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So if I have a bash array:

ar=( "one" "two" "three" "four")

What is the best way to make a new array such that it looks like this:

ar-new=( "one" "one two" "one two three" "one two three four" )

I cooked up something that use a for loop inside a for loop and using seq. Is there a better/more elegant way to accomplish this?

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1  
dump whatever you 'cooked' and we shall see how to improve it – Tzury Bar Yochay Nov 10 '09 at 7:52
    
what actual problem are you solving? – ghostdog74 Nov 10 '09 at 7:53
up vote 1 down vote accepted

Here's another way:

for ((i=1; i<=${#ar[@]}; i++ ))
do
    ar_new+=("${ar[*]:0:$i} ")
done
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Sweet exactly what I was looking for (some manipulation with bash variable itself) – polyglot Nov 10 '09 at 17:40

Depending on what, exactly, you are trying to accomplish, you can do it in one loop without any external commands.

Using an arithmetic for loop:

typeset -a ar
ar=("one" "two" "three" "four")
typeset -a ar_new=()
p=""
for (( i=0; i < ${#ar[@]}; ++i )); do
    p="$p${p:+ }${ar[$i]}"
    ar_new[$i]="$p"
done

Using a string for loop loop (might not work for large arrays?, might be slower for large arrays):

typeset -a ar
ar=("one" "two" "three" "four")
typeset -a ar_new=()
p=""
for s in "${ar[@]}"; do
    p="$p${p:+ }$s"
    ar_new=("${ar_new[@]}" "$p")
done
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