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I am trying to run a shell script on redhat linux to install an app. I am getting an error saying /usr/bin.sh: bad interpreter: no such file or directory.

In the shell script the script begins with:

#!/usr/bin/shBUILD_ID=$1.....

I am just trying to understand what the path at the begining of the line is for? Is that a directory it looks for to deploy the app?

Thanks

  • 3
    Your title, text, and pasted code use 3 different spellings. Do you think maybe spelling it correctly actually matters, and no one can possibly tell you what's wrong if you lie about what you actually have? – Wooble Sep 4 '13 at 11:24
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The first line should be #!/usr/bin/sh or #!/bin/sh if its a shell script.

If the first line are #!/usr/bin/sh then try to see if /usr/bin/sh exist and you with ls -l /usr/bin/sh

If you cant find sh then your system are in a bad stat.

  • I can't find sh in the usr/bin directory - there is ssh though – Pectus Excavatum Sep 4 '13 at 12:10
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The #! is a magic number that tells the kernel that the file is an excutable script. The string immediately following the #! is the path to an interpreter that is called to read and execute the contents of the file. In the line

#!/ust/bin/shBUILD_ID=$1.....

the interpreter is /ust/bin/shBUILD_ID=$1..... The interpreter is read directly, with no shell variable substition, so it will look for a file exactly as you specified (including the equal sign, dollar, dots etc.). If the interpreter you specified is not found, a default shell issues an error message, and yours looks totally wrong. Try #!/bin/sh. If the interpreter string is followed by a space and then some arguments, those arguments are passed to the interpeter when it is invoked.

See for example http://bash.cyberciti.biz/guide/Shebang

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