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Say you have 3 lists

List1 = [['_', '_', '_'], ['_', '_', '_'], ['_','_','_']]
List2 = [['Test', 'Word', 'Sudo'], ['Fu', 'Lu', 'Shou'], ['Ham', 'Spam', 'Eggs']]
List3 = [3, 5, 7,]

Using the values from List3, I'd like to transfer 'Fu' from List2[0][2] into List1[0][2], because the first value of List3 is a 3, which means take the 3rd value (counting from 0 it's list2[0][2]) from List2 and place it into the same spot as List1

The final result, using the other values in List3, should be:

List1 = [['_', '_', 'Fu'], ['_', 'Shou', '_'], ['Spam','_','_']]

I've been at it for a few hours but can't get it to work!!

How is this done?

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1  
wouldn't it be easier to have each list of triplets as a single list, do the transfers, and then split them up into the groups of 3? –  Jaynathan Leung Apr 10 '13 at 18:43
    
Are all of the sublists the same length? –  mgilson Apr 10 '13 at 18:44
    
@Jaynathan I think that's redundant, because the sublists would have to be added together again. @mgilson! Yes, all the sublists are the same length –  Hailey Monette Apr 10 '13 at 18:46
    
The 3rd value is at index 2 (0 <- first, 1 <- second, 2 <- third) –  jadkik94 Apr 10 '13 at 18:46
    
I think if you 'flatten' your lists, you may have a very easy time of things: stackoverflow.com/questions/952914/… ... in another step, you can then re-chunk your lists –  pyInTheSky Apr 10 '13 at 18:48

4 Answers 4

up vote 6 down vote accepted
In [184]: List1 = [['_', '_', '_'], ['_', '_', '_'], ['_','_','_']]

In [185]: List2 = [['Test', 'Word', 'Sudo'], ['Fu', 'Lu', 'Shou'], ['Ham', 'Spam', 'Eggs']]

In [186]: List3 = [3, 5, 7,]

In [187]: for x in List3:
    q,r=divmod(x,3)
    List1[q][r]=List2[q][r]
   .....:     

In [188]: List1
Out[188]: [['_', '_', '_'], ['Fu', '_', 'Shou'], ['_', 'Spam', '_']]
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Rather than hardcode the 3, you could use len(List1[0]) –  mgilson Apr 10 '13 at 18:50
    
+1 for the use of divmod(). –  Kevin D Apr 10 '13 at 18:52
    
This is great code, considering it got a lot of reputation. However, I don't understand it very much :\ –  Hailey Monette Apr 11 '13 at 3:40
    
Oh I see, I get it now, divmod is division modulo, q would be x/3, and r would be x%3, brilliant –  Hailey Monette Apr 14 '13 at 4:44
>>> List1 = [['_', '_', '_'], ['_', '_', '_'], ['_','_','_']]
>>> List2 = [['Test', 'Word', 'Sudo'], ['Fu', 'Lu', 'Shou'], ['Ham', 'Spam', 'Eggs']]
>>> List3 = [3, 5, 7,]
>>> List4 = [item for sublist in List1 for item in sublist]
>>> List5 = [item for sublist in List2 for item in sublist]
>>> for val in List3:
...     List4[val] = List5[val]
>>> List1 = [ List4[i:i+3] for i in xrange(0,len(List4),3) ]
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Interesting, but too complex, don't you think? –  Hailey Monette Apr 11 '13 at 3:40
    
Yes, I like your choice for best answer. My first thought was flattening the list because I didn't want to do modulo math :) –  pyInTheSky Apr 11 '13 at 12:19
# If you must have original data as lists of lists:
def flat(lst):
    ret = []
    for x in lst:
        if hasattr(x, '__iter__'):
            ret += flat(x)
        else:
            ret.append(x)
    return ret

List1 = [['_', '_', '_'], ['_', '_', '_'], ['_','_','_']]
List2 = [['Test', 'Word', 'Sudo'], ['Fu', 'Lu', 'Shou'], ['Ham', 'Spam', 'Eggs']]
List3 = [3, 5, 7,]

lst1 = flat(List1)
lst2 = flat(List2)

# Now given flat lists, you can just do this:
def splitby(x, n=3):
    i = iter(x)
    while True:
        yield [next(i) for _ in range(n)]

for i in List3:
    lst1[i] = lst2[i]

print list(splitby(lst1))
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Haha, yeah I could just do that, but a lot of your code I don't even understand yet! –  Hailey Monette Apr 10 '13 at 19:08
    
Well, pyInTheSky's code is simpler and I guess more efficient for your task, but the idea is the same. I'd use his code if I were you =) –  gatto Apr 10 '13 at 19:10
for index in List3:
    first, second = index/3, index%3 
    List1[first][second] = List2[first][second]
print List1
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1  
Thanks a lot! This answer I think is the best one, it's very simple and easy to understand. Someone else posted this same exact answer earlier, and I was lucky enough to copy down the code, but when I refreshed the page, the answer was gone. So I tried out the code, and this one works best in my opinion, very simple! –  Hailey Monette Apr 10 '13 at 19:13
    
Actually can you explain how this works? I think I understand it a little bit, but I'm still not solid on how this method works! –  Hailey Monette Apr 11 '13 at 3:53
1  
The third list is 1-d array. It should be broken down into 2-d array. Here "first" is the position of the inner list and "second" is the position of each member in that inner list. –  liken.one Apr 11 '13 at 4:43
    
Oh I see, very simple, thank you! –  Hailey Monette Apr 11 '13 at 7:36

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