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How can I compare one element with the next one in a sorted list, and print out their differences. Any help would be appreciated.

Eg: 
lst = [3.18,10.57,14.95,...]
10.57 - 3.18 =  7.39
14.95 - 10.57 = 4.38
...
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Please post the code you have written so far; and please use the homework tag. –  Pete Wilson May 29 '11 at 0:51
    
maybe not related but I found this post to be most helpful: stackoverflow.com/questions/942543/… –  Hassek May 22 '14 at 17:56

5 Answers 5

up vote 6 down vote accepted

If you are manipulating numerical data, consider using numpy

import numpy as np

lst = [3.18,10.57,14.95]
arr = np.array(lst)

diff = np.diff(arr)

>>> diff
array([ 7.39,  4.38])

You can convert it back to list if you have to:

diff_list = list(diff)

Otherwise you can iterate over it just like you iterate over a list:

for item in diff: 
    print(item)

7.39
4.38

EDIT: the five solutions I timed were pretty close to each other, so choose the one that's easier to read

t = timeit.Timer("[b - a for a, b in zip(l, l[1:])]", "l = range(int(1e6))")
print(t.timeit(1))
>>> 0.523894071579

t = timeit.Timer("list(np.diff(np.array(l)))", "import numpy as np; l = range(int(1e6))")
print(t.timeit(1))
>>> 0.484916915894

t = timeit.Timer("diffs = [l[x + 1] - l[x] for x in range(len(l) - 1)]", "l = range(int(1e6))")
print(t.timeit(1))
>>> 0.363043069839

t = timeit.Timer("[(x, y, y - x) for (x, y) in itertools.izip(l, it)]", "l = range(int(1e6)); it = iter(l); it.next()")
print(t.timeit(1))
>>> 0.54354596138

# pairwise solution
t = timeit.Timer("a, b = itertools.tee(l); next(b, None); [(x, y) for x, y in itertools.izip(a, b)]", "l = range(int(1e6));")
print(t.timeit(1))
>>> 0.477301120758
share|improve this answer
1  
If you are using numpy already, you might as well use numpy.diff, which does exactly what DGT is looking for - no need to create additional copies of the original list. –  Jim Brissom May 29 '11 at 1:24
    
@Jim Brissom thank you –  Dragan Chupacabric May 29 '11 at 1:38
it = iter(lst)
it.next()
print [(x, y, y - x) for (x, y) in itertools.izip(lst, it)]
share|improve this answer
1  
Hooray for random downvotes. –  Ignacio Vazquez-Abrams May 29 '11 at 0:56
2  
I hate to participate in the "sympathy upvote" trend, but have one anyway. Nothing wrong with this answer. –  Rafe Kettler May 29 '11 at 0:57

You need the pairwise() recipe from itertools, from where lots of Python goodness comes.

>>> for x,y in pairwise(lst): 
...     print(y, " - ", x, " = ", y - x)
... 
10.57  -  3.18  =  7.390000000000001
14.95  -  10.57  =  4.379999999999999
share|improve this answer
1  
+1, pairwise is sweet, it would be neat if it together with grouper would make it into iterools proper... –  Skurmedel May 29 '11 at 1:04
diffs = [lst[x + 1] - lst[x] for x in range(len(lst) - 1)]
for x in diffs:
    print x 
share|improve this answer

Use zip, and zip the list with itself.

l = [1, 2, 4, 7]
[b - a for a, b in zip(l, l[1:])]

# [1, 2, 3]
share|improve this answer
    
Note that this will create a copy of l (less its first element) and then (in Python < 3) create another list containing all the elements of l plus all the elements of its copy. You should prefer an iter-based solution (such as mine or Ignacio's ), particularly if your list is large! –  Johnsyweb May 29 '11 at 1:29

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