Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have some python code on both the client and server side. I am getting an IncompleteRead exception thrown for what seems to be no good reason. I can navigate to the URL with Firefox without any error message and also WGET it without any odd results.

The server code is:

import random
import hashlib
print "Content-Type: text/html"     
print                              

m = hashlib.md5()
m.update(str(random.random()))
print m.hexdigest()
print

On the client site, I use a relatively straightforward POST approach:

    data = urllib.urlencode({"username": username,
                     "password" : password})
    #POST in the data.
    req = urllib2.Request(url, data)

    response = urllib2.urlopen(req)
    string =  response.read()

And the response.read() throws the error.

Edit: Further information - Adding explicit CRLF emissions does not alter the change. Checking the error log

[Wed Sep 08 10:36:43 2010] [error] [client 192.168.80.1] (104)Connection reset by peer: ap_content_length_filter: apr_bucket_read() failed

The SSL access log shows(mildly redacted):

192.168.80.1 - - [08/Sep/2010:10:38:02 -0700] "POST /serverfile.py HTTP/1.1" 200 1357 "-" "Python-urllib/2.7"
share|improve this question
1  
Are you using the correct kind of line endings in your server? I think http requires crlf. –  nmichaels Sep 8 '10 at 17:23
2  
@Nathon: Your name is hamming distance one from mine. Are you an evil twin? Also, I'll check. –  Paul Nathan Sep 8 '10 at 17:26
    
Try sending an HTTP request using socket and dump the results. The problem might be related to the wrongly sent or read HTTP body in the chunked transfer encoding. –  Andrey Vlasovskikh Sep 8 '10 at 17:30
    
@Nathon Yep, LF instead of CRLF might be the cause. –  Andrey Vlasovskikh Sep 8 '10 at 17:32
1  
Please post here HTTP response headers your server is sending to you. –  Andrey Vlasovskikh Sep 8 '10 at 17:44

4 Answers 4

Does terminating the lines with \r\n make any difference? Something like this:

import random
import hashlib
import sys

sys.stdout.write("Content-Type: text/html\r\n\r\n")

m = hashlib.md5()
m.update(str(random.random()))
print m.hexdigest()
print
share|improve this answer
up vote 1 down vote accepted

The problem is a bug in Apache.

Apache throws this particular kind of error when the receiving script does not consume all of the POST request.

Apache developers consider this to be an "As-designed" design.

The fix is to have something like this as soon as possible:

workaround = cgi.FieldStorage()
share|improve this answer
1  
Found this to be the case also for GET requests where a body was included by mistake by the client. –  Roger Dahl May 6 '11 at 2:51
4  
Apache throws this particular kind of error (...) This error is being thrown by Python standard library called httplib not Apache. The problem is a bug in Apache. What bug do you refer to? –  Piotr Dobrogost Sep 23 '12 at 19:43
    
-1 because: (1.) the server is some python code not an Apache server. (2.) I don't understand how anything in your answer helps solve the question. –  Trevor Boyd Smith Sep 5 '13 at 17:13
    
@TrevorBoydSmith: Can't help you in detail, it's been 3 years. Apache was fronting the Python server... –  Paul Nathan Sep 5 '13 at 18:27

I got this error when I had failed to completely read the previous response, e.g.:

# This is using an opener from urllib2, but I am guessing similar...
response1 = opener.open(url1)
for line in response1:
    m = re.match("href='(.*)'", line):
    if m:
        url2 = m.group(1) # Grab the URL from line, that's all I want.
        break             # Oops.  Apache is mad because I suck.

response2 = opener.open(url2)
for line in response2:
    print line

The server gave me "200 OK" on the first request, followed by the data up to the link I was looking for, then waited five minutes on the second open, then gave me "200 OK" on the second request, followed by all the data for the second request, then gave me IncompleteRead on the first request!

I am reading between the lines that the Paul's original script logged into two sites and got the problem on the second site.

I can see how reading two pages in parallel might be a nice feature. So what can I do to gracefully tell the server "No more, thanks?" I solved this by reading through and ignoring the rest of the first request (only 200K in this case).

If I were allowed to comment rather than answer, I'd ask Paul Nathan,

What is

workaround = cgi.FieldStorage()

, what do you mean by as soon as possible, and how does it help here? Have pity on a beginner.

share|improve this answer

I'm guessing the original poster was actually running the request twice, succeeding the first time and failing on the second.

I got IncompleteRead (from Apache) when I had failed to completely read the previous response, e.g.:

# This is using an opener from urllib2, but I am guessing similar...
response1 = opener.open(url1)
for line in response1:
    m = re.match("href='(.*)'", line):
    if m:
        url2 = m.group(1) # Grab the URL from line, that's all I want.
        break             # Oops.  Apache is mad because I suck.

response2 = opener.open(url2)
for line in response2:
    print line

The server gave me "200 OK" on the first request, followed by the data up to the link I was looking for, then waited five minutes on the second open, then gave me "200 OK" on the second request, followed by all the data for the second request, then gave me IncompleteRead ! The error happens (for me) in the second for statement, probably when it hits the end of file there.

I can imagine wanting to have two responses open simultaneously for reading. So the question is, how do I finish with a response? Do I have to read all the data even though I don't need it? No, (urllib.urlopen documentation) the response is like a file, just close it, so for my example,

for line in response1:
    m = re.match("href='(.*)'", line):
    if m:
        url2 = m.group(1) # Grab the URL from line, that's all I want.
        break

response1.close()
response2 = opener.open(url2)
...
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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