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Would like to calculate percentages for all columns in a concise way. In the resulting data.table or dataframe, each column should sum to 100%.

For example, I tried this code, but I didn't get the result I wanted.

salary <- c(5, 10, 35)
score <- c(10,15,25)
df<-data.frame(salary,score)
lapply(df,function(x) prop.table(table(x)))

The result was not what I wanted:

$salary
x  
       5         10        35 
0.3333333 0.3333333 0.3333333 

$score
x
       10        15        25 
0.3333333 0.3333333 0.3333333 

The actual result I want is a dataframe or data.table as follows (with each number representing the percentage of the column total that the input dataframe or data.table had):

salary  score
.1      .2
.2      .3
.7      .5

I would like to be able to do this easily even for a data.table that has 100 columns.

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  • Please show a small reproducible exmaple and expected output. – akrun Sep 9 '16 at 9:52
  • I made the required edits. Thanks! – Jerry Chi Sep 10 '16 at 4:51
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as.data.frame(lapply(df, function(x) x / sum(x)))

Gives us:

  salary score
1    0.1   0.2
2    0.2   0.3
3    0.7   0.5

The anonymous function transforms a vector of raw values (x) into a vector of proportions. lapply applies this function to every column of df, returning a list. Finally, as.data.frame converts the list back to a data frame.

Alternately, this can be done with the prop.table function you were trying to use originally. The only complication is that prop.table expects an array and not a data frame, so you have to convert from one to the other, and then back again:

as.data.frame(prop.table(as.matrix(df), 2))

Also gives us:

  salary score
1    0.1   0.2
2    0.2   0.3
3    0.7   0.5
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  • Because the OP specifically said he wanted the output in a data frame or data table, not a matrix. Other than that, I don't disagree with your comment. :) – jdobres Sep 10 '16 at 22:37
  • See the setDF or setDT functions, both of which can convert a list to a data.frame/data.table by reference, no copy needed ;-) – MichaelChirico Sep 10 '16 at 22:38
  • Interesting. Didn't know that! – jdobres Sep 10 '16 at 22:39
  • NP. Sorry to come off as rude. I didn't realize your output was a list at first. – MichaelChirico Sep 10 '16 at 22:40
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Thanks to jdobres I figured out a solution using just data.table.

salary <- c(5, 10, 35)
score <- c(10,15,25)
dt<-data.table(salary,score)
output<-dt[,lapply(.SD, function (x) x/sum(x))]
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#d=ncol(df)
#df$per <- with(df, df$col/d*100)
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  • i am usinng this for finding percentages for cloumns. try this – Sahil Desai Sep 9 '16 at 10:28
  • Thanks, but this is not what I was asking. I edited the question to make my request clearer, sorry for not doing that earlier. – Jerry Chi Sep 10 '16 at 4:52

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