Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

For each row in the matrix "result" shown below

            A   B   C   D   E   F   G   H   I   J      
       1    4   6   3   5   9   9   9   3   4   4
       2    5   7   5   5   8   8   8   7   4   5
       3    7   5   4   4   7   9   7   4   4   5
       4    6   6   6   6   8   9   8   6   3   6
       5    4   5   5   5   8   8   7   4   3   7
       6    7   9   7   6   7   8   8   5   7   6
       7    5   6   6   5   8   8   7   3   3   5
       8    6   7   4   5   8   9   8   4   6   5
       9    6   8   8   6   7   7   7   7   6   6

I would like to plot a histogram for each row with 3 bins as shown below:

samp<-result[1,]
hist(samp, breaks = 3, col="lightblue", border="pink")

Histogram for row 1( 3 bins)

Now what is needed is to convert the histogram frequency counts into an array as follows If I have say 4 bins and say first bin has count=5 and second bin has a count=2 and fourth bin=3. Now I want a vector of all values in each of these bins, coming from data result(for every row) in a vector as my output.

       row1  5 2 0 3

For hundreds of rows I would like to do it in an automated way and hence posted this question.

In the end the matrix should look like

             bin 2-4 bin 4-6 bin6-8 bin8-10
      row 1   5       2       0     3
      row 2
      row 3
      row 4
      row 5
      row 6
      row 7
      row 8
      row 9
share|improve this question
up vote 1 down vote accepted

You could access the counts vector which is returned by hist (see ?hist for details):

counts <- hist(samp, breaks = 3, col="lightblue", border="pink")$counts
share|improve this answer
DF <- read.table(text="A   B   C   D   E   F   G   H   I   J      
1    4   6   3   5   9   9   9   3   4   4
2    5   7   5   5   8   8   8   7   4   5
3    7   5   4   4   7   9   7   4   4   5
4    6   6   6   6   8   9   8   6   3   6
5    4   5   5   5   8   8   7   4   3   7
6    7   9   7   6   7   8   8   5   7   6
7    5   6   6   5   8   8   7   3   3   5
8    6   7   4   5   8   9   8   4   6   5
9    6   8   8   6   7   7   7   7   6   6", header=TRUE)

m <- as.matrix(DF)

apply(m,1,function(x) hist(x,breaks = 3)$count)
# $`1`
# [1] 5 2 0 3
# 
# $`2`
# [1] 5 0 2 3
# 
# $`3`
# [1] 6 3 1
# 
# $`4`
# [1] 1 6 2 1
# 
# $`5`
# [1] 3 3 4
# 
# $`6`
# [1] 3 4 2 1
# 
# $`7`
# [1] 2 5 3
# 
# $`8`
# [1] 6 3 1
# 
# $`9`
# [1] 4 4 0 2

Note that according to the documentation the number of breaks is only a suggestion. If you want to have the same number of breaks in all rows, you should do the binning outside of hist:

breaks <- 1:5*2
t(apply(m,1,function(x) table(cut(x,breaks,include.lowest = TRUE))))
#   [2,4] (4,6] (6,8] (8,10]
# 1     5     2     0      3
# 2     1     4     5      0
# 3     4     2     3      1
# 4     1     6     2      1
# 5     3     3     4      0
# 6     0     3     6      1
# 7     2     5     3      0
# 8     2     4     3      1
# 9     0     4     6      0
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.