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I want to apply two 'for' loops (slightly different from each other) on list. First 'for' loop will be from the minimum value to the left side and second from the minimum value to the right side. Following is the list:

a = [3,4,6,7,8,4,3,1,6,7,8,9,4]
# to get min index
b = a.index(min(a))
c=a[0:b+1]
d=a[b:len(a)]
for i in reversed(c):
    print i

and

for i in d:
    print i

So for example, first 'for' loop will run from the index value 8 to 1 and second 'for' loop will run from 8 to 13. I am not sure how to run loops in opposite directions starting from the minimum value. Any suggestions would be helpful.

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1 Answer 1

up vote 1 down vote accepted
>>> a = [3,4,6,7,8,4,3,1,6,7,8,9,4]
>>> b = a.index(min(a))
>>> b
7

A loop that runs from the index 7 to 0. (not 8 to 1):

>>> for i in range(b, -1, -1):
...     print i, a[i]
...
7 1
6 3
5 4
4 8
3 7
2 6
1 4
0 3

A loop that run from 8 to 12:

>>> for i in range(b+1, len(a)):
...     print i, a[i]
...
8 6
9 7
10 8
11 9
12 4

>>> a[b:None:-1]
[1, 3, 4, 8, 7, 6, 4, 3]
>>> a[b+1:]
[6, 7, 8, 9, 4]

UPDATE

Followings are more Pythonic methods of getting the index of the minimum value:

>>> min(xrange(len(a)), key=a.__getitem__)
7
>>> min(enumerate(a), key=lambda L: L[1])[0]
7
>>> import operator
>>> min(enumerate(a), key=operator.itemgetter(1))[0]
7
share|improve this answer
    
It works. I have also added what I figured in the meanwhile to the OP. –  Ibe Aug 25 '13 at 6:23
    
@Ibe, You can use c=a[:b+1] d=a[b:] (omitting 0, len(b)) –  falsetru Aug 25 '13 at 6:23
    
that is a good suggestion. –  Ibe Aug 25 '13 at 6:25
1  
@Ibe, I added another solution that does not require reversed. –  falsetru Aug 25 '13 at 6:27
1  
Might be worth pointing out that min(xrange(len(a)), key=a.__getitem__) and min(enumerate(a), key=lambda L: L[1])[0] (or using itemgetter) are more Pythonic methods of getting the index of the minimum value... –  Jon Clements Aug 25 '13 at 13:51

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