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 lists inside a dictionary:

Number_of_lists=3           #user sets this value, can be any positive integer
My_list={}
for j in range(1,Number_of_lists+1):
  My_list[j]=[(x,y,z)]  

The Number_of_lists is a variable set by the user. Without knowing beforehand the value set by the user, i would like to finally have a merged list of all dictionary lists. For example if Number_of_lists=3 and the corresponding lists are My_list[1]=[(1,2,3)] , My_list[2]=[(4,5,6)] , My_list[3]=[(7,8,9)] the result would be:

All_my_lists=My_list[1]+My_list[2]+My_list[3]

where: All_my_lists=[(1,2,3),(4,5,6),(7,8,9)].

So what i'm trying to do is automate the above procedure for all possible:

Number_of_lists=n #where n can be any positive integer

I'm a bit lost up to now trying to use an iterator to add the lists up and always fail. I'm a python beginner and this is a hobby of mine, so if you answer please explain everything in your answer i'm doing this to learn, i'm not asking from you to do my homework :)

EDIT

@codebox (look at the comments below) correctly pointed out that My_List as displayed in my code is in fact a dictionary and not a list. Be careful if you use any of the code.

share|improve this question

4 Answers 4

up vote 1 down vote accepted

use a list comprehension:

>>> Number_of_lists=3 
>>> My_list={}
>>> for j in range(1,Number_of_lists+1):
      My_list[j]=(j,j,j)
>>> All_my_lists=[My_list[x] for x in My_list]

>>> print(All_my_lists)
[(1, 1, 1), (2, 2, 2), (3, 3, 3)]

All_my_lists=[My_list[x] for x in My_list] is equivalent to:

All_my_lists=[]
for key in My_list:
   All_my_lists.append(My_list[key])
share|improve this answer
1  
This may be fine for this case and the particular python implementation at hand, but in general one can't assume that the list of keys (returned by "for x in My_list") of a dictionary are in sorted order for every length of dict or particular python interpreter/platform. –  Benedict Aug 16 '12 at 8:20

If you are only concerned with the final list, and don't actually need My_list (which you should rename, because its a dictionary!) then you could just do:

Number_of_lists=3
result = []
for j in range(1,Number_of_lists+1):
    result += (x,y,z)
share|improve this answer

You could try a more functional approach by turning Number_of_lists into a sequence of keys using range and select out of the dictionary with map:

My_list={1:[1,2,3], 2:[4,5,6], 3:[7,8,9], 4:[10,11,12]}
Number_of_lists=3
All_my_lists=map(lambda x: tuple(My_list[x]), range(1, Number_of_lists+1))

Example output:

>>> All_my_lists
[(1, 2, 3), (4, 5, 6), (7, 8, 9)]
share|improve this answer

It might be easier to generate All_my_lists first followed by My_list.

Building All_my_lists

Using list comprehension and range() to generate All_my_lists:

>>> num = 3  # for brevity, I changed Number_of_lists to num
>>> All_my_lists = [tuple(range(num*i + 1, num*(i+1) + 1)) for i in range(0, num)]
>>> All_my_lists
[(1, 2, 3), (4, 5, 6), (7, 8, 9)]

Alternatively, we can use the grouper() function from list of itertools recipe which will result in a much cleaner code:

>>> All_my_lists = list(grouper(num, range(1, num*3+1)))
>>> All_my_lists
[(1, 2, 3), (4, 5, 6), (7, 8, 9)]

Building My_lists

We can then use dict constructor along with list comprehension and enumerate() to build derive My_list from All_my_list:

>>> My_lists = dict((i+1, [v]) for i,v in enumerate(All_my_lists))
>>> My_lists
{1: [(1, 2, 3)], 2: [(4, 5, 6)], 3: [(7, 8, 9)]}
>>> My_lists[1]
[(1, 2, 3)]
>>> My_lists[2]
[(4, 5, 6)]
>>> My_lists[3]
[(7, 8, 9)]
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.