214

I have a Decimal('3.9') as part of an object, and wish to encode this to a JSON string which should look like {'x': 3.9}. I don't care about precision on the client side, so a float is fine.

Is there a good way to serialize this? JSONDecoder doesn't accept Decimal objects, and converting to a float beforehand yields {'x': 3.8999999999999999} which is wrong, and will be a big waste of bandwidth.

15 Answers 15

137

How about subclassing json.JSONEncoder?

class DecimalEncoder(json.JSONEncoder):
    def _iterencode(self, o, markers=None):
        if isinstance(o, decimal.Decimal):
            # wanted a simple yield str(o) in the next line,
            # but that would mean a yield on the line with super(...),
            # which wouldn't work (see my comment below), so...
            return (str(o) for o in [o])
        return super(DecimalEncoder, self)._iterencode(o, markers)

Then use it like so:

json.dumps({'x': decimal.Decimal('5.5')}, cls=DecimalEncoder)
  • Ouch, I just noticed that it won't actually work like this. Will edit accordingly. (The idea stays the same, though.) – Michał Marczyk Dec 25 '09 at 7:06
  • The problem was that DecimalEncoder()._iterencode(decimal.Decimal('3.9')).next() returned the correct '3.9', but DecimalEncoder()._iterencode(3.9).next() returned a generator object which would only return '3.899...' when you piled on another .next(). Generator funny business. Oh well... Should work now. – Michał Marczyk Dec 25 '09 at 7:10
  • 8
    Can't you just return (str(o),) instead? [o] is a list with only 1 element, why bother looping over it? – mpen Aug 14 '11 at 23:09
  • 2
    @Mark: return (str(o),) would return tuple of length 1, while code in the answer returns generator of length 1. See the iterencode() docs – Abgan Jul 18 '13 at 10:08
  • 26
    This implementation doesn't work anymore. Elias Zamaria's one is the one working on the same style. – piro Mar 12 '14 at 17:17
210

Simplejson 2.1 and higher has native support for Decimal type:

>>> json.dumps(Decimal('3.9'), use_decimal=True)
'3.9'

Note that use_decimal is True by default:

def dumps(obj, skipkeys=False, ensure_ascii=True, check_circular=True,
    allow_nan=True, cls=None, indent=None, separators=None,
    encoding='utf-8', default=None, use_decimal=True,
    namedtuple_as_object=True, tuple_as_array=True,
    bigint_as_string=False, sort_keys=False, item_sort_key=None,
    for_json=False, ignore_nan=False, **kw):

So:

>>> json.dumps(Decimal('3.9'))
'3.9'

Hopefully, this feature will be included in standard library.

  • 7
    Hmm, for me this converts Decimal objects to floats, which is not acceptable. Loss of precision when working with currency, for instance. – Matthew Schinckel Oct 22 '10 at 0:12
  • 11
    @MatthewSchinckel I think it doesn't. It actually makes a string out of it. And if you feed the resultant string back to json.loads(s, use_decimal=True) it gives you back the decimal. No float in entire process. Edited above answer. Hope original poster is fine with it. – Shekhar Nov 22 '11 at 10:55
  • 1
    Aha, I think I was not using use_decimal=True on the loads, too. – Matthew Schinckel Nov 23 '11 at 23:04
  • 1
    For me json.dumps({'a' : Decimal('3.9')}, use_decimal=True) gives '{"a": 3.9}'. Was the goal not '{"a": "3.9"}' ? – MrJ May 2 '14 at 17:43
  • 5
    simplejson.dumps(decimal.Decimal('2.2')) also works: no explicit use_decimal (tested on simplejson/3.6.0). Another way to load it back is: json.loads(s, parse_float=Decimal) i.e., you can read it using stdlib json (and old simplejson versions are also supported). – jfs Jul 27 '14 at 14:04
165

I would like to let everyone know that I tried Michał Marczyk's answer on my web server that was running Python 2.6.5 and it worked fine. However, I upgraded to Python 2.7 and it stopped working. I tried to think of some sort of way to encode Decimal objects and this is what I came up with:

import decimal

class DecimalEncoder(json.JSONEncoder):
    def default(self, o):
        if isinstance(o, decimal.Decimal):
            return float(o)
        return super(DecimalEncoder, self).default(o)

This should hopefully help anyone who is having problems with Python 2.7. I tested it and it seems to work fine. If anyone notices any bugs in my solution or comes up with a better way, please let me know.

  • 4
    Python 2.7 changed the rules for rounding floats so this works. See discussion in stackoverflow.com/questions/1447287/… – Nelson Apr 6 '11 at 23:32
  • 2
    For those of us who can't use simplejson (ie. on Google App Engine) this answer is a Godsend. – Joel Cross Oct 28 '13 at 15:42
  • 13
    Use unicode or str instead of float to ensure precision. – Seppo Erviälä Aug 30 '16 at 13:03
  • 2
    The problem with 54.3999... was important in Python 2.6.x and older where the conversion float to string did not worked regularly, but the conversion Decimal to str is much more incorrect because it would be serialized as string with double quotes "54.4", not as a number. – hynekcer Jun 16 '17 at 20:25
  • 1
    Works in python3 – SeanFromIT Jun 7 '18 at 16:10
35

In my Flask app, Which uses python 2.7.11, flask alchemy(with 'db.decimal' types), and Flask Marshmallow ( for 'instant' serializer and deserializer), i had this error, every time i did a GET or POST. The serializer and deserializer, failed to convert Decimal types into any JSON identifiable format.

I did a "pip install simplejson", then Just by adding

import simplejson as json

the serializer and deserializer starts to purr again. I did nothing else... DEciamls are displayed as '234.00' float format.

  • 1
    the easiest fix – SMDC May 30 '18 at 2:08
  • Oddly enough, you don't even have to import simplejson - just installing it does the trick. Initially mentioned by this answer. – bsplosion Mar 26 '19 at 14:28
  • This does not work on me, and still got that Decimal('0.00') is not JSON serializable after installing it via pip. This situation is when you are using both marshmallow and graphene. When a query is called on a rest api, marshmallow works expectedly for decimal fields. However when it is called with graphql it raised an is not JSON serializable error. – Roel Apr 2 '19 at 9:45
  • Fantastic, Superb, – Spiderman Jun 28 '19 at 8:45
  • Perfect! This works in situations where you're using a module written by someone else whcih you can't easily modify (in my case gspread for using Google Sheets) – happyskeptic Nov 22 '19 at 1:53
28

I tried switching from simplejson to builtin json for GAE 2.7, and had issues with the decimal. If default returned str(o) there were quotes (because _iterencode calls _iterencode on the results of default), and float(o) would remove trailing 0.

If default returns an object of a class that inherits from float (or anything that calls repr without additional formatting) and has a custom __repr__ method, it seems to work like I want it to.

import json
from decimal import Decimal

class fakefloat(float):
    def __init__(self, value):
        self._value = value
    def __repr__(self):
        return str(self._value)

def defaultencode(o):
    if isinstance(o, Decimal):
        # Subclass float with custom repr?
        return fakefloat(o)
    raise TypeError(repr(o) + " is not JSON serializable")

json.dumps([10.20, "10.20", Decimal('10.20')], default=defaultencode)
'[10.2, "10.20", 10.20]'
  • Nice! This makes sure the decimal value ends up in the JSON as a Javascript float, without having Python first round it to the nearest float value. – konrad Apr 6 '13 at 13:36
  • 3
    Unfortunately this doesn't work in recent Python 3's. There is now some fast-path code that considers all float-subclasses as floats, and doesn't call repr on them altogether. – Antti Haapala Jan 15 '17 at 21:52
  • @AnttiHaapala, the example works fine on Python 3.6. – Cristian Ciupitu Jul 17 '17 at 6:52
  • @CristianCiupitu indeed, I don't seem to be able to reproduce the bad behaviour now – Antti Haapala Jul 17 '17 at 7:16
  • An issue with this answer is that it depends on the fact that the current JSON implementation uses float.__repr__ for floats. On the other hand int.__str__ is used for integers, so it's possible that things might change for floats. – Cristian Ciupitu Jul 17 '17 at 7:36
23

The native option is missing so I'll add it for the next guy/gall that looks for it.

Starting on Django 1.7.x there is a built-in DjangoJSONEncoder that you can get it from django.core.serializers.json.

import json
from django.core.serializers.json import DjangoJSONEncoder
from django.forms.models import model_to_dict

model_instance = YourModel.object.first()
model_dict = model_to_dict(model_instance)

json.dumps(model_dict, cls=DjangoJSONEncoder)

Presto!

  • Although this is great to know, the OP didn't ask about Django? – std''OrgnlDave Jul 25 '18 at 14:11
  • 2
    @std''OrgnlDave you are 100% correct. I forgot how i got here, but i googled this question with "django" attached to the search term and this came up, after a little more googling, i found the answer and added it here for the next person like me, that stumbles across it – Javier Buzzi Jul 25 '18 at 15:55
  • 4
    you save my day – gaozhidf Feb 19 '19 at 1:36
11

3.9 can not be exactly represented in IEEE floats, it will always come as 3.8999999999999999, e.g. try print repr(3.9), you can read more about it here:

http://en.wikipedia.org/wiki/Floating_point
http://docs.sun.com/source/806-3568/ncg_goldberg.html

So if you don't want float, only option you have to send it as string, and to allow automatic conversion of decimal objects to JSON, do something like this:

import decimal
from django.utils import simplejson

def json_encode_decimal(obj):
    if isinstance(obj, decimal.Decimal):
        return str(obj)
    raise TypeError(repr(obj) + " is not JSON serializable")

d = decimal.Decimal('3.5')
print simplejson.dumps([d], default=json_encode_decimal)
  • I know it won't be 3.9 internally once it is parsed on the client, but 3.9 is a valid JSON float. ie, json.loads("3.9") will work, and I would like it to be this – Knio Dec 25 '09 at 5:32
  • @Anurag You meant repr(obj) instead of repr(o) in your example. – orokusaki Feb 15 '10 at 0:09
  • Won't this just die if you try and encode something that isn't decimal? – mikemaccana Aug 5 '11 at 11:38
  • 1
    @nailer, no it won't , you can try that, reason being default raise exception to signal that next handler should be used – Anurag Uniyal Aug 5 '11 at 14:24
  • 1
    See mikez302's answer - in Python 2.7 or above, this no longer applies. – Joel Cross Oct 28 '13 at 15:42
11

My $.02!

I extend a bunch of the JSON encoder since I am serializing tons of data for my web server. Here's some nice code. Note that it's easily extendable to pretty much any data format you feel like and will reproduce 3.9 as "thing": 3.9

JSONEncoder_olddefault = json.JSONEncoder.default
def JSONEncoder_newdefault(self, o):
    if isinstance(o, UUID): return str(o)
    if isinstance(o, datetime): return str(o)
    if isinstance(o, time.struct_time): return datetime.fromtimestamp(time.mktime(o))
    if isinstance(o, decimal.Decimal): return str(o)
    return JSONEncoder_olddefault(self, o)
json.JSONEncoder.default = JSONEncoder_newdefault

Makes my life so much easier...

  • 3
    This is incorrect: it will reproduce 3.9 as "thing": "3.9". – Glyph Dec 13 '17 at 22:24
  • the best solutions of all, very simple , thanks you saved my day, for me is enough to save the number, in string for decimal is ok – stackdave Jan 17 '18 at 15:30
  • @Glyph via JSON standards (of which there are a few...), an unquoted number is a double-precision floating-point, not a decimal number. Quoting it is the only way to guarantee compatibility. – std''OrgnlDave Jan 19 '18 at 19:02
  • 2
    do you have a citation for this? Every spec I’ve read implies that it’s implementation-dependent. – Glyph Jan 20 '18 at 23:29
9

For Django users:

Recently came across TypeError: Decimal('2337.00') is not JSON serializable while JSON encoding i.e. json.dumps(data)

Solution:

# converts Decimal, Datetime, UUIDs to str for Encoding
from django.core.serializers.json import DjangoJSONEncoder  

json.dumps(response.data, cls=DjangoJSONEncoder)

But, now the Decimal value will be a string, now we can explicitly set the decimal/float value parser when decoding data, using parse_float option in json.loads:

import decimal 

data = json.loads(data, parse_float=decimal.Decimal) # default is float(num_str)
6

This is what I have, extracted from our class

class CommonJSONEncoder(json.JSONEncoder):

    """
    Common JSON Encoder
    json.dumps(myString, cls=CommonJSONEncoder)
    """

    def default(self, obj):

        if isinstance(obj, decimal.Decimal):
            return {'type{decimal}': str(obj)}

class CommonJSONDecoder(json.JSONDecoder):

    """
    Common JSON Encoder
    json.loads(myString, cls=CommonJSONEncoder)
    """

    @classmethod
    def object_hook(cls, obj):
        for key in obj:
            if isinstance(key, six.string_types):
                if 'type{decimal}' == key:
                    try:
                        return decimal.Decimal(obj[key])
                    except:
                        pass

    def __init__(self, **kwargs):
        kwargs['object_hook'] = self.object_hook
        super(CommonJSONDecoder, self).__init__(**kwargs)

Which passes unittest:

def test_encode_and_decode_decimal(self):
    obj = Decimal('1.11')
    result = json.dumps(obj, cls=CommonJSONEncoder)
    self.assertTrue('type{decimal}' in result)
    new_obj = json.loads(result, cls=CommonJSONDecoder)
    self.assertEqual(new_obj, obj)

    obj = {'test': Decimal('1.11')}
    result = json.dumps(obj, cls=CommonJSONEncoder)
    self.assertTrue('type{decimal}' in result)
    new_obj = json.loads(result, cls=CommonJSONDecoder)
    self.assertEqual(new_obj, obj)

    obj = {'test': {'abc': Decimal('1.11')}}
    result = json.dumps(obj, cls=CommonJSONEncoder)
    self.assertTrue('type{decimal}' in result)
    new_obj = json.loads(result, cls=CommonJSONDecoder)
    self.assertEqual(new_obj, obj)
  • json.loads(myString, cls=CommonJSONEncoder) comment should be json.loads(myString, cls=CommonJSONDecoder) – Can Kavaklıoğlu Dec 6 '15 at 14:54
  • object_hook needs a default return value if obj is not decimal. – Can Kavaklıoğlu Feb 1 '16 at 13:14
5

From the JSON Standard Document, as linked in json.org:

JSON is agnostic about the semantics of numbers. In any programming language, there can be a variety of number types of various capacities and complements, fixed or floating, binary or decimal. That can make interchange between different programming languages difficult. JSON instead offers only the representation of numbers that humans use: a sequence of digits. All programming languages know how to make sense of digit sequences even if they disagree on internal representations. That is enough to allow interchange.

So it's actually accurate to represent Decimals as numbers (rather than strings) in JSON. Bellow lies a possible solution to the problem.

Define a custom JSON encoder:

import json


class CustomJsonEncoder(json.JSONEncoder):

    def default(self, obj):
        if isinstance(obj, Decimal):
            return float(obj)
        return super(CustomJsonEncoder, self).default(obj)

Then use it when serializing your data:

json.dumps(data, cls=CustomJsonEncoder)

As noted from comments on the other answers, older versions of python might mess up the representation when converting to float, but that's not the case anymore.

To get the decimal back in Python:

Decimal(str(value))

This solution is hinted in Python 3.0 documentation on decimals:

To create a Decimal from a float, first convert it to a string.

  • 2
    This isn't "fixed" in Python 3. Converting to a float necessarily makes you lose the decimal representation, and will lead to discrepancies. If Decimal is important to use, I think it is better to use strings. – juanpa.arrivillaga Jan 1 '19 at 19:58
  • I believe it's safe to do this since python 3.1. The loss in precision might be harmful in arithmetic operations, but in the case of JSON encoding, you are merely producing a string display of the value, so the precision is more than enough for most use cases. Everything in JSON is a string already, so putting quotes around the value just defies the JSON spec. – Hugo Mota Jan 26 '19 at 19:51
  • With that said, I understand the concerns around converting to float. There's probably a different strategy to use with the encoder to produce the wanted display string. Still, I don't think it's worth producing a quoted value. – Hugo Mota Jan 26 '19 at 19:53
  • @HugoMota " Everything in JSON is a string already, so putting quotes around the value just defies the JSON spec." No: rfc-editor.org/rfc/rfc8259.txt -- JSON is a text-based encoding format, but that doesn't mean everything in it is to be interpreted as a string. The spec defines how to encode numbers, separately from strings. – Gunnar Þór Magnússon Aug 23 '19 at 7:41
  • @GunnarÞórMagnússon "JSON is a text-based encoding format" - that's what I meant with "everything is a string". Converting the numbers to string beforehand won't magically preserve precision since it will be a string anyway when it becomes JSON. And according to the spec, numbers don't have quotes around it. It's the reader's responsibility to preserve precision while reading (not a quote, just my take on it). – Hugo Mota Aug 27 '19 at 11:51
3

You can create a custom JSON encoder as per your requirement.

import json
from datetime import datetime, date
from time import time, struct_time, mktime
import decimal

class CustomJSONEncoder(json.JSONEncoder):
    def default(self, o):
        if isinstance(o, datetime):
            return str(o)
        if isinstance(o, date):
            return str(o)
        if isinstance(o, decimal.Decimal):
            return float(o)
        if isinstance(o, struct_time):
            return datetime.fromtimestamp(mktime(o))
        # Any other serializer if needed
        return super(CustomJSONEncoder, self).default(o)

The Decoder can be called like this,

import json
from decimal import Decimal
json.dumps({'x': Decimal('3.9')}, cls=CustomJSONEncoder)

and the output will be:

>>'{"x": 3.9}'
  • awesome... Thanks for one stop solution (y) – muhammed basil Mar 20 '19 at 9:09
  • This really works! Thank you for sharing your solution – tthreetorch Jan 1 at 13:30
2

Based on stdOrgnlDave answer I have defined this wrapper that it can be called with optional kinds so the encoder will work only for certain kinds inside your projects. I believe the work should be done inside your code and not to use this "default" encoder since "it is better explicit than implicit", but I understand using this will save some of your time. :-)

import time
import json
import decimal
from uuid import UUID
from datetime import datetime

def JSONEncoder_newdefault(kind=['uuid', 'datetime', 'time', 'decimal']):
    '''
    JSON Encoder newdfeault is a wrapper capable of encoding several kinds
    Use it anywhere on your code to make the full system to work with this defaults:
        JSONEncoder_newdefault()  # for everything
        JSONEncoder_newdefault(['decimal'])  # only for Decimal
    '''
    JSONEncoder_olddefault = json.JSONEncoder.default

    def JSONEncoder_wrapped(self, o):
        '''
        json.JSONEncoder.default = JSONEncoder_newdefault
        '''
        if ('uuid' in kind) and isinstance(o, uuid.UUID):
            return str(o)
        if ('datetime' in kind) and isinstance(o, datetime):
            return str(o)
        if ('time' in kind) and isinstance(o, time.struct_time):
            return datetime.fromtimestamp(time.mktime(o))
        if ('decimal' in kind) and isinstance(o, decimal.Decimal):
            return str(o)
        return JSONEncoder_olddefault(self, o)
    json.JSONEncoder.default = JSONEncoder_wrapped

# Example
if __name__ == '__main__':
    JSONEncoder_newdefault()
0

If you want to pass a dictionary containing decimals to the requests library (using the json keyword argument), you simply need to install simplejson:

$ pip3 install simplejson    
$ python3
>>> import requests
>>> from decimal import Decimal
>>> # This won't error out:
>>> requests.post('https://www.google.com', json={'foo': Decimal('1.23')})

The reason of the problem is that requests uses simplejson only if it is present, and falls back to the built-in json if it is not installed.

-6

this can be done by adding

    elif isinstance(o, decimal.Decimal):
        yield str(o)

in \Lib\json\encoder.py:JSONEncoder._iterencode, but I was hoping for a better solution

  • 5
    You can subclass JSONEncoder as exampled above, editing the installed Python files of an established library or the interpreter itself should be a very last resort. – justanr Jan 17 '15 at 22:11

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.