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I have a list of object named listed. Each one has different data that I want to merge into one object called result, created before. I created a loop where I would like to merge all the data. But when I want to put the object inside the function it doesn't work

for (l in 1:length(listed)){
       result <- merge(result, listed[[l]], by.x="GOterm", by.y="GO.ID", all=TRUE) 
    }

While if I used instead of the the object inside

listed[[l]]

data

result <- merge(result, data, by.x="GOterm", by.y="GO.ID", all=TRUE) 

It works well.

How can I insert a valid object name for the merge function?

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Welcome to SO ! Your code is not correctly formatted. And, what is the error message if it doesn't work ? –  juba Oct 18 '13 at 10:08
    
Sorry, I don't know how to format it properly, my error message is: Error in fix.by(by.y, y) : 'by' must specify a uniquely valid column –  Llopis Oct 18 '13 at 10:18

1 Answer 1

up vote 0 down vote accepted

The error message is telling you that some of the items in listed do not have a GO.ID column. You can find which ones by doing:

which(!mapply(`%in%`, list("GO.ID"), lapply(listed, names)))

Fix your data and your for loop should work as you intended.


Here is an example:

listed <- list(data.frame(GO.ID  = 1:3, v2 = 4:6),
               data.frame(GO.ID  = 1:3, v2 = 4:6),
               data.frame(GO.id  = 1:3, v2 = 4:6))

which(!mapply(`%in%`, list("GO.ID"), lapply(listed, names)))
# [1] 3

EDIT: Following the comments below, it appears listed is a list of variables names, e.g. listed <- list("data", "data2", "data3"). So the answer should be:

for (l in 1:length(listed)) {
    result <- merge(result, get(listed[[l]]), by.x="GOterm", by.y="GO.ID", all=TRUE) 
}

or nicer:

for (df in mget(unlist(listed))) {
    result <- merge(result, df, by.x="GOterm", by.y="GO.ID", all=TRUE) 
}
share|improve this answer
    
I think I have not expressed well, the data is inside listed, and the only item inside and it have a GO.ID column. Therefore when I apply your line I get this which(!mapply(%in%, list("GO.ID"), lapply(listed, names))) [1] 1 and when I do names(data) I get [1] "GO.ID" "Sort" "Compressed". So it is inside –  Llopis Oct 18 '13 at 11:23
    
Well, this is telling you that the first item inside listed does not look like data. It is missing a GO.ID column. You can do names(listed[[1]] and you will see it... If this is still not answering your problem, please provide the output of str(listed), you could paste it at the bottom of your question. –  flodel Oct 18 '13 at 11:27
    
Of course, because it reads just a character not an object. names(listed[[1]]) NULL That's why I asked if there is a way to insert there an object from a list of objects –  Llopis Oct 18 '13 at 11:32
    
We don't know what listed looks like and how it relates to data. For your current code to work, listed should look like list(data, data, data) but apparently it is not the case. I cannot help more unless you give more info, that's why I ask that you please provide str(listed). –  flodel Oct 18 '13 at 11:38
    
Oh, sorry, I forgot: str(listed) chr "data", thanks for all the help. –  Llopis Oct 18 '13 at 11:42

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