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How can I put $org into an array together with $count?

Like this example array:

$myArray = @{
  1="SampleOrg";
  2="AnotherSampleOrg"
}

Another example:

$myArray = @{
  $count="$org";
  $count="$org"
}

Example foreach:

$count=0;get-organization | foreach {$count++; $org = $_.Name.ToString();write-host $count  -nonewline;write-host " $org"}
$answer = read-host "Select 1-$count"

The above will display:

1 SampleOrg
2 AnotherSampleOrg

Select 1-2:

What I would like to do afterwards is to put the array to use in a switch.

Example:

switch ($answer)
   {
     1 {$org=myArray[1]} #<-- or whatever that corresponds to "SampleOrg"
     2 {$org=myArray[2]} #<-- or whatever that corresponds to "AnotherSampleOrg"
   }
share|improve this question
    
I'm not sure if I understand you correctly, but IMO you just need to add a $myArray.Add($count, $org) to your foreach-loop. EDIT: And you have to initialize your array somewhere before the loop: $myArray = @{} –  Ocaso Protal Aug 8 '11 at 12:49
    
Your solution was working superb! $myArray = @{};$count=0;get-organization | foreach {$count++; $org = $_.Name.ToString();write-host $count -nonewline;write-host " $org";$myArray.Add($count, $org)} –  NiklasJ Aug 8 '11 at 13:32

2 Answers 2

up vote 4 down vote accepted

You have to initialize your hashtable somewhere before the loop:

$myArray = @{} 

and add a

$myArray.Add($count, $org)

to your foreach-loop.

EDIT: For the discussion about hastable/array see the whole thread ;) I just kept the name of the variable from the original posting

share|improve this answer
    
End-result: $myArray = @{};$count=0;get-organization | foreach {$count++; $org = $_.Name.ToString();write-host $count -nonewline;write-host " $org";$myArray.Add($count, $org)} –  NiklasJ Aug 8 '11 at 13:37
1  
$myArray = @{} is not an array –  Scott Weinstein Aug 8 '11 at 13:43
    
Hashtables is a type of array. (Associative arrays) –  NiklasJ Aug 8 '11 at 13:49
    
@Scott D'Oh, you are right, corrected the answer –  Ocaso Protal Aug 8 '11 at 14:35
1  
Hashtables are a type of collection, but not a type of Array. –  JasonMArcher Aug 8 '11 at 20:22

Looks like you're confusing arrays and Hashtables. Arrays are ordered, and indexed by an numeric value. Hashtables are associative, and indexed by any value that has equality defined.

This is array syntax

$arr = @(1,2,3)

and this is Hashtable syntax

$ht = @{red=1;blue=2;}

For your question, the following will work

$orgs = @(get-organization | % { $_.Name })

this will create a 0 based array, mapping int -> OrgName, so

$orgs[$answer]

will get the correct name. Or if you're using 1 based indexing

$orgs[$answer-1]

Note, I removed the switch, as there's no reason for it.

share|improve this answer
    
won't that create an array with a nested hash table instead of the opposite? –  JNK Aug 8 '11 at 13:01
    
@JNK - yes, exactly. As the index seems to be an integer, an array is the most apprpriate data structure –  Scott Weinstein Aug 8 '11 at 13:07
    
gotcha. The $answer index threw me off - $answer is an int not a key! It looks like he wants to use a 1-based index too, so he should look out for the 0. –  JNK Aug 8 '11 at 13:08
    
In the posted solution there is no prefix number, i.e 1 SampleOrg Also, when I get the value of $orgs[1] I get Name and Value and not a single variable. –  NiklasJ Aug 8 '11 at 13:15
    
If the $answer=1 which corresponds to AnotherSampleOrg Then in the switch case: 1 {$org=orgs[$answer]} this will set $orgs to: Name Value ---- ----- SampleOrg AnotherSampleOrg But I want to be set to only AnotherSampleOrg. –  NiklasJ Aug 8 '11 at 13:24

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