38

I am a new to Bash. I have an array taking input from standard input. I have to concatenate itself twice. Say, I have the following elements in the array:

Namibia
Nauru
Nepal
Netherlands
NewZealand
Nicaragua
Niger
Nigeria
NorthKorea
Norway

Now, The output should be:

Namibia Nauru Nepal Netherlands NewZealand Nicaragua Niger Nigeria NorthKorea Norway Namibia Nauru Nepal Netherlands NewZealand Nicaragua Niger Nigeria NorthKorea Norway

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[@]}"
3
  • you have appended array in your own code... – Jason Hu Jun 30 '15 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. – Charles Duffy Jun 30 '15 at 16:52
  • But I did not know, how to add itself. Thanks. @HuStmpHrrr – Enamul Hassan Jun 30 '15 at 16:52
60

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 '19 at 4:44
  • @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. – Charles Duffy Mar 11 '19 at 13:59
  • @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). – Charles Duffy Mar 11 '19 at 14:01
13

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
  • 1
    countries=$(cat) is assigning a single string, taken from stdin, to the first element of the array; the individual elements are not broken out into individual countries. (Use declare -p countries to display the array's definition, and the behavior will be obvious). – Charles Duffy Mar 6 '18 at 17:18
  • 1
    ...which is to say, your array is not countries=( A B C A B C A B C ) but countries=( "A B C" "A B C" "A B C" ) when you do this; it's simply not visible that this is a problem because the echo command in use is inadequately quoted and so splits its arguments. Use printf '%q\n' "${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). – Charles Duffy Mar 6 '18 at 17:21
0

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
  • 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. – Charles Duffy Jun 29 '20 at 19:52
  • 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!) – Charles Duffy Jun 29 '20 at 19:54
  • ...see this code run in an online interpreter, with its output, at ideone.com/Bj9LLM – Charles Duffy Jun 29 '20 at 19:56

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.