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I'm trying to find the parameters sent in all POST requests by looking at my production Rails log files. Right now I'm just using the following:

grep 'Started POST.*\/[fr]' log/production.log

This shows me when the POSTs happen but not the parameters. What I'd like is to do something along the lines of:

  1. Store the line in sed's hold buffer when it encounters the regex above
  2. Print the contents of the hold buffer and the current line when it encounters "Parameters:"
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2 Answers 2

up vote 2 down vote accepted

As I understood you need to display line with regex and the following line. grep can do it itself:

grep -A1 'Started POST.*\/[fr]' log/production.log

with sed it will look like:

sed -n '/Started POST.*\/[fr]/{N;p}' log/production.log

or if not all following lines may content "Parameters" and you need only them:

sed -n '/Started POST.*\/[fr]/{N;/Parameters/p}' log/production.log
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this is exactly what I needed! Thanks! I'll accept it as soon as SO lets me. –  higginbotham Jul 2 '12 at 20:33
    
what I actually went with was "grep -A2 'Started POST.*\/[fr]' log/production.log | grep -v Processing". The reason is that before the "Parameters" line there's a line that starts with "Processing" and I couldn't figure out how to get that out using just sed. –  higginbotham Jul 2 '12 at 20:36
    
sed -n '/Started POST.*\/[fr]/{N;/Parametrs/{s/.*\n//;p}}' –  rush Jul 2 '12 at 20:58

This should do what you're looking for:

sed -n '/Started POST.*\/[fr]/h;/Parameters/{H;g;p;q}'

It holds the first line and prints it and the line containing "Parameters". Only the first set of lines will be printed.

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That looks like it also prints out every line which has "Parameters", not just the first one which comes after the line matched by /Started Post.*\/[fr]/ –  higginbotham Jul 2 '12 at 20:47
    
@higginbotham: Add a q after the p. I'll update my answer. –  Dennis Williamson Jul 2 '12 at 20:52
    
Thanks! I wish I could mark two answers as the accepted one. –  higginbotham Jul 3 '12 at 18:12

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