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I am new to R and I am trying to learn the language. I have been playing around with the Golub (1999) data contained in the multtest package from Bioconductor.

Taking the Golub data as an example, I am trying to select values above 2.4 for the gene "CCND3 Cyclin D3" (found on row 1042) among the "ALL" patients (represented by columns 1 to 27; "AML" patients are represented by columns 28 to 38). This is what I have done:

library(multtest); data(golub)
gol.fac <- factor(golub.cl,levels=0:1, labels= c("ALL","AML"))
x <- golub[1042, gol.fac=="ALL"] > 2.4
golub [1042, x]

The result I get is:

[1] 2.44562 2.76610 2.59385 1.12058

Why am getting the value "1.12058"? I found that "1.12058" is the last (column 38)expression value in row 1042 which belongs to an AML patient.

Can someone tell me the right way to do what I am trying to do? And also explain why I am getting the value of the AML patient?

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2 Answers 2

up vote 4 down vote accepted

Your vector x will be a series of TRUE and FALSE values indicating where, in golub[1042, gol.fac=="ALL"] the value is greater than 2.4 but then you use it to index x <- golub[1042, ] (i.e. across both factors not just AML.

Try this:

golub[1042, gol.fac=="ALL"][x]
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Hi Sean, Thanks for your answer. I tried it and it works but as I am trying to learn R and so, I was wondering if you could explain the syntax of your answer in more detail. What does [x] mean? You said "Your vector x will be a series of TRUE and FALSE values indicating where, in golub[1042, gol.fac=="ALL"] the value is greater than 2.4"...I know and understand this. However, you then said: "but then you use it to index x <- golub[1042, ]"...I looked at my code and I did not write "x <- golub[1042, ]" so I don't quite understand what you mean. Once again, thanks so much for replying. –  user1613628 Aug 22 '12 at 0:01
    
When you use gol.fac=="ALL", you are restricting to the ALL columns (I believe you have 27 of them), so x will only have 27 values. When you write golub [1042, x] you are plugging x into the whole row, equivalent to golub [1042, ][x] and since x only has 27 values, it will be recycled to extend across all columns, selecting some of the values from the AML columns. golub[1042, gol.fac=="ALL"] will restrict to the AML columns and golub[1042, gol.fac=="ALL"][x] will pull out the ones where x is TRUE. –  seancarmody Aug 22 '12 at 10:27
    
Thanks so much for the explanation, Sean...it all makes sense now. –  user1613628 Aug 22 '12 at 14:26

@seancarmody gave you a perfect answer, but I find the paradigm he used a bit less readable (this is purely subjective). Here's my attempt at showing a slightly different way.

golub[1042, which(golub[1042, gol.fac == "ALL"] > 2.4)]

Reading from inside out, we have:

  • Select row 1042 and columns for which gol.fac == "ALL"
  • Find positions of value(s) which which are greater than 2.4 (which() part)
  • Subset golub's line 1042 and take out columns where values are greater than 2.4 (outer most [])
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+1 but do you need the which()? –  Andrie Aug 21 '12 at 11:01
    
No, you don't need it. The two paradigms are equivalent (which subsets based on indices and non-which method selects based on T/F). –  Roman Luštrik Aug 21 '12 at 18:51
    
Hi Roman, thanks for your answer. I did later use which() and it worked...I did it a little different and it is not as succinct as your solution but the general idea is there. However, I still don't know why my original method did not work....especially if you say that I don't need to you which(). Let me get this right, if I had written –  user1613628 Aug 21 '12 at 23:27
    
if I had written golub[1042, golub[1042, gol.fac=="ALL"]>2.4] and not used the which(), it would work too? If that is the case, then it is primarily the same as what I had originally done. Only difference is that I assigned golub[1042, gol.fac == "ALL"] > 2.4 to x and then ask to print the results of golub[1042,x]. I have tried golub[1042, golub[1042, gol.fac=="ALL"]>2.4] but it does not work. It still gives me the value "1.12058" in addition to the correct values "2.44562 2.76610 2.59385". And as I said, the value "1.12058" belongs to the last expression value among the AML patients. –  user1613628 Aug 21 '12 at 23:40
1  
Thanks for replying Roman but Sean's latest reply explains why I am getting the last value "1.12058"...x is being recycled. It makes sense now. –  user1613628 Aug 22 '12 at 14:35

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