38

I see a number of questions on SO asking about ways to convert XML to JSON, but I'm interested in going the other way. Is there a python library for converting JSON to XML?


Edit: Nothing came back right away, so I went ahead and wrote a script that solves this problem.

Python already allows you to convert from JSON into a native dict (using json or, in versions < 2.6, simplejson), so I wrote a library that converts native dicts into an XML string.

https://github.com/quandyfactory/dict2xml

It supports int, float, boolean, string (and unicode), array and dict data types and arbitrary nesting (yay recursion).

I'll post this as an answer once 8 hours have passed.

  • 3
    There is no un step process for this conversion, but won't be hard to do using json package, and nay XML processing package. At this very site (stackoverflow.com/a/191617/212952) you can find some hints – Tomas Narros Jan 24 '12 at 14:52
34

Nothing came back right away, so I went ahead and wrote a script that solves this problem.

Python already allows you to convert from JSON into a native dict (using json or, in versions < 2.6, simplejson), so I wrote a library that converts native dicts into an XML string.

https://github.com/quandyfactory/dict2xml

It supports int, float, boolean, string (and unicode), array and dict data types and arbitrary nesting (yay recursion).

  • awesome response to actually build (and maintain!) something to resolve a SO question! – thejohnbackes Dec 11 '17 at 21:48
14

Load it into a dict using json.loads then use anything from this question...

Serialize Python dictionary to XML

11

If you don't have such a package, you can try:

def json2xml(json_obj, line_padding=""):
    result_list = list()

    json_obj_type = type(json_obj)

    if json_obj_type is list:
        for sub_elem in json_obj:
            result_list.append(json2xml(sub_elem, line_padding))

        return "\n".join(result_list)

    if json_obj_type is dict:
        for tag_name in json_obj:
            sub_obj = json_obj[tag_name]
            result_list.append("%s<%s>" % (line_padding, tag_name))
            result_list.append(json2xml(sub_obj, "\t" + line_padding))
            result_list.append("%s</%s>" % (line_padding, tag_name))

        return "\n".join(result_list)

    return "%s%s" % (line_padding, json_obj)

For example:

s='{"main" : {"aaa" : "10", "bbb" : [1,2,3]}}'
j = json.loads(s)
print(json2xml(j))

Result:

<main>
        <aaa>
                10
        </aaa>
        <bbb>
                1
                2
                3
        </bbb>
</main>
  • It is showing an Unresolved reference error on the recursive call in Python2.7 – Abhilash Cherukat Feb 6 '15 at 11:45
  • given s = {'person': {'web': {'email': 'boo@baz.com'}, 'address': {'street1': '123 Bar St', 'street2': '', 'state': 'WI', 'zip': 55555, 'city': 'Madison'}}}. It is giving ` j = json.loads(s) File "/usr/lib/python2.7/json/__init__.py", line 338, in loads return _default_decoder.decode(s) File "/usr/lib/python2.7/json/decoder.py", line 366, in decode obj, end = self.raw_decode(s, idx=_w(s, 0).end()) File "/usr/lib/python2.7/json/decoder.py", line 382, in raw_decode obj, end = self.scan_once(s, idx) ValueError: Expecting property name: line 1 column 2 (char 1)` – Ursa Major Jan 29 '16 at 1:13
0

Use dicttoxml to convert JSON directly to XML

Installation
pip install dicttoxml
or
easy_install dicttoxml

In [2]: from json import loads

In [3]: from dicttoxml import dicttoxml

In [4]: json_obj = '{"main" : {"aaa" : "10", "bbb" : [1,2,3]}}'

In [5]: xml = dicttoxml(loads(json_obj))

In [6]: print(xml)
<?xml version="1.0" encoding="UTF-8" ?><root><main type="dict"><aaa type="str">10</aaa><bbb type="list"><item type="int">1</item><item type="int">2</item><item type="int">3</item></bbb></main></root>

In [7]: xml = dicttoxml(loads(json_obj), attr_type=False)

In [8]: print(xml)
<?xml version="1.0" encoding="UTF-8" ?><root><main><aaa>10</aaa><bbb><item>1</item><item>2</item><item>3</item></bbb></main></root>

For more information on dicttoxml

0
from json import loads
from dicttoxml import dicttoxml

s='{"main" : {"aaa" : "10", "bbb" : [1,2,3]}}'
xml = dicttoxml(loads(s))

Or if your data is stored in a pandas data.frame as mine often is:

df['xml'] = df['json'].apply(lambda s: dicttoxml(json.loads(s))

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