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I am practicing with SVM-light on the Iris dataset in R, and I am trying to set up a data.frame to stay organized, rather than do everything with separate arrays.

What I want to do is test to see the different values of regularization parameter on the error rate of the SVM, by training it on different sets of 50 rows and 100 regularization values, and testing it on the remaining data. Since I have to call the SVM interface with a scalar value anyway, I figure it's okay to use a for loop to change the regularization parameter each time.

My problem is trying to keep the data.frame organized. Do I set the row.names to 1:150 (150 irises) and keep two variables reg_param and error t/f? I've tried a couple of things and I keep producing something disorganized with implicit variable names in the frame.

Edit: Maybe this is better on Stack Overflow. I'm not exactly sure where this question lies.

require("klaR") # SVMlight interface
data(iris) # Iris data already present in R

error_first50 <- data.frame(row.names = c("reg_param","error"))
error_next50  <- data.frame(row.names = c("reg_param","error"))
error_last50  <- data.frame(row.names = c("reg_param","error"))

for (regcount in (1:100)) {
    iris_svm_first50 <- svmlight(Species ~ ., data = iris[sample(1:150,50),], 
                            svm.options = paste("-c",regcount))
    predict_first50 <- predict(iris_svm_first50,iris)

    for (trial in 1:NROW(predict_first50$class)) {
        error_first50[regcount] <- predict_first50$class[trial] == 
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migrated from stats.stackexchange.com Jan 31 '13 at 8:29

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I can get something that looks all right by labeling the columns manually after the loops end: colnames(error_first50) <- paste("reg_param =",1:150) But this is clumsy and unsatisfying, and sacrifices some flexibility. One of the things I like about R is the ability to refer to a field/column by name, while at the same time being able to index it by number. This doesn't really fit into either of those. –  Trevor Alexander Jan 31 '13 at 8:42
I'm a little unsure what you are asking about: is it simply the naming issue? The code works OK? svmlight and 'predict` return lists, not data frames (though a data frame is a special case of a list). So there aren't really colnames and rownames for lists: Instead, things are named as tag = value or accessed by indexing in a somewhat different way than for data frames. See ?list and ?"[" If this isn't at all what you are concerned about, please give additional info. –  Bryan Hanson Jan 31 '13 at 10:09
The code runs and gives meaningful data, but the resulting data frame has rows ranging from 1:150 (comparisons between predicted and dataset values) and columns ranging from 1:100 (columns labeled V1-V100 implicitly representing reg_param). This is MATLAB/C-like behavior that I believe is caused by the way I'm trying to index and organize the data. I'm trying to figure out how to start by designing the data frame in a sensible manner and then populate it while sticking to that design. What I have now isn't doing it. –  Trevor Alexander Jan 31 '13 at 10:56
Looks like svmlight returns a list, which is not the same as a data frame. So perhaps initialize some empty lists before the loops with results <- vector("list", 100) instead of using data frames, then write into into them with, for example, iris_svm_first50[[regcount]] <- whatever Untested, since I can't don't have the needed binary to use svmlight. See if you can make that work, then go back to fixing up the names. I think this will address the extra 'dimensions' that, if I understand you correctly, are being generated (you have too many columns, right?) –  Bryan Hanson Jan 31 '13 at 11:08
I'll give it a try tomorrow when I'm more alert. Thanks. –  Trevor Alexander Jan 31 '13 at 11:10

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