698

I need to POST a JSON from a client to a server. I'm using Python 2.7.1 and simplejson. The client is using Requests. The server is CherryPy. I can GET a hard-coded JSON from the server (code not shown), but when I try to POST a JSON to the server, I get "400 Bad Request".

Here is my client code:

data = {'sender':   'Alice',
    'receiver': 'Bob',
    'message':  'We did it!'}
data_json = simplejson.dumps(data)
payload = {'json_payload': data_json}
r = requests.post("http://localhost:8080", data=payload)

Here is the server code.

class Root(object):

    def __init__(self, content):
        self.content = content
        print self.content  # this works

    exposed = True

    def GET(self):
        cherrypy.response.headers['Content-Type'] = 'application/json'
        return simplejson.dumps(self.content)

    def POST(self):
        self.content = simplejson.loads(cherrypy.request.body.read())

Any ideas?

  • I was using a stripped down version of an example straight out of the documentation. – Charles R Mar 31 '12 at 0:57
  • My comment still stands - CherryPy does not call class __init__ methods with a content argument (and does not claim to in the link you supply). In the detailed example they have, the user supplies the code that calls __init__ and provides the arguments, which we have not seen here so I have no idea what state your object is in when your # this works comment is relevant. – Nick Bastin Mar 31 '12 at 2:49
  • 1
    Are you asking to see the line where the instance is created? – Charles R Mar 31 '12 at 3:19
  • yeah, I was trying to start up your example in order to test it, and I wasn't sure how you were instantiating it. – Nick Bastin Mar 31 '12 at 4:02
  • The code has changed. I'm now creating it without the extra argument. cherrypy.quickstart(Root(), '/', conf). – Charles R Apr 1 '12 at 5:39
1171

As of Requests version 2.4.2 and onwards, you can alternatively use 'json' parameter in the call which makes it simpler.

>>> import requests
>>> r = requests.post('http://httpbin.org/post', json={"key": "value"})
>>> r.status_code
200
>>> r.json()
{'args': {},
 'data': '{"key": "value"}',
 'files': {},
 'form': {},
 'headers': {'Accept': '*/*',
             'Accept-Encoding': 'gzip, deflate',
             'Connection': 'close',
             'Content-Length': '16',
             'Content-Type': 'application/json',
             'Host': 'httpbin.org',
             'User-Agent': 'python-requests/2.4.3 CPython/3.4.0',
             'X-Request-Id': 'xx-xx-xx'},
 'json': {'key': 'value'},
 'origin': 'x.x.x.x',
 'url': 'http://httpbin.org/post'}

EDIT: This feature has been added to the official documentation. You can view it here: Requests documentation

| improve this answer | |
  • 131
    I can't believe how much time I wasted before stumbling upon your answer. The requests docs need to be upgraded, there's absolutely nothing on the json parameter. I had to go into Github before I saw any mention of it: github.com/kennethreitz/requests/blob/… – IAmKale Apr 30 '15 at 21:35
  • 1
    Setting this to the accepted answer since this is more idiomatic as of 2.4.2. Keep in mind, for crazy unicode, this may not work. – Charles R Sep 23 '15 at 23:00
  • I was in the same shoes as @IAmKale. This has relieved quite the headache I was having with AWS's API Gateway. It requires the POST data in JSON format by default. – jstudios Jan 7 '16 at 3:26
  • 3
    Like a fool I tried to use the data parameter with application/json the content type :( – Illegal Operator May 6 '19 at 16:34
  • 1
    I saw an example of this that took the dict object and performed json.dumps(object) before sending. Don't do this...it messes up your JSON. The above is perfect..you can pass it a python object and it turns into perfect json. – MydKnight May 15 at 23:13
391

It turns out I was missing the header information. The following works:

url = "http://localhost:8080"
data = {'sender': 'Alice', 'receiver': 'Bob', 'message': 'We did it!'}
headers = {'Content-type': 'application/json', 'Accept': 'text/plain'}
r = requests.post(url, data=json.dumps(data), headers=headers)
| improve this answer | |
  • Good catch - I saw your application/json in GET and somehow missed that you hadn't provided it on the request. You may also need to make sure that you return something from POST or you might get a 500. – Nick Bastin Mar 31 '12 at 4:01
  • Doesn't seem to be necessary. When I print r, I get <Response [200]>. – Charles R Apr 1 '12 at 5:36
  • How do I retrieve this json at the server side ? – VaidAbhishek Feb 15 '13 at 12:01
  • r = requests.get('localhost:8080') c = r.content result = simplejson.loads(c) – Charles R May 11 '13 at 18:15
  • 1
    Little heads up before using json.dumps here. The data parameter of requests works fine with dictionaries. No need for converting to a string. – Advait S Jul 2 '18 at 6:32
73

From requests 2.4.2 (https://pypi.python.org/pypi/requests), the "json" parameter is supported. No need to specify "Content-Type". So the shorter version:

requests.post('http://httpbin.org/post', json={'test': 'cheers'})
| improve this answer | |
32

The better way is:

url = "http://xxx.xxxx.xx"
data = {
    "cardno": "6248889874650987",
    "systemIdentify": "s08",
    "sourceChannel": 12
}
resp = requests.post(url, json=data)
| improve this answer | |
  • 19
    the Content-type: application/json is redundant as the json= already hints that. – Moshe Dec 11 '17 at 14:18
  • 2
    @Moshe totally agree, but to request newer version Elasticsearch sever require to set Content-type – devesh Apr 12 '19 at 10:32
  • @Moshe, What if the content type is text/html; charset=UTF-8. Then above won't work? – Anu Oct 14 '19 at 19:08
  • 3
    "The better way is" not to post WRONG answers 3 years after a correct answer. -1 – Pedro Lobito Oct 19 '19 at 14:02
11

Which parameter between (data / json / files) should be used,it's actually depends on a request header named ContentType(usually check this through developer tools of your browser),

when the Content-Type is application/x-www-form-urlencoded, code should be:

requests.post(url, data=jsonObj)

when the Content-Type is application/json, your code is supposed to be one of below:

requests.post(url, json=jsonObj)
requests.post(url, data=jsonstr, headers={"Content-Type":"application/json"})

when the Content-Type is multipart/form-data, it's used to upload files, so your code should be:

requests.post(url, files=xxxx)
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  • Jesus Christ, thank you. I was puling my hair out a few moments ago. – Vahagn Tumanyan May 27 at 7:19
  • glad that can help you : ) – xiaoming May 28 at 1:12
4

Works perfectly with python 3.5+

client:

import requests
data = {'sender':   'Alice',
    'receiver': 'Bob',
    'message':  'We did it!'}
r = requests.post("http://localhost:8080", json={'json_payload': data})

server:

class Root(object):

    def __init__(self, content):
        self.content = content
        print self.content  # this works

    exposed = True

    def GET(self):
        cherrypy.response.headers['Content-Type'] = 'application/json'
        return simplejson.dumps(self.content)

    @cherrypy.tools.json_in()
    @cherrypy.tools.json_out()
    def POST(self):
        self.content = cherrypy.request.json
        return {'status': 'success', 'message': 'updated'}
| improve this answer | |

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