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I have a Bash script to which I am sending 10 arguments.

I'm trying to access the tenth argument, such as echo $10.

Instead I get the first argument with a zero appended.

Any thoughts on how I can access the tenth argument?

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Generally if you want to have more then 2-3 arguments it is good to use flag options instead of using some fixed argument positions to make your code more readable and to remember only flags,not exact positions (like ./script -from xxx -to yyy -num zzz ...). There are some ready open-source libraries for this. Most of them uses bash "shift" command to iterate through them, so they don't usually use more then $3 even if they have dozens of arguments. –  XzKto Jul 8 '11 at 8:56
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up vote 10 down vote accepted

Use ${10} instead of $10. You can use this for a seemingly arbitrary number of arguments. I've tested it up to ${100} successfully.

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Try this to test: bash -c "echo \${7854} " $(seq 10 10000). –  Lynch Jul 7 '11 at 20:31
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Don't go looking for the limit: you'd be busy a long time –  sehe Jul 7 '11 at 20:33
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