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I have a dataframe. I'd like to subtract the 2nd column from all other columns. I can do it in a loop, but I'd like to do it in one call. Here's my working loop code:

df <- data.frame(x = 100:101, y = 2:3,z=3:4,a = -1:0,b=4:5)

for( i in 3:length(df) ) {
    df[i] <- df[i] - df[2]
}
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3 Answers 3

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If you need to subtract the columns 3:ncol(df) from the second column

df[3:ncol(df)] <- df[3:ncol(df)]-df[,2]
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  • Perfect. Thank you. I tried that, but didn't have the comma before the 2 so got an error saying the dataframes didn't match.
    – TPM
    Commented Mar 4, 2015 at 15:38
  • 1
    @TPM The df[2] is still a dataframe and the dimensions won't be matching with the other dataset, while df[,2] is a vector and it will do the subtraction for each column of df[3:ncol(df)] by recycling
    – akrun
    Commented Mar 4, 2015 at 15:41
  • great solution. I want to mention that the same approach does not work in a datatable. For example if you use a for loop, and want to subtract one column from several other columns by doing so, the typical syntax .. or with=F doesnt work
    – ghx12
    Commented May 11, 2023 at 21:19
  • @ghx12 You may do setDT(df)[, (3:ncol(df)) := lapply(.SD, \(x) x - colnmsecond), .SDcols = 3:ncol(df)]
    – akrun
    Commented May 12, 2023 at 6:04
5

Another solution using dplyr::mutate_at() function

# install.packages("dplyr", dependencies = TRUE)
library(dplyr)

df <- data.frame(x = 100:101, y = 2:3, z = 3:4, a = -1:0, b = 4:5)
df %>%
  mutate_at(vars(-matches("y"), -matches("x")), list(dif = ~ . - y))
#>     x y z  a b z_dif a_dif b_dif
#> 1 100 2 3 -1 4     1    -3     2
#> 2 101 3 4  0 5     1    -3     2

Update: starting from dplyr 1.0+, it's recommended to use across

df %>%
  mutate(across(c(-matches("y"), -matches("x")), ~ . - y, .names = "{col}_dif"))

Created on 2019-11-05 by the reprex package (v0.3.0)

1
0

This would also work - returns the 9 columns that you subtracted the second one from.

 df = data.frame(matrix(rnorm(100,0,1),nrow = 10))
 df[,-2] - df[,2]
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  • 2
    The OP wants to subtract only from 3:ncol(df) , you may need df[-c(1:2)] Having said that, this is basically the approach used by the solution I posted
    – akrun
    Commented Mar 4, 2015 at 15:45
  • @akrun, good catch, you're right. You would need that to get the same result as the code provided above Commented Mar 4, 2015 at 15:51

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