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I want to grep all results which contain over 70 percent of usage

Example of output:

{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":69,"dir":"/root"},
{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":79,"dir":"/oracle"},
{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":1,"dir":"/oradump"},
{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":90,"dir":"/archive"},

Expected View after the grep:

{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":79,"dir":"/oracle"},
{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":90,"dir":"/archive"},
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4 Answers 4

up vote 7 down vote accepted

Awk is more suited here:

$ awk -F'[:,]' '$6>70' file
{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":79,"dir":"/oracle"},
{"ipaddr":"1.1.1.1","hostname":"host1.test.com","percentage":90,"dir":"/archive"},
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Perfect and simple, thanks. –  Kalin Borisov May 31 '13 at 12:18
    
+1 for suggesting the right tool for this job. This is tailor made for awk –  anubhava May 31 '13 at 12:18

Or with Perl:

$ perl -ne'print if /"percentage":([0-9]+),/ and $1 > 70'

(no pesky seperator counting needed)

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perl -F'[:,]' -ane 'print if $F[5]>70' file
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GNU sed

sed -n '/:[0]\?70,/d;/:[0-1]\?[7-9][0-9],/p' file
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