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Here is my function. It takes certain values on [-5,-3] and [3,5] and 0 elsewhere. The function is symmetric around the origin.

f<-function(x){
    y=0 
    if (x>=-5 && x<=-3){
        y=3*(1-(x+4)^2)/8
    }
    if (x>=3 && x<=5){
        y=3*(1-(x-4)^2)/8
    }
    return(y)
}

Okay so I used the function sapply (bins, f)

where bins = seq(-5,5,by=0.05). This worked fine!

but when I tried to do f(bins), I got this ridiculous answer. It was correct for the [-5,-3] range.

My guess for this is that when the function f checked the first if condition, it checked it only for the first value of the bins vector, so for (-3,5] range, it incorrectly used the formula only intended for [-5,-3].

I am trying to get a way to draw a curve for these points, but when I used curve function, the curve is drawn using the wrong values we would get by using f(bins)

Can someone please tell me how to fix this?

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Your guess is correct. It would be clear if you used & rather than && above (a warning would be generated by the if statements). Note that you must use & for the ifelse solution below. –  Matthew Lundberg Nov 24 '12 at 19:32

2 Answers 2

up vote 6 down vote accepted

You would have to Vectorize the function f to get it to apply over a vector:

f = Vectorize(f)
print(f(bins))

Note that you could have also just used curve with sapply:

curve(sapply(x, f), from=-5, to=5)

Finally, if you wrote the function with ifelse like so:

f = function(x) {
    ifelse(x >= -5 & x <= -3, 3*(1-(x+4)^2)/8, ifelse(x>=3 & x<=5, 3*(1-(x-4)^2)/8, 0))
}

That would allow it to work on vectors without needing Vectorize.

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I was just about to post the ifelse solution. Yours has an error - the last 'else' value should be 0. –  Matthew Lundberg Nov 24 '12 at 19:21
    
Quite right: fixed –  David Robinson Nov 24 '12 at 19:22
    
thanks a lot guys. –  Lost1 Nov 24 '12 at 19:25
    
@DavidRobinson a quick additional question, maybe I should start a new post. would you be tell me how to overlay the plot of a function (like this one) on a histogram. I simulated from this distribution I just wrote up there and would like a graphical overlay of the pdf. –  Lost1 Nov 24 '12 at 19:29
1  
Include the add=TRUE argument to curve –  David Robinson Nov 24 '12 at 19:31

It would be a lot faster to write the function so it were entirely vectorized:

f <- function(x){  0 + (x >=-5 & x <= -3)*(3*(1-(x+4)^2)/8) +
                   + (x >= 3 & x <= 5)*( 3*(1-(x-4)^2)/8) }

And from the symmetry further simplification is possible (I think):

f <- function(x){  0 + ( abs(x) <= 5 & abs(x) >= 3)*( 3*(1-(abs(x) -4)^2)/8) }
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1  
This is very close to the ifelse solution, but I find it easier to read. –  Matthew Lundberg Nov 25 '12 at 0:29
    
@DWin thanks a lot! –  Lost1 Nov 26 '12 at 0:20

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