124

What is best pure Python implementation to check if a string contains ANY letters from the alphabet?

string_1 = "(555).555-5555"
string_2 = "(555) 555 - 5555 ext. 5555

Where string_1 would return False for having no letters of the alphabet in it and string_2 would return True for having letter.

4
  • 2
    Should this be limited to english a/z alphabet only ? Should 'special' characters from others alphabets, like German, be taken in account ?
    – Kotch
    Jan 31, 2012 at 0:35
  • Is there any chance that you will receive unicode? Or just plain ascii roman letters?
    – KobeJohn
    Jan 31, 2012 at 0:39
  • Nice timing there :) Anyway, check this similar question out if you need help testing strings with unicode characters.
    – KobeJohn
    Jan 31, 2012 at 0:44
  • 1
    Limited to English a/z alphabet only and only plain ascii roman letters :) Jan 31, 2012 at 17:15

7 Answers 7

166

Regex should be a fast approach:

re.search('[a-zA-Z]', the_string)
10
  • 1
    Thank you JBernado, this is what I ended up doing and it works flawlessly for what I need to do. Jan 31, 2012 at 17:16
  • 67
    Regex certainly seems a bit overkill. any(c.isalpha() for c in string_1) is deliciously Pythonic.
    – Jollywatt
    Oct 15, 2015 at 23:11
  • 13
    @Joseph No, it is not. This regex is far more readable than your expression. Also, what does isalpha even means? This will have totally different behaviors when comparing Python 2 with Python 3. Is Chinese part of the alphabet? If not, you are blindly matching it with your generator on Python 3 (Or Python 2 for unicode strings!). If you want Pythonic, here it is: Simple is better than complex.. And check OP's comment above: He wants only the roman alphabet to be matched.
    – JBernardo
    Oct 16, 2015 at 5:03
  • 15
    In case anyone else is wondering what the return value is, you get a Match object if there is a match, or None if there isn't. So this is compatible with a if re.search(... pattern.
    – Srini
    Jul 19, 2017 at 1:17
  • 5
    @JBernardo Knowing from which module to import is not a triviality. It should be at least mentioned. Import Regular Expression Operation from re module (Python 2.7 to 3.9.5).
    – carloswm85
    Jun 18, 2021 at 14:18
113

How about:

>>> string_1 = "(555).555-5555"
>>> string_2 = "(555) 555 - 5555 ext. 5555"
>>> any(c.isalpha() for c in string_1)
False
>>> any(c.isalpha() for c in string_2)
True
8
  • Would set(string_1) be more efficent?
    – Rik Poggi
    Jan 31, 2012 at 0:41
  • 1
    @Rik. You mean converting string_1 to a set before testing it? No it won't be more efficient. That is guaranteed to deal with all characters at least once while I believe the any function will short circuit (stop) when it encounters the first false.
    – KobeJohn
    Jan 31, 2012 at 0:43
  • This code will be somewhat slow because it requires a function call per char. Converting to set may or may not reduce function calls, but adds some overhead.
    – JBernardo
    Jan 31, 2012 at 0:45
  • 2
    @JBernardo: timeit suggests it's about an order of magnitude slower than a compiled regex and takes only about 66% more time than a non-compiled one. That's well within my "I hate regular expressions" limits.
    – DSM
    Jan 31, 2012 at 1:20
  • 2
    Sure: and if you use "(555).555-5555 ext. 5555"*1000 you're back to comparable speeds because of the short-circuiting. I much prefer writing in Python to writing regular expressions, which I find hard to debug unless they're trivial, and I'm not going to give up on writing clear Python unless performance requirements demand it.
    – DSM
    Jan 31, 2012 at 1:43
30

You can use islower() on your string to see if it contains some lowercase letters (amongst other characters). or it with isupper() to also check if contains some uppercase letters:

below: letters in the string: test yields true

>>> z = "(555) 555 - 5555 ext. 5555"
>>> z.isupper() or z.islower()
True

below: no letters in the string: test yields false.

>>> z= "(555).555-5555"
>>> z.isupper() or z.islower()
False
>>> 

Not to be mixed up with isalpha() which returns True only if all characters are letters, which isn't what you want.

Note that Barm's answer completes mine nicely, since mine doesn't handle the mixed case well.

6
  • 4
    I like that this will test if it CONTAINS letters, not just test if input is ALL letters.
    – Cornbeetle
    Apr 20, 2017 at 16:14
  • @Cornbeetle yes, that kind of really answers the question after all those years, thanks Apr 20, 2017 at 16:33
  • Very nice way to put this. How is it in terms of efficiency ? better than regex?
    – pnv
    Apr 25, 2019 at 7:03
  • there are no python loops involved, so the efficiency is good. I didn't compare with regex but I suppose it's slightly faster, specially for the initialization phase because there's no regex to compile Apr 25, 2019 at 10:40
  • How would this work? This only works if all the characters in the string are either upper or lower. This does not solve the problem if there are mixed...
    – jrobs585
    Sep 16, 2021 at 15:23
20

I liked the answer provided by @jean-françois-fabre, but it is incomplete.
His approach will work, but only if the text contains purely lower- or uppercase letters:

>>> text = "(555).555-5555 extA. 5555"
>>> text.islower()
False
>>> text.isupper()
False

The better approach is to first upper- or lowercase your string and then check.

>>> string1 = "(555).555-5555 extA. 5555"
>>> string2 = '555 (234) - 123.32   21'

>>> string1.upper().isupper()
True
>>> string2.upper().isupper()
False
13

I tested each of the above methods for finding if any alphabets are contained in a given string and found out average processing time per string on a standard computer.

~250 ns for

import re

~3 µs for

re.search('[a-zA-Z]', string)

~6 µs for

any(c.isalpha() for c in string)

~850 ns for

string.upper().isupper()


Opposite to as alleged, importing re takes negligible time, and searching with re takes just about half time as compared to iterating isalpha() even for a relatively small string.
Hence for larger strings and greater counts, re would be significantly more efficient.

But converting string to a case and checking case (i.e. any of upper().isupper() or lower().islower() ) wins here. In every loop it is significantly faster than re.search() and it doesn't even require any additional imports.

2
  • 3
    You can also compile the regex for furhter optimization. alpha_regex = re.compile('[a-zA-Z]') later alpha_regex.search(string) Apr 9, 2020 at 22:08
  • 1
    Not to mention isalpha() doesn't workout well for multi languages. I was looking for this because I wanted to check whether a string that is expected to be Korean contains any English letters and the isalpha() method returns True for every korean string.
    – Chan Woo
    Jul 13, 2020 at 9:52
11

You can use regular expression like this:

import re

print re.search('[a-zA-Z]+',string)
1

You can also do this in addition

import re
string='24234ww'
val = re.search('[a-zA-Z]+',string) 
val[0].isalpha() # returns True if the variable is an alphabet
print(val[0]) # this will print the first instance of the matching value

Also note that if variable val returns None. That means the search did not find a match

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