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I need to find if string variable a is in string variable b.

What statement should I use for this kind of task?

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marked as duplicate by FallenAngel, EdChum, Konstantin Dinev, RDC, Carsten Sep 13 '13 at 9:49

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
What did you try? What results have you seen? Do you have examples? –  S.Lott Jul 15 '10 at 19:34
6  
Python is great. By asking your question, you gave the answer by yourself (but a few words too much). ;-) –  InsertNickHere Jul 15 '10 at 19:36
    
How to ignore capital letters? –  Pol Jul 15 '10 at 22:03
    
See comment below my answer about capitals. –  GreenMatt Jul 15 '10 at 23:14

7 Answers 7

up vote 6 down vote accepted

For finding one string in another, you may want to try the string find method.

if b.find(a) != -1:  # -1 will be returned when a is not in b
    do_whatever

To ignore capitalizations, you may want to do something like:

if b.lower().find(a.lower()) != -1:
    do_whatever

Additional commentary: As I type this, it's going on three years since I originally supplied this answer. The answer still gets occasional votes, both up and down. Since the answer works, presumably the down voters think this isn't as Pythonic as the if a in b: answer. As the comments state, that answer can fail silently if a and b aren't strings. There has been debate about whether that should be a concern. I've been around a while and have seen all sorts of things tried when code is re-used or the input data isn't what was expected. Thus, my viewpoint is that it shouldn't be assumed that the data will conform to expectations. Also, I believe the Zen of Python supports the viewpoint that this answer is more Pythonic:

>>> import this
The Zen of Python, by Tim Peters

Beautiful is better than ugly.
Explicit is better than implicit.
...
Errors should never pass silently.
Unless explicitly silenced.
....
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Is it ignore capital letters? –  Pol Jul 15 '10 at 22:01
    
@Pol: No, it doesn't. You'd have to do something like if b.upper().find(a.upper()) != -1: ... –  GreenMatt Jul 15 '10 at 23:14
3  
Eww! You recommend b.find(a)!==1 over a in b ?! –  Nas Banov Jul 16 '10 at 1:01
1  
@Nas Banov: If a and b are both supposed to be strings, yes. See other answers & comments about silent failures when doing a in b –  GreenMatt Jul 16 '10 at 1:38

How about

if a in b:
    print "a is in b"

If you also want to ignore capitals:

if a.lower() in b.lower():
    print "a is in b"
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3  
Note that this can lead to silent failures in some cases. (Example: 'foo' in ['foobar']) –  Amber Jul 15 '10 at 19:37
4  
@Amber: I don't think that's a "silent failure", that's developer error, expecting the same behavior from two different types of objects (lists and strings). –  Nicholas Knight Jul 15 '10 at 19:53
1  
Nicholas: chances are if a list is getting passed to something that is expecting a string, that's not intended - that is, the developer didn't expect the same behavior from both so much as they never expected to receive one or the other at all. It's better to raise an error due to having a different type then expected than it is to just not pass the if test. –  Amber Jul 15 '10 at 20:02
1  
(In other words: most things that work with one type of data usually aren't intended to work with another, even if it's possible for them to. Usually if they're being passed a type of data other than what they were designed to work on, it's the result of a code error somewhere else that should be discovered and fixed.) –  Amber Jul 15 '10 at 20:04
    
@Amber: I can appreciate the sentiment, but if developers aren't already ensuring that the documented requirements for e.g. a function parameter are met, their codebase is going to have a lot of problems, some of which are even more subtle. To me, it's just one of the tradeoffs of duck-typing. –  Nicholas Knight Jul 15 '10 at 20:18
if a in b:
    # insert code here
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if a in b:
    # ...found it, do stuff...

or

if b.find(a) != -1:
    # ...found it, do stuff...

The former is probably more pythonic, but the latter lets you catch issues sooner if a or b are not the types you were expecting, since if a or b aren't strings, the latter will always fail non-silently, whereas the former can misbehave silently in some cases (for instance, 'foo' in ['foobar'] or even 'foo' in [1,2,3]).

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Your 'foo' in ['foobar'] example in a comment above works better, because [1,2,3] doesn't contain 'foo' in any form. –  JAB Jul 15 '10 at 19:43
    
Both are forms of failure - the [1,2,3] was just meant to illustrate that you wouldn't really be able to tell if something completely different (a numerical list) was passed in. A more real-world example might be passing in a dict instead of a particular value from that dict. –  Amber Jul 15 '10 at 19:45
1  
b.find(a) returns a -1 if a is not in b, so the second code sample won't work the way you're expecting. See my answer. –  GreenMatt Jul 15 '10 at 19:52
    
Fixed, thanks for the catch GreenMatt (forgot that it returns -1 instead of something like False). –  Amber Jul 15 '10 at 20:05
    
@Amber: -1 If you forgot that it returns -1, then you can't be using find very often in your code. BTW, do you also advocate d.has_key(k) in preference to k in d? –  John Machin Jul 15 '10 at 23:00

Strings are treated like lists of characters in Python. Therefore, the following will work whether a is a character and b is a string or if a is an element type and b is a list:

if a in b:
    #foo
else:
    #bar

(Internally, Python handles strings and lists differently, but you can treat them as the same thing in many operations, like list comprehensions).

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How to ignore capital letters? –  Pol Jul 15 '10 at 22:01
    
I'm not sure what you mean by 'ignore capital letters'. Do you want it to ignore the case entirely and match "a" if "A" is in the string? One easy way is to convert the strings to lowercase: if a.lower() in b.lower(): #foo else: #bar Or do you want it to match "a" if and only if "a" is in the string? That's easy - by default, Python only matches the exact character, so what I wrote above should work. –  chimeracoder Jul 15 '10 at 22:44
>>> a = '1324'
>>> b = '58132458495'
>>> if a in b:
      print(True)

>>> True
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Shortest:

 >> print 'v' in 'Elvis'
 >> True


 >> print 'v' in 'Presley'
 >> False
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