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I want to find the difference between the current value and the previous value and display the table as a % difference between them.

The code to find the difference between the 2 consecutive rows was:

abcfin <- abcfin %>% mutate_if(is.numeric, list( ~ . - lag(.)))

The code that I have used to get the result is:

asdfg <- abcfin %>% mutate_if(is.numeric, list(ifelse(lag(.)!=0,(. - lag(.))*100/ lag(.)), 0))

However, I am getting the following error:

Error in -.Date(left, right) : can only subtract from "Date" objects In addition: Warning message: In matrix(if (is.null(value)) logical() else value, nrow = nr, dimnames = list(rn, : data length [5974] is not a sub-multiple or multiple of the number of rows [543]

Kindly let me know the right code statement that I can use to obtain the required results:

enter image description here

  • 2
    There is a ~ missing in the second expression abcfin %>% mutate_if(is.numeric, list(~ ifelse(lag(.)!=0,(. - lag(.))*100/ lag(.)), 0)) – akrun Jun 18 at 20:19
  • I am getting an error saying: Error: not expecting this Call rlang::last_error() to see a backtrace – Ameya Bhave Jun 18 at 20:30
  • As @IceCreamToucan mentioned in the comments, please check the brackets of ifelse – akrun Jun 18 at 20:32
  • 1
    Yeah should be mutate_if(is.numeric, list(~ ifelse(lag(.) != 0, (. - lag(.)) * 100 / lag(.), 0))). The 0 was not inside the ifelse call – Calum You Jun 18 at 20:33
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Here's another way that might be easier to follow if you're new to R:

library(tidyverse)

date <- seq(as.Date("2015/1/1"), by = "month", length.out = 6)
var1 <- c(723, 983, 437, 732, 173, 537)
var2 <- c(753, 769, 352, 853, 143, 485)
df <- data.frame(date, var1, var2) 
df <- df %>% mutate(var1_prev = lag(var1), var2_prev = lag(var2))

df <- df[-1,] #removes unnecessary first row
df <- df %>% mutate(var1_perdiff = (var1 - var1_prev)/var1_prev * 100,
                    var2_perdiff = (var2 - var2_prev)/var2_prev * 100)

as_tibble(df)
# A tibble: 5 x 7
#date        var1  var2 var1_prev var2_prev var1_perdiff var2_perdiff
#<date>     <dbl> <dbl>     <dbl>     <dbl>        <dbl>        <dbl>
#1 2015-02-01   983   769       723       753         36.0         2.12
#2 2015-03-01   437   352       983       769        -55.5       -54.2 
#3 2015-04-01   732   853       437       352         67.5       142.  
#4 2015-05-01   173   143       732       853        -76.4       -83.2 
#5 2015-06-01   537   485       173       143        210.        239. 
  • Thanks! that is easy to understand! – Ameya Bhave Jun 20 at 16:08
  • great! could you please accept the answer if it answered your question. – dbo Jun 21 at 3:05

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