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Example Table:

  | A  |      B       
--------------------------
1 | 26 | tom, jerry 
--------------------------
2 | 12 | tom
--------------------------
3 |  6 | jerry, tom, dick

Suppose I have this table. What I am trying to do is to sum up the total of cells in column A where the cell of the same row in column B contains a certain name, for example "tom". However, before the cell in column A is added to the total, it has to be divided by the number of names in column B.

So for example, if I used the name jerry, I would get a total of:

(26/2) + (6/3) = 15

If I used the name tom, I would get a total of:

(26/2) + 12 + (6/3) = 27

Please help! I am thinking that perhaps it might be too complex and I might need to split it up.

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1  
I think tom would total to 27, as it is mentioned in every row... ;-) –  Peter Albert Feb 19 '13 at 13:02
    
d: yeah sorry my mistake –  deniedexitus Feb 19 '13 at 13:47
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2 Answers

up vote 3 down vote accepted

Assuming that the name is in cell C1, this formula will do the job:

=SUM($A$1:$A$3*NOT(ISERROR(SEARCH(C1,$B$1:$B$3)))/(LEN($B$1:$B$3)-LEN(SUBSTITUTE($B$1:$B$3,",",""))+1))

You need to enter it as an array formula, i.e. press Ctrl-Shift-Enter.

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Hey Peter! +1, almost the same as mine...... –  barry houdini Feb 19 '13 at 13:05
    
+ 1 Nice one Peter –  Siddharth Rout Feb 19 '13 at 13:07
    
wow it worked perfectly! i need to read up on array formulas! thank you! –  deniedexitus Feb 19 '13 at 13:45
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List the names in D2 down and then in E2 put this formula and copy down

=IF(D2="","",SUMPRODUCT(A2:A10,ISNUMBER(SEARCH(D2,$B$2:$B$10))/(LEN($B$2:$B$10)-LEN(SUBSTITUTE($B$2:$B$10,",",""))+1)))

That assumes that all names in B2:B10 are separated by commas, so you can get a count of the names in each cell by adding 1 to the number of commas

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+ 1 Simply beautiful :) –  Siddharth Rout Feb 19 '13 at 13:06
    
Also +1 from me - similar to mine, but not an array formula! :-) –  Peter Albert Feb 19 '13 at 13:12
    
thank you for your help! i saw peter's first though so i tried it out first. –  deniedexitus Feb 19 '13 at 13:46
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