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I'm interested in having simplejson.loads() successfully parse the following:


It throws JSONDecodeError saying "expecting property name" but in reality it's saying "I require double quotes around my property names". This is annoying for my use case, and I'd prefer a less strict behavior. I've read the docs, but beyond making my own decoder class, I don't see anything obvious that changes this behavior.

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So you want simplejson accept something that's not valid JSON? (It's JavaScript where the quotes are optional. In JSON they're mandatory.) – millimoose Feb 1 '12 at 23:26
Yup, that's exactly what I want. :) – slacy Feb 1 '12 at 23:29
What I was implying is "this is something you shouldn't want in the first place." – millimoose Feb 1 '12 at 23:31
Yeah, I know it's not JSON, but what I'm parsing is written by a person, so I want to be lenient. The YAML solution (below) is great. – slacy Feb 1 '12 at 23:45
YAML is probably the better option if you want human authoring, yes. – millimoose Feb 1 '12 at 23:46

3 Answers 3

up vote 7 down vote accepted

You can use YAML (>=1.2)as it is a superset of JSON, you can do:

>>> import yaml
>>> s = '{foo: 8}'
>>> yaml.load(s)
{'foo': 8}
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Wow, this is exactly what I wanted. Thanks! – slacy Feb 1 '12 at 23:36
@slacy I just noticed that yaml needs a space after colon.I think this will spoil your party. – RanRag Feb 1 '12 at 23:38
It does, unless the RHS is an array. {foo:[bar]} is fine, which is actually what I'm doing. – slacy Feb 1 '12 at 23:41
ok. Thats good. – RanRag Feb 1 '12 at 23:42
As RanRag said, yaml will fail if there is no space after colon, for example: yaml.load('{a:"b"}') – suud Nov 26 '14 at 17:36

No, this is not possible. To successfully parse that using simplejson you would first need to transform it into a valid JSON string.

Depending on how strict the format of your incoming string is this could be pretty simple or extremely complex.

For a simple case, if you will always have a JSON object that only has letters and underscores in keys (without quotes) and integers as values, you could use the following to transform it into valid JSON:

import re
your_string = re.sub(r'([a-zA-Z_]+)', r'"\1"', your_string)

For example:

>>> re.sub(r'([a-zA-Z_]+)', r'"\1"', '{foo:3, bar:4}')
'{"foo":3, "bar":4}'
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You can try demjson.

>>> import demjson
>>> demjson.decode('{foo:3}')
{u'foo': 3}
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