6

Can someone give an idea on how to test a string that:

  • contains at least one upper case letter
  • contains at least one lower case letter
  • contains at least one number
  • has a minimal length of 7 characters
  • 1
  • have you tried any code ?? – Tushar Gupta - curioustushar Jun 17 '13 at 4:49
  • show a piece of code you have tried ? – Tushar Gupta - curioustushar Jun 17 '13 at 4:50
  • upper=0 lower=0 password=0 number=0 while password <7: word=raw_input('Please enter a password: ') for ch in word: if ch.isupper(): upper +=1 if ch.islower(): lower +=1 if ch.isdigit(): number +=1 if len(word)>=7: password+=1 if password!=7: print'Password needs to be a minimum of 7 characters' – AmaChurLOL Jun 17 '13 at 5:02
  • 1
    this looks like a question for the OCR UK GCSE Computing examination... – pluke Mar 11 '14 at 23:37
46
if (any(x.isupper() for x in s) and any(x.islower() for x in s) 
    and any(x.isdigit() for x in s) and len(s) >= 7):

Another way is to express your rules as a list of (lambda) functions

rules = [lambda s: any(x.isupper() for x in s), # must have at least one uppercase
        lambda s: any(x.islower() for x in s),  # must have at least one lowercase
        lambda s: any(x.isdigit() for x in s),  # must have at least one digit
        lambda s: len(s) >= 7                   # must be at least 7 characters
        ]

if all(rule(s) for rule in rules):
    ...

Regarding your comment. To build an error message

errors = []
if not any(x.isupper() for x in password):
    errors.append('Your password needs at least 1 capital.')
if not any(x.islower() for x in password):
    errors.append(...)
...

if errors:
    print " ".join(errors)
  • how would you modify it to give feed back as to which element isn't working.. for x in password if password !=(any(x.isupper(): print ' Your password needs at least 1 capital' ???? – AmaChurLOL Jun 17 '13 at 5:08
  • Better to separate each item into it's own if not any(...): – John La Rooy Jun 17 '13 at 5:12
  • im getting an error message,'int' object is not iterable? – AmaChurLOL Jun 17 '13 at 5:50
  • Is there any reason why you made a lambda rather than just doing password.isupper() or password.islower()? – John R Perry Sep 6 at 2:25
  • @JohnRPerry, password.isupper() is True only if all letters are uppercase. We only need to ensure that there is at least one uppercase letter. – John La Rooy Sep 8 at 23:43
8
import re

s   = 'fooBar3'
rgx = re.compile(r'\d.*?[A-Z].*?[a-z]')

if rgx.match(''.join(sorted(s))) and len(s) >= 7:
    print 'ok'

Even more fun is this regex, which will report the type of character that is missing:

s = 'fooBar'

rules = [
    r'(?P<digit>\d)?',
    r'(?P<upper>[A-Z])?',
    r'(?P<lower>[a-z])?',
]

rgx      = re.compile(r'.*?'.join(rules))
checks   = rgx.match(''.join(sorted(s))).groupdict()
problems = [k for k,v in checks.iteritems() if v is None]

print checks   # {'upper': 'B', 'digit': None, 'lower': 'a'}
print problems # ['digit']

Finally, here's a variant of the excellent rules-based approach suggested by gnibbler.

s = 'fooBar'

rules = [
    lambda s: any(x.isupper() for x in s) or 'upper',
    lambda s: any(x.islower() for x in s) or 'lower',
    lambda s: any(x.isdigit() for x in s) or 'digit',
    lambda s: len(s) >= 7                 or 'length',
]

problems = [p for p in [r(s) for r in rules] if p != True]

print problems  # ['digit', 'length']
  • Sneaky way to apply a regex, but why why why? – John La Rooy Jun 17 '13 at 5:08
  • 2
    @gnibbler OK, if you didn't like the first regex, you're gonna LOVE the second one. ;-) – FMc Jun 17 '13 at 5:20

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