2

given: $array = ("a0", "a1", "b0", "b1")

How do I join only array[0] & array[1]; Such that:

$a = "a0a1"
# as if: >$a = $a[0]$a[1]

Simillarly,
get: $b = "b0b1"

4

You can select the elements in the array, then use the -join operator:

$array = ("a0", "a1", "b0", "b1")
$a = $array[0..1] -join ''
$b = $array[2..3] -join ''

You can use commas to select non-contiguous elements.

$array = ("a0", "a1", "b0", "b1")
$c = $array[0,1,3] -join ''

If there is some criteria for the elements you want joined, you could group the array then join the groups.

# Joins all elements that start with the same character.
$array = ("a0", "a1", "b0", "b1")
$a = $array| group {$_[0]}| foreach {$_.group -join ''}
  • Perfect! Thankyou.. also is there any way to do this in a single line and pass it to function as: fn $a $b ---> fn $array[0..1] -join '' $array[2..3] -join '' – Ujjwal Singh Jan 3 '13 at 21:49
  • 1
    Yes, wrapping something in parentheses will evaluate a statement before it is sent as an argument. In this case: fn ($array[0..1] -join '') ($array[2..3] -join '') – Rynant Jan 3 '13 at 21:53
2

Alternate solution:

$array= ("a1", "a0", "b0", "b1")
$a,$b = &{$ofs='';[string[]]($array[0,1],$array[2,3])}
0

Not tested but I think it should work:

$array | % {
 switch -Regex ($_)
  {
    ('a\d') {$a = "$($a)$($_)"}
    ('b\d') {$b = "$($b)$($_)"}
  }

}

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