93
for k, v in d.iteritems():
    if type(v) is dict:
        for t, c in v.iteritems():
            print "{0} : {1}".format(t, c)

I'm trying to loop through a dictionary and print out all key value pairs where the value is not a nested dictionary. If the value is a dictionary I want to go into it and print out its key value pairs...etc. Any help?

EDIT

How about this? It still only prints one thing.

def printDict(d):
    for k, v in d.iteritems():
        if type(v) is dict:
            printDict(v)
        else:
            print "{0} : {1}".format(k, v)

Full Test Case

Dictionary:

{u'xml': {u'config': {u'portstatus': {u'status': u'good'}, u'target': u'1'},
      u'port': u'11'}}

Result:

xml : {u'config': {u'portstatus': {u'status': u'good'}, u'target': u'1'}, u'port': u'11'}
  • 1
    Sounds like you want recursion, but the description is not clear enough to be sure. What about some example in-/output? Also, what's wrong with your code? – Niklas B. May 25 '12 at 14:42
  • 2
    There is a fixed recursion limit in Python: docs.python.org/library/sys.html#sys.setrecursionlimit – Jan-Philip Gehrcke May 25 '12 at 14:47
  • 2
    @Jan-PhilipGehrcke: To implement algorithms on a tree-like data structure without recursion is plain suicide. – Niklas B. May 25 '12 at 14:48
  • 2
    @Takkun: You are using dict as a variable name. Don't ever do this (this is why it fails). – Niklas B. May 25 '12 at 14:54
  • 3
    @NiklasB., re: "suicide": I just implemented an iterative version of Scharron's algorithm and its just two lines longer and still quite easy to follow. Besides, translating recursion to iteration is often a requirement when going from trees to general graphs. – Fred Foo May 25 '12 at 15:06

11 Answers 11

124

As said by Niklas, you need recursion, i.e. you want to define a function to print your dict, and if the value is a dict, you want to call your print function using this new dict.

Something like :

def myprint(d):
  for k, v in d.iteritems():
    if isinstance(v, dict):
      myprint(v)
    else:
      print "{0} : {1}".format(k, v)

Or for Python 3 onwards :

def myprint(d):
  for k, v in d.items():
    if isinstance(v, dict):
      myprint(v)
    else:
      print("{0} : {1}".format(k, v))
  • 2
    small improvement. add print(k), before calling myprint(v). – Naomi Fridman Mar 14 at 11:04
  • With recursion it's trivial. – sergzach May 27 at 16:42
28

Since a dict is iterable, you can apply the classic nested container iterable formula to this problem with only a couple of minor changes. Here's a Python 2 version (see below for 3):

import collections
def nested_dict_iter(nested):
    for key, value in nested.iteritems():
        if isinstance(value, collections.Mapping):
            for inner_key, inner_value in nested_dict_iter(value):
                yield inner_key, inner_value
        else:
            yield key, value

Test:

list(nested_dict_iter({'a':{'b':{'c':1, 'd':2}, 
                            'e':{'f':3, 'g':4}}, 
                       'h':{'i':5, 'j':6}}))
# output: [('g', 4), ('f', 3), ('c', 1), ('d', 2), ('i', 5), ('j', 6)]

In Python 2, It might be possible to create a custom Mapping that qualifies as a Mapping but doesn't contain iteritems, in which case this will fail. The docs don't indicate that iteritems is required for a Mapping; on the other hand, the source gives Mapping types an iteritems method. So for custom Mappings, inherit from collections.Mapping explicitly just in case.

In Python 3, there are a number of improvements to be made. As of Python 3.3, abstract base classes live in collections.abc. They remain in collections too for backwards compatibility, but it's nicer having our abstract base classes together in one namespace. So this imports abc from collections. Python 3.3 also adds yield from, which is designed for just these sorts of situations. This is not empty syntactic sugar; it may lead to faster code and more sensible interactions with coroutines.

from collections import abc
def nested_dict_iter(nested):
    for key, value in nested.items():
        if isinstance(value, abc.Mapping):
            yield from nested_dict_iter(value)
        else:
            yield key, value
  • 2
    isinstance(item, collections.Iterable) is no guarantee for hasattr(item, "iteritems"). Checking for collections.Mapping is better. – Fred Foo May 25 '12 at 14:55
  • 1
    @larsmans, you're quite right, of course. I was thinking that using Iterable would make this solution more generalized, forgetting that, obviously, iterables don't necessarily have iteritems. – senderle May 25 '12 at 14:56
  • +1 to this answer because its a general solution that works for this problem, but it's not restricted to just printing the values. @Takkun you should definitely consider this option. In the long run you'll want more than just print the values. – Alejandro Piad May 25 '12 at 14:59
  • 1
    @Seanny123, Thanks for drawing my attention to this. Python 3 changes the picture in a couple of ways, in fact -- I'm going to rewrite this as a version that uses the new yield from syntax. – senderle Apr 20 '17 at 12:56
25

There are potential problems if you write your own recursive implementation or the iterative equivalent with stack. See this example:

    dic = {}
    dic["key1"] = {}
    dic["key1"]["key1.1"] = "value1"
    dic["key2"]  = {}
    dic["key2"]["key2.1"] = "value2"
    dic["key2"]["key2.2"] = dic["key1"]
    dic["key2"]["key2.3"] = dic

In the normal sense, nested dictionary will be a n-nary tree like data structure. But the definition doesn't exclude the possibility of a cross edge or even a back edge (thus no longer a tree). For instance, here key2.2 holds to the dictionary from key1, key2.3 points to the entire dictionary(back edge/cycle). When there is a back edge(cycle), the stack/recursion will run infinitely.

                          root<-------back edge
                        /      \           |
                     _key1   __key2__      |
                    /       /   \    \     |
               |->key1.1 key2.1 key2.2 key2.3
               |   /       |      |
               | value1  value2   |
               |                  | 
              cross edge----------|

If you print this dictionary with this implementation from Scharron

    def myprint(d):
      for k, v in d.items():
        if isinstance(v, dict):
          myprint(v)
        else:
          print "{0} : {1}".format(k, v)

You would see this error:

    RuntimeError: maximum recursion depth exceeded while calling a Python object

The same goes with the implementation from senderle.

Similarly, you get an infinite loop with this implementation from Fred Foo:

    def myprint(d):
        stack = list(d.items())
        while stack:
            k, v = stack.pop()
            if isinstance(v, dict):
                stack.extend(v.items())
            else:
                print("%s: %s" % (k, v))

However, Python actually detects cycles in nested dictionary:

    print dic
    {'key2': {'key2.1': 'value2', 'key2.3': {...}, 
       'key2.2': {'key1.1': 'value1'}}, 'key1': {'key1.1': 'value1'}}

"{...}" is where a cycle is detected.

As requested by Moondra this is a way to avoid cycles (DFS):

def myprint(d): 
  stack = list(d.items()) 
  visited = set() 
  while stack: 
    k, v = stack.pop() 
    if isinstance(v, dict): 
      if k not in visited: 
        stack.extend(v.items()) 
      else: 
        print("%s: %s" % (k, v)) 
      visited.add(k)
  • so then how would you implement an iterative solution? – dreftymac Apr 23 '17 at 16:47
  • 2
    @dreftymac I would add a visited set for keys to avoid going cycles: def myprint(d): stack = d.items() visited = set() while stack: k, v = stack.pop() if isinstance(v, dict): if k not in visited: stack.extend(v.iteritems()) else: print("%s: %s" % (k, v)) visited.add(k) – tengr Apr 30 '17 at 1:14
  • Thanks for pointing this out. Would you mind including your code in the answer. I think it completes your excellent answer. – Moondra Mar 12 '18 at 23:39
  • For Python3, use list(d.items()) as d.items() returns a view, not a list, and use v.items() instead of v.iteritems() – Brut Oct 31 '18 at 23:40
  • updated. It was written based on Python2 – tengr Nov 5 '18 at 21:12
23

Alternative iterative solution:

def myprint(d):
    stack = d.items()
    while stack:
        k, v = stack.pop()
        if isinstance(v, dict):
            stack.extend(v.iteritems())
        else:
            print("%s: %s" % (k, v))
  • 1
    Yeah, that's how I imagined it to look like. Thanks. So the advantage of this is that it won't overflow the stack for extremely deep nestings? Or is there something else to it? – Niklas B. May 25 '12 at 15:23
  • @NiklasB.: yep, that's the first benefit. Also, this version can be adapted to different traversal orders quite easily by replacing the stack (a list) by a deque or even a priority queue. – Fred Foo May 25 '12 at 15:30
  • Yep, makes sense. Thank you and happy coding :) – Niklas B. May 25 '12 at 15:32
  • Yes, but this solution is more space consuming than mine and the recursive one. – schlamar May 25 '12 at 15:35
  • 1
    @ms4py: For fun, I created a benchmark. On my computer, the recursive version is fastest and larsmans is second for all three test dictionaries. The version using generators is relatively slow, as expected (because it has to do a lot of juggling with the different generator contexts) – Niklas B. May 25 '12 at 16:19
6

Slightly different version I wrote that keeps track of the keys along the way to get there

def print_dict(v, prefix=''):
    if isinstance(v, dict):
        for k, v2 in v.items():
            p2 = "{}['{}']".format(prefix, k)
            print_dict(v2, p2)
    elif isinstance(v, list):
        for i, v2 in enumerate(v):
            p2 = "{}[{}]".format(prefix, i)
            print_dict(v2, p2)
    else:
        print('{} = {}'.format(prefix, repr(v)))

On your data, it'll print

data['xml']['config']['portstatus']['status'] = u'good'
data['xml']['config']['target'] = u'1'
data['xml']['port'] = u'11'

It's also easy to modify it to track the prefix as a tuple of keys rather than a string if you need it that way.

  • How to add the output to a list? – Shash Jul 16 '18 at 12:27
5

Here is pythonic way to do it. This function will allow you to loop through key-value pair in all the levels. It does not save the whole thing to the memory but rather walks through the dict as you loop through it

def recursive_items(dictionary):
    for key, value in dictionary.items():
        if type(value) is dict:
            yield (key, value)
            yield from recursive_items(value)
        else:
            yield (key, value)

a = {'a': {1: {1: 2, 3: 4}, 2: {5: 6}}}

for key, value in recursive_items(a):
    print(key, value)

Prints

a {1: {1: 2, 3: 4}, 2: {5: 6}}
1 {1: 2, 3: 4}
1 2
3 4
2 {5: 6}
5 6
1

Iterative solution as an alternative:

def traverse_nested_dict(d):
    iters = [d.iteritems()]

    while iters:
        it = iters.pop()
        try:
            k, v = it.next()
        except StopIteration:
            continue

        iters.append(it)

        if isinstance(v, dict):
            iters.append(v.iteritems())
        else:
            yield k, v


d = {"a": 1, "b": 2, "c": {"d": 3, "e": {"f": 4}}}
for k, v in traverse_nested_dict(d):
    print k, v
  • How is that? Big O should be the same (it's O(depth) for the recursive solution. The same applies to this version, if I am thinking correctly). – Niklas B. May 25 '12 at 15:19
  • "Copy the stack"? What are you talking about? Every function call creates a new stackframe. Your solution uses iters as an explicit stack, so Big-O memory consumption is the same, or am I missing something? – Niklas B. May 25 '12 at 15:21
  • @NiklasB. Recursion always comes with overhead, see this section at Wikipedia for details: en.wikipedia.org/wiki/… The stack frame of the recursive solution is much bigger. – schlamar May 25 '12 at 15:25
  • You must be misunderstanding that paragraph. It doesn't say anything to support your statements. – Niklas B. May 25 '12 at 15:27
  • 1
    @NiklasB. No, because the stack frame here is only the iter and for the recursive solution the stack frame has the iter, program counter, the variable environment, etc... – schlamar May 25 '12 at 15:31
1

A alternative solution to work with lists based on Scharron's solution

def myprint(d):
    my_list = d.iteritems() if isinstance(d, dict) else enumerate(d)

    for k, v in my_list:
        if isinstance(v, dict) or isinstance(v, list):
            myprint(v)
        else:
            print u"{0} : {1}".format(k, v)
1

Here's a modified version of Fred Foo's answer for Python 2. In the original response, only the deepest level of nesting is output. If you output the keys as lists, you can keep the keys for all levels, although to reference them you need to reference a list of lists.

Here's the function:

def NestIter(nested):
    for key, value in nested.iteritems():
        if isinstance(value, collections.Mapping):
            for inner_key, inner_value in NestIter(value):
                yield [key, inner_key], inner_value
        else:
            yield [key],value

To reference the keys:

for keys, vals in mynested: 
    print(mynested[keys[0]][keys[1][0]][keys[1][1][0]])

for a three-level dictionary.

You need to know the number of levels before to access multiple keys and the number of levels should be constant (it may be possible to add a small bit of script to check the number of nesting levels when iterating through values, but I haven't yet looked at this).

1

I find this approach a bit more flexible, here you just providing generator function that emits key, value pairs and can be easily extended to also iterate over lists.

def traverse(value, key=None):
    if isinstance(value, dict):
        for k, v in value.items():
            yield from traverse(v, k)
    else:
        yield key, value

Then you can write your own myprint function, then would print those key value pairs.

def myprint(d):
    for k, v in traverse(d):
        print(f"{k} : {v}")

A test:

myprint({
    'xml': {
        'config': {
            'portstatus': {
                'status': 'good',
            },
            'target': '1',
        },
        'port': '11',
    },
})

Output:

status : good
target : 1
port : 11

I tested this on Python 3.6.

1

I am using the following code to print all the values of a nested dictionary, taking into account where the value could be a list containing dictionaries. This was useful to me when parsing a JSON file into a dictionary and needing to quickly check whether any of its values are None.

    d = {
            "user": 10,
            "time": "2017-03-15T14:02:49.301000",
            "metadata": [
                {"foo": "bar"},
                "some_string"
            ]
        }


    def print_nested(d):
        if isinstance(d, dict):
            for k, v in d.items():
                print_nested(v)
        elif hasattr(d, '__iter__') and not isinstance(d, str):
            for item in d:
                print_nested(item)
        elif isinstance(d, str):
            print(d)

        else:
            print(d)

    print_nested(d)

Output:

    10
    2017-03-15T14:02:49.301000
    bar
    some_string
  • I have much similar issue here stackoverflow.com/questions/50642922/…. Is there a way to find the last element of the list of the dictionary, delete that and then move a level up? If not delete, I want to make a list where last element is depth of the data so I reverse the list and delete – Heenashree Khandelwal Jun 29 '18 at 12:38

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