65

How can I read lines from the standard input into an array and then concatenate the array with itself?

My code is:

countries=()
while read -r country; do
    countries+=( "$country" )
done
countries=countries+countries+countries # this is the wrong way, i want to know the right way to do it
echo "${countries[@]}"

Note that, I can print it thrice like the code below, but it is not my motto. I have to concatenate them in the array.

countries=()
while read -r country; do
    countries+=( "$country" )
done
echo "${countries[@]} ${countries[@]} ${countries[@]}"
5
  • you have appended array in your own code...
    – Jason Hu
    Jun 30, 2015 at 16:49
  • @HuStmpHrrr, appending individual items to an array (via appending a single-value array), yes, but I can grok how someone wouldn't understand what the syntax they're already using does. Jun 30, 2015 at 16:52
  • But I did not know, how to add itself. Thanks. @HuStmpHrrr Jun 30, 2015 at 16:52
  • 1
    @Mehdi Charife, I'm not sure I'd describe sample input and actual/intended output "unnecessary content". In the minimal reproducible example definition, they're both things we explicitly ask be included. Mar 14, 2023 at 23:38
  • Yes; making the OP's goal crystal clear is exactly the point; in this case, a MRE just demonstrates that there's nothing surprising/unusual that wasn't covered in the English-language description, but even so it's useful: often we have folks who do leave things out of their prose descriptions. Mar 15, 2023 at 4:53

3 Answers 3

87

First, to read your list into an array, one entry per line:

readarray -t countries

...or, with older versions of bash:

# same, but compatible with bash 3.x; || is to avoid non-zero exit status.
IFS=$'\n' read -r -d '' countries || (( ${#countries[@]} ))

Second, to duplicate the entries, either expand the array to itself three times:

countries=( "${countries[@]}" "${countries[@]}" "${countries[@]}" )

...or use the modern syntax for performing an append:

countries+=( "${countries[@]}" "${countries[@]}" )
3
  • When concatenating arrays like in the last example, why does it not use "${countries[*]}" (instead of "${countries[@]}" like when printing)?
    – jww
    Mar 11, 2019 at 4:44
  • 2
    @jww, using "${countries[*]}" would be adding only one array element containing a string with the entire list of countries concatenated together, as opposed to one element per country. Mar 11, 2019 at 13:59
  • 1
    @jww, ...whereas by contrast, ${countries[*]} without the quotes would be changing countries with spaces in their names -- New Guinea, say -- to separate each word into its own list element (adding a separate array element for each of New and Guinea). Mar 11, 2019 at 14:01
21

Simply write this:

countries=$(cat)
countries+=( "${countries[@]}" "${countries[@]}" )
echo ${countries[@]}

The first line is to take input array, second to concatenate and last to print the array.

2
  • 2
    countries=$(cat) is assigning a single string, taken from stdin, to the first element of the array; the individual elements are not broken out into individual countries. (Use declare -p countries to display the array's definition, and the behavior will be obvious). Mar 6, 2018 at 17:18
  • 3
    ...which is to say, your array is not countries=( A B C A B C A B C ) but countries=( "A B C" "A B C" "A B C" ) when you do this; it's simply not visible that this is a problem because the echo command in use is inadequately quoted and so splits its arguments. Use printf '%q\n' "${countries[@]}", and each set will be on a different line, which will likewise make the issue visible (whereas if the array were correctly populated, each country would be on a different line). Mar 6, 2018 at 17:21
1

on ubuntu 14.04, the following would concatenate three elements (an element count would give :3), each element being an array countries:

countries=( "${countries[@]}" "${countries[@]}" "${countries[@]}" )

while the below would concatenate all elements in one single array:

countries=( ${countries[*]} ${countries[*]} ${countries[*]} )

a count of this would be 30 (taken into account the countries specified in the original post).

3
  • 2
    This is false. countries=( "${countries[@]}" "${countries[@]}" "${countries[@]}" ) expands the original array three times, creating one element per original array element each of those three times. countries=( ${countries[*]} ${countries[*]} ${countries[*]} ), by contrast, string-splits and glob-expands the original array. Let's say that you had countries=( "New Guinea" "New Zealand" "North Korea" ); result=( "${countries[@]}" "${countries[@]}" "${countries[@]}" ) expands to nine items. Jun 29, 2020 at 19:52
  • 2
    By contrast, result=( ${countries[*]} ${countries[*]} ${countries[*]} ) expands to eighteen items, because each New becomes its own array element. (It's even more complicated if any of the words it splits into is a glob that can match files on the local disk!) Jun 29, 2020 at 19:54
  • ...see this code run in an online interpreter, with its output, at ideone.com/Bj9LLM Jun 29, 2020 at 19:56

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