Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

There must be a simpler, more pythonic way of doing this.

Given this list of pairs:

pp = [('a',1),('b',1),('c',1),('d',2),('e',2)]

How do I most easily find the first item in adjacent pairs where the second item changes (here, from 1 to 2). Thus I'm looking for ['c','d']. Assume there will only be one change in pair[1] for the entire list, but that it may be a string.

This code works but seems excruciatingly long and cumbersome.

for i, pair in enumerate(pp):
    if i == 0: 
        pInitial = pair[0] 
        sgInitial = pair[1]
    pNext = pair[0]
    sgNext = pair[1]
    if sgInitial == sgNext:
        sgInitial = sgNext
        pInitial = pNext
    else:
        pOne = pInitial
        pTwo = pNext
        x = [pOne, pTwo]
        print x
        break

Thanks Tim

share|improve this question
add comment

7 Answers 7

up vote 2 down vote accepted
import itertools as it

pp = [('a',1),('b',1),('c',1),('d',2),('e',2)]

# with normal zip and slicing
for a,b in zip(pp,pp[1:]):
    if a[1] != b[1]:
        x=(a[0],b[0])
        print x
        break
# with generators and izip
iterfirst = (b for a,b in pp)
itersecond = (b for a,b in pp[1:])
iterfirstsymbol = (a for a,b in pp)
itersecondsymbol = (a for a,b in pp[1:])
iteranswer = it.izip(iterfirstsymbol, itersecondsymbol, iterfirst, itersecond)

print next((symbol1, symbol2)
           for symbol1,symbol2, first, second in iteranswer
           if first != second)

Added my readable generator version.

share|improve this answer
    
I like the way you treat the list as two lists, the second simply starting at the second tuple. Thanks! –  Tim Aug 31 '10 at 11:59
    
Check out also my answer on other thread: stackoverflow.com/questions/3460161/… See the similarity? –  Tony Veijalainen Aug 31 '10 at 13:02
add comment

You could try somethingl like :

[[pp[i][0],pp[i+1][0]] for i in xrange(len(pp)-1) if pp[i][1]!=pp[i+1][1]][0]

(using list comprehension)

share|improve this answer
    
Thank you, list comprehensions looks like a good way to go as well. –  Tim Aug 31 '10 at 11:59
add comment

try comparing pp[:-1] to pp[1:], something like

[a for a in zip(pp[:-1], pp[1:]) if a[0][1] != a[1][1]]

(look at zip(pp[:-1], pp[1:]) first to see what's going on

edit:

i guess you'd need

([a[0][0], a[1][0]] for a in zip(pp[:-1], pp[1:]) if a[0][1] != a[1][1]).next()
share|improve this answer
add comment
>>> import itertools
>>> pp = [('a',1),('b',1),('c',1),('d',2),('e',2)]
>>> gb = itertools.groupby(pp, key=lambda x: x[1])
>>> f = lambda x: list(next(gb)[1])[x][0]
>>> f(-1), f(0)
('c', 'd')
share|improve this answer
add comment

Here is something (simple?) with recursion:

def first_diff( seq, key=lambda x:x ):
    """ returns the first items a,b of `seq` with `key(a) != key(b)` """
    it = iter(seq)
    def test(last): # recursive function
        cur = next(it)
        if key(last) != key(cur):
            return last, cur
        else:
            return test(cur)
    return test(next(it))

print first_diff( pp, key=lambda x:x[1]) # (('c', 1), ('d', 2))
share|improve this answer
add comment
pp = [('a',1),('b',1),('c',1),('d',2),('e',2)]
def find_first(pp):
    for i,(a,b) in enumerate(pp):
        if i == 0: oldb = b
        else:
            if b != oldb: return i
    return None
print find_first(pp)
share|improve this answer
add comment
>>> pp = [('a',1),('b',1),('c',1),('d',2),('e',2)]
>>> [[t1, t2] for ((t1, v1), (t2, v2)) in zip(pp, pp[1:]) if v1 != v2] [0]
['c', 'd']
>>>

I like this for clarity...if you find list comprehensions clear. It does create two temporary lists: pp[1:] and the zip() result. Then it compares all the adjacent pairs and gives you the first change it found.

This similar-looking generator expression doesn't create temporary lists and stops processing when it reaches the first change:

>>> from itertools import islice, izip
>>> ([t1, t2] for ((t1, v1), (t2, v2)) in izip(pp, islice(pp, 1, None)) 
...           if v1 != v2
... ).next()
['c', 'd']
>>>

Everybody's examples on this page are more compact than they would be if you wanted to catch errors.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.