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Say I have as hierarchy [Rank].[Rank] with three members

[Rank].[Rank].&[Boss]
[Rank].[Rank].&[Manager]
[Rank].[Rank].&[Supervisor]
[Rank].[Rank].&[Serf]

Then create a calcuated member in the query

MEMBER [Rank].[Rank].[Middle Managers] AS 
      [Rank].[Rank].&[Manager] + [Rank].[Rank].&[Supervisor]

if I say

with 

member [Rank].[Rank].[Middle Managers] AS 
           [Rank].[Rank].&[Manager] + [Rank].[Rank].&[Supervisor]

select
   {
     [Measures].[Hours] 
   }
   on 0

   , [Rank].[Rank].[Rank].ALLMEMBERS
   on 1
from 
  some_cube

I don't get the [Rank].[Rank].[Middle Managers] appearing in resultset, but if I use

with 

member [Rank].[Rank].[Middle Managers] AS 
           [Rank].[Rank].&[Manager] + [Rank].[Rank].&[Supervisor]

select
   {
     [Measures].[Hours On Stack Overflow] 
   }
   on 0

   , [Rank].[Rank].[Rank].ALLMEMBERS + [Rank].[Rank].[Middle Managers]
   on 1
from 
  some_cube

I do get it.

But I was under the impression that ALLMEMBERS includes calculated members. Can anyone see what I'm doing wrong please?

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1 Answer 1

up vote 1 down vote accepted

Your naming is a bit confusing ([Rank].[Rank].[Rank] vs [Rank].[Rank] usage); you might try (notice the extra [Rank] in the name):

with member [Rank].[Rank].[Rank].[Middle Managers] AS 
           [Rank].[Rank].&[Manager] + [Rank].[Rank].&[Supervisor]

[edit] is attaching your calc. member into a member that is the level above [Rank] working:

with member [Rank].[Rank].&[Boss].parent.[Middle Managers] AS 
           [Rank].[Rank].&[Manager] + [Rank].[Rank].&[Supervisor]
share|improve this answer
    
So you're saying I need to define the calculated member on the level and not on the hierarchy? If so I get this Query (3, 1) The '[Rank]' member was not found in the cube when the string, [Rank].[Rank].[Rank].[Middle Managers], was parsed. It appears the calculated members need to be defined on the hierarchy. –  Preet Sangha Sep 17 '12 at 4:27
    
Then [Rank].[Rank].[Rank].ALLMEMBERS is right; it gives you all the members in the [Rank] * level * ; your calc. member has not been created in this level. –  Marc Polizzi Sep 17 '12 at 4:53
    
To an extent you're right - thanks for all your help. I just tested [Rank].[Rank].ALLMEMBERS and yes it does have the members, unfortunetly it also has [Rank].[Rank].[All] but that's ok I can eliminate that (and the others I wanted to eliminate) with a calculated SET! Thanks again! –  Preet Sangha Sep 17 '12 at 5:04

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