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What I want to do is the following:

  1. read in multiple line input from stdin into variable A
  2. make various operations on A
  3. pipe A without losing delimiter symbols (\n,\r,\t,etc) to another command

The current problem is that, I can't read it in with read command, because it stops reading at newline.

I can read stdin with cat, like this:

my_var=`cat /dev/stdin`

, but then I don't know how to print it. So that the newline, tab, and other delimiters are still there.

My sample script looks like this:

#!/usr/local/bin/bash

A=`cat /dev/stdin`

if [ ${#A} -eq 0 ]; then
        exit 0
else
        cat ${A} | /usr/local/sbin/nextcommand
fi
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5 Answers 5

up vote 22 down vote accepted

This is working for me:

myvar=`cat`

echo "$myvar"

The quotes around $myvar are important.

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2  
Should read myvar=$(cat); echo "${myvar}" -- but otherwise my solution exactly. –  gnud Oct 17 '08 at 17:14
1  
gnud, those extra quote characters you suggest don't actually change the functionality. –  apenwarr Feb 21 '11 at 11:45
2  
@appenwarr: quotes are vital, otherwise youre relying in IFS being at default value, which is a very bad practice. –  MestreLion Aug 15 '11 at 22:54
    
you just made my day ;) –  malko Mar 15 '13 at 13:19
    
Fails. echo "$myvar" adds a newline to the file if it did not previously have one. –  CommaToast Sep 8 at 22:19

Yes it works for me too. Thanks.

myvar=`cat`

is the same as

myvar=`cat /dev/stdin`

Well yes. From the bash man page:

Enclosing characters in double quotes preserves the literal value of all characters within the quotes, with the exception of $, `, \, and, when history expansion is enabled, !. The characters $ and ` retain their special meaning within double quotes.

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In Bash, there's an alternative way; man bash mentions:

The command substitution $(cat file) can be replaced by the equivalent but faster $(< file).

$ myVar=$(</dev/stdin)
hello
this is test
$ echo "$myVar"
hello
this is test
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-1 because echo "$myVar" will add a newline character if it did not already have one. –  CommaToast Sep 8 at 22:22
    
@CommaToast: And $(...) will remove any trailing newlines, so they fit perfectly together, don't they? And you can easily switch to printf to avoid that. –  Ingo Karkat Sep 9 at 6:43
    
No, they don't fit together perfectly. You will end up with a trailing newline no matter what in this solution, whether or not there was one to begin with. If you switch to printf arbitrarily, now you will never have a trailing newline, even if there was one. –  CommaToast Sep 9 at 6:47
    
@CommaToast: I agree that the behavior of $(...) isn't optimal. But there are ways around that, see here –  Ingo Karkat Sep 9 at 6:52
1  
Well to be fair it's not your fault that unix was designed in 1946 and is basically a glorified typewriter, as far as it's concerned. I can just see the carriage return going back and forth inside unix's brain. It just can't be asked to treat newlines like every other character. No, it just has to revert to its typewriter reptilian brain. But anyway the only workaround I could find to this is var=`cat; echo x` then later when ready to output it, output ${var%x} so that newlines (or lack thereof) are preserved. Ugly as heck but, it works... –  CommaToast Sep 9 at 6:56

tee does the job

#!/bin/bash
myVar=$(tee)
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+1 because tee is elegant and it works to read it in. Wow thanks! But you don't answer the question, how to print it with altering newlines. –  CommaToast Sep 8 at 22:21

If you do care about preserving trailing newlines at the end of the output, use this:

myVar=$(cat; echo x)
myVar=${myVar%x}
printf %s "$myVar"

This uses the trick from here.

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