit alignment is given, preceding the width field by a zero ('0') character enables sign-aware zero-padding for numeric types. This is equivalent to a fill character of '0' with an alignment type of '='."
    – JHS
    Commented Mar 30, 2016 at 19:48
1227

You can use str.zfill:

print(str(1).zfill(2))
print(str(10).zfill(2))
print(str(100).zfill(2))

prints:

01
10
100
4
  • 91
    I like this solution, as it helps not only when outputting the number, but when you need to assign it to a variable... e.g. x = str(datetime.date.today().month).zfill(2) will return x as '02' for the month of feb.
    – EroSan
    Commented Feb 24, 2011 at 17:33
  • 6
    This should be the correct answer, since the "{1:02d}" cannot have variables in place of 2 (like if you are creating a dynamic function). Commented May 20, 2020 at 10:37
  • 7
    @JoshuaVarghese It can have variables: "{0:0{1}}". Pass any number of zeros you want as the second argument.
    – Jim
    Commented Aug 19, 2020 at 22:46
  • This method also works well for prepending zeroes to floating point numbers.
    – kfmfe04
    Commented Mar 11, 2022 at 20:44
386

In Python 2.6+ and 3.0+, you would use the format() string method:

for i in (1, 10, 100):
    print('{num:02d}'.format(num=i))

or using the built-in (for a single number):

print(format(i, '02d'))

See the PEP-3101 documentation for the new formatting functions.

2
  • 30
    Works in Python 2.7.5 as well. You can also use '{:02d}'.format(1) if you don't want to use named arguments. Commented Jan 7, 2014 at 14:20
  • 1
    Works fine in 2.7.2, with a floating point "{0:04.0f}".format(1.1) gives 0001 (:04 = at least 4 characters, in this case leading 0's, .0f = floating point with no decimals). I am aware of the % formatting but wanted to modify an existing .format statement without rewriting the whole thing. Thanks! Commented Jul 21, 2015 at 1:31
158
print('{:02}'.format(1))
print('{:02}'.format(10))
print('{:02}'.format(100))

prints:

01
10
100
2
  • 1
    This way let you repeat the argument several times within the string: One zero:{0:02}, two zeros: {0:03}, ninezeros: {0:010}'.format(6)
    – srodriguex
    Commented Apr 14, 2014 at 21:00
  • 2
    Only compatible with Python 3. If using Python 2.7, do print '{:02}'.format(1)
    – Blairg23
    Commented Jan 31, 2017 at 23:30
121

In Python >= 3.6, you can do this succinctly with the new f-strings that were introduced by using:

f'{val:02}'

which prints the variable with name val with a fill value of 0 and a width of 2.

For your specific example you can do this nicely in a loop:

a, b, c = 1, 10, 100
for val in [a, b, c]:
    print(f'{val:02}')

which prints:

01 
10
100

For more information on f-strings, take a look at PEP 498 where they were introduced.

93

Or this:

print '{0:02d}'.format(1)

73
x = [1, 10, 100]
for i in x:
    print '%02d' % i

results in:

01
10
100

Read more information about string formatting using % in the documentation.

1
  • 9
    The documentation example sucks. They throw mapping in with the leading zero sample, so it's hard to know which is which unless you already know how it works. Thats what brought me here, actually.
    – Grant
    Commented Jul 1, 2009 at 17:52
61

The Pythonic way to do this:

str(number).rjust(string_width, fill_char)

This way, the original string is returned unchanged if its length is greater than string_width. Example:

a = [1, 10, 100]
for num in a:
    print str(num).rjust(2, '0')

Results:

01
10
100
0
35

Or another solution.

"{:0>2}".format(number)
1
  • 4
    This would be the Python way, although I would include the parameter for clarity - "{0:0>2}".format(number), if someone will wants nLeadingZeros they should note they can also do:"{0:0>{1}}".format(number, nLeadingZeros + 1) Commented Apr 24, 2016 at 18:33
16

Its built into python with string formatting

f'{number:02d}'
1
  • 2
    This old question doesn't need any more answers. Your answer is also a duplicate of the accepted answer without any additional information.
    – thedemons
    Commented Nov 13, 2022 at 19:05
10

You can do this with f strings.

import numpy as np

print(f'{np.random.choice([1, 124, 13566]):0>8}')

This will print constant length of 8, and pad the rest with leading 0.

00000001
00000124
00013566
8

This is how I do it:

str(1).zfill(len(str(total)))

Basically zfill takes the number of leading zeros you want to add, so it's easy to take the biggest number, turn it into a string and get the length, like this:

Python 3.6.5 (default, May 11 2018, 04:00:52) 
[GCC 8.1.0] on linux
Type "help", "copyright", "credits" or "license" for more information.
>>> total = 100
>>> print(str(1).zfill(len(str(total))))
001
>>> total = 1000
>>> print(str(1).zfill(len(str(total))))
0001
>>> total = 10000
>>> print(str(1).zfill(len(str(total))))
00001
>>> 
2
  • Doesn't this contradict Datageek's answer? Commented Jun 22, 2018 at 20:57
  • "zfill takes the number of leading zeros you want to add" This isn't correct. It adds leading zero's until the string as a whole has the desired length. E.g. "10".zfill(2) doesn't add any zeros.
    – Jeppe
    Commented Nov 25, 2023 at 11:33
5

Use a format string - http://docs.python.org/lib/typesseq-strings.html

For example:

python -c 'print "%(num)02d" % {"num":5}'
5

You could also do:

'{:0>2}'.format(1)

which will return a string.

1
  • print(f'{VALUE:0>5})' works fine too.
    – SimoX
    Commented Nov 19, 2022 at 15:13
4
width = 5
num = 3
formatted = (width - len(str(num))) * "0" + str(num)
print formatted
2

Use:

'00'[len(str(i)):] + str(i)

Or with the math module:

import math
'00'[math.ceil(math.log(i, 10)):] + str(i)
2

All of these create the string "01":

>python -m timeit "'{:02d}'.format(1)"
1000000 loops, best of 5: 357 nsec per loop

>python -m timeit "'{0:0{1}d}'.format(1,2)"
500000 loops, best of 5: 607 nsec per loop

>python -m timeit "f'{1:02d}'"
1000000 loops, best of 5: 281 nsec per loop

>python -m timeit "f'{1:0{2}d}'"
500000 loops, best of 5: 423 nsec per loop

>python -m timeit "str(1).zfill(2)"
1000000 loops, best of 5: 271 nsec per loop

>python
Python 3.8.1 (tags/v3.8.1:1b293b6, Dec 18 2019, 23:11:46) [MSC v.1916 64 bit (AMD64)] on win32
1

This would be the Python way, although I would include the parameter for clarity - "{0:0>2}".format(number), if someone will wants nLeadingZeros they should note they can also do:"{0:0>{1}}".format(number, nLeadingZeros + 1)

-2

If dealing with numbers that are either one or two digits:

'0'+str(number)[-2:] or '0{0}'.format(number)[-2:]

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