I need to only accept input as numerical values 0 to 100, integers and floats with max two decimal places inclusive, and write a regular expression to check these conditions.

For example, I want it to accept values such as:

0(min), 0.1, 1, 11, 11.1, 11.11, 100(max).

But not any of:

-1, 100.1, 111, 1+1, .1, etc.

So far I came up with ^\d?\d+(\.\d\d?)?$ except that it has a bunch of problems.

Just now while submitting this, I saw this link in similar questions sidebar that has what seems to be the solution ( "^((?:|0|[1-9]\d?|100)(?:\.\d{1,2})?)$" ), except that it also accepts 100.01 to 100.99. Other than that, which is a very minor issue, it should work.

But does anybody know how to patch that particular bit?

  • 1
    How are you getting this input from the user? via command line or some kind o ui? – jspurim Nov 8 '17 at 20:09
  • using python input() – Terrornado Nov 9 '17 at 3:29
up vote 5 down vote accepted

100 is the only real exception here, so it should be fairly simple:

^(?:100|\d{1,2}(?:\.\d{1,2})?)$

https://regex101.com/r/Rr0gs4/1

Edit: to also allow 100.0 and 100.00:

^(?:100(?:\.00?)?|\d{1,2}(?:\.\d{1,2})?)$

  • Not sure if it is a requirement. But this matches 01 or 02.22 – jrook Nov 8 '17 at 20:20
  • 2
    Probably it's not desirable to match 01. You can fix that by changing \d{1,2} to [1-9]?\d – janos Nov 8 '17 at 20:21
  • 1
    To prevent the problem of the leading 0, you can add (?!0\d) before \d{1,2}. Or you can change \d{1,2} (the first) to [1-9]?\d – Casimir et Hippolyte Nov 8 '17 at 20:26
  • Good point, although I'm not sure if the OP actually wants to exclude those patterns. I'll edit the answer if we get confirmation. – CAustin Nov 8 '17 at 21:16
  • It's fine even if 00.01-09.99 are accepted as values with a leading zero. However just a slight problem with this is that it doesn't allow for 100.00. Is there a way to be inclusive of 100.00 but not 100.01-100.99? – Terrornado Nov 9 '17 at 2:42

Depending on how you get the input, it may be easier and quicker to simply check the numerical value.

def acceptable(str_val):
    try:
        return 0 <= float(str_val) <= 100
    except ValueError:
        return False

acceptable('1.11')
# True

acceptable('abc')
# False

acceptable('100.0')
# True

acceptable('100.1')
# False
  • +1 I agree, although this is not exactly what the OP wanted, I think its clearer and/or more Pythonic... – Joe Iddon Nov 8 '17 at 20:29
  • +1, interesting solution to my issue and as Joe says, this would be clearer and more Pythonic. If I had not limited my question to purely regex expressions, and if I could accept multiple answers, I totally would this as well. This is really helpful, thanks. – Terrornado Nov 9 '17 at 5:51

This tests all the allowable inputs and the example non-allowable inputs.

import re

regex = re.compile(r'^(100(\.00?)?|((\d|[1-9]\d)(\.\d\d?)?))$')

def matches(s):
    print('Testing', s)
    return bool(regex.search(s))

for i in range(0, 101):
    s = str(i)
    assert matches(s), 'no match for %s' % s

for i in range(0, 100):
    for j in range(0, 100):
        s = '{i}.{j}'.format(i=i, j=j)
        assert matches(s), 'no match for %s' % s

        # Special case for .0N (e.g., 1.01, 1.02, etc)
        if j == 0:
            for k in range(0, 10):
                s = '{i}.0{k}'.format(i=i, k=k)
                assert matches(s), 'no match for %s' % s

non_matches = ('-1', '100.1', '111', '1+1', '.1', 'abc')
for s in non_matches:
    assert not matches(s), 'unexpected match for %s' % s

Try this re.match(r'(\d{,2}\.?\d*)?|(100)?', 'string_goes_here')

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