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Trying to write a for function that takes two strings and returns the characters that intersect in the order that they appear in the first string.

Here's what I tried:

def strIntersection(str1, str2):
    for i in str1:
        str3 = ''
        str3 = str3.join(i for i in str1 if i in str2 not in str3)
    return str3

str1 = 'asdfasdfasfd'
str2 = 'qazwsxedc'

strIntersection(str1,str2)

=> 'asdasdasd'

however I only want the the intersection characters to appear once and in order of the first string ie. 'asd'

Can anyone help?

I've found some similar problems on other forums but the solutions all seem to involve lists whereas I'd like my output to be a string

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5 Answers 5

up vote 2 down vote accepted

Check for occurances the other way around to get the order under control, and don't emit characters you've already emitted:

def strIntersection(s1, s2):
  out = ""
  for c in s1:
    if c in s2 and not c in out:
      out += c
  return out

Sure you could re-write it to be a list comprehension, but I find this easier to understand.

For your test data, we get:

>>> strIntersection('asdfasdfasfd' , 'qazwsxedc')
'asd'
share|improve this answer
    
Thanks! It certainly is easier to understand. I realize now that I was complicating it by trying to use ''join() –  bang Mar 16 '12 at 11:57
    
''.join is idiomatic and not complicated at all. Using it in a loop, however, misses the point. Actually, the for-loop in the OP code is completely useless; it simply causes the real work - str3 = str3.join(i for i in str1 if i in str2 not in str3) to be performed multiple times, with the same result each time, and the result being thrown away each time but the last. –  Karl Knechtel Mar 16 '12 at 12:35
    
You can't actually rewrite this particular algorithm to be a list comprehension - at least not without invoking some very dubious undocumented stuff - because the filtering step c in s2 and c not in out depends on the partial results up to this point, which aren't made accessible (except via very dubious undocumented stuff). –  Karl Knechtel Mar 16 '12 at 12:41
    
I just commented that replacing out with a list would speed things up, but then did some timeit tests and determined that they didn't, so I removed my old comment. My timings show that this solution used 10.7 usec per loop, Karls solution used 16.7 usec per loop and my modified out = [] and return "".join(out) solution used 18.5 usec per loop. –  Lauritz V. Thaulow Mar 16 '12 at 13:36
    
For these particular strings, or for what test data? A set-based approach would probably require fairly long strings to show an advantage. –  Karl Knechtel Mar 16 '12 at 13:42

You want a string consisting of the unique characters that are common to str1 and str2, in the order they appear in str1.

Uniqueness and commonality imply set operations: that is, we're looking for the set of characters that appear in both str1 and str2. A set is fundamentally unordered, but we can re-order the data by sorting the characters according to their "index" of first occurrence in str1. Then it's a simple matter of creating a string from the sorted sequence.

Putting it all together, we get:

''.join(sorted(set(str1) & set(str2), key = str1.index))
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You can use python sets http://docs.python.org/library/stdtypes.html#set to do this, like so:

>>> set("asdfasdfasfd") & set("qazwsxedc")
set(['a', 's', 'd'])
share|improve this answer
def str_intersection(str1, str2):
    common_letters = set(str1) & set(str2)
    str3 = ''
    for c in str1:
        if (c in common_letters) and (c not in str3):
            str3 += c
    return str3
share|improve this answer

It looks like your current script should do it if you fix the typo on the fourth line:

str3 = str3.join(i for i in str1 if i in str2 not in str3)

should be

str3 = str3.join(i for i in str1 if i in str2 and i not in str3)

I wouldn't recommend using a set for this simpy because they don't guarantee order. Your script is also likely to be faster.

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I'm pretty sure what OP actually meant was (i for i in str1 if i in str2 and i not in str3). Except this doesn't work because the str3 that needs to be compared against hasn't been constructed yet. He's got his logic confused by attempting to use both the for loop and the comprehension. As for performance, I would certainly expect set-based approaches to be much faster for long strings. –  Karl Knechtel Mar 16 '12 at 12:37
    
@Karl: Yes you're right, I'll update my answer. But comparing with str3 shouldn't be a problem since it only needs to check the part which has already been constructed. –  aquavitae Mar 16 '12 at 12:42
    
The problem is that str3 isn't "the part which has already been constructed". Either you execute this code in a loop or you don't. If you don't, then str3 will give an UnboundLocalError - you're trying to refer to the thing that you're assigning to. If you do, then having a join and a comprehension makes no sense, since you only want to consider the current character vs. the already-found intersecting characters, not the entire string. –  Karl Knechtel Mar 16 '12 at 12:44
    
@Karl: I'm really not awake today! I missed both the str3 = '' and the str3.join(...) when reading it. I was think it was in a loop. –  aquavitae Mar 16 '12 at 13:40

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