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I am new to python, and am setting up a large dataset to work on, and wanted to check and make sure that I am doing this in the most optimized manner possible, which right now I am pretty sure I am not. I have a python dictionary that is currently set up as so.

list1 = [1,2],[3,4],[4,5]
list2 = [10,20],[30,40],[50,60]
list3 = [100,200],[300,400],[400,500]

These list are created programmatically (and much larger in reality), and are then sorted into a dictionary as follows:

l_dict = {"l1":list1,"l2":list2,"l3":list3} 
print l_dict  
    `{'l2': ([10, 20], [30, 40], [50, 60]), 'l3': ([100, 200], [300, 400], [400, 500]), 'l1': ([1, 2], [3, 4], [4, 5])}`

I have another dicitonary set up exactly the same, except with different numbers and object name (call it k_dict). Here are my questions: What is the simplest way to get an array/list of the first object in each tupple? My code now is as follows:

#Gets first tuple value from each list 
listnames = ["l1","l2","l3"]
i=10
while(i < len(listdict)):
 for x,a in l_dict[listnames[i]]:
  return a[0]
 i+=1

Which was working

Should return something like (1,3,4,10,30,50,100,300,400) except spaced with newlines

I have also tried dict comprehension

print {x[0] for x in ldict[listnames]}

Which never worked for me, and I have tried many similar variations that wouldn't work either.

Also, is this dictionary a good way to set this data up? I couldn't find any other examples of list of tuples inside dictionaries, which leads me to believe there might be some dataframe/other manner of storing data like this that is easier to use.Thanks for all the help. And I am using python 2.7.1

share|improve this question
    
its not very clear what your question is... –  Joran Beasley Apr 8 '13 at 23:07
    
your list1,list2,.. are not lists of tuples, they are tuples of lists. Is it mean to be that way? –  jurgenreza Apr 8 '13 at 23:48

3 Answers 3

Use this list comprehension:

In [16]: [y[0]  for x in listnames for y in l_dict[x]]
Out[16]: [1, 3, 4, 10, 30, 50, 100, 300, 400]

Above list comprehension is equivalent to:

In [26]: lis=[]

In [27]: for x in listnames:
   ....:     for y in l_dict[x]:
   ....:         lis.append(y[0])
   ....:         

In [28]: lis
Out[28]: [1, 3, 4, 10, 30, 50, 100, 300, 400]
share|improve this answer
    
nice job ... I had a hard time telling what he wanted –  Joran Beasley Apr 8 '13 at 23:08
    
Thanks a bunch! Exactly what I wanted. Sorry I will try to make the question more clear –  user2259475 Apr 8 '13 at 23:13

Sounds like you are looking for the often wanted zip. Watch this:

list1 = [1,2],[3,4],[4,5]
print zip(*list1)
# [(1, 3, 4), (2, 4, 5)]

In case you really want just the first pairs use

from itertools import izip
generator = izip(*list1)
first = next(generator)
share|improve this answer

Assuming k_dict and l_dict have the same structure, you can compare their values by iterating through them as follows:

for listname in listnames:
   for i, lv in enumerate(l_dict[listname]):
      kv = k_dict[listname][i]
      #lv and kv will contain a pair of values, e.g [1,2] or [200,300]
      if lv[0] == kv[0]:
          #do something
          pass

however, because your dictionary values are tuples, they're immutable. You may want to have them be lists instead so you can change their values in place, e.g.:

l_dict = {k:list(v) for k,v in l_dict.iteritems()}
share|improve this answer
    
This is very helpful, thanks. I believe this may work for my program. I didn't understand the tupple being immutable vs the list being mutable, that is helpful info –  user2259475 Apr 8 '13 at 23:33

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