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I'm writing a shell script that create a database and store values into keys in a database.file.

I got a test that catched my attention and i'm wondering why this is happening.

./shellscript put key -e

The expected behavior would create a file:

key <-> -e

For some reason my shell script can't even catch the "-e" and even when printing $1, passing -e as first parameter.

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Are you on Linux? Does the parameter show up if you set environment variable POSIXLY_CORRECT to 1? If so, there's an explanation... –  Jonathan Leffler Jan 8 '13 at 15:41
    
Hi, yes i'm on linux and i tested with POSIXLY_CORRECT set to 1 but nothing have changed. –  cp151 Jan 8 '13 at 15:55
1  
key <-> -e is the contents of the file, right? The way your question is phrased, it looks like it's the name of the file, which would be legal but very odd. –  Keith Thompson Jan 8 '13 at 16:19
    
Have you tried echo "$@" or similar inside the script — maybe to a log file? If so, is the -e option in there? –  Jonathan Leffler Jan 8 '13 at 17:17
    
turn on shell debug/trace facility with set -vx, then you can see what values your script is processing. Good luck. –  shellter Jan 8 '13 at 22:07

1 Answer 1

Let me guess. Do you use "echo" in your shell script to print command line arguments? If yes: Replace every

echo foobar

by

printf '%s\n' foobar

Does the problem disappear now? (Depending on your "echo" version, it interprets -e and/or -n as options, rather than as arguments.)

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