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I have a log file in AIX environment which has lines like below

10.100.108.23 100.10.10.11 - [05/Dec/2012:09:35:27 +0000] "GET /chgs/checkprofile/checkServlet?requestType=signPart1&off=false&oquestions=true&userid=false&source=false&link=%23&country=us&language=en&origin=&displayLayer=no HTTP/1.1" 200 8904 "https://www.test.com/services/request/Home.action" "Mozilla/4.0 (compatible; MSIE 7.0; Windows NT 6.1; WOW64; Trident/5.0; SLCC2; .NET CLR 2.0.50727; .NET CLR 3.5.30729; .NET CLR 3.0.30729; Media Center PC 6.0; .NET4.0C)" "PD-ERR=; rlang=nl_NL;

I need to find the country and language from each line which comes after the pattern &country and &language respectively. As i am new to shell scripting, i tried to achieve this with grep and awk scripts, but no luck.

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1  
1. whathaveyoutried.com ? (please edit your question). 2. Are you using linux or aix or both? (counting aix as a unix), Aix will require a lowest common-denominator solution unless you have GNU coreutils installed there too. –  shellter Dec 7 '12 at 11:42
    
Please post the grep and awk scripts you have tried so far, otherwise the question will likely get closed. –  davidethell Dec 7 '12 at 19:44

2 Answers 2

up vote 1 down vote accepted
awk -F"&" '{for(i=1;i<=NF;i++)if($i~/country/ ||$i~/language/){split($i,a,"=");printf a[2]" "}}' your_file

Or you can use sed:

sed -e 's/.*country=//g;s/language=\([^\&]*\)&.*/\1/g' your_file

for removing that ampersand:

> sed -e 's/.*country=//g;s/&language=\([^\&]*\)&.*/ \1/g' temp
us en

you can read this

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Thank you so much !! The second one gave me the output, but there is an ampersand (&) symbol in between them. How can i remove that?? Can i add an underscore (_) in between. –  user1746666 Dec 7 '12 at 12:03
1  
You change the tegex to 's/.*country=//g;s/&language=([^\&]*)&.*/ \1/g' –  Vijay Dec 7 '12 at 12:08
    
Thanks so much. Your 3rd option worked like charm without '&'. I would like to know the logic behind the pattern. Please let me know where i can learn these. –  user1746666 Dec 7 '12 at 12:17
    
@sarathi, you're assuming that language immediately follows country –  glenn jackman Dec 7 '12 at 13:07
1  
This awk may be simpler: awk -F'[=&? ]' '{for(i=1; i<NF; i++) if ($i == "country" || $i == "language") print $(i+1)}' –  glenn jackman Dec 7 '12 at 13:08

Using grep:

$ grep -Eo '(country|language)=[^&]*' file
country=us
language=en

$ grep -Po '(?<=country=|language=)[^&]*' file
us
en

#  Grep Options

-o, --only-matching       show only the part of a line matching PATTERN
-E, --extended-regexp     PATTERN is an extended regular expression (ERE)
-P, --perl-regexp         PATTERN is a Perl regular expression

Using sed:

sed -E 's/.*country=([^&]*).*language=([^&]*).*/\1 \2/g' file
us en 

# Sed option

-E use extended regular expression
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As i am using AIX, -o is not recognized there. Please tell me the usage of o, so that i could find alternative in AIX –  user1746666 Dec 7 '12 at 12:20
1  
Updated answer... –  iiSeymour Dec 7 '12 at 13:58
    
Thanks for helping me out. Hope this helps someone who is not using AIX. –  user1746666 Dec 7 '12 at 14:37

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