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tt_london
Frequent Visitor

Standard Deviation for Unique Values in a Column rather than rowcount

‎09-03-2024 08:35 AM

How can I create a standard deviation for the unique values in a column? The built-in formula calculates it per row number.

 

Sample dataset

Business DateRevenue
01/01/2024100
01/01/2024200
02/01/2024

150

In this case N = 2, not 3.

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ahadkarimi
Solution Specialist
Solution Specialist

‎09-03-2024 12:10 PM

Hi @tt_london, try calculated table and two measures below, and if you encounter any issues, let me know.

 

Create a calculated table:

UniqueBusinessDates = DISTINCT('Table'[Business Date])

Create a measure:

RevenueForUniqueDates = 
SUMX(
    'UniqueBusinessDates',
    CALCULATE(SUM('Table'[Revenue]))
)

Create a measure again:

StdDevUniqueRevenue = 
STDEVX.P(
    'UniqueBusinessDates',
    CALCULATE(SUM('Table'[Revenue]))
)

 

Did I answer your question? If so, please mark my post as the solution! ✔️
Your Kudos are much appreciated! Proud to be a Solution Supplier!

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Message 2 of 3
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ahadkarimi
Solution Specialist
Solution Specialist

‎09-03-2024 12:10 PM

Hi @tt_london, try calculated table and two measures below, and if you encounter any issues, let me know.

 

Create a calculated table:

UniqueBusinessDates = DISTINCT('Table'[Business Date])

Create a measure:

RevenueForUniqueDates = 
SUMX(
    'UniqueBusinessDates',
    CALCULATE(SUM('Table'[Revenue]))
)

Create a measure again:

StdDevUniqueRevenue = 
STDEVX.P(
    'UniqueBusinessDates',
    CALCULATE(SUM('Table'[Revenue]))
)

 

Did I answer your question? If so, please mark my post as the solution! ✔️
Your Kudos are much appreciated! Proud to be a Solution Supplier!

Message 2 of 3
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tt_london
Frequent Visitor
In response to ahadkarimi

‎09-04-2024 04:20 AM

Instead of creating a table, can I use the Unique Days Measure I created before?

 

Unique Days = DISTINCTCOUNT(PNL[Business Date])

If yes, how can I adjust your code accordingly?

 

Message 3 of 3
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