26

I have file a.txt with following content

    aaa
    bbb

When I execute following script:

while read line
do
    echo $line
done < a.txt > b.txt

generated b.txt contains following

aaa
bbb

It is seen that the leading spaces of lines have got removed. How can I preserve leading spaces?

38

This is covered in the Bash FAQ entry on reading data line-by-line.

The read command modifies each line read; by default it removes all leading and trailing whitespace characters (spaces and tabs, or any whitespace characters present in IFS). If that is not desired, the IFS variable has to be cleared:

# Exact lines, no trimming
while IFS= read -r line; do
  printf '%s\n' "$line"
done < "$file"

As Charles Duffy correctly points out (and I'd missed by focusing on the IFS issue); if you want to see the spaces in your output you also need to quote the variable when you use it or the shell will, once again, drop the whitespace.

Notes about some of the other differences in that quoted snippet as compared to your original code.

The use of the -r argument to read is covered in a single sentence at the top of the previously linked page.

The -r option to read prevents backslash interpretation (usually used as a backslash newline pair, to continue over multiple lines). Without this option, any backslashes in the input will be discarded. You should almost always use the -r option with read.

As to using printf instead of echo there the behavior of echo is, somewhat unfortunately, not portably consistent across all environments and the differences can be awkward to deal with. printf on the other hand is consistent and can be used entirely robustly.

  • 5
    If you do not give read any arguments to use to hold the input (relying on the default variable REPLY), no whitespace is stripped and you can omit the modification to IFS. That is, while read -r; do printf '%s\n' "$REPLY"; done < "$file" – chepner Apr 17 '15 at 2:45
  • 2
    I'm not sure; it doesn't seem to be documented as far as I can tell. It makes some sense if you think of it as zero arguments require splitting the line into zero fields, meaning there is no use for IFS. (That assumes you accept that splitting a line into one field is still a split, albeit a degenerate one.) In any case, it is a bashism; POSIX read requires at least one argument. – chepner Apr 17 '15 at 2:55
  • 3
    @chepner: man bash says about $REPLY (emphasis mine): "Set to the line of input read by the read builtin command when no arguments are supplied." Thus, the idea is to read the whole line as is, as opposed to splitting it into fields. What is counter-intuitive, however, is that you still also have to specify -r to avoid backslash interpretation. Note that the (rarely used) select construct - where splitting into fields doesn't even enter the picture - also sets $REPLY to whatever the user entered (invariably backslash-interpreted, but otherwise also as is). – mklement0 Apr 17 '15 at 3:58
  • 2
    As for why -r is still needed to suppress backslash interpretation even when using just $REPLY (not specifying any variable names): Not specifying -r potentially reads multiple lines at once (joined without newlines), if the input has \ -escaped newlines; if using just $REPLY implied -r, this multi-line behavior would not be available. – mklement0 Apr 17 '15 at 5:14
  • 2
    read's default behavior allows line continuation by ending a line with \ and continuing it on the next line (both the \ and the newline are discarded). This is rarely useful, except maybe for interactive input, and, given that the \ in any \<char> pair is discarded, typically surprises the user. I think the real issue here is that the behavior of -r (always read only one line, keep all backslashes) should have been the default behavior all along, but the current behavior is POSIX-mandated, so we're stuck with it. (cont'd in next comment) – mklement0 Apr 17 '15 at 18:15
13

There are several problems here:

  • Unless IFS is cleared, read strips leading and trailing whitespace.
  • echo $line string-splits and glob-expands the contents of $line, breaking it up into individual words, and passing those words as individual arguments to the echo command. Thus, even with IFS cleared at read time, echo $line would still discard leading and trailing whitespace, and change runs of whitespace between words into a single space character each. Additionally, a line containing only the character * would be expanded to contain a list of filenames.
  • echo "$line" is a significant improvement, but still won't correctly handle values such as -n, which it treats as an echo argument itself. printf '%s\n' "$line" would fix this fully.
  • read without -r treats backslashes as continuation characters rather than literal content, such that they won't be included in the values produced unless doubled-up to escape themselves.

Thus:

while IFS= read -r line; do
  printf '%s\n' "$line"
done
  • 1
    Good advice, but the two-character sequence \n does not result in a newline, it results in literal n. By contrast, a \ -escaped actual newline causes read to read the following line also, and to directly append it to the current one (discarding the \ and the newline). A \ before any other character is simply discarded. – mklement0 Apr 17 '15 at 4:47
  • 3
    Another way of describing the behavior of read without -r: the input is parsed in the same way a bareword with individually \ -escaped characters is parsed by the (POSIX) shell itself (e.g., as part of an argument list), as described at pubs.opengroup.org/onlinepubs/9699919799/utilities/… and essentially duplicated in read's POSIX spec at pubs.opengroup.org/onlinepubs/9699919799/utilities/read.html. – mklement0 Apr 17 '15 at 18:34
  • 2
    Thank you -- I'm going to want to review the source material to determine how best to revise that part of my answer. – Charles Duffy Apr 17 '15 at 19:08

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