Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a list of character matrices and would like to convert two of the columns (lat, lon) to factor. I've tried using lapply for this and it works, but it also reshapes my data frames. I've tried using as.factor two ways: one on just the two desired columns (not good, returns all other columns as NA) and one on the entire data frame but reshaping occurs in both instances. I then tried to melt my list of matrices back to the original, desired shape, but thought that it might be better to not create the original problem rather than trying to fix it after the fact. Any ideas on how to convert to factor without the reshaping occurring?

Attempt on just the cols:

ix <- 5:6
mytest[ix] <- lapply(mytest[ix], as.factor)

Attempt on whole df

lapply(mytest, as.factor)

sample data:

list(structure(c("study1", "study1", "study1", "study1", "study1", 
"study1", "study1", "study1", "study1", "study1", "study1", "study1", 
"study1", "study1", "study1", "58", "58", "58", "58", "58", "58", 
"58", "58", "58", "58", "58", "58", "58", "58", "58", "2011-07-13", 
"2011-07-13", "2011-07-13", "2011-07-13", "2011-07-13", "2011-07-13", 
"2011-07-13", "2011-07-13", "2011-07-13", "2011-07-13", "2011-07-13", 
"2011-07-13", "2011-07-13", "2011-07-13", "2011-07-13", "321", 
"329", "323", "324", "61", "326", "6", "60", "49", "10", "7", 
"59", "57", "56", "11", "32.884720435", "32.8841969254545", "32.8835599674286", 
"32.88419565", "32.8837771221667", "32.88411147", "32.883244695", 
"32.8837003266667", "32.8838778530086", "32.8853723146154", "32.8027296698536", 
"32.9164754136842", "32.8853777533333", "32.8854051", "32.802755201875", 
"-117.24062533", "-117.240416713636", "-117.240532619714", "-117.24070002", 
"-117.24038866075", "-117.24022087", "-117.240140015", "-117.239834913333", 
"-117.240522195673", "-117.240133633077", "-117.210527201581", 
"-117.236141991053", "-117.24063566", "-117.23989078", "-117.210382870833"
), .Dim = c(15L, 6L), .Dimnames = list(NULL, c("study", "ID", 
"locDate", "locNumb", "meanLat", "meanLon"))), structure(c("Study2", 
"Study2", "Study2", "Study2", "Study2", "Study2", "Study2", "Study2", 
"Study2", "Study2", "Study2", "Study2", "Study2", "Study2", "59", 
"59", "59", "59", "59", "59", "59", "59", "59", "59", "59", "59", 
"59", "59", "2011-07-12", "2011-07-12", "2011-07-12", "2011-07-12", 
"2011-07-12", "2011-07-12", "2011-07-12", "2011-07-12", "2011-07-12", 
"2011-07-12", "2011-07-12", "2011-07-12", "2011-07-12", "2011-07-12", 
"429", "418", "422", "432", "430", "426", "420", "354", "67", 
"419", "425", "427", "421", "428", "32.86543857", "32.867004565", 
"32.8694241808955", "32.8651107616667", "32.868857725", "32.8693627126536", 
"32.8696329253571", "32.86955278", "32.869014345", "32.8692111971429", 
"32.8694814566667", "32.8696187847619", "32.8698972233333", "32.868283279", 
"-117.254194355", "-117.25283091", "-117.25050148", "-117.254406255417", 
"-117.25133879", "-117.235585179972", "-117.250467514464", "-117.25014399", 
"-117.25006813", "-117.235456126857", "-117.235959423333", "-117.250773722857", 
"-117.250450876667", "-117.2512085715"), .Dim = c(14L, 6L), .Dimnames = list(
NULL, c("study", "ID", "locDate", "locNumb", "meanLat", "meanLon"
    ))))
share|improve this question
    
mytest is not a data frame but a list including two matrices. Do you want to apply the transformation to both matrices? – Sven Hohenstein Dec 2 '13 at 21:07
    
@Sven Hohenstein. Whoops, didn't realize that. It explains why everything is in the same mode. I'm still unsure of how to fix the problem though. – Misc Dec 2 '13 at 21:11
up vote 1 down vote accepted

You can transfrom the list of two matrices with

lapply(mytest, as.data.frame)

The result is a list of two data frames. All of their columns are factors.

share|improve this answer
    
It works but wow, I should have been able to figure that out. Thanks so much @Sven! – Misc Dec 2 '13 at 21:15
    
..looking at the data it seems unnecessary to have the DFs in a list. I'd put em all in a single DF.. make your life easier imho. – Stephen Henderson Dec 2 '13 at 21:25
# something  <- your data

The problem is that you're not dealing with data frames:

sapply(something, class)

So you need to convert your data into actual data frames:

something2 = lapply(something, function(x) as.data.frame(x, stringsAsFactors = F))

Note, that if you don't mind that your other variables will be also converted into factors, then you just leave out the stringsAsFactors part, and you're done. I assumed however, that you wanted to keep the other variables as characters. Then convert only the variables you want:

for (i in 1:length(something2)) {
  something2[[i]]$meanLat = factor(something2[[i]]$meanLat)
  something2[[i]]$meanLon = factor(something2[[i]]$meanLon)
}

so now the two variables were converted to a factor, let's check the first one:

str(something2[[1]])
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.