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I have a table of 5000 records with a date column.

How do I find the average of those dates. I've tried AVG(datefield), but it says Operand data type datetime is invalid for avg operator

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33

If you want to average date only:

SELECT CAST(AVG(CAST(datefield AS INT)) AS DATETIME) FROM dates;

And if you want to consider time:

SELECT CAST(AVG(CAST(datefield AS FLOAT)) AS DATETIME) FROM dates;

See fiddle to test.

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    I receive ` Explicit conversion from data type date to int is not allowed.` – Fka Feb 1 '16 at 20:01
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    @Fka: Your table is using type DATE and not DATETIME as in this example. I suppose you would need to convert it to DATETIME first. – Francis P Apr 8 '16 at 14:27
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    How can it be done with a DateTime2 Type? The same Cast generates an "Explicit conversion from data type datetime2 to float is not allowed." error. – Tom Jul 7 '17 at 19:51
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    If your table is using a date instead of a datetime, this works but looks even crazier: SELECT CAST(CAST(AVG(CAST(CAST(dateColumn AS DATETIME) AS INT)) AS DATETIME) AS DATE) – Scott Chapman Apr 19 '20 at 22:13
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CONVERT(DATETIME, AVG(CONVERT(FLOAT, datefield))) as [AverageDate] 
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For those of you getting a conversion error (can't convert date to int or float)... Here's a simple solution using datediff and dateadd

SELECT 
DATEADD(DAY, AVG(DATEDIFF(DAY, '1900-01-01', datefield)), '1900-01-01') AS [AverageDate]
FROM dates;

Note that the January 1st 1900 date is arbitrary, it just has to be the same in both spots.

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I made this and I hope it helps others in the future! SQL stinks for not making this easier.

Declare @Day as int;
Declare @Month as int;
Declare @Year as int;
Declare @Date as varchar(50);
SET @Day = (SELECT AVG(DAY(Column_name)) FROM Table_Name)
SET @Month = (SELECT AVG(MONTH(Column_name)) FROM Table_Name)
SET @Year = (SELECT AVG(YEAR(Column_name)) FROM Table_Name)
SET @Date =  CAST(@Day as varchar) +'-' + CAST(@Month as varchar) + '-' + CAST(@Year as varchar);
SELECT CONVERT(datetime2,@Date,103)

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