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Say you have this matrix:

m1 = matrix(0, 5, 5, dimnames = list(c("A", "B", "C", "D", "E"), c(1, 2, 3, 4, 5)))
m1[1,] = c(0,50,-10,0,10)
m1[2,] = c(0,0,0,10,50)
m1[3,] = c(0,0,10,100,4)
m1[4,] = c(40,40,100,1,0)
m1[5,] = c(1,0,100,0,60))

And v1 is a vector of thresholds:

v1 = matrix(0, 1, 5, dimnames = list(c("thresholds", c(1, 2, 3, 4, 5)))
v1[1,] = c(10,20,10,50,90)

I want to do this in R and using vectorization rather than loops... First a function that takes any matrix:

#m is a matrix, #v is a vector of therholds
limitme <- function(x, v){
    y <- matrix(0, ncol(x), nrow(x)) #matrix of 0s same size as x
    for (i in 1:norow(x)){
        for (j in 1:nocol(x){
            if (x[i,j] >= v[j]) {
                y[i,j] = 100 #this could be whatever but I am choosing 0 and 100
                }
            elif (x[i,j] < v[j]) {
                y[i,j] = 0 #this could be whatever but I am choosing 0 and 100
                }
        }
    }
return(y)
}
share|improve this question
    
Maybe you should see if your code runs before posting. –  BondedDust Nov 30 '13 at 2:40
    
Sorry, I am not the best R-coder, I just used a logical example so someone smart like you understands me. –  StudentOfScience Nov 30 '13 at 3:17

1 Answer 1

up vote 1 down vote accepted
m1 <-structure(c(0, 0, 0, 40, 1, 50, 0, 0, 40, 0, -10, 0, 10, 100, 
100, 0, 10, 100, 1, 0, 10, 50, 4, 0, 60), .Dim = c(5L, 5L), .Dimnames = list(
    c("A", "B", "C", "D", "E"), c("1", "2", "3", "4", "5")))
v1<-structure(c(10, 20, 10, 50, 90), .Dim = c(1L, 5L), .Dimnames = list(
    "thresholds", c("1", "2", "3", "4", "5")))
#---------------------
> v1
            1  2  3  4  5
thresholds 10 20 10 50 90

You can use the sweep operator to apply a different threshold for each column:

sweep(m1, 2, v1['thresholds',], ">")
      1     2     3     4     5
A FALSE  TRUE FALSE FALSE FALSE
B FALSE FALSE FALSE FALSE FALSE
C FALSE FALSE FALSE  TRUE FALSE
D  TRUE  TRUE  TRUE FALSE FALSE
E FALSE FALSE  TRUE FALSE FALSE

And:

> sweep(m1, 2, v1['thresholds',], ">")*100
    1   2   3   4 5
A   0 100   0   0 0
B   0   0   0   0 0
C   0   0   0 100 0
D 100 100 100   0 0
E   0   0 100   0 0

You can use a matrix of logical to choose from two alternatives. (Might be more interesting, i.e. difficult, to choose between multiple intervals. Would probably need to use apply with findInterval.) Here I'm choosing between "A" and "B" but it could have been bweteen numeric values:

matrix( c("A", "B")[ 1+sweep(m1, 2, v1['thresholds',], ">") ], nrow=nrow(m1) )
     [,1] [,2] [,3] [,4] [,5]
[1,] "A"  "B"  "A"  "A"  "A" 
[2,] "A"  "A"  "A"  "A"  "A" 
[3,] "A"  "A"  "A"  "B"  "A" 
[4,] "B"  "B"  "B"  "A"  "A" 
[5,] "A"  "A"  "B"  "A"  "A" 
share|improve this answer
    
Very cool and multiple examples! thank you. –  StudentOfScience Nov 30 '13 at 3:16

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