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 a problem with my python class. it contains a method that goes through all the keys of a multi_dimensional dictionary. The dictionary keys may be in the following order (1->(2,3),2->(5,6)). the problem is when the method attempts to get the keys, sometimes it gets them in the right order (1,2) and sometimes it gets them in the wrong order (2,1). any help will be appreciated. below is a very simple example of what the code might look like

class tree:
  tree_as_string = ""
    def __init__(self):
      self.id = ""
      self.daughters = {1 = 'node0', 2 = 'node1'}
    def get_as_string(self):
      s = ''
      for key in self.daughters:
         tree_as_string = s.join([tree_as_string, key])
      return tree_as_string   
share|improve this question
7  
Repeat after me: Dictionaries are unordered. –  Daniel Roseman Jun 21 '11 at 12:40
1  
There are no class methods there. –  Ignacio Vazquez-Abrams Jun 21 '11 at 12:40
    
Dictionaries are unordered ( @Daniel Roseman ) ;) –  Nix Jun 21 '11 at 12:41
    
if you do not change anything you should get always the same order for the keys. This is not exactly "unordered" although in practice it is said this way –  joaquin Dec 10 '11 at 10:22

2 Answers 2

Note that dictionaries are unordered so in order to be sure that values would be handled in the ordered format you need to sort them first. Please find sample below:

d={1:{2:'tst', 3:'tst2'}, 4:{...} }

for key in sorted(d):
    for skey in sorted(d[key]):
        #do something

OR something like this:

from operator import itemgetter

d={1:{2:'tst', 3:'tst2'}, 4:{6:'tst7', 7:'tst12'} }

for key, val in sorted(d.items(), key=itemgetter(0)):
     for skey, sval in sorted(val.items(), key=itemgetter(0)):
        print key, skey, sval

This means that in your case:

class tree(object):

    tree_as_string = ""

    def __init__(self):
      self.id = ""
      self.daughters = {1 = 'node0', 2 = 'node1'}

    def get_as_string(self):
      s = ''
      for key in sorted(self.daughters):
         tree_as_string = s.join([tree_as_string, key])
      return tree_as_string  
share|improve this answer

You can use sorted (which I would suggest because it reduces your code even further example is below), or just call sort on keys. Sort doesn't return a value, it just sorts whatever list is provided.

class tree:
  def __init__(self):
     self.id = ""
     self.daughters = {10: "test10", 2 : 'node2', 1 :'node1', 0 : 'node0'}

  def get_as_string_using_sorted(self):
    ''' Makes me happy'''
    return  '->'.join(str(k) for k in sorted(self.daughters))

  def get_as_string(self):
     s = '->'
     keys = self.daughters.keys()
     keys.sort()
     return  s.join(str(k) for k in keys)


t = tree()
print t.get_as_string()
print t.get_as_string_using_sorted()

Side note I changed your code a bit.

  1. I fixed your dict syntax its k:v verus k=v
  2. I initialized tree_as_string ="" you defined a class variable but never used it.
  3. I added str(key) because key is an int.
  4. Added more test numbers
  5. changed s to ->
  6. Simplified your for loop.
share|improve this answer
    
sorted() does not work as the daughter attribute is a dictionary n it returns an error. "'dict' object has no attribute 'sorted'" –  trey Jun 21 '11 at 12:49
    
Dont know what you are talking about, the code above works. I fixed multiple errors you had. –  Nix Jun 21 '11 at 12:52
    
@trey you have to sort the keys, you cannot sort the dict. –  juanchopanza Jun 21 '11 at 13:03

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.