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.

Is there a way to access a list(or tuple, or other iterable)'s next, or previous element while looping through with for loop?

l=[1,2,3]
for item in l:
    if item==2:
        get_previous(l,item)
share|improve this question
add comment

11 Answers

Expressed as a generator function:

def neighborhood(iterable):
    iterator = iter(iterable)
    prev = None
    item = iterator.next()  # throws StopIteration if empty.
    for next in iterator:
        yield (prev,item,next)
        prev = item
        item = next
    yield (prev,item,None)

Usage:

for prev,item,next in neighborhood(l):
    print prev, item, next

Edit: I thought it would reduce the readability, but this way seem to look better.

share|improve this answer
1  
I might do "prev, item = item, next" in this case. –  Paul Fisher Nov 27 '08 at 17:31
    
To make this cycle infinitely (no StopIteration), do from itertools import cycle and change the second line to: iterator = cycle(iterable) –  Dennis Williamson Dec 17 '09 at 1:50
    
Is it less Pythonic to use enumerate in this context? –  batbrat Feb 27 at 6:40
add comment

When dealing with generators where you need some context, I often use the below utility function to give a sliding window view on an iterator:

import collections, itertools

def window(it, winsize, step=1):
    """Sliding window iterator."""
    it=iter(it)  # Ensure we have an iterator
    l=collections.deque(itertools.islice(it, winsize))
    while 1:  # Continue till StopIteration gets raised.
        yield tuple(l)
        for i in range(step):
            l.append(it.next())
            l.popleft()

It'll generate a view of the sequence N items at a time, shifting step places over. eg.

>>> list(window([1,2,3,4,5],3))
[(1, 2, 3), (2, 3, 4), (3, 4, 5)]

When using in lookahead/behind situations where you also need to deal with numbers without having a next or previous value, you may want pad the sequence with an appropriate value such as None.

l= range(10)
# Print adjacent numbers
for cur, next in window(l + [None] ,2):
    if next is None: print "%d is the last number." % cur
    else: print "%d is followed by %d" % (cur,next)
share|improve this answer
add comment

Check out the looper utility from the Tempita project. It gives you a wrapper object around the loop item that provides properties such as previous, next, first, last etc.

Take a look at the source code for the looper class, it is quite simple. There are other such loop helpers out there, but I cannot remember any others right now.

Example:

> easy_install Tempita
> python
>>> from tempita import looper
>>> for loop, i in looper([1, 2, 3]):
...     print loop.previous, loop.item, loop.index, loop.next, loop.first, loop.last, loop.length, loop.odd, loop.even
... 
None 1 0 2 True False 3 True 0
1 2 1 3 False False 3 False 1
2 3 2 None False True 3 True 0
share|improve this answer
add comment
l=[1,2,3]
for i,item in enumerate(l):
    if item==2:
        get_previous=l[i-1]
        print get_previous

>>>1
share|improve this answer
add comment

Iterators only have the next() method so you cannot look forwards or backwards, you can only get the next item.

enumerate(iterable) can be useful if you are iterating a list or tuple.

share|improve this answer
add comment

I don't think there is a straightforward way, especially that an iterable can be a generator (no going back). There's a decent workaround, relying on explicitly passing the index into the loop body:

for itemIndex, item in enumerate(l):
    if itemIndex>0:
        previousItem = l[itemIndex-1]
    else:
        previousItem = None

The enumerate() function is a builtin.

share|improve this answer
add comment

Immediately previous?

You mean the following, right?

previous = None
for item in someList:
    if item == target: break
    previous = item
# previous is the item before the target

If you want n previous items, you can do this with a kind of circular queue of size n.

queue = []
for item in someList:
    if item == target: break
    queue .append( item )
    if len(queue ) > n: queue .pop(0)
if len(queue ) < n: previous = None
previous = previous[0]
# previous is *n* before the target
share|improve this answer
add comment

Not very pythonic, but gets it done and is simple:

l=[1,2,3]
for index in range(len(l)):
    if l[index]==2:
        l[index-1]

TO DO: protect the edges

share|improve this answer
add comment

One simple way.

l=[1,2,3]
for i,j in zip(l, l[1:]):
    print i, j
share|improve this answer
add comment

I know this is old, but why not just use index?

some_list = ["bob", "bill", "barry"]

for item in some_list:
    print "Item - " + item
    if some_list.index(item) != len(some_list) -1:
        next_item = some_list[some_list.index(item) + 1]
        print "Next item -", next_item
    else:
        print "Next item does not exist!"

this should return:

Item - bob

Next item - bill

Item - bill

Next item - barry

Item - barry

Next item does not exist!

The same idea can be used to get the previous element as well.

share|improve this answer
1  
Why the downvotes? This is fine and doesn't involve external libraries or special functions. –  ronan_mac Apr 29 at 9:05
add comment

The most simple way is to search the list for the item:

def get_previous(l, item):
    idx = l.find(item)
    return None if idx == 0 else l[idx-1]

Of course, this only works if the list only contains unique items. The other solution is:

for idx in range(len(l)):
    item = l[idx]
    if item == 2:
        l[idx-1]
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.