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I have a string that starts with a number (from 0-9) I know I can "or" 10 test cases using startswith() but there is probably a neater solution

so instead of writing

if (string.startswith('0') || string.startswith('2') ||
    string.startswith('3') || string.startswith('4') ||
    string.startswith('5') || string.startswith('6') ||
    string.startswith('7') || string.startswith('8') ||
    string.startswith('9')):
    #do something

Is there a cleverer/more efficient way?

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If the question is asked: "Is this too repetitive?", the chances are -- in a high level language -- the answer is "Why, yes, it sure is". Be lazy! –  user166390 Apr 7 '11 at 7:46
12  
You missed string.startswith('1'). –  MAK Apr 7 '11 at 8:40
    
@Illusionist As it is written, your question means that you want to detect the strings that begin with only ONE digit. If so, the only right answer among the following ones, are not the ones using s[0] or s[:1] but the solution of John Machin: if s.startswith(tuple('0123456789')). Moreover, this solution raises error when it happens that s is a sequence like a tuple or list, which cases produce the same result as if it was a string. - Another solution is a regex whose pattern is '\d(?=\D)' but use of regex is superfluous here. –  eyquem Aug 20 '11 at 11:10
1  
Just being pedantic: string is a module in the standard library and probably shouldn't be used as a variable name. docs.python.org/2/library/string.html –  Gerald Kaszuba Mar 14 '13 at 23:16
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9 Answers

up vote 32 down vote accepted

Python's string library has isdigit() method:

string[0].isdigit()
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1  
damn I'm a slow typist tonight. +1 you beat me to it –  jcomeau_ictx Apr 7 '11 at 7:37
    
@jcomeau: Actually, your timestamps are identical. –  Björn Pollex Apr 7 '11 at 7:38
    
@jcomeau_ictx: Well, I actually like your's better ;) –  plaes Apr 7 '11 at 7:39
    
Python2's string module doesn't have methods, and isdigit is a method of str and unicode objects. –  John Machin Apr 7 '11 at 9:39
    
@plaes: -1 because of the above PLUS it crashes if s == "" –  John Machin Aug 20 '11 at 9:22
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>>> string = '1abc'
>>> string[0].isdigit()
True
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I'm not a python guy, so perhaps you can help me on this: will this function bomb on "", where there is no string[0]? –  corsiKa Apr 7 '11 at 7:43
    
yep, it sure will. you could use (string or 'x')[0].isdigit() to fix it for '' or None –  jcomeau_ictx Apr 7 '11 at 7:45
13  
You could try string[:1].isdigit(), which will quit happily deal with an empty string. –  Simon Callan Apr 7 '11 at 8:23
    
yes, that is better. –  jcomeau_ictx Apr 7 '11 at 13:09
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Your code won't work; you need or instead of ||.

Try

'0' <= strg[:1] <= '9'

or

strg[:1] in '0123456789'

or, if you are really crazy about startswith,

strg.startswith(('0', '1', '2', '3', '4', '5', '6', '7', '8', '9'))
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I would have upvoted you if there was only the solution with startswith(a tuple) . But the solutions with strg[:1] have two inconveniences: they don't raise an error if s may happen to be a list of strings, and they produce True if the string begins with SEVERAL digits. –  eyquem Aug 20 '11 at 11:05
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for s in ("fukushima", "123 is a number", ""):

    print s.ljust(20),  s[0].isdigit() if s else False

result

fukushima            False
123 is a number      True
                     False
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2  
That is ugly. Use s[:1].isdigit() or s and s[0].isdigit() –  John Machin Aug 20 '11 at 9:29
    
@John Machin What do you mean by 'ugly' ? Not readable ? I don't find your propositions here above more readable. s and s[0].isdigit() is even less readable in my opinion. Personally, I like the construct ... if ... else ... Taking account of your remark, I would just improve it like that: s[0].isdigit() if s!="" else False –  eyquem Aug 20 '11 at 10:59
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sometimes, you can use regex

>>> import re
>>> re.search('^\s*[0-9]',"0abc")
<_sre.SRE_Match object at 0xb7722fa8>
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overkill! Why use re when you can do it in the bultins –  Jakob Bowyer Apr 7 '11 at 13:42
    
@JakobBowyer At least, it is good to know about it! Even though in this case, yes, regexes ARE overkill if some builtins can do the same. –  JeromeJ Jul 9 '13 at 23:40
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Here are my "answers" (trying to be unique here, I don't actually recommend either for this particular case :-)

Using ord() and the special a <= b <= c form:

//starts_with_digit = ord('0') <= ord(mystring[0]) <= ord('9')
//I was thinking too much in C. Strings are perfectly comparable.
starts_with_digit = '0' <= mystring[0] <= '9'

(This a <= b <= c, like a < b < c, is a special Python construct and it's kind of neat: compare 1 < 2 < 3 (true) and 1 < 3 < 2 (false) and (1 < 3) < 2 (true). This isn't how it works in most other languages.)

Using a regular expression:

import re
//starts_with_digit = re.match(r"^\d", mystring) is not None
//re.match is already anchored
starts_with_digit = re.match(r"\d", mystring) is not None
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1  
(1) Lose the ord() (2) Lose the ^ in the regex. –  John Machin Apr 7 '11 at 9:29
    
@John Machin Thanks, updated. –  user166390 Apr 7 '11 at 19:00
    
'0' <= myStr <= '9' is very nice! I totally forgot we could do that, thanks! –  JeromeJ Jul 9 '13 at 23:42
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Use Regular Expressions, if you are going to somehow extend method's functionality.

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You could use regular expressions.

You can detect digits using:

if(re.search([0-9], yourstring[:1])):
#do something

The [0-9] par matches any digit, and yourstring[:1] matches the first character of your string

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Try this:

if string[0] in range(10):
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This doesn't work at all. range(10) produces a list of integers, while string[0] is a string of length 1. –  Petri Lehtinen Apr 7 '11 at 7:39
1  
That doesnt work; the types dont match. But: if string[0] in map(str,range(10)) works –  phynfo Apr 7 '11 at 8:21
2  
Downvote me please. –  bradley.ayers Apr 7 '11 at 8:25
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