5

I have WSGI middleware that needs to capture the HTTP status (e.g. 200 OK) that inner layers of middleware return by calling start_response. Currently I'm doing the following, but abusing a list doesn't seem to be the “right” solution to me:

class TransactionalMiddlewareInterface(object):
    def __init__(self, application, **config):
        self.application = application
        self.config = config

    def __call__(self, environ, start_response):
        status = []

        def local_start(stat_str, headers=[]):
            status.append(int(stat_str.split(' ')[0]))
            return start_response(stat_str, headers)

        try:
            result = self.application(environ, local_start)

        finally:
            status = status[0] if status else 0

            if status > 199 and status 

The reason for the list abuse is that I can not assign a new value to the parent namespace from within a wholly contained function.

2 Answers 2

4

You can assign the status as an injected field of local_start function itself rather than using status list. I used something similar, works fine:

class TransactionalMiddlewareInterface(object):
    def __init__(self, application, **config):
        self.application = application
        self.config = config

    def __call__(self, environ, start_response):
        def local_start(stat_str, headers=[]):
            local_start.status = int(stat_str.split(' ')[0])
            return start_response(stat_str, headers)
        try:
            result = self.application(environ, local_start)
        finally:
            if local_start.status and local_start.status > 199:
                pass
1
  • That’s an awesome solution! Thank you.
    – amcgregor
    Mar 5, 2010 at 10:46
-1

Just use the a simple variable with a nonlocal keywork.

class TransactionalMiddlewareInterface(object):
    def __init__(self, application, **config):
        self.application = application
        self.config = config

    def __call__(self, environ, start_response):
        status = 0

        def local_start(stat_str, headers=[]):
            nonlocal status
            status = int(stat_str.split(' ')[0])
            return start_response(stat_str, headers)

        try:
            result = self.application(environ, local_start)

        finally:
            if status > 199 and status 
1
  • The answer accepted 11 years ago avoids namespace lookup manipulation entirely (no nonlocal keyword use, thus Python 2 compatible) and doesn’t mess up the comparison order or cut off short. Newer ≠ always better.
    – amcgregor
    Oct 5, 2021 at 9:11

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.