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 have this feature_list that contains several possible values, say "A", "B", "C" etc. And there is time in time_list.

So I will have a loop where I will want to go through each of these different values and put it in a formula.

something like for(i in ...) and then my_feature <- feature_list[i] and my_time <- time_list[i]

then i put the time and the chosen feature to a dataframe to be used for regression

feature_list<- c("GPRS")
time_list<-c("time")
calc<-0

feature_dim <- length(feature_list)
time_dim <- length(time_list)

data <- read.csv("data.csv", header = TRUE, sep = ";")
result <- matrix(nrow=0, ncol=5)
errors<-matrix(nrow=0, ncol=3)

for(i in 1:feature_dim) {
    my_feature <- feature_list[i]
    my_time <- time_list[i]

    fitdata <- data.frame(data[my_feature], data[my_time])

    for(j in 1:60) {

        my_b <- 0.0001 * (2^j)

        for(k in 1:60) {
            my_c <- 0.0001 * (2^k)
            cat("Feature: ", my_feature, "\t")
            cat("b: ", my_b, "\t")
            cat("c: ", my_c, "\n")

            err <- try(nlsfit <- nls(GPRS ~ 53E5*exp(-1*b*exp(-1*c*time)), data=fitdata, start=list(b=my_b, c=my_c)), silent=TRUE)
            calc<-calc+1

            if(class(err) == "try-error") {
                next
            }

            else {
                coefs<-coef(nlsfit)
                ess<-deviance(nlsfit)
                result<-rbind(result, c(coefs[1], coefs[2], ess, my_b, my_c))
            }
    }
} 
}

Now in the nls() call I want to be able to call my_feature instead of just "A" or "B" or somethingh and then to the next one on the list. But I get an error there. What am I doing wrong?

**Note: Though I have put it in the title, this is R that I am implementing it in.

share|improve this question
1  
1. It be helpful if you tell what error you get (maybe copy-paste error message?) 2. There is misspell in your code: data and start argument aren't passed to nls (brace is close too soon) –  Marek Sep 16 '10 at 12:19
    
yeah the code isn't exact as I was just illustrating the problem. Which is that, I cannot use the my_feature variable inside the nls call but can only have put "A" in the formula. –  sfactor Sep 16 '10 at 13:34
    
i have put the exact formula now –  sfactor Sep 16 '10 at 13:40
    
What is the structure of your list? If it's a named list, it is easily converted to a data frame, allowing you to use A etc. The data() command in the data.frame looks very strange to me, as that one is used to call builtin datasets. Some runnable sample code and data would be very useful, this way it is impossible to say where the problem is, or even what exactly you're trying to do. –  Joris Meys Sep 16 '10 at 13:44
    
@Joris the actual code is there now, i thought just giving the problem statement wud be alrite. –  sfactor Sep 16 '10 at 14:19

2 Answers 2

up vote 2 down vote accepted

You can use paste to create a string version of your formula including the variable name you want, then use either as.formula or formula functions to convert this to a formula to pass to nls.

as.formula(paste(my_feature, "~ 53E5*exp(-1*b*exp(-1*c*time))"))

Another option is to use the bquote function to insert the variable names into a function call, then eval the function call.

share|improve this answer

I worked with R a while ago, maybe you can give this a try:

What you want is create a formula with a list of variables right?

so if the response variable is the first element of your list and the others are the explanatory variables you could create your formula this way:

my_feature[0] ~ reduce("+",my_feature[1:]) . This might work.

this way you can create formulae that depends on the variables in my_features.

share|improve this answer
    
the function is spelled with a capital (Reduce), very important in R. Next to that, Reduce() applies the function "+", so you can't use it to build a formula. You either get the sume of my_feature[1:] or the notice that you try to apply a non-numeric argument to a binary operator. –  Joris Meys Sep 16 '10 at 13:34

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.