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I need to traverse a dictionary recursively and remember the previous keys.

Let me explain:

dic = {u'resources': {u'info': {u'load': (u'37', u'17')}}, u'peak': {u'load': (u'0', u'1')}}

The elements are always a value or a dictionary until it reaches a value. I want to print the above dic like this: (omit the xxx below, it should eventually be a diff of the two values)

resources info load 37 17 xxx
resources peak load 0 1 xxx

This is the code I have so far:

def convertToTable(var):
    if isinstance(var, tuple):
        if len(var) != 2:
            return str(var)

        v1, v2 = var
            v1 = float(v1)
            v2 = float(v2)
        except ValueError:
        if type(v1) != type(v2):
            return '\t%s\t%s\n' % (v1, v2)
        elif isinstance(v1, int) or isinstance(v1, float):
            sign = '+' if v2 - v1 > 0 else ''
            return '\t%s\t%s\t%s%s\n' % (v1, v2, sign, v2 - v1)
        elif isinstance(v1, list):
            ret = ''
            for i in range(max(len(v1), len(v2))):
                v1v = v1[i] if i < len(v1) else ''
                v2v = v2[i] if i < len(v2) else ''
                ret += '\t%s, %s\n' % (v1v, v2v)
            return ret
            return '\t%s\t%s\n' % (v1, v2)
    elif isinstance(var, dict):
        ret = ''
        for key, value in var.iteritems():
            # fix this crap, it's not printing all recursive levels of keys!
            ret += '%s %s' % (key, convertToTable(value))
        return ret
        return '%s\n' % (var)

I don´t know how to pass the previous keys recursively to the function again! Either I get an extra print of keys or nothing! (please do not advice me that I should use json.dumps as it does not really do what I need!) I am hoping someone can check my solution and point out the flaw in it!

share|improve this question
The children can either be type list or dict? – Fabian Mar 15 '13 at 15:53
key level1 has a value of type dict, but level2B and level3B have values that are list of dicts. Can/should level1 be a list containing a single dict? – Awalias Mar 15 '13 at 15:55
@fabian, sorry I messed up the example. the children are always an element or a tuple – theAlse Mar 15 '13 at 15:57
@theAlse what's an element? Can you update your post? – Fabian Mar 15 '13 at 15:58
sorry guys, I messed up the example. please see the updated one! – theAlse Mar 15 '13 at 15:59

3 Answers 3

up vote 3 down vote accepted

I'm not sure what's wrong with your code, but this might do what you want:

def iteritems_recursive(d):
  for k,v in d.iteritems():
    if isinstance(v, dict):
      for k1,v1 in iteritems_recursive(v):
        yield (k,)+k1, v1
      yield (k,),v

dic = {u'resources': {u'info': {u'load': (u'37', u'17')}, u'peak': {u'load': (u'0', u'1')}}}

for p,v in iteritems_recursive(dic):
  print p, "->", v

iteritems_recursive iterates over the passed-in dictionary, and returns a a (path, value) tuple. The path is itself a tuple which describes the keys that reach that item.

The above code prints:

(u'resources', u'info', u'load') -> (u'37', u'17')
(u'resources', u'peak', u'load') -> (u'0', u'1')

If you want to print the table pretty, replace the for loop above with this:

for p,v in iteritems_recursive(dic):
  diff = float(v[0]) - float(v[1])
  p = ''.join('{:10}'.format(w) for w in p)
  v = ''.join('{:5}'.format(f) for f in v)
  print p, v, diff

Which prints:

resources info      load       37   17    20.0
resources peak      load       0    1     -1.0
share|improve this answer
I was hoping someone could point out the flaw in my solution. I don´t know how I would have to change this code to get a diff of the value. – theAlse Mar 15 '13 at 16:34
Ah, I misunderstood your question, because you didn't ask one. You might want to edit your post and include a specific question. – Robᵩ Mar 15 '13 at 16:36
done, and you code is by far simpler and better than mine :) – theAlse Mar 15 '13 at 16:38
What is a 'diff of the value'? What, precisely, do you want the output to look like, given your sample input? – Robᵩ Mar 15 '13 at 16:42
Yes, there is. Here is one such way. – Robᵩ Mar 18 '13 at 14:02
def convertToTable(inp, history=[]):
    for key, value in inp.iteritems():
        if type(value) == dict:
            convertToTable(value, history)
            print '{} {} {}'.format(' -> '.join(history), value[0], value[1])

dic = {'peak': {'load': ('0', '1'), 'unload': ('2', '3')}, 'resources': {'info': {'loadxx': ('37', '17')}}}

# peak -> load 0 1
# peak -> unload 2 3
# resources -> info -> loadxx 37 17
share|improve this answer

I have two solutions, the first carries the names of all the keys down the levels and prints them at the bottom before returning back up the stack.

The second prints them on the way down thus avoiding having to 'remember' the levels

import sys

dic = {u'resources':
                {u'load': (u'37', u'17')}
            {u'load': (u'0', u'1')}

def racecar(goomba, levels=None):
    if levels == None:
        levels = []
    for key in goomba:
        if type(goomba[key]) is dict:
            levels = racecar(goomba[key], levels)
            for name in levels:
                sys.stdout.write(name + ' ')
            for val in goomba[key]:
                sys.stdout.write(val + ' ')
            return []

def racecar2(goomba):
    for key in goomba:
        sys.stdout.write(key + ' ')
        if type(goomba[key]) is dict:
            for val in goomba[key]:
                sys.stdout.write(val + ' ')



peak load 0 1 xxx
resources info load 37 17 xxx
share|improve this answer
thanks for the reply, both your solutions are incorrect! almost in the same way mine is incorrect. have you ran them and checked the print, it does not even print all the elements! – theAlse Mar 15 '13 at 16:33
the output specified in your question doesn't seem to reflect the input provided. What output are you expecting? – Awalias Mar 15 '13 at 16:36
oops I missed the load element, fixed now – Awalias Mar 15 '13 at 16:39

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