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I have two scripts 1.sh and 2.sh.

1.sh is as follows:

#!/bin/sh
variable="thisisit"
export variable

2.sh is as follows:

#!/bin/sh
echo $variable

According to what I read, doing like this (export) can access the variables in one shell script from another. But this is not working in my scripts. Can somebody please help. Thanks in advance.

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and how are you executing these shell scripts? –  linuxeasy May 28 '12 at 8:52
    
    
I first run 1.sh in the terminal , then run the 2.sh in same terminal... –  Xander May 28 '12 at 9:13

2 Answers 2

If you are executing your files like sh 1.sh or ./1.sh Then you are executing it in a sub-shell.

If you want the changes to be made in your current shell, you could do:

. 1.sh
# OR
source 1.sh
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The OP is using /bin/sh, which on many platforms is a minimal POSIX shell and will not support the source command. –  larsmans May 28 '12 at 8:55
    
hmmm.. I have mentioned about . and space . I have mentioned source since that's what I see people use nowadays. –  linuxeasy May 28 '12 at 8:56
    
1.sh: 3: source: not found :( I dont want my 1.sh to be executed from 2.sh, I want to run 1.sh first, after closing it run 2.sh .. and access the variable in the first from second.... Thanks for the answers –  Xander May 28 '12 at 8:59
    
@Xander: If source doesn't works for you, you can use <dot><space><your program name> –  linuxeasy May 28 '12 at 9:02
    
.: 3: 1.sh: not found –  Xander May 28 '12 at 9:04

export puts a variable in the executing shell's environment so it is passed to processes executed by the script, but not to the process calling the script or any other processes. Try executing

#!/bin/sh
FOO=bar
env | grep '^FOO='

and

#!/bin/sh
FOO=bar
export FOO
env | grep '^FOO='

to see the effect of export.

To get the variable from 1.sh to 2.sh, either call 2.sh from 1.sh, or import 1.sh in 2.sh:

#!/bin/sh
. ./1.sh
echo $variable
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