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I'm trying to make a dict class to process an xml but get stuck, I really run out of ideas. If someone could guide on this subject would be great.

code developed so far:

class XMLResponse(dict):
    def __init__(self, xml):
        self.result = True
        self.message = ''
        pass

    def __setattr__(self, name, val):
        self[name] = val

    def __getattr__(self, name):
        if name in self:
            return self[name]
        return None

message="<?xml version="1.0"?><note><to>Tove</to><from>Jani</from><heading>Reminder</heading><body>Don't forget me this weekend!</body></note>"
XMLResponse(message)
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It appears this question has been answered before: stackoverflow.com/questions/2148119/… –  robjohncox Jun 18 '13 at 19:24
1  
What is your desired output? –  alecxe Jun 18 '13 at 19:24
    
@Josh I do not understand your idea friend –  funktasmas Jun 18 '13 at 19:26
    
@robjohncox find the solution there before but I had no positive –  funktasmas Jun 18 '13 at 19:28
    
@alecxe something like this: {"to":"Tove", "from":"Jani", "heading":"Reminder", "body":"Don't forget me this weekend!"} –  funktasmas Jun 18 '13 at 19:29

2 Answers 2

up vote 8 down vote accepted

You can make use of xmltodict module:

import xmltodict

message = """<?xml version="1.0"?><note><to>Tove</to><from>Jani</from><heading>Reminder</heading><body>Don't forget me this weekend!</body></note>"""
print xmltodict.parse(message)['note']

which produces an OrderedDict:

OrderedDict([(u'to', u'Tove'), (u'from', u'Jani'), (u'heading', u'Reminder'), (u'body', u"Don't forget me this weekend!")])

which can be converted to dict if order doesn't matter:

print dict(xmltodict.parse(message)['note'])

prints:

{u'body': u"Don't forget me this weekend!", u'to': u'Tove', u'from': u'Jani', u'heading': u'Reminder'}

Hope that helps.

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thanks for the help I really appreciate it, but I still think or rather looking at how it performed without an additional module, I'll try anyway. –  funktasmas Jun 18 '13 at 19:44
2  
@funktasmas: If you want to see how to do it without an additional module, why not look at the source for xmltodict? It's a couple hundred lines of clean, well-commented Python code. And it's certainly going to be better than any quick & dirty hack someone comes up with for an answer on SO. –  abarnert Jun 18 '13 at 19:49
    
@abarnert was just seeing how they develop the module, maybe it's a good way to start. –  funktasmas Jun 18 '13 at 19:51
    
@funktasmas: Given the licensing and dev history of the module, probably the best way to start is to just fork it and start playing with your fork. That way, if you come up with anything that was missing in the original, and that you want to share with the world, you can just submit a pull request back upstream. –  abarnert Jun 18 '13 at 20:03
    
@abarnert if I have some code developed for this I have no problem sharing any information with the community. –  funktasmas Jun 18 '13 at 20:25

You should checkout

https://github.com/martinblech/xmltodict

I think it is one of the best standard handlers for xml to dict I have seen.

However I should warn you xml and dict are not absolutely compatible data structures

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thanks for your answer. I guess also not be fully compatible structures, and that there is no solution as fast as in the past. –  funktasmas Jun 18 '13 at 19:36
    
@funktasmas: The only big issue for simple cases is that XML nodes can have attributes as well as sub-nodes, and you have to decide how to represent that. xmltodict represents attributes as nodes with a @ prefix on their name, which is one way to solve the problem, but there are other possibilities—e.g., you can handle nodes with __getitem__ and attrs with __getattr__. –  abarnert Jun 18 '13 at 20:59

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