Most of the questions I've found are biased on the fact they're looking for letters in their numbers, whereas I'm looking for numbers in what I'd like to be a numberless string. I need to enter a string and check to see if it contains any numbers and if it does reject it.

the function isdigit() only returns true if ALL of the characters are numbers. I just want to see if the user has entered a number so a sentence like "I own 1 dog" or something.

Any ideas?

  • 7
    Regular expressions! – Nipun Batra Nov 8 '13 at 12:38

10 Answers 10

up vote 151 down vote accepted

You can use any function, with the str.isdigit function, like this

>>> def hasNumbers(inputString):
...     return any(char.isdigit() for char in inputString)
... 
>>> hasNumbers("I own 1 dog")
True
>>> hasNumbers("I own no dog")
False

Alternatively you can use a Regular Expression, like this

>>> import re
>>> def hasNumbers(inputString):
...     return bool(re.search(r'\d', inputString))
... 
>>> hasNumbers("I own 1 dog")
True
>>> hasNumbers("I own no dog")
False
  • What about negative numbers? – Ray Feb 25 '16 at 17:06
  • @Ray Then the RegEx can be extended like this r'-?\d+' – thefourtheye Feb 25 '16 at 18:53
  • 10
    Wouldn't the original regex detect the negative numbers anyway? – confused00 Jul 21 '16 at 9:17
  • @confused00 Nope, \d will match only a single digit in the range 0 to 9. – thefourtheye Nov 26 '16 at 5:12
  • 3
    @thefourtheye: -1 is still a digit. It is a dash, followed by the digit '1' – user3183018 Feb 27 '17 at 13:19

You can use a combination of any and str.isdigit:

def num_there(s):
    return any(i.isdigit() for i in s)

The function will return True if a digit exists in the string, otherwise False.

Demo:

>>> king = 'I shall have 3 cakes'
>>> num_there(king)
True
>>> servant = 'I do not have any cakes'
>>> num_there(servant)
False
  • No need to create a temporary list, you can use a generator expression instead just by removing those square brackets. – Matteo Italia Nov 8 '13 at 13:04
  • Ah yeah, just realized that any accepts generator expressions. – aIKid Nov 8 '13 at 13:53

https://docs.python.org/2/library/re.html

You should better use regular expression. It's much faster.

import re

def f1(string):
    return any(i.isdigit() for i in string)


def f2(string):
    return re.search('\d', string)


# if you compile the regex string first, it's even faster
RE_D = re.compile('\d')
def f3(string):
    return RE_D.search(string)

# Output from iPython
# In [18]: %timeit  f1('assdfgag123')
# 1000000 loops, best of 3: 1.18 µs per loop

# In [19]: %timeit  f2('assdfgag123')
# 1000000 loops, best of 3: 923 ns per loop

# In [20]: %timeit  f3('assdfgag123')
# 1000000 loops, best of 3: 384 ns per loop
  • f3 is not returning anything – pyd Mar 4 at 17:04
  • That means there is no match, it returns None – zyxue Mar 4 at 17:43

use

str.isalpha() 

Ref: https://docs.python.org/2/library/stdtypes.html#str.isalpha

Return true if all characters in the string are alphabetic and there is at least one character, false otherwise.

  • 2
    There are other types of characters than alphabetic and numeric - eg, '_'.isalpha() is False. – lvc Jun 28 '15 at 2:47

You could apply the function isdigit() on every character in the String. Or you could use regular expressions.

Also I found How do I find one number in a string in Python? with very suitable ways to return numbers. The solution below is from the answer in that question.

number = re.search(r'\d+', yourString).group()

Alternatively:

number = filter(str.isdigit, yourString)

For further Information take a look at the regex docu: http://docs.python.org/2/library/re.html

Edit: This Returns the actual numbers, not a boolean value, so the answers above are more correct for your case

The first method will return the first digit and subsequent consecutive digits. Thus 1.56 will be returned as 1. 10,000 will be returned as 10. 0207-100-1000 will be returned as 0207.

The second method does not work.

To extract all digits, dots and commas, and not lose non-consecutive digits, use:

re.sub('[^\d.,]' , '', yourString)

What about this one?

import string

def containsNumber(line):
    res = False
    try:
        for val in line.split():
            if (float(val.strip(string.punctuation))):
                res = True
                break
    except ValueError, e:
        pass
    return res

print containsNumber('234.12 a22') # returns True
print containsNumber('234.12L a22') # returns False
print containsNumber('234.12, a22') # returns True

You can accomplish this as follows:

if a_string.isdigit(): do_this() else: do_that()

https://docs.python.org/2/library/stdtypes.html#str.isdigit

Using .isdigit() also means not having to resort to exception handling (try/except) in cases where you need to use list comprehension (try/except is not possible inside a list comprehension).

You can use NLTK method for it.

This will find both '1' and 'One' in the text:

import nltk 

def existence_of_numeric_data(text):
    text=nltk.word_tokenize(text)
    pos = nltk.pos_tag(text)
    count = 0
    for i in range(len(pos)):
        word , pos_tag = pos[i]
        if pos_tag == 'CD':
            return True
    return False

existence_of_numeric_data('We are going out. Just five you and me.')

You can use range with count to check how many times a number appears in the string by checking it against the range:

def count_digit(a):
    sum = 0
    for i in range(10):
        sum += a.count(str(i))
    return sum

ans = count_digit("apple3rh5")
print(ans)

#This print 2

Simpler way to solve is as

s = '1dfss3sw235fsf7s'
count = 0
temp = list(s)
for item in temp:
    if(item.isdigit()):
        count = count + 1
    else:
        pass
print count
  • 1
    Welcome to Stack Overflow! Please don't just throw your source code here. Be nice and try to give a nice description to your answer, so that others will like it and upvote it. See: How do I write a good answer? – sɐunıɔןɐqɐp Jun 15 at 6:10

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