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   integg <- function(t,a,b){  

   integrate(Vectorize(function(x){55}),lower=t-(a+b),upper=t-a)   
   }

I'm having what I think may be a simple problem.

I am integrating a constant over bounds that may vary.

If you were to think of this constant as a function, it only exists for values on the x-axis that are >= 0. I cant just set the lower bound == 0. Because there may be times when the lower bound is some value > 0.

It would probably be best to just write the constant as a function somehow.

A second problem I'm having is that I would like to make that value 55 as an object (x) which I can include as an argument to the function integg()

I am using Vectorize because that's the only way I know how to integrate constants.

share|improve this question
    
I'm not sure I understand what you're doing... In any case, why can't you just set lower=0? (or set b = t-a) Or set lower = ifelse(t - (a + b) < 0, 0, t - (a + b)) Maybe a more complete description of your entire problem will make this portion more clear. –  Justin Aug 29 '12 at 20:24
    
does this make more sense now? –  Doug Aug 29 '12 at 20:42

1 Answer 1

up vote 1 down vote accepted

Why not do exactly as you describe. Add x as an argument to your integg function

integg <- function(t, a, b, intval) {
  u <- t - a
  l <- ifelse(u - b < 0, 0, u - b)
  integrate(Vectorize(function(foo, x) {55}), lower=l, upper=u, x=intval)
}

You could just write your own area calc if the function you're integrating is always constant:

integg2 <- function(t, a, b, intval) {
  u <- t - a 
  l <- ifelse(u - b < 0, 0, u - b)
  intval * (u - l)
}
share|improve this answer
    
this looks good, I was also having trouble running the constant. if it's because it's a function w/i a function. but I defined the constant as an object and used that as the 1st argument in the integral and that still didn't work. –  Doug Aug 29 '12 at 20:52
    
@LucasPinto see my edits. –  Justin Aug 29 '12 at 21:04

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