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I am new user in R. I have two vectors a and b. I want to find that which elements of b has the global maximum value of function y = 2bin each interval of vector a. For example

    a = c(1, 3, 6, 7)
    b = c(1.1, 1.8, 2.3, 4.5, 6.8, 7.9, 3.3)

means that 1.1, 1.8, 2.3 is between 1 and 3, but which of them has the maximum value of function y, and so on...

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Sorry, but this isn't clear. Could you expand a bit on your intended result? Do you just want to get the maximum value of b in each interval as defined by a? I'm lost where y=2b comes into this though. –  thelatemail Apr 4 '13 at 23:12
    
I want to know which element of b has the maximum value of functio y in each interval of a. It means that because y = 4.6 at 2.3 in the first interval of a, so 2.3 is my desire result for first interval and the similar method for the next intervals. –  rose Apr 4 '13 at 23:41

1 Answer 1

up vote 2 down vote accepted

Use cut to figure out how to cut b at break points provided by a, then split to make a list, one per interval, and finally sapply ask the question on each interval

> sapply(split(b, cut(b, a)), function(x) x[which.max(2*x)])
(1,3] (3,6] (6,7] 
  2.3   4.5   6.8

This still works if one of the intervals has zero values

b <- c(1.1, 1.8, 6.8, 7.9)
res <- sapply(split(b, cut(b, a)), function(x) x[which.max(2 * x)])

where the return is now a list with the entry numeric() for the interval with zero values. The result res could be simplified with something like

> res[sapply(res, length) == 0] <- NA
> unlist(res)
(1,3] (3,6] (6,7] 
  1.8    NA   6.8 

Alternatively, the interval can be removed before searching for the maximum, split(b, cut(b, a), drop=TRUE).

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If I have numeric() in one of the interval, so I can not calculate the function y, so how can I fix this, because sometime with different data sets I got no value in some intervals. –  rose Apr 5 '13 at 3:40
    
@rose tried to suggest solutions, but consider editing your question to illustrate the problem and hoped-for solution. –  Martin Morgan Apr 5 '13 at 12:00
    
Thank you for your good reply. –  rose Apr 5 '13 at 22:56

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