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I'm looking to do the equivalent of _grep -B14 MMA

I have a URL that I open and it spits out many lines. I want to

  1. find the line that has 'MMa'
  2. then print the 14th line before it

I don't even know where to begin with this.

import urllib
import urllib2

url = "https://longannoyingurl.com"

opts = {
  'action': 'Dump+It'
}
data = urllib.urlencode(opts)
req = urllib2.Request(url, data)
response = urllib2.urlopen(req)
print  response.read() # gives the full html output
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What is the expected result when more than one line matches? –  Dan Feb 4 '11 at 19:52
    
How do you not know where to begin? You must have an IDEA of where to begin. –  Falmarri Feb 4 '11 at 19:53

3 Answers 3

up vote 3 down vote accepted

Instead of just doing a bare read on the response object, call readlines instead, and then run a regular expression through each line. If the line matches, print the 14th line before it, but check to see that you're not negative indexing. E.g.

import re

lines = response.readlines()

r = re.compile(r'MMa')
for i in range(len(lines)):
    if r.search(lines[i]):
        print lines[max(0, i-14)]
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1  
Thanks Dan this works ! –  Simply Seth Feb 4 '11 at 20:15

You can split a single string into a list of lines using mystr.splitlines(). You can test if a string matches a regular expression using re.match(). Once you find the matching line(s), you can index backwards into your list of lines to find the 14th line before.

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In this situation, search is probably a better fit than match. –  Dan Feb 4 '11 at 20:05

thanks to Dan I got my result

import urllib
import urllib2 
import re

url="https://somelongannoyingurl/blah/servlet"
opts = {
  'authid': 'someID',
   'action': 'Dump+It'
}
data = urllib.urlencode(opts)
req = urllib2.Request(url, data)
response = urllib2.urlopen(req)

lines = response.readlines()
r = re.compile(r'MMa')
for i in range(len(lines)):
  if r.search(lines[i]):
    line = lines[max(0, i-14)].strip()
    junk,mma = line.split('>')
    print mma.strip()

~

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