91

I want to execute a curl command in python.

Usually, I just need enter the command in terminal and press return key. However, I don't know how it works in python.

The command shows below:

curl -d @request.json --header "Content-Type: application/json" https://www.googleapis.com/qpxExpress/v1/trips/search?key=mykeyhere

There is a request.json file to be sent to get response.

I searched a lot and got confused. I tried to write a piece of code, although I could not fully understand. It didn't work.

import pycurl
import StringIO

response = StringIO.StringIO()
c = pycurl.Curl()
c.setopt(c.URL, 'https://www.googleapis.com/qpxExpress/v1/trips/search?key=mykeyhere')
c.setopt(c.WRITEFUNCTION, response.write)
c.setopt(c.HTTPHEADER, ['Content-Type: application/json','Accept-Charset: UTF-8'])
c.setopt(c.POSTFIELDS, '@request.json')
c.perform()
c.close()
print response.getvalue()
response.close()

The error message is 'Parse Error'.Can anyone tell me how to fix it? or how to get response from the sever correctly?

  • 1
    Can you include the Traceback of the error? – shaktimaan Aug 25 '14 at 17:22
  • 1
    FWIW, have you considered using pycurl the "Python binding to cURL" ? Depending your needs, it might be more efficient/convenient than invoking the command line utility behind the scene. – Sylvain Leroux Aug 25 '14 at 17:25
  • 3
    Do you need to use cURL? Have you considered Requests? Might be simpler, especially if you're new to python, which tends to be unforgiving. – vch Aug 25 '14 at 17:26
  • 3
    ummm python is pretty forgiving .... maybe not curl – Joran Beasley Aug 25 '14 at 17:37
122

For sake of simplicity, maybe you should consider using the Requests library.

An example with json response content would be something like:

import requests
r = requests.get('https://github.com/timeline.json')
r.json()

If you look for further information, in the Quickstart section, they have lots of working examples.

EDIT:

For your specific curl translation:

import requests
url = 'https://www.googleapis.com/qpxExpress/v1/trips/search?key=mykeyhere'
payload = open("request.json")
headers = {'content-type': 'application/json', 'Accept-Charset': 'UTF-8'}
r = requests.post(url, data=payload, headers=headers)
  • 1
    Please @tricknology, try to search for the bug and, if you do not happen to find a proper solution, post a new question. – otorrillas Apr 24 '15 at 21:32
  • 2
    Should anyone else happen to see this, the reason why that was happening to me is that I was giving a string as my payload instead of a dictionary object. – tricknology Apr 24 '15 at 22:37
  • 1
    It seems there's a small typo in the headers, which should read 'Accept-Charset': 'UTF-8' – Stephen Lead Feb 4 '16 at 2:25
  • 1
    Opening the file and parsing JSON before sending it is needlessly inefficient. You parse the JSON then convert it back into a string with json.dumps(). This is a bad answer. – Nathan K Dec 15 '17 at 21:44
  • 3
    Requests is an extra dependency you need to install and manage. For a simple solution using just standard library, see stackoverflow.com/a/13921930/111995 – geekQ May 29 '18 at 15:40
37

Just use this website. It'll convert any curl command into Python, Node.js, PHP, R, or Go.

Example:

curl -X POST -H 'Content-type: application/json' --data '{"text":"Hello, World!"}' https://hooks.slack.com/services/asdfasdfasdf

Becomes this in Python,

import requests

headers = {
    'Content-type': 'application/json',
}

data = '{"text":"Hello, World!"}'

response = requests.post('https://hooks.slack.com/services/asdfasdfasdf', headers=headers, data=data)
  • 2
    To ensure your JSON is correctly formatted import the "json" module and use json.dumps(payload) on the data payload i.e. data=json.dumps(data) in the above case – Richard Bown Nov 26 '18 at 15:28
  • 1
    Thanks for the website to convert curl into python!. – Jey Miranda Mar 19 at 13:40
15
import requests
url = "https://www.googleapis.com/qpxExpress/v1/trips/search?key=mykeyhere"
data = requests.get(url).json

maybe?

if you are trying to send a file

files = {'request_file': open('request.json', 'rb')}
r = requests.post(url, files=files)
print r.text, print r.json

ahh thanks @LukasGraf now i better understand what his original code is doing

import requests,json
url = "https://www.googleapis.com/qpxExpress/v1/trips/search?key=mykeyhere"
my_json_data = json.load(open("request.json"))
req = requests.post(url,data=my_json_data)
print req.text
print 
print req.json # maybe? 
  • That doesn't include data from the requests.json file though, and doesn't set the Content-Type: application/json header - also, this will send a GET request, not a POST. – Lukas Graf Aug 25 '14 at 17:29
  • 1
    curl -d @<file> will read the fields to post from <file> - that's not the same as file upload. – Lukas Graf Aug 25 '14 at 17:32
  • @LukasGraf thanks :) ... I dont use curl much (read: almost never) – Joran Beasley Aug 25 '14 at 17:40
  • 1
    data = request.get(url).json should be data=requests.get(.... – user2099484 Jun 14 '16 at 15:55
13
curl -d @request.json --header "Content-Type: application/json" https://www.googleapis.com/qpxExpress/v1/trips/search?key=mykeyhere

its python implementation be like

import requests

headers = {
    'Content-Type': 'application/json',
}

params = (
    ('key', 'mykeyhere'),
)

data = open('request.json')
response = requests.post('https://www.googleapis.com/qpxExpress/v1/trips/search', headers=headers, params=params, data=data)

#NB. Original query string below. It seems impossible to parse and
#reproduce query strings 100% accurately so the one below is given
#in case the reproduced version is not "correct".
# response = requests.post('https://www.googleapis.com/qpxExpress/v1/trips/search?key=mykeyhere', headers=headers, data=data)

check this link, it will help convert cURl command to python,php and nodejs

6

There is a nice website https://curl.trillworks.com/ that does the conversion for you. It does convert from cURL into Python, Node.js, R, PHP, Go.

3

My answer is WRT python 2.6.2.

import commands

status, output = commands.getstatusoutput("curl -H \"Content-Type:application/json\" -k -u (few other parameters required) -X GET https://example.org -s")

print output

I apologize for not providing the required parameters 'coz it's confidential.

  • If you need to use some specials options from curl like --resolve this is the way. Thank you. – nikoskip Jul 10 '18 at 15:08
  • how can i only get the returned json without the tabular stat – Grant Gubatan Oct 12 '18 at 4:03
-3

This could be achieve with the below mentioned psuedo code approach

Import os import requests Data = os.execute(curl URL) R= Data.json()

  • os.system instead of os.execute, and requests seems unnecessary in this case – SeanFromIT Jun 10 '18 at 2:02

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