23

Perhaps easiest to explain with an example:

$ echo '\&|'
\&|
$ echo '\&|' | while read in; do echo "$in"; done
&|

It seems that the "read" command is interpreting the slashes in the input as escapes and is removing them. I need to process a file line by line without changing its contents and I'm not sure how to stop read from being smart here. Any ideas?

37

Accrding to: http://www.vias.org/linux-knowhow/bbg_sect_08_02_01.html :

-r
If this option is given, backslash does not act as an escape character. The backslash is considered to be part of the line. In particular, a backslash-newline pair may not be used as a line continuation.

It works on my machine.

$ echo '\&|' | while read -r in; do echo "$in"; done
\&|
  • 1
    Awesome, thanks! I feel dumb for not having found the documentation for this, but it's one of those things that's hard to search for because the terms are rather generic :( – Jeremy Huiskamp May 29 '09 at 4:57
  • Btw, what shell are you using that does not require the -r? I'm using bash. – Jeremy Huiskamp May 29 '09 at 4:59
  • Sorry, I was miss used copy paste. Editing ... – Zsolt Botykai May 29 '09 at 7:29
  • Watch out that this is not exactly true for read on zsh: documentation of built-in commands. Difference: -r just prints '\' if it is at the end of the line. So read -r in && echo $in will echo two lines if you enter foo\nbar – normanius Dec 11 '15 at 16:32
6

Use read -r, as per http://www.ss64.com/bash/read.html:

-r
If this option is given, backslash does not act as an escape character.

  • Thanks Alex. Unfortunately I can only mark one as the answer and Zsolt beat you by a mere minute :) – Jeremy Huiskamp May 29 '09 at 5:00
  • Heh, I know, SO's a 100-meters race for most questions!-) – Alex Martelli May 29 '09 at 5:32

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