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$i is not working... it's making me crazy!

for i in {1..200}; 
do echo "/scratch/inputTest/prob/timit.test.pg.list_10_$i_prob.bin" >> longProbList; 
done

in the file there is just

/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
/scratch/inputTest/prob/timit.test.pg.list_10_.bin
share|improve this question
up vote 7 down vote accepted

It thinks your variable name is $i_prob since an underscore is a valid character for a variable name. Use ${i} to fix this:

for i in {1..200}; 
do echo "/scratch/inputTest/prob/timit.test.pg.list_10_${i}_prob.bin" >> longProbList; 
done
share|improve this answer
    
thanks! that works – Kiarash Aug 13 '11 at 1:32

You've forgotten the " " around $i

for i in {1..200}; 
do echo "/scratch/inputTest/prob/timit.test.pg.list_10_"$i"_prob.bin" >> longProbList; 
done
share|improve this answer
2  
${i} is a much more common way to do this. – Aaron D. Marasco Aug 13 '11 at 1:41
    
@Aaaron says who? Mine is better readable. Even the stackoverflow syntax highlighter recognizes mine better. – therealmarv Aug 13 '11 at 1:43
    
I admire your bravado; but I agree with @Aaron. You are correct that your mechanism also works, but using the ${var} notation is generally better, especially if the variable value contains spaces and they must be preserved (which is not the case here, I agree). – Jonathan Leffler Aug 13 '11 at 6:54
1  
The following does not have the same output: i="a z"; echo "eee"$i"bbb"; echo "eee${i}bbb" (2 spaces between a and z). Using ${i} keeps the 2 spaces between a and z. – jfgagne Aug 13 '11 at 17:06
    
@jfgagne ok I agree. Thanks for your example script. – therealmarv Aug 13 '11 at 19:13

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