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I've been trying to do the following:

  • Sheet1, lookup value A3 in Data
  • Data, check whether the found value has a 1 in column M
    • Yes: Paste the value of column K from Data in column B3 in Sheet1
    • No: Carry on searching through the sheet and display 0 if nothing is found

This is what I have so far, it finds the correct K value, but I need to enter shift+ctrl+enter to get the value ...

=INDEX('TLN Data'!$B$1:$Z$15000; MATCH(1;(A3='TLN Data'!$B$1:$B$15000)*(1='TLN Data'!$M$1:$M$15000);0); 10)

All help is much appreciated!

--

Sheet1

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TLN Data

enter image description here

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2 Answers 2

up vote 1 down vote accepted

You can add an INDEX function to get a version that doesn't need CSE, i.e.

=INDEX('TLN Data'!$B$1:$Z$15000; MATCH(1;INDEX((A3='TLN Data'!$B$1:$B$15000)*(1='TLN Data'!$M$1:$M$15000);0);0);10)

That would be preferable to SUMPRODUCT in some cases, e.g. where the return value is text, or if you have multiple matches and you only want the first.

You can also use LOOKUP like this:

=LOOKUP(2;1/(A3='TLN Data'!$B$1:$B$15000)/(1='TLN Data'!$M$1:$M$15000);'TLN Data'!$K$1:$K$15000)

With that version if there are multiple matches that returns the last

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Neither formula should need "array entry" - what results did you get? –  barry houdini Oct 22 '12 at 14:43
    
Pardon me, some ass in the office set calculations to Manual ... -.- –  CustomX Oct 22 '12 at 14:45

Try using SUMPRODUCT (which you don't need to enter as an array):

=SUMPRODUCT(
    --('TLN Data'!$B$1:$B$15000=A3), 
    --('TLN Data'!$M$1:$M$15000=1),
    'TLN Data'!$K1:$K$15000)

This uses a similar logic to your MATCH formula above:

  1. Return an array of 1's and 0's, where 1 indicates a row where the value in column B equals A3 (the -- converts the array into 1's and 0's - otherwise it contains TRUE/FALSE)
  2. Multiply that array by another array of 1's and 0's, this time with a 1 indicating a row where column M contains the number 1
  3. Finally, multiply that array by all of column K. This results in an array of a bunch of 0's and then one (or more, depending on your setup) values that represent the value in column K where your conditions are met.

EDIT: As this deals with text, the INDEX formula provided by @barryhoudini (which varies from your original just a bit) will do the trick.

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Ha, just as I wanted to edit my original post with what I have now: =INDEX('TLN Data'!$B$1:$Z$15000; MATCH(1;(A3='TLN Data'!$B$1:$B$15000)*(1='TLN Data'!$M$1:$M$15000);0); 10) and this forces me to use that dreadful shift+control+enter combo :P –  CustomX Oct 22 '12 at 14:01
    
@t.thielemans Ha, good old arrays. There is another way to go about it that doesn't involve arrays - I'll update :) –  RocketDonkey Oct 22 '12 at 14:02
    
I found the same too but a slightly bit different and it gave me #VALUE!, yours gives me 0 :s –  CustomX Oct 22 '12 at 14:11
    
@t.thielemans Ha, yeah - just edited :) –  RocketDonkey Oct 22 '12 at 14:11
    
Just seems to give me 0 as response :s –  CustomX Oct 22 '12 at 14:17

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