Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am using glm() to create a few different models based on the values in a vector I make (h1_lines). I want sapply to return a model for each value in the vector. Instead, my code is currently returning a list of lists where one part of the list is the model. It seems to be returning everything I do inside the sapply function.

train = data.frame(scores=train[,y_col], total=train[,4], history=train[,5], line=train[,6])
h1_lines<- c(65, 70, 75)

models <- sapply(h1_lines, function(x){
                 temp_set<-train
                 temp_set$scores<-ifelse(temp_set$scores>x,1,
                                     ifelse(temp_set$scores<x,0,rbinom(dim(temp_set)[1],1,.5)))

                 mod<-glm(scores ~ total + history + line, data=temp_set, family=binomial)
                                    })

I'd like the code to work so after these lines I can do:

predict(models[1,], test_case)
predict(models[2,], test_case)
predict(models[3,], test_case)

But right now I can't do it cause sapply is returning more than just the model... If I do print(dim(models)) it says models has 30 rows and 3 columns??

EDIT TO ADD QUESTION;

Using the suggestion below code works great, I can do predict(models[[1]], test_case) and it works perfectly. How can I return/save the models so I can access them with the key I used to create them? For example, using the h1_scores it could be something like the following:

predict(models[[65]], test_case))

predict(models[[key==65]], test_case)
share|improve this question
    
Can you provide sample data? train references itself. –  Thomas Jul 1 '13 at 20:26
1  
Also, your function in sapply (which should be lapply, per @Señor O's answer) should probably return something. –  Thomas Jul 1 '13 at 20:28
1  
Technically mod will get returned since it's the last line the braces, but I agree it's better to explicitly mention what's getting returned for readability. –  Señor O Jul 1 '13 at 20:30
    
good point Thomas, i just added the line "return(mod)" using the sapply command and it works identical to lapply now. actually i was trying that before but got confused with r data structures and was trying to access the results with models[1,] when in fact it is models[[1]] –  appleLover Jul 1 '13 at 20:50

1 Answer 1

up vote 6 down vote accepted

You need to use lapply instead of sapply.

sapply simplifies too much. Try:

lapply(ListOfData, function(X) lm(y~x, X))
sapply(ListOfData, function(X) lm(y~x, X))

I don't know exactly the distinction, but if you're ever expect the output of each item of sapply to have extractable parts (i.e. Item$SubItem), you should use lapply instead.

Update

Answering your next question, you can do either:

names(models) <- h1_lines
names(h1_lines) <- h1_lines ## Before lapply

And call them by

models[["65"]]

Remember to use quotes around the numbers. As a side note, naming list items with numbers is not always the best idea. A workaround could be:

models[[which(h1_lines==65)]]
share|improve this answer
3  
sapply tries to use simplify2array when all of the values are of the same length. –  BondedDust Jul 1 '13 at 20:36
    
its ironic that sapply tries to "simplify" but returns a more complicated and "thorough" result than lapply –  appleLover Jul 1 '13 at 20:42
    
senor o, that works great, i updated above with a follow up question –  appleLover Jul 1 '13 at 20:44

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.