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 don't know if anyone has had any issues with Rprovider and the TTR package. I am currently trying to use the RSI indicator from TTR however each time I call the function, I get the following error:

Additional information: Error in TTR::RSI(price = fsr_9396_17, n = 2) :

could not find function "try.xts"

My code that I am running is below:

let times=  [ "Input"=>timeser
              "RSI2"=>R.RSI(timeser,80).GetValue<Series<_, double>>()] |> frame

If I change RSI to rollmeans then the code works perfectly. If anyone has any experience with solving this problem would be great if they could help.

Thanks.

share|improve this question

1 Answer 1

up vote 3 down vote accepted

It seems that the RSI function only works if the xts package is imported before the call. I'm not entirely sure if this is an R provider bug or some non-standard thing in the RSI function, but you can workaround it by explicitly calling library(xts) before:

// Add this to make the following code work
R.eval(R.parse(text="library(xts)"))

// Very basic call to RSI that now works
let timeser = series [ for s in 0.0 .. 100.0 -> DateTime.Now.AddMinutes(s) => s ]
R.try_xts(timeser)
R.RSI(timeser,80)
share|improve this answer
1  
Could you just load the TTR package since it Depends on xts? –  GSee Aug 9 '14 at 14:04
    
Yes, calling library(TTR) apparently works too. I think the R provider should be doing that behind the scenes (this usually works), but it does not seem to work in this case for some reason... I logged this here: github.com/BlueMountainCapital/FSharpRProvider/issues/121 –  Tomas Petricek Aug 9 '14 at 14:10
    
I would be surprised if almost all TTR functions work if library(TTR) hasn't implicitly or explicitly been called, since TTR makes extensive use of xts internally. –  Joshua Ulrich Aug 9 '14 at 14:38
    
Thanks that has worked –  user3623025 Aug 9 '14 at 15:39

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.