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I wrote the following code

var=0
cat $file | while read line do
    var=$line
done
echo $var

Now as I understand it the pipe (|) will cause a sub shell to be created an therefore the variable var on line 1 will have the same value on the last line.

However this will solve it:

var=0
while read line do
    var=$line
done < $file
echo $line

My question is why does the redirect not cause a subshell to be created, or if you like why does pipe cause one to be created?

Thanks

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2 Answers 2

up vote 11 down vote accepted

The cat command is a command which means it needs its own process and has its own STDIN and STDOUT. You're basically taking the STDOUT produced by the cat command and redirecting it into the process of the while loop.

When you use redirection, you're not using a separate process. Instead, you're merely redirecting the STDIN of the while loop from the console to the lines of the file.

Needless to say, the second way is more efficient. In the old Usenet days before all of you little whippersnappers got ahold of our Internet (_Hey you kids! Get off of my Internet!) and destroyed it with your fancy graphics and all them web page, some people use to give out the Useless Use of Cat award for people who contributed to the comp.unix.shell group and had a spurious cat command because the use of cat is almost never necessary and is usually more inefficient.

If you're using a cat in your code, you probably don't need it. The cat command comes from concatenate and is suppose to be used only to concatenate files together. For example, when we use to use SneakerNet on 800K floppies, we would have to split up long files with the Unix split command and then use cat to merge them back together.

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+1 for the history lesson :) –  nhed Jun 27 '11 at 21:34
    
Hi, thanks for the response ( + history lesson :)). I get that the cat command needs is own process but it redirects its stdout to the stdin of the process of the while loop, the variable var exits in the process of the while loop, so my question is that when the while loop changes the value of the variable why does it not persist? Hope that makes sense ( I will happily accept your answer if you can answer this please, either way +1 for history lesson) –  Aly Jun 29 '11 at 12:14
1  
@Aly: The while loop is not in the current process! It's in the sub-shell created by the cat command. Thus, you exit the while loop, you exit the cat sub-process and reenter the regular process. –  David W. Jul 1 '11 at 18:08
    
@David, got it thanks. Answer, accepted :) –  Aly Jul 1 '11 at 18:12
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A pipe is there to hook the stdout of one program to the stdin or another one. Two processes, possibly two shells. When you do redirection (> and <), all you're doing remapping stdin (or stdout) to a file. reading/writing a file can be done without another process or shell.

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