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I have a dictionary like:

{
   "checksum": "b884cbfb1a6697fa9b9eea9cb2054183",
   "roots": {
      "bookmark_bar": {
         "children": [ {
            "date_added": "12989159740428363",
            "id": "4",
            "name": "test2",
            "type": "url",
            "url": "chrome://bookmarks/#1"
         } ],
         "date_added": "12989159700896551",
         "date_modified": "12989159740428363",
         "id": "1",
         "name": "bookmark_bar",
         "type": "folder"
      },
      "other": {
         "children": [ {
            "date_added": "12989159740428363",
            "id": "4",
            "name": "test",
            "type": "url",
            "url": "chrome://bookmarks/#1"
         } ],
         "date_added": "12989159700896557",
         "date_modified": "0",
         "id": "2",
         "name": "aaa",
         "type": "folder"
      },
      "synced": {
         "children": [  ],
         "date_added": "12989159700896558",
         "date_modified": "0",
         "id": "3",
         "name": "bbb",
         "type": "folder"
      }
   },
   "version": 1
}

Everything starts at 'roots', them there are two types of data: URL and folder, they are dictionaries. If it is a folder, it must have the key 'children', the value of the key is a list, we can put more URLs and folders in it.

Now I want to traverse this nested dictionary, to get the URL in all sub-folder, so I wrote a function:

def traverse(dic):
    for i in dic:
        if i['type'] == 'folder':
            for j in traverse(i['children']):
                yield j
        elif i['type'] == 'url':
            yield i

and I can use it like that:

traverse(dictionary['roots']['bookmark_bar']['children'])

It works perfectly. But it just generate a dictionary of a URL, I don't know where is it. I want to get the path too. How can I do it?

share|improve this question
4  
Could you please format the dictionary by using idention? And could you please remove everything from it that's not necessary to understand your question? –  user647772 Aug 13 '12 at 7:35
    
The dictionary is readable now. –  比尔盖子 Aug 13 '12 at 7:45
1  
What is your expected output –  Rakesh Aug 13 '12 at 8:28

1 Answer 1

up vote 1 down vote accepted

Not shure if I got what you want, but you might want to do this:

def traverse(dic, path=None):
    if not path:
        path = []
    for i in dic:
        local_path = path[:].append(i)
        if i['type'] == 'folder':
            for j in traverse(i['children'], local_path):
                yield j, local_path
        elif i['type'] == 'url':
            yield i, local_path

Now your function yields the item and a sequence of the keys to get to the item at a certain location.

share|improve this answer
    
I was thinking along these lines. This will still need work, as it will suffer TypeError's at i['type'] when i is not a dict ( which is often :-) ) –  azhrei Aug 14 '12 at 0:54
    
Great. It's doesn't work perfectly, but give me an idea. Thanks! –  比尔盖子 Aug 14 '12 at 14:34

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