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I have two data frame of the following type:

#  ProbeName   Tglult
#1  PDKT_001       NA
#2  PDKT_002       NA
#3  PDKT_003 676.2108
#4  PDKT_004       NA
#5  PDKT_005 724.9720
#6  PDKT_006       NA

# ProbeName    Pglult
#1  PDKT_001        NA
#2  PDKT_002        NA
#3  PDKT_003  648.9933
#4  PDKT_004        NA
#5  PDKT_005        NA
#6  PDKT_006   15.0673

I want to see which ones have the same ProbeName with a value in the second column (I don't mind which is this value). Or which ones doesn't. So this should be the expected result:

# [1] "PDKT_003" #Both data frames have a values for this row
#With another option get the ones which are in df1 and not df2
# [1] "PDKT_005"
#With another option get the ones which are in df2 and not in df1
# [1] "PDKT_006"

How can this be done?

At first I thought that merge would do and tried:

#Which are the ones in common and the ones in the df2 that are not in df1
probe <- merge(x=df2[![,2]),], y=df1[![,2]),],
by.x="ProbeName", by.y="ProbeName", all.x=TRUE) 
probe[, 1]
# [1] PDKT_003  PDKT_006

#The ones in common
probe2 <- merge(x=df2[![,2]),], y=df1[![,2]),],
by.x="ProbeName", by.y="ProbeName")
probe2[, 1]
# [1] PDKT_003

#The ones in common
probe3 <- merge(x=df2[![,2]),], y=df1[![,2]),],
by.x="ProbeName", by.y="ProbeName", all.x=TRUE) 
probe3[, 1]
# [1] PDKT_003  PDKT_005

But I think there is be a better way that now matching

 common <- match(probe2[,1], probe3[,1])

I don't know if I missed something or anything (I've been a while around this and something might be wrong)

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1 Answer 1

up vote 0 down vote accepted

Assuming that - as provided in your example - every ProbeName is unique and ordered and occurs at the same row for both data frames:

> d1 <- data.frame(a=1:6, v=c(NA,NA,1,NA,1,NA))
> d2 <- data.frame(a=1:6, v=c(NA,NA,1,NA,NA,1))

> !$v) & !$v)

> d1[!$v) & !$v),"a"]
[1] 3

> d1[!$v) &$v),"a"]
[1] 5

> d1[$v) & !$v),"a"]
[1] 6
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Regarding (already deleted question by Llopis): I guess it will work, when you "un-factor" the strings in your data frame or keep them from being interpreted as factors by adding stringsAsFactors = FALSE in data.frame(...) or by simply leaving out the (redundant) string parts in ProbeName and store those as integers. –  Raffael Nov 20 '13 at 15:13
It was a silly mistake of the $v. Thanks! If you add some comments to the code it will be a bit easier for further people. –  Llopis Nov 20 '13 at 15:15
no, I think the code is in this case truly sufficiently self-explanatory. –  Raffael Nov 20 '13 at 15:17

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