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.

I am trying to dynamically get the first and last element from an array.

So, let us suppose the array has 6 elements.

test = [1,23,4,6,7,8]

If I am trying to get the first and last = 1,8, 23,7 and 4,6. Is there a way to get elements in this order? I looked at a couple of questions Link Link2. I took help of these links and I came up with this prototype..

#!/usr/bin/env python

import numpy

test = [1,23,4,6,7,8]
test1 = numpy.array([1,23,4,6,7,8])
len_test = len(test)
first_list = [0,1,2]
len_first = len(first_list)
second_list = [-1,-2,-3]
len_second = len(second_list)

for a in range(len_first):
        print numpy.array(test)[[first_list[a] , second_list[a]]]
        print test1[[first_list[a], second_list[a]]]

But this prototype won't scale for if you have more than 6 elements. So, I was wondering if there is way to dynamically get the pair of elements.

Thanks!

share|improve this question
add comment

7 Answers 7

up vote 7 down vote accepted

How about:

In [10]: arr = numpy.array([1,23,4,6,7,8])

In [11]: [(arr[i], arr[-i-1]) for i in range(len(arr) // 2)]
Out[11]: [(1, 8), (23, 7), (4, 6)]

Depending on the size of arr, writing the entire thing in NumPy may be more performant:

In [41]: arr = numpy.array([1,23,4,6,7,8]*100)

In [42]: %timeit [(arr[i], arr[-i-1]) for i in range(len(arr) // 2)]
10000 loops, best of 3: 167 us per loop

In [43]: %timeit numpy.vstack((arr, arr[::-1]))[:,:len(arr)//2]
100000 loops, best of 3: 16.4 us per loop
share|improve this answer
1  
more memory efficient, +1 –  isedev Jan 30 '13 at 17:16
    
However, will drop an element for arrays with odd number of elements. If you use (len(arr)+1)//2 instead, you'll capture the middle element as (middle,middle) at the end of the results. –  isedev Jan 30 '13 at 17:20
    
@isedev: We don't really know what the OP's requirements are. That said, the two approaches should cover all possibilities. :) –  NPE Jan 30 '13 at 17:28
    
@NPE: I would always have even number of elements. So, that should not be a problem –  pistal Jan 30 '13 at 17:34
add comment

Using Numpy's fancy indexing:

>>> test
array([ 1, 23,  4,  6,  7,  8])

>>> test[::-1]  # test, reversed
array([ 8,  7,  6,  4, 23,  1])

>>> numpy.vstack([test, test[::-1]])  # stack test and its reverse
array([[ 1, 23,  4,  6,  7,  8],
       [ 8,  7,  6,  4, 23,  1]])

>>> # transpose, then take the first half;
>>> # +1 to cater to odd-length arrays
>>> numpy.vstack([test, test[::-1]]).T[:(len(test) + 1) // 2]
array([[ 1,  8],
       [23,  7],
       [ 4,  6]])

vstack copies the array, but all the other operations are constant-time pointer tricks (including reversal) and hence are very fast.

share|improve this answer
add comment
>>> test = [1,23,4,6,7,8]
>>> from itertools import izip_longest
>>> for e in izip_longest(test, reversed(test)):
    print e


(1, 8)
(23, 7)
(4, 6)
(6, 4)
(7, 23)
(8, 1)

Another option

>>> test = [1,23,4,6,7,8]
>>> start, end = iter(test), reversed(test)
>>> try:
    while True:
        print map(next, [start, end])
except StopIteration:
    pass

[1, 8]
[23, 7]
[4, 6]
[6, 4]
[7, 23]
[8, 1]
share|improve this answer
1  
You are creating additional copies in memory using reversed(test) which you don't need to. –  Sudipta Chatterjee Jan 30 '13 at 17:14
1  
@SudiptaChatterjee: reversed returns a generator and not a copy –  Abhijit Jan 30 '13 at 17:16
add comment

How about this?

>>> import numpy
>>> test1 = numpy.array([1,23,4,6,7,8])
>>> forward = iter(test1)
>>> backward = reversed(test1)
>>> for a in range((len(test1)+1)//2):
...     print forward.next(), backward.next()
... 
1 8
23 7
4 6

The (len(test1)+1)//2 ensures that the middle element of odd length arrays is also returned:

>>> test1 = numpy.array([1,23,4,9,6,7,8]) # additional element '9' in the middle
>>> forward = iter(test1)                                                      
>>> backward = reversed(test1)
>>> for a in range((len(test1)+1)//2):
...     print forward.next(), backward.next()
1 8
23 7
4 6
9 9

Using just len(test1)//2 will drop the middle elemen of odd length arrays.

share|improve this answer
add comment

Assuming the list has a even number of elements, you could do:

test = [1,23,4,6,7,8]
test_rest = reversed(test[:len(test)/2])

for n in len(test_rest):
    print [test[n], test_test[n]]
share|improve this answer
add comment

This does it. Note that with an odd number of elements the one in the middle won't be included.

test = [1, 23, 4, 6, 7, 8, 5]    
for i in range(len(test)/2):
    print (test[i], test[-1-i])

Output:

(1, 5)
(23, 8)
(4, 7)
share|improve this answer
add comment

I ended here, because I googled for "first and last element of array". So here's the answer:

a = [1,2,3]
a[0] # first element (returns 1)
a[-1] # last element (returns 3)

:-)

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.