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I'm trying to update the [Table1].[Field2] with the product of [Table1].[field1] and [Table2].[field2].

Here is my SQL statement so far (I'm getting a "too few parameters expected 3" error)

Update [Table1] Set [Table1].[Field2] = [Table1].[Field1] * [Table2].[Field2];
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  • What is the relationship between [Table2].[Field2] and [Table1] ? – Tim Biegeleisen Sep 19 '16 at 1:36
  • There is a field3 that relates the 2 Tables. The field is unique on table 2 and is short text type. – jony Sep 19 '16 at 1:39
  • Oh: there is no enforced referential integrity. – jony Sep 19 '16 at 1:41
  • can you just print screen your table structure – Beginner Sep 19 '16 at 2:57
  • just did, I edited it into the question. – jony Sep 19 '16 at 3:10
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UPDATE [Table1]
SET [Field2] = [Table1].[Field1] *
    (SELECT [Field2] FROM [Table2] WHERE [Field3] = [Table1].[Field3])
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  • I'll test it now, give me a second. – jony Sep 19 '16 at 1:42
  • Sorry for the wait... I'm still getting the too few parameters error. Since I am new to Access SQL I think I'm doing something wrong, even though I'm not sure what. – jony Sep 19 '16 at 1:55
  • I'm not sure why, but I'm still getting a too few parameters error (expected 2). – jony Sep 19 '16 at 2:25
  • Try it again please. – Tim Biegeleisen Sep 19 '16 at 2:35
  • I updated the question with exact code I'm implementing. Would you please take a look? (I've checked it and rechecked). – jony Sep 19 '16 at 2:39
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Unfortunately Access isn't most RDBMS (my wages would be much higher for a start). :)

You need to perform the joins first:

UPDATE Table1 INNER JOIN Table2 ON Table1.Field3 = Table2.Field3
SET Table1.Field2 = Table1.Field1 * Table2.Field2
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  • I went with a workaround (a slower method for sure, but not sure how much slower): pulling the data into excel spreadsheet columns A and B, autofill column "C" cells with =A1*B1, setting column C.values = column C (to get rid of the formulas and keep the values). That should work while the data is less than ~1.000.000 records long. – jony Sep 19 '16 at 16:42
  • I'll try your solution and mark your answer as the correct solution if it performs as expected. – jony Sep 19 '16 at 16:46

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