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.

In Python, is there any counter available during the list comprehension as it would be in case of a for loop?

It would be more clear why I need a counter, with this example:

I wish to achieve the following:

Initial List: ['p', 'q', 'r', 's']

Desired List: [(1, 'P'), (2, 'Q'), (3, 'R'), (4, 'S')]

In the desired list, first element of every tuple are ordinal numbers. If it were just flat list, I could have used zip to achieve this. But however, the list I am dealing with is nested, three level deep (think of hierarchical data), and it is generated through list comprehension.

So, I was wondering is there any way to introduce those ordinal numbers during list comprehension. If not, what would be the best possible solution.

P.S. : Here the lower case letters are converted to uppercase, but that is not a part of problem, think of it as just a data conversion.

Code:

allObj = Category.objects.all()

tree =[(_, l1.name, [(__, l2.name, [(___, l3.name) for l3 in allObj if l3.parentid == l2.categoryid]) for l2 in allObj if l2.parentid == l1.categoryid]) for l1 in allObj if l1.parentid == None]

allObj contains data from table category, which in turn contains hierarchical data represented in the form of Adjacency List.

I have put _ where I need ordinal numbers to be. Notice that the list is nested, so there will be a separate counter at each level represented by 1, 2 & 3 _s.

share|improve this question
7  
Have a look at enumerate(list, 1) docs.python.org/library/functions.html#enumerate –  Nobody Feb 8 '12 at 16:55
    
You can almost certainly achieve this using zip. No-one can tell you, if you don't show us your code. –  Marcin Feb 8 '12 at 16:55
    
@Marcin: I have added the code snippet as well. –  user1144616 Feb 8 '12 at 17:19
    
It is not trivial to count in this hierarchy saved in a flat list. You should at first build a real hierarchy and then you are able to count on each level. –  Nobody Feb 8 '12 at 17:28
    
@Nobody: This hierarchy comes from a database table as it is stored there in the form of Adjacency List. And what is building a real hierarchy, you mean trees? –  user1144616 Feb 8 '12 at 17:39

6 Answers 6

up vote 14 down vote accepted

The most basic case

[(i, x) for i, x in enumerate(some_list, 1)]

Apply a filter with an if-statements

[(i, x) for i, x in enumerate(some_list, 1) if i > 2]

or like this

[(i, x) for i, x in enumerate(some_list, 1) if x != 'p']

A word of advice

Most often you don't need to do this. Instead you just call enumerate(some_list, 1) where the enumeration is needed, in a for loop for example.

share|improve this answer
    
the trick would be incrementing the i. –  9000 Feb 8 '12 at 16:58
2  
Nice one, I didn't know about the second argument in enumerate :) –  Samvel Feb 8 '12 at 16:59
    
9000: Now I don't follow you. According to your answer you know that it's done automaticly (if you did't comment before I added 1 as initial value which I forgot at first) –  Niclas Nilsson Feb 8 '12 at 17:01
    
samvel: Ok... :-) –  Niclas Nilsson Feb 8 '12 at 17:03
1  
Maybe even better: list(enumerate(map(str.upper, oldList), 1)). Also note oldList to avoid the builtin name list. –  Nobody Feb 8 '12 at 17:05

As already showed in the other answers the standard library gives you enumerate, which means that you probably wont even need a list like:

[(1, 'P'), (2, 'Q'), (3, 'R'), (4, 'S')]

because every time you need to bind the letter with a number related to its position you can just call enumerate.
Example:

>>> low = ['p', 'q', 'r', 's']
>>> upp = [c.upper() for c in low]
>>>
>>> for i,c in enumerate(upp, 1):
...     print(i,c)
...
1 P
2 Q
3 R
4 S

This was just an example, maybe you actually need to that kind of list.

share|improve this answer
    
+1 for this nice explanation. –  user1144616 Feb 8 '12 at 17:23
    
@user1144616: You're welcome! :) I just saw your updated question (with the code snippet). If you have to stick with that design I wish you all the luck, because it'll be hard to build and even more hard to read. If instead you can refactor your code, take a look at networkx, maybe it suites your case. –  Rik Poggi Feb 8 '12 at 18:57

RTFM: enumerate(['p', 'q', 'r', 's'], 1) gives you a generator yielding (1, 'p'), (2, 'q'), (3, 'r'), (4, 's'), convert it to list to taste.

share|improve this answer
    
I can use if to filter elements in case of List comprehension, how would that play here in case of enumerate(). –  user1144616 Feb 8 '12 at 17:33
1  
Filter the incoming sequence, enumerate the result: enumerate((x for x in some_sequence if is_good(x)), 1) –  9000 Feb 8 '12 at 19:14
    
RTFM? He didn't mention enumerate in his original post, so how can he RTFM? –  Rabarberski Jan 20 at 10:37
    
@Rabarberski: He could read the fine manual to learn about enumerate and enjoy using it. If you think that the word "RTFM" is rude and condescending, I did not mean it, and such overtones are absent, if "The New Hacker Dictionary" (nee "Jargon File") is to be believed. –  9000 Jan 20 at 18:22
L = ['p', 'q', 'r', 's']
[(i + 1, x) for i, x in enumerate(L)]
share|improve this answer

Would something like this help?

i = 1

y = range(10)

s = [(i + y.index(x), x**2) for x in y]

print s

>>> [(1, 0), (2, 1), (3, 4), (4, 9), (5, 16), (6, 25), (7, 36), (8, 49), (9, 64), (10, 81)]

I have a suspicion that there may be a better way to do this than through comprehensions though.

share|improve this answer

I guess you want something like numbering all items, independent of the level of nesting. Maybe the following will help. Don't forget to create a new number for each list comprehension. next may be spelled __next__ in your version of Python.

>>> import itertools
>>> number = itertools.count().next
>>> [(number(), [(number(), x + 1) for x in range(y) if x % 2]) for y in range(10) if y % 3]
[(0, []), (1, [(2, 2)]), (3, [(4, 2), (5, 4)]), (6, [(7, 2), (8, 4)]), (9, [(10, 2), (11, 4), (12, 6)]), (13, [(14, 2), (15, 4), (16, 6), (17, 8)])]

Update: I know understand that you need different counters for each level of nesting. Just use more than one counter:

>>> number1 = itertools.count().__next__
>>> number2 = itertools.count().__next__
>>> print([(number1(), [(number2(), x + 1) for x in range(y) if x % 2]) for y in range(10) if y % 3])
[(0, []), (1, [(0, 2)]), (2, [(1, 2), (2, 4)]), (3, [(3, 2), (4, 4)]), (4, [(5, 2), (6, 4), (7, 6)]), (5, [(8, 2), (9, 4), (10, 6), (11, 8)])]

I.e., replace _ with number1() as defined above, __ with number2(), and so on. That's it.

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.