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I need to get the first and last dimension of an numpy.ndarray of arbitrary size.

If I have shape(A) = (3,4,4,4,4,4,4,3) my first Idea would be to do result = shape(A)[0,-1] but that doesn't seem to work with tuples, why not ??

Is there a neater way of doing this than

s=shape(A)
result=(s[0], s[-1])

Thanks for any help

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3 Answers 3

up vote 4 down vote accepted

I don't know what's wrong about

(s[0], s[-1])

A different option is to use operator.itemgetter():

from operator import itemgetter
itemgetter(0, -1)(s)

I don't think this is any better, though. (It might be slightly faster if you don't count the time needed to instantiate the itemgetter instance, which can be reused if this operation is needed often.)

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I was just wondering, because I haven't worked with tuples that much so far. Thanks, I'm going to accept your answer as soon as I can (~8 minutes :)) –  Mischa Obrecht Apr 9 '12 at 12:32
s = (3,4,4,4,4,4,4,3)
result = s[0], s[-1]
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+1 hehe two characters shorter, fair enough –  jamylak Apr 9 '12 at 12:30

If you are using numpy array, then you may do that

s = numpy.array([3,4,4,4,4,4,4,3])
result = s[[0,-1]]

where [0,-1] is the index of the first and last element. It also allow more complex extraction such as s[2:4]

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yes, but shape does not return a np.array. The strange thing is, that the s[2:4] access even is possible for a tuple, but s[0, -1] is not –  Mischa Obrecht Apr 9 '12 at 14:47

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