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Hi I would like to parse some data and for certain values replace it to a string before saving to a CSV

Sample Lines
============
Time,11,Name,Jack,Cost,1300,Paid,1
Time,13,Name,Tim,Cost,1300,Paid,0

grep & cut (&awk)
============
grep -i "Time,\d+,Name,\w+,Cost,\d+,Paid" | cut -d, -f2 -f4 -f6 -f7 | awk (replace f7 with True if 1 or replace f7 with False if 0)

Thanks

EDIT: Fixed my grep.

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1  
For future uses of cut. you can separate multiple fields with a comma: -f2,4,6,7 –  ahilsend Jul 24 '13 at 19:35
    
@ahilsend thanks for the tip! –  amehta Jul 26 '13 at 6:58

2 Answers 2

It is always good to give both input and output example.

awk could do it alone, without grep and cut. try this line:

awk -F, -v OFS="," '{$8=$8==1?"True":"False";print $2,$4,$6,$8}' file

with your data, the awk line gives:

11,Jack,1300,True
13,Tim,1300,False
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The OP also has a (poorly formed) grep; you should limit the scope with a pattern. –  William Pursell Jul 25 '13 at 14:33
    
@WilliamPursell I assume that those labels (grep pattern) exist in every line. It may be true or not true. If he had problem on this part, I would help. and his grep pattern won't return any result from his input. –  Kent Jul 25 '13 at 14:38
    
@kent Yes those pattern exist in every line. Thanks for the pure awk implementation. –  amehta Jul 26 '13 at 0:58
    
@amehta if the answer solved your question, how about consider to accept it? –  Kent Jul 26 '13 at 8:48

Code for GNU :

sed -r 's/\S+,(\S+,)\S+,(\S+,)\S+,(\S+,)\S+,(.)/\1\2\3\4/;s/1$/True/;s/0$/False/' file

$ cat file
Time,11,Name,Jack,Cost,1300,Paid,1
Time,13,Name,Tim,Cost,1300,Paid,0

$ sed -r 's/\S+,(\S+,)\S+,(\S+,)\S+,(\S+,)\S+,(.)/\1\2\3\4/;s/1$/True/;s/0$/False/' file
11,Jack,1300,True
13,Tim,1300,False
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