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I am currently writing a bash scipt where i need to concatenate the results within the output variable. However I need them to be seperated by newline charcater '\n' which does not seem to work... Any ideas ???

#!/bin/bash

for i in "./"*
do

#echo "$i"
tmp=$('/home/xsmailis/eclipseWorkspace/groundtruthPointExtractor/Debug/groundtruthPointExtractor' "./"$i) 
#echo $Output
#printf "$i $Output\n">> output.txt
Output=$Output$(printf $'\n %s %s' "$i" "$tmp" )
done
echo $Output
echo $Output> output.txt
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3 Answers 3

up vote 3 down vote accepted

Well looks like

echo "$str" works

because when you print the string without quotes, newline are converted to spaces !!!

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This is due to the value of the IFS variable. It is by default set to split words on whitespace characters, which includes the newline character. Using quotation marks prevents word splitting. –  Chrono Kitsune Jan 24 '14 at 13:17
    
This behaviour is documented in the bash manual here: gnu.org/software/bash/manual/bashref.html#Word-Splitting –  glenn jackman Jan 24 '14 at 16:11

You can skip accumulating the output in a single parameter with

DIR=/home/xsmailis/eclipseWorkspace/groundtruthPointExtractor/Debug
for i in *; do
    printf "%s %s\n" "$i" "$("$DIR/groundtruthPointExtractor" "$i")"
done | tee output.txt

The printf outputs the file name and the program output on one line. The aggregated output of all runs within the for-loop is piped to tee, which writes the output to both the named file and standard output.

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Nice use of tee –  glenn jackman Jan 24 '14 at 16:14

echo does not interpret backslash characters (like \n) by default. Use:

echo -e $Output


-e     enable interpretation of backslash escapes
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for some reason this did not work... :( –  obelix Jan 24 '14 at 13:15
1  
-e is not relevant here. Use double-quotes: echo "$Output". –  grebneke Jan 24 '14 at 13:16
    
Without quotes, the shell will perform word splitting on the variable's value before invoking echo. –  glenn jackman Jan 24 '14 at 16:12

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