In Python, how can I parse a numeric string like "545.2222" to its corresponding float value, 542.2222? Or parse the string "31" to an integer, 31?

I just want to know how to parse a float string to a float, and (separately) an int string to an int.

  • As a general rule, if you have an object in Python, and want to convert to that type of object, call type(my_object) on it. The result can usually be called as a function to do the conversion. For instance type(100) results in int, so you can call int(my_object) to try convert my_object to an integer. This doesn't always work, but is a good "first guess" when coding. – robertlayton Jul 5 at 1:18

23 Answers 23

up vote 2126 down vote accepted
>>> a = "545.2222"
>>> float(a)
545.22220000000004
>>> int(float(a))
545
  • 1
    just wondering why there is '04' in the end? why not simply '00'? also my current version of python is not having '04'. – Mangat Rai Modi Aug 17 '17 at 15:25
  • 21
    @MangatRaiModi Floating point numbers are inherently imperfect for representing decimals. For more, see stackoverflow.com/q/21895756/931277 – dokkaebi Aug 18 '17 at 21:44
  • 4
    why not simply int(a) but int(float(a)) ? – user463035818 Apr 26 at 14:36
  • 8
    int(a) will give an error that the string isn't a valid integer: ValueError: invalid literal for int() with base 10: '545.222', but converting from a float to an int is a supported conversion. – David Parks May 7 at 17:46
  • You should handle ValueError if you want to be safe – Joe Bobson Sep 9 at 13:20
def num(s):
    try:
        return int(s)
    except ValueError:
        return float(s)
  • 66
    implicit mixing floats/ints might lead to subtle bugs due to possible loss of precision when working with floats or to different results for / operator on floats/ints. Depending on context it might be preferable to return either int or float, not both. – jfs Nov 16 '12 at 14:35
  • 9
    @J.F.Sebastian You are completely correct, but there are times when you want the input to dictate which one it will be. Letting the input dictate which one can work nicely with duck-typing. – TimothyAWiseman Mar 5 '13 at 21:29
  • 2
    You can nest another try to throw an exception when it's not convertible to float. – iBug Jan 25 at 12:31

Python method to check if a string is a float:

def is_float(value):
  try:
    float(value)
    return True
  except:
    return False

A longer and more accurate name for this function could be: is_convertible_to_float(value)

What is, and is not a float in Python may surprise you:

val                   is_float(val) Note
--------------------  ----------   --------------------------------
""                    False        Blank string
"127"                 True         Passed string
True                  True         Pure sweet Truth
"True"                False        Vile contemptible lie
False                 True         So false it becomes true
"123.456"             True         Decimal
"      -127    "      True         Spaces trimmed
"\t\n12\r\n"          True         whitespace ignored
"NaN"                 True         Not a number
"NaNanananaBATMAN"    False        I am Batman
"-iNF"                True         Negative infinity
"123.E4"              True         Exponential notation
".1"                  True         mantissa only
"1,234"               False        Commas gtfo
u'\x30'               True         Unicode is fine.
"NULL"                False        Null is not special
0x3fade               True         Hexadecimal
"6e7777777777777"     True         Shrunk to infinity
"1.797693e+308"       True         This is max value
"infinity"            True         Same as inf
"infinityandBEYOND"   False        Extra characters wreck it
"12.34.56"            False        Only one dot allowed
u'四'                 False        Japanese '4' is not a float.
"#56"                 False        Pound sign
"56%"                 False        Percent of what?
"0E0"                 True         Exponential, move dot 0 places
0**0                  True         0___0  Exponentiation
"-5e-5"               True         Raise to a negative number
"+1e1"                True         Plus is OK with exponent
"+1e1^5"              False        Fancy exponent not interpreted
"+1e1.3"              False        No decimals in exponent
"-+1"                 False        Make up your mind
"(1)"                 False        Parenthesis is bad

You think you know what numbers are? You are not so good as you think! Not big surprise.

  • 14
    Please, consider renaming your function to convertibleToFloat or something similar (current name seems confusing, at least to me). – MKPS Aug 28 '16 at 17:07
  • 1
    So true becomes 1, that is I inherited from C++ i think – FindOutIslamNow Sep 11 at 6:07
  • @FindOutIslamNow, No. In Python, True is cocerced to float value 1 when passed to float(...), so therefore true is convertable to float. False is coerced to 0, which is also a float. This type coercion has nothing to do with C++. Your ancient tomes aren't ancient enough, so discard them and FindOutChristianityNow. He will convert your datatypes in ways that benefit everyone, rather than just the in group clique. – Eric Leschinski 5 hours ago

This is another method which deserves to be mentioned here, ast.literal_eval:

This can be used for safely evaluating strings containing Python expressions from untrusted sources without the need to parse the values oneself.

That is, a safe 'eval'

>>> import ast
>>> ast.literal_eval("545.2222")
545.2222
>>> ast.literal_eval("31")
31
  • 3
    this is not a good solution to the problem. It works fine in Python 2, but the following happens in Python 3: python >>> import ast >>> ast.literal_eval('1-800-555-1212') -2566 >>> To clarify why this is a problem, if you want it to leave phone numbers alone and not assume they are mathematical expressions, then this approach is not for you. – royce3 Jan 16 at 16:14
  • 2
    @royce3 Yeah, that's a good point and users should beware. The behaviour was originally modified in order to address some issues with parsing of complex literals. It's arguably a bug in ast.literal_eval, and has been discussed here. – wim Jan 16 at 17:57
float(x) if '.' in x else int(x)
  • 60
    Nitpick: doesn't work for extreme cases like float("2e-3") – Emile Dec 8 '10 at 14:22
  • 20
    Note : be careful when dealing with money amount passed as strings, as some countries use "," as decimal separators – Ben G Jul 8 '11 at 11:17
  • 115
    @Emile: I wouldn't call "2e-3" an "extreme case". This answer is just broken. – jchl Sep 7 '11 at 10:05
  • 11
    @BenG DON'T manipulate money as a float. That's asking for trouble. Use decimal for money! (But your comment about ',' is still valid and important) – ToolmakerSteve Dec 13 '13 at 6:10
  • 1
    Don't forget that "not a number" (NaN) and +/- infinity is also valid float values. So float("nan") is a perfectly valid float value that the above answer wouldn't catch at all – Ronny Andersson Aug 23 '17 at 14:12

Localization and commas

You should consider the possibility of commas in the string representation of a number, for cases like float("545,545.2222") which throws an exception. Instead, use methods in locale to convert the strings to numbers and interpret commas correctly. The locale.atof method converts to a float in one step once the locale has been set for the desired number convention.

Example 1 -- United States number conventions

In the United States and the UK, commas can be used as a thousands separator. In this example with American locale, the comma is handled properly as a separator:

>>> import locale
>>> a = u'545,545.2222'
>>> locale.setlocale(locale.LC_ALL, 'en_US.UTF-8')
'en_US.UTF-8'
>>> locale.atof(a)
545545.2222
>>> int(locale.atof(a))
545545
>>>

Example 2 -- European number conventions

In the majority of countries of the world, commas are used for decimal marks instead of periods. In this example with French locale, the comma is correctly handled as a decimal mark:

>>> import locale
>>> b = u'545,2222'
>>> locale.setlocale(locale.LC_ALL, 'fr_FR')
'fr_FR'
>>> locale.atof(b)
545.2222

The method locale.atoi is also available, but the argument should be an integer.

Users codelogic and harley are correct, but keep in mind if you know the string is an integer (for example, 545) you can call int("545") without first casting to float.

If your strings are in a list, you could use the map function as well.

>>> x = ["545.0", "545.6", "999.2"]
>>> map(float, x)
[545.0, 545.60000000000002, 999.20000000000005]
>>>

It is only good if they're all the same type.

If you aren't averse to third-party modules, you could check out the fastnumbers module. It provides a function called fast_real that does exactly what this question is asking for and does it faster than a pure-Python implementation:

>>> from fastnumbers import fast_real
>>> fast_real("545.2222")
545.2222
>>> type(fast_real("545.2222"))
float
>>> fast_real("31")
31
>>> type(fast_real("31"))
int

In Python, how can I parse a numeric string like "545.2222" to its corresponding float value, 542.2222? Or parse the string "31" to an integer, 31? I just want to know how to parse a float string to a float, and (separately) an int string to an int.

It's good that you ask to do these separately. If you're mixing them, you may be setting yourself up for problems later. The simple answer is:

"545.2222" to float:

>>> float("545.2222")
545.2222

"31" to an integer:

>>> int("31")
31

Other conversions, ints to and from strings and literals:

Conversions from various bases, and you should know the base in advance (10 is the default). Note you can prefix them with what Python expects for its literals (see below) or remove the prefix:

>>> int("0b11111", 2)
31
>>> int("11111", 2)
31
>>> int('0o37', 8)
31
>>> int('37', 8)
31
>>> int('0x1f', 16)
31
>>> int('1f', 16)
31

If you don't know the base in advance, but you do know they will have the correct prefix, Python can infer this for you if you pass 0 as the base:

>>> int("0b11111", 0)
31
>>> int('0o37', 0)
31
>>> int('0x1f', 0)
31

Non-Decimal (i.e. Integer) Literals from other Bases

If your motivation is to have your own code clearly represent hard-coded specific values, however, you may not need to convert from the bases - you can let Python do it for you automatically with the correct syntax.

You can use the apropos prefixes to get automatic conversion to integers with the following literals. These are valid for Python 2 and 3:

Binary, prefix 0b

>>> 0b11111
31

Octal, prefix 0o

>>> 0o37
31

Hexadecimal, prefix 0x

>>> 0x1f
31

This can be useful when describing binary flags, file permissions in code, or hex values for colors - for example, note no quotes:

>>> 0b10101 # binary flags
21
>>> 0o755 # read, write, execute perms for owner, read & ex for group & others
493
>>> 0xffffff # the color, white, max values for red, green, and blue
16777215

Making ambiguous Python 2 octals compatible with Python 3

If you see an integer that starts with a 0, in Python 2, this is (deprecated) octal syntax.

>>> 037
31

It is bad because it looks like the value should be 37. So in Python 3, it now raises a SyntaxError:

>>> 037
  File "<stdin>", line 1
    037
      ^
SyntaxError: invalid token

Convert your Python 2 octals to octals that work in both 2 and 3 with the 0o prefix:

>>> 0o37
31

The question seems a little bit old. But let me suggest a function, parseStr, which makes something similar, that is, returns integer or float and if a given ASCII string cannot be converted to none of them it returns it untouched. The code of course might be adjusted to do only what you want:

   >>> import string
   >>> parseStr = lambda x: x.isalpha() and x or x.isdigit() and \
   ...                      int(x) or x.isalnum() and x or \
   ...                      len(set(string.punctuation).intersection(x)) == 1 and \
   ...                      x.count('.') == 1 and float(x) or x
   >>> parseStr('123')
   123
   >>> parseStr('123.3')
   123.3
   >>> parseStr('3HC1')
   '3HC1'
   >>> parseStr('12.e5')
   1200000.0
   >>> parseStr('12$5')
   '12$5'
   >>> parseStr('12.2.2')
   '12.2.2'
  • 7
    1e3 is a number in python, but a string according to your code. – Cees Timmerman Oct 4 '12 at 13:24

float("545.2222") and int(float("545.2222"))

  • 1
    This will give you a float object if your string happens to be "0" or "0.0", rather than the int it gives for other valid numbers. – Brian Dec 19 '08 at 8:42

The YAML parser can help you figure out what datatype your string is. Use yaml.load(), and then you can use type(result) to test for type:

>>> import yaml

>>> a = "545.2222"
>>> result = yaml.load(a)
>>> result
545.22220000000004
>>> type(result)
<type 'float'>

>>> b = "31"
>>> result = yaml.load(b)
>>> result
31
>>> type(result)
<type 'int'>

>>> c = "HI"
>>> result = yaml.load(c)
>>> result
'HI'
>>> type(result)
<type 'str'>
def get_int_or_float(v):
    number_as_float = float(v)
    number_as_int = int(number_as_float)
    return number_as_int if number_as_float == number_as_int else number_as_float
  • 1
    Why would you raise in your except section if you are doing nothing there? float() would raise for you. – Greg0ry Mar 19 '16 at 20:30
  • 1
    you are right I guess I copied and paste from a functionality that I was raising a particular exception. will edit. thanks – Totoro Nov 2 '16 at 15:18
  • 1
    This will try to parse a string and return either int or float depending on what the string represents. It might rise parsing exceptions or [have some unexpected behaviour][1]. – Kuzeko May 18 '17 at 7:28

I use this function for that

import ast

def parse_str(s):
   try:
      return ast.literal_eval(str(s))
   except:
      return

It will convert the string to its type

value = parse_str('1')  # Returns Integer
value = parse_str('1.5')  # Returns Float

You need to take into account rounding to do this properly.

I.e. int(5.1) => 5 int(5.6) => 5 -- wrong, should be 6 so we do int(5.6 + 0.5) => 6

def convert(n):
    try:
        return int(n)
    except ValueError:
        return float(n + 0.5)
  • 3
    Good point. That causes inflation, though, so Python 3 and other modern languages use banker's rounding. – Cees Timmerman Oct 4 '12 at 12:58
  • 1
    This answer is wrong (as originally written). It muddles the two cases of int and float. And it will give an exception, when n is a string, as OP desired. Maybe you meant: When an int result is desired, round should be done AFTER conversion to float. If the function should ALWAYS return an int, then you don't need the except part -- the entire function body can be int(round(float(input))). If the function should return an int if possible, otherwise a float, then javier's original solution is correct! – ToolmakerSteve Dec 13 '13 at 6:02
def num(s):
"""num(s)
num(3),num(3.7)-->3
num('3')-->3, num('3.7')-->3.7
num('3,700')-->ValueError
num('3a'),num('a3'),-->ValueError
num('3e4') --> 30000.0
"""
try:
    return int(s)
except ValueError:
    try:
        return float(s)
    except ValueError:
        raise ValueError('argument is not a string of number')

This is a corrected version of https://stackoverflow.com/a/33017514/5973334

This will try to parse a string and return either int or float depending on what the string represents. It might rise parsing exceptions or have some unexpected behaviour.

  def get_int_or_float(v):
        number_as_float = float(v)
        number_as_int = int(number_as_float)
        return number_as_int if number_as_float == number_as_int else 
        number_as_float

I am surprised nobody mentioned regex because sometimes string must be prepared and normalized before casting to number

import re
def parseNumber(value, as_int=False):
    try:
        number = float(re.sub('[^.\-\d]', '', value))
        if as_int:
            return int(number + 0.5)
        else:
            return number
    except ValueError:
        return float('nan')  # or None if you wish

usage:

parseNumber('13,345')
> 13345.0

parseNumber('- 123 000')
> -123000.0

parseNumber('99999\n')
> 99999.0

and by the way, something to verify you have a number:

import numbers
def is_number(value):
    return isinstance(value, numbers.Number)
    # will work with int, float, long, Decimal

Python have this great flexibility of parsing in one liners.

str = "545.2222"
print ("int: ", + int(float(a)))
print ("float: ", +(float(a)))

To typecast in python use the constructor funtions of the type, passing the string (or whatever value you are trying to cast) as a parameter.

For example:

>>>float("23.333")
   23.333

Behind the scenes, python is calling the objects __float__ method, which should return a float representation of the parameter. This is especially powerful, as you can define your own types (using classes) with a __float__ method so that it can be casted into a float using float(myobject).

Use:

def num(s):
    try:
        for each in s:
            yield int(each)
    except ValueError:
        yield float(each)
a = num(["123.55","345","44"])
print a.next()
print a.next()

This is the most Pythonic way I could come up with.

Use:

>>> str_float = "545.2222"
>>> float(str_float)
545.2222
>>> type(_) # Check its type
<type 'float'>

>>> str_int = "31"
>>> int(str_int)
31
>>> type(_) # Check its type
<type 'int'>

Here's another interpretation of your question (hint: it's vague). It's possible you're looking for something like this:

def parseIntOrFloat( aString ):
    return eval( aString )

It works like this...

>>> parseIntOrFloat("545.2222")
545.22220000000004
>>> parseIntOrFloat("545")
545

Theoretically, there's an injection vulnerability. The string could, for example be "import os; os.abort()". Without any background on where the string comes from, however, the possibility is theoretical speculation. Since the question is vague, it's not at all clear if this vulnerability actually exists or not.

  • 7
    Even if his input is 100% safe, eval() is over 3 times as slow as try: int(s) except: float(s). – Cees Timmerman Oct 4 '12 at 13:12

protected by jamylak Apr 10 '13 at 11:28

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