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I am a newbie in python.

I tried implementing something like merge sort in python. I used singly linked list from https://pythonhosted.org/llist/#sllist-objects. To merge two sorted list, i need to traverse both lists with iterator. The pseudo code looks something like:

n3 = sllist()
for n1 in list1 and n2 in list2:
    if (n1 > n2):
        n3.append(n1)
        n1++               # c way of doing thing
    else:
        n3.append(n2)
        n2++               # c way of doing thing

But I don't know how to make this working in python. Any pointer or hint will help.

Edit: After all the discussions and suggestions, I came up with code something like this. Can anyone tell me, how to get rid of last two while loops. I was planning to use "extend" but unable to use it.

final_list = sllist()
node1 = list1.first
node2 = list2.first

while node1 and node2:
    if node1.value < node2.value:
        final_list.append(node1)
        node1 = node1.next              
    else:
        final_list.append(node2)
        node2 = node2.next
while node1:
    final_list.append(node1)
    node1 = node1.next
while node2:
    final_list.append(node2)
    node2 = node2.next

return final_list
share|improve this question
    
See more_itertools.collate here. – Neil G Aug 22 '14 at 21:02
    
Something like [a if a > b else b for a, b in zip(list1, list2)]? Or am I missing something? – Joel Cornett Aug 22 '14 at 23:00
    
@JoelCornett: did you try it? It doesn't work. – Neil G Aug 25 '14 at 0:36
    
@NeilG: Yup, these are definitely not the droids I'm looking for... – Joel Cornett Aug 25 '14 at 3:01

I generally do this with iterables and next:

lst1 = iter(list1)
lst2 = iter(list2)
out = sllist()
sentinel = object()
n1 = next(lst1, sentinel)
n2 = next(lst2, sentinel)
while n1 is not sentinel and n2 is not sentinel:
    if n1 > n2:
        out.append(n2)
        n2 = next(lst2, sentinel)
    elif n2 >= n1:
        out.append(n1)
        n1 = next(lst1, sentinel)
out.extend(lst1)
out.extend(lst2)

As pointed out in the comments, you could also write it as:

lst1 = iter(list1)
lst2 = iter(list2)
out = sllist()
try:
    n1 = next(lst1)
    n2 = next(lst2)
    while True:
        if n1 > n2:
            out.append(n2)
            n2 = next(lst2)
        elif n2 >= n1:
            out.append(n1)
            n1 = next(lst1)

except StopIteration:  # raised when next(...) fails.
    out.extend(lst1)
    out.extend(lst2)

It's functionally equivalent. Take your pick of whichever you like better :-)

share|improve this answer
1  
why not replace sentinel with try/except? – Neil G Aug 22 '14 at 20:50
1  
@NeilG because I use it in 4 places -- that's a lot of exception handling . . . – mgilson Aug 22 '14 at 20:51
1  
I think you can surround the whole thing in one try/except? – Neil G Aug 22 '14 at 20:52
1  
I suppose you're right -- There aren't too many other things in the while loop that could raise StopIteration ... – mgilson Aug 22 '14 at 20:54
2  
@user3368154 -- Yeah, I've written this function LOTS of times and I don't feel like the C way is much cleaner -- But generally we tend to hold python to a higher bar of cleanliness. In this case I think they're roughly equal. However, I will say that doing it this way in python allows you to merge arbitrary iterables. Change the appends and extends to the approprite yield and yield from and you can merge sorted iterables of infinite length (or at least part of them :-) – mgilson Aug 22 '14 at 21:00

Well the way you are doing it you need indexs

so:

while i < len(list1) and j < len(list2):
  if list1[i] > list2[j]:
    n3.append(list1[i])
    i+=1
  else:
    n3.append(list2[j])
    j+=1

n3.extend(list1[i:])
n3.extend(list2[j:])
share|improve this answer
    
You need to check if i or j is less than the length of their respective lists after the loop to merge the remaining elements. – GWW Aug 22 '14 at 20:48
    
True, I shall fix that – Jay Aug 22 '14 at 20:50
2  
Just n3.extend(list1[i:]), use += instead of ++, and fix for PEP08? – Neil G Aug 22 '14 at 20:52
    
Nice catch guys – Jay Aug 22 '14 at 20:54
1  
+1, I hope you don't mind my tidying up your code according to PEP8. – Neil G Aug 22 '14 at 21:05

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