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I have a vector, v, and a vector of intervals, w. I want to find the maximum value of a function, f(x), in each interval. Is there a faster way than following code for finding the result? For example:

v = c(3.5, 2.5, 4, 6.5, 10, 2.3, 1.8, 4.7, 12, 11.5)
w = c(0, 5, 15, 20)
f = function(x){x^2}
> max = unlist(list(sapply(split(v, cut(v, w),drop = TRUE),
               function(v) v[which.max(f(v))])), use.names = FALSE)
> max
[1]  4.7 12.0
share|improve this question
    
Are you not concerned that w defines three sets (one is empty), yet your output is a vector of length 2? Rather, would you consider a list of length 3 as your output? –  flodel Jun 18 '13 at 0:42
    
No, I just need the result without intervals with numeric(). –  rose Jun 18 '13 at 0:47
    
Seems optimzed for me, but you could remove unlist(list( and replace sapply with vapply. One thing to note is that f is being called once for every interval you have. This could be a bottleneck if the intervals get more numerous (and smaller), depending on how f is coded. –  Ferdinand.kraft Jun 18 '13 at 1:22
    
I remove them but I got this error:> max = vapply(split(v, cut(v, w)),function(v) v[which.max(f(v))]) Error in vapply(split(v, cut(v, w)), function(v) v[which.max(f(v))]) : argument "FUN.VALUE" is missing, with no default –  rose Jun 18 '13 at 1:38
    
@rose, you can add the argument FUN.VALUE=numeric(1) to indicate that your function returns a numeric vector of length 1. Just put it after the function. –  Ferdinand.kraft Jun 18 '13 at 14:01

1 Answer 1

up vote 4 down vote accepted

What about findInterval and tapply. findInterval is like cut, but without the overhead of converting to factors

tapply(v,findInterval(v,w),function(x)x[which.max(f(x))])
#   1    2 
#  4.7 12.0

Or if you want the maximum value

tapply(f(v),findInterval(v,w),max)
#    1      2 
# 22.09 144.00

Or you could use the fact that your function is monotonically increasing for all positive values and do.

f(tapply(v,findInterval(v,w),max))

Note that you will need to specify what happens at the boundaries (read the help file)

library(microbenchmark)
     microbenchmark(
        mnel = tapply(v,findInterval(v,w),max),
        flodel = unname(vapply(split(f(v), cut(v, w), drop = TRUE), max, numeric(1L))),
        flodel2 = unname(vapply(split(seq_along(v), findInterval(v, w)), function(i, v, fv)v[i][which.max(fv[i])], numeric(1L), v, f(v))))
#  Unit: microseconds
#   expr     min       lq   median       uq     max neval
#   mnel 260.945 262.9155 264.2265 276.0645 458.670   100
# flodel 331.218 334.3585 336.0580 351.1985 694.715   100
#flodel2 124.998 127.3230 128.5170 137.0505 354.545   100
share|improve this answer
    
How can I remove header form the result? –  rose Jun 18 '13 at 1:43
    
@rose -- unname –  mnel Jun 18 '13 at 1:46
2  
@flodel -- added caveat. –  mnel Jun 18 '13 at 1:47
1  
@rose - you are confused about what you want. You function is monotonically increasing for all positive values, so the maximum value for v within an interval will give the maximum value of f(v). I've given you code to do both. Use which ever you need. –  mnel Jun 18 '13 at 1:57
4  
Try unname(vapply(split(seq_along(v), findInterval(v, w)), function(i, v, fv)v[i][which.max(fv[i])], numeric(1L), v, f(v))) –  flodel Jun 18 '13 at 2:17

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