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At the moment my code is as follows

A = [matrix_x[i][:n] for i in xrange(0, n)]
B = [matrix_x[i][n:] for i in xrange(0, n)]
C = [matrix_x[i+n][:n] for i in xrange(0, n)]
D = [matrix_x[i+n][n:] for i in xrange(0, n)]

Is there a better way of doing this, since I am continually looping over the same xrange. In this instance, would if be better to not use a list comprehension and just append the values to each list while in a single for loop.

A,B,C,D = [],[],[],[]
for i in xrange(0,n):
    A.append(matrix_x[i][:n])
    B.append(matrix_x[i][n:])
    ... etc

Second way seems more efficient to me. What way would be more 'pythonic' or is there another way I haven't thought of

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I think the interpreter is smart enough to optimize this example. You should try to time it. –  cldy Jul 17 '12 at 8:01
3  
For working with matrices have you considered numpy? –  Mark Byers Jul 17 '12 at 8:02
    
@Mark - I have, but this is the way I want to do it in this instance –  Shane Jul 17 '12 at 8:03

3 Answers 3

up vote 1 down vote accepted

I generally prefer to iterate over the list of items itself, rather than over xrange(len(list_of_items)) and working with the i'th item at a time. Here's how to use zip to look at each (this,next) pair in a sequence, and then build up your lists:

A,B,C,D = [],[],[],[]
for this_,next_ in zip(matrix_x,matrix_x[1:]):
    A.append(this_[:n])
    B.append(this_[n:])
    C.append(next_[:n])
    D.append(next_[n:])

And yes, you can really compact this down to a zip of a zip:

A,B,C,D = zip(*((this_[:n],this_[n:],next_[:n],next_[n:])
                  for this_,next_ in zip(matrix_x,matrix_x[1:])))
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Not really. You can use zip() creatively to generate all 4 lists at once, but I'd be very hard-pressed to call that "better".

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result = [(matrix_x[i][:n], matrix_x[i][n:], matrix_x[i+n][:n],matrix_x[i+n][n:])  for i in xrange(0, n)]

then you'd have to unpack for each element A,B,C,D = result[x]

Although doing that with a matrix_x being a string didn't yield expected results for me.

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