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I've modified the question a little bit.

     integg <- function(t,a,b,con,s){   
  u <- ifelse(t - a < 0 ,0, t - a) 
  l <- ifelse(t - (a+b) < 0,0, t - (a+b))  
  s * integrate(Vectorize(function(foo,x){x}),lower=l,upper=u,x=con)      
}

This equation will give me an integral value, and I have 3 arrays: As, Bs, and Ss which represent arguments 'a','b', and 's'.

Let's say the arrays are as follows:

As <- seq(from=50,to=60,by=0.01)
Bs <- seq(from=130,to=140,by=0.01)
Ss <- seq(from=0.0001,to=0.01,by=0.0001)
# con is a constant
con <- 55
# I have 7 values for t and I want to do one at a time, 
# so for this example I have t=360
t <- 360
# although I'll want to do also for my other values c(0,20,40,60,120,240)

My final goal is to test every combination of these arrays As, Bs, and Ss w/ each other. I've been trying to use outer and have been unsuccessful w/ looping afterwards.

# first make one array w/ all possible combinations
all_poss <- outer(As,Bs,paste)
# now include the third array
all_poss <- outer(all_poss,Ss,paste)

head(all_poss)
> [1] "50 130 1e-04"    "50.01 130 1e-04" "50.02 130 1e-04" 
  [4] "50.03 130 1e-04" "50.04 130 1e-04" "50.05 130 1e-04"


    ### I would have to change my integg function a little bit, to deal w/ the pasted items
      integg2 <- function(t,con,all){  
    a <- strsplit(h,split=' ')[[1]][1]
    b <- strsplit(h,split=' ')[[1]][2]
    s <- strsplit(h,split=' ')[[1]][3]   

    u <- ifelse(t - a < 0 ,0, t - a) 
    l <- ifelse(t - (a+b) < 0,0, t - (a+b))  
    s * integrate(Vectorize(function(foo,x){x}),lower=l,upper=u,x=con)   
}

     ### I would then need to loop integg2() somehow through my list of all possibilities

      all_vals <- sapply(all_poss,integg2)
      # I haven't gotten this to work, but i'm not sure this is 
      # even an efficient way to do what I want

I need some kind of loop here at the end, if anyone has any better ideas of how to combine all possibilities of these arrays and a more efficient way of looping let me know.

Any help would be great!

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1 Answer

up vote 1 down vote accepted

The function expand.grid will create a data frame with all combinations of the vector/factor you feed into it. Another way is to use joins with `data.table.

integrate returns a list; you probably want the value by using $value.

I also changed the variable names for personal preference (and I dislike having name overlaps with built-in functions like t).

av <- seq(from=50,to=60,by=0.01)
bv <- seq(from=130,to=140,by=0.01)
sv <- seq(from=0.0001,to=0.01,by=0.0001)
tv <- c(seq(from=0,to=60,by=20),seq(from=120,to=360,by=120))
con <- 55

##method 1: using built-in functions (warning: can be slower and memory-intensive)
cmb <- expand.grid(list(av=av,bv=bv,sv=sv,tv=tv))
cmb <- within(cmb,{
    u <- ifelse(tv - av < 0 ,0, tv - av)
    l <- ifelse(tv - (av+bv) < 0,0, tv - (av+bv))
    value <- sv * mapply(function(...){integrate(...)$value},
        lower=l,upper=u,
        MoreArgs=list(f=Vectorize(function(x,constant){constant}),constant=con))
})

##method 2: using package data.table (for speed and efficient memory use)
dt.av <- data.table(av,k=1,key="k")
dt.bv <- data.table(bv,k=1,key="k")
dt.sv <- data.table(sv,k=1,key="k")
dt.tv <- data.table(tv,k=1,key="k")
cmb <- dt.av[dt.bv[dt.sv[dt.tv]]] #joins together
cmb[,u := ifelse(tv - av < 0 ,0, tv - av)]
cmb[,l := ifelse(tv - (av+bv) < 0,0, tv - (av+bv))]
cmb[,value:=mapply(function(...){integrate(...)$value},
    lower=l,upper=u,
    MoreArgs=list(f=Vectorize(function(x,constant){constant}),constant=con)
)]
share|improve this answer
    
maybe i'm missing this, but there is no argument for 'con' in integg2() –  Doug Sep 3 '12 at 15:08
    
If the function integg2 cannot find the variable con in its immediate environment, it will look to the main environment for a function value. So defining con outside the function should work. Alternatively, add con as an argument of the function. –  Blue Magister Sep 3 '12 at 15:10
    
@LucasPinto I have changed the function to include the constant as an argument. I have also fixed the expand.grid call so that the data frame columns are named correctly. –  Blue Magister Sep 3 '12 at 15:15
    
Ya, i did that too. not a big deal –  Doug Sep 3 '12 at 15:17
    
I'm not quite sure how you got this to run, if I don't run tv as single numbers, the data frame is too large –  Doug Sep 3 '12 at 18:00
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