CODEWITHSUNDEEP
pythonflaskwsgi
Tinker
Tinker

Reputation: 4525

Print raw HTTP request in Flask or WSGI

I am debugging a microcontroller I've built which is writing raw HTTP requests line by line. I am using Flask for my backend and I would like to see the entire request as it appears in this format:

GET / HTTP/1.1
Content-length: 123
User-agent: blah
...

I know Flask is based on WSGI. Is there anyway to get this to work with Flask?

Upvotes: 74

Views: 109786

Answers (7)

Jens Timmerman
Jens Timmerman

Reputation: 9816

you probably want something like

print(request.headers)
print(request.cookies)
print(request.data)
print(request.args)
print(request.form)
print(request.endpoint)
print(request.method)
print(request.remote_addr)

Upvotes: 14

jkysam
jkysam

Reputation: 5769

With flask you have access to the request object which contains all the HTTP details:

from flask import request

@app.route('/')
def index():
    print(request.headers)

Upvotes: 49

Martijn Pieters
Martijn Pieters

Reputation: 1121148

Yes, Flask is a WSGI application, so it is trivial to wrap your app in an extra layer that logs the request:

import pprint

class LoggingMiddleware(object):
    def __init__(self, app):
        self._app = app

    def __call__(self, env, resp):
        errorlog = env['wsgi.errors']
        pprint.pprint(('REQUEST', env), stream=errorlog)

        def log_response(status, headers, *args):
            pprint.pprint(('RESPONSE', status, headers), stream=errorlog)
            return resp(status, headers, *args)

        return self._app(env, log_response)

This defines a piece of middleware to wrap your Flask application in. The advantage is that it operates entirely independent of Flask, giving you unfiltered insight into what goes in and what comes out.

How you apply the middleware depends on the exact WSGI server you are using; see your WSGI server documentation.

When running Flask with the built-in server (app.run()), do:

if __name__ == '__main__':
    app.wsgi_app = LoggingMiddleware(app.wsgi_app)
    app.run()

The little app.wsgi_app wrapping dance places the LoggingMiddleware around the Flask WSGI application.

The output goes to the wsgi.error stream; where that ends up again depends on your WSGI server; mod_wsgi puts this in the Apache error log for your site, the bundled Flask server prints this to stderr.

Upvotes: 64

Sonic Soul
Sonic Soul

Reputation: 24899

if you're using a logger i found this useful

https://docs.python.org/3/library/pprint.html#pprint.pformat

from pprint import pformat
import requests
log.debug(pformat(request.headers))

Upvotes: 0

geckos
geckos

Reputation: 6279

Why not?

from flask import Flask, request

app = Flask(__name__)

@app.before_request
def log_request():
    app.logger.debug("Request Headers %s", request.headers)
    return None

# The remaining application code.

I've used the headers but you can use the same aproach to print any request attribute. The docs are here: http://flask.pocoo.org/docs/0.12/api/#flask.Request.

Also you need to setup FLASK_DEBUG=1 to Flask.logger.debug to work, what is nice since you can disable it in production.

Regards,

Upvotes: 18

Nava
Nava

Reputation: 6556

suppose if you want complete details,

There is an another way

@app.route('/')
def index():
    print request.__dict__
    #this prints all variables in `dict` format including `headers`

Upvotes: 35

Andrew Johnson
Andrew Johnson

Reputation: 3186

This doesn't use flask but it is fairly simple to setup a socket echo server.

import socket

host = ''
port = 8888
backlog = 5
size = 1024
s = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
s.bind((host,port))
s.listen(backlog)
while 1:
    client, address = s.accept()
    data = client.recv(size)
    if data:
        client.send(data)
    client.close()

Upvotes: 4

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