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 have sorted list of datetime.time and want to create intervals like. If I have

a = [datetime.time(0,0), datetime.time(8,0), datetime.time(13,0), datetime.time(17,0)]

Then result should be like this:

c = [[datetime.time(0,0),datetime.time(8,0)], [datetime.time(8,0),datetime.time(13,0)],
[datetime.time(13,0),datetime.time(17,0)], [datetime.time(17,0),datetime.time(0,0)]]

This could be achieved using simple loop but if there is better solution exist?

Using loop:

>>> a=[datetime.time(0, 0), datetime.time(3, 0), datetime.time(8, 0), datetime.time(11, 0)]
>>> 
>>> r = []
>>> 
>>> for i in range(0,len(a)):
...     if i+1 < len(a):
...         r.append([a[i],a[i+1]])
...     else:
...         r.append([a[i],a[0]])
... 
>>> r
[[datetime.time(0, 0), datetime.time(3, 0)], [datetime.time(3, 0), datetime.time(8, 0)], [datetime.time(8, 0), datetime.time(11, 0)], [datetime.time(11, 0), datetime.time(0, 0)]]
>>> 

nd what could be change if I want result to be

[[datetime.time(0, 0), datetime.time(2, 59, 59)], [datetime.time(3, 0), datetime.time(7, 59, 59)], [datetime.time(8, 0), datetime.time(10, 59, 59)], [datetime.time(11, 0), datetime.time(23, 59, 59)]]
share|improve this question

4 Answers 4

up vote 5 down vote accepted

You could try

a = list(zip(a[:-1], a[1:]))
a.append((a[-1], a[0])])

That gives you a list of tuples. If you want a list of lists, just do

>>> a = [list(i) for i in zip(a[:-1], a[1:])]
>>> a.append([a[-1], a[0]])

(Edited version taking 1. the [a[-1],a[0]] out of the list comprehension and 2. the fact that zip doesn't return a list in Python 3+)

Yet another possibility would be to just append the first value to the list:

>>> tmp = a + a[0]
>>> list(zip(tmp[:,-1], tmp[1:]))

It can be argued that it creates a temporary list. You could do aa.append(a[0]) instead but then you'd modify your initial list, which might be an issue.

share|improve this answer
    
yes thats work fine but don't we have any built-in function. –  sharafjaffri Sep 12 '12 at 12:29
2  
Although, I would probably a.append the last element outside of the list comprehension for 2 reasons: 1) zip doesn't return a list in py3k. (and I don't think 2to3 would handle this properly) 2) concatenation creates a new list which is unnecessary here. –  mgilson Sep 12 '12 at 12:32
    
@sharafjaffri I can't think of anything as simple, though... –  Pierre GM Sep 12 '12 at 12:50
    
@PierreGM One thing you could do is a.append(a[0]) before the zip-ing. Then your list comprehension for the zip will have the first elem + last pair. –  aneroid Sep 12 '12 at 13:01
1  
Once you have your intervals, just remove dt=datetime.timedelta(seconds=1) from the second member: [(i,j-dt) for (i,j) in your_intervals] –  Pierre GM Sep 12 '12 at 13:31

One more option1 as a one-liner: but with a really unpythonic expression (imho) so that you don't have to append the last and first pair in a separate step:

>>> [list(i) for i in zip(a, a[1:]+[a[0]])]
[[datetime.time(0, 0), datetime.time(8, 0)],
 [datetime.time(8, 0), datetime.time(13, 0)],
 [datetime.time(13, 0), datetime.time(17, 0)],
 [datetime.time(17, 0), datetime.time(0, 0)]]

1 zip method inspired by Pierre-GM's solution above.

FYI, I prefer either my initial answer or Pierre's over this.


Edit/Update for 2nd part of the question: To do the timedeltas in one expression also (but I see no good reason why this shouldn't just be split out into different statements instead...):

>>> [[i, (datetime.datetime(101, 1, 1, j.hour, j.minute, j.second) -
...       datetime.timedelta(seconds=1)
...      ).time()
...  ] for i,j in zip(a, a[1:]+[a[0]])
... ]
[[datetime.time(0, 0), datetime.time(7, 59, 59)],
 [datetime.time(8, 0), datetime.time(12, 59, 59)],
 [datetime.time(13, 0), datetime.time(16, 59, 59)],
 [datetime.time(17, 0), datetime.time(23, 59, 59)]]
share|improve this answer
    
Till you're at it, you could subtract 1s from the second member of each element to solve the second part of the question... –  Pierre GM Sep 12 '12 at 13:46
    
@PierreGM lol, done. That's 20 minutes I'll never get back :P –  aneroid Sep 12 '12 at 18:45
    
@sharafjaffri There's the answer to the 2nd part of your question. –  aneroid Sep 12 '12 at 18:45

How about a list comprehension if not a 'simple loop'? Like:

>>> b = [[a[x], a[x+1]] for x in range(0, len(a)-1)] + [[a[-1], a[0]]]
>>> b
[[datetime.time(0, 0), datetime.time(8, 0)],
 [datetime.time(8, 0), datetime.time(13, 0)],
 [datetime.time(13, 0), datetime.time(17, 0)],
 [datetime.time(17, 0), datetime.time(0, 0)]]
share|improve this answer
    
that's using loop but didn't work with paring of last and first item look as last value in my projected list. –  sharafjaffri Sep 12 '12 at 12:27
    
Last and First pairing at the end has to be manually added, even with @pierre-gm's method. List comprehensions aren't just Loops even though they use loops. And this list comprehension is better than the loop in your question. –  aneroid Sep 12 '12 at 12:44

For creating a range like this, I might try a generator:

def make_ranges(lst):
    max_idx = len(lst) - 1
    for i,item in enumerate(lst):
        yield [item, lst[i+1 if i != max_idx else 0] ]

You could play around with keyword arguments to tell make_ranges whether or not to be periodic and if periodic, whether or not to include the wraparound at the beginning or the end.

Then you can make your ranges:

a = [1,2,3,4,5,6,7,8]
b = list(make_ranges(a))
print(b == [[1,2],[2,3],[3,4],[4,5],[5,6],[6,7],[7,8],[8,1]]) #True
share|improve this answer

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.