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I am writing a function that will take the largest elements in a vector V.Size and output into a matrix N by N+1. My problem is when V.Size is smaller than N*(N+1). When this happens, the matrix starts by going to the top of the vector while I want it to output NAs.

For example:

# vector V.size is
V.size <- c(1,2,3,4,5,6)
# and N is
N <- 2

# then, the output matrix should be

   c1 c2 c3  
r1  6  5  4  
r2  3  2  1

And when N*(N+1) > V.Size, I want V.Size to fill it until V.Size runs out then return NAs instead of starting over.

My attempt to solve this problem is by by searching for when an element is larger than the previous and replacing it with an NA. My attempted solution returns the error:

Error in if (is.na(m)[(i - 1), (y + 1)]) { : argument is of length zero

Here's my code:

# Function Name: one
# Input: V.Size (a vector) and N
# Output: Matrix size N by N+1

# Code:
one <- function(x,y) {
  # sort the data, largest to smallest with N.A. last
  temp <- sort(x, decreasing = TRUE, na.last = TRUE)

  #creating the matrix
  m <- matrix(head(temp, (y*(y+1))), # only takes elements that fit in the matrix
    nrow = y,                     # number of rows = N
    ncol = (y+1),                 # number of columns = N+1
    byrow = TRUE)                 # filling it by row as instructed

  if (length(x) < (y*(y+1))) {    # if V.Size is smaller than the outputted matrix
    for (i in seq_len(y)) {       # for loop for columns 
      for (j in seq_len(y+1)) {   # for loop for rows
        if (m[i, j] > m[i,1]) {   # if the element is larger than the first in the row 
          m[i, j] = NA            # return NA
        }

# HERE IS WHERE THINGS FAIL:
        if (is.na(m)[(i-1), (y+1)]) { # if the last element in the previous row is NA 
         m[i, ] = NA                  # make current row NA
        }
      }
    }
  }

  # print the output
  m
}

# creating dummy data
V.Size <- c(1:10)
# choosing a dummy N
N = 5

one(V.Size, N)

I get the error: Error in if (is.na(m)[(i - 1), (y + 1)]) { : argument is of length zero

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2  
I think you should elaborate your first line (as to what you are actually trying to do). That is, explain how you get from a n element vector to n by n+1 matrix with an example. You may get better suggestions / answers. –  Arun Jun 17 '13 at 6:52
    
Sir, I may have explained poorly, but my element vector is V.Size. I want to take V.Size and sort it, outputting it in a matrix form. –  user2492310 Jun 17 '13 at 6:56
    
what's the logic to sort a vector into a matrix? Explain us your thought process. Show with an example how you get from a vector to a matrix. It's hard, if not impossible, to know what you think. Your question at the moment is "too localised", I'd say (finding bug(s) in your code). –  Arun Jun 17 '13 at 6:58
    
Added an edit with what I am trying to accomplish. Let me know if it doesn't make sense. –  user2492310 Jun 17 '13 at 6:59
    
I don't know how it gets to 6:1. What's the logic? What happens when N=3? Explain us how you get from 1:6 to 6:1 when N = 2. Not show us, but explain. –  Arun Jun 17 '13 at 7:05
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2 Answers

up vote 1 down vote accepted

How about this?

V.size <- 1:6
N <- 3

matrix(sort(V.size, decreasing=TRUE)[1:(N*(N+1))], nrow=N, byrow=TRUE)
     [,1] [,2] [,3] [,4]
[1,]    6    5    4    3
[2,]    2    1   NA   NA
[3,]   NA   NA   NA   NA
share|improve this answer
    
+1 Using "invalid" indexes is a nice idea. –  Sven Hohenstein Jun 17 '13 at 7:21
    
@Arun Perfect, Exactly what I wanted. Thank you very much for not only spending time answering but also figuring out the question. –  user2492310 Jun 17 '13 at 7:21
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I think the problem is in first time run of the loop. You shouldn't check for the condition when loop runs for first time. i.e. when i-1 = -1 or i=1 then no check. There whould no previous member for the first time run!!!

share|improve this answer
    
Thank you for your response. When I create a matrix and search m[0,1] I get an output: integer(0). This led me to believe the first row would not be an issue. –  user2492310 Jun 17 '13 at 7:01
    
What if at start i=0 and then i-1= -1.... Coz logically index start with 0 and 0-1 = -1 then it can create an error! –  Umais Jan Jun 17 '13 at 7:17
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