I have a reactive dataframe as following:

       Apr 2017   May 2017   Jun 2017   Jul 2017   Aug 2017   Sep 2017
zz    0.1937571  0.1840005  0.1807256  0.1959589  0.2039463  0.2016886
aa    0.3518203  0.3634578  0.3670747  0.3676495  0.3680581  0.3657724
bb   0.10651308 0.11548379 0.11572389 0.11272168 0.11361587 0.11503638
cc    0.2481513  0.2579199  0.2623222  0.2673914  0.2579430  0.2550686
dd   0.06641069 0.06741159 0.07305105 0.07373854 0.07043972 0.07304338

I am trying to style the full table based on values(similar to this,eg3). Below is the code I have :

brks <- reactive({
    quantile(intrc_pattern_re(), probs = seq(0, 1, 0.25), na.rm = TRUE)
})

clrs <- reactive({
    round(seq(255, 40, length.out = length(brks()) + 1), 0) %>%
        paste0("rgb(255,", ., ",", ., ")")
})

intrc_pattern_reshape <- reactive ({
    datatable(intrc_pattern_re(),
              options = list(searching = FALSE,
                             pageLength = 15,
                             lengthChange = FALSE)
             ) %>%
        formatPercentage(colnames(intrc_pattern_re()), 2) %>%
        formatStyle(names(intrc_pattern_re()),
                    backgroundColor = styleInterval(brks(), clrs()))
})

But when I do that I get the following error : non-numeric argument to binary operator

Could someone tell me what is that I am doing incorrectly? Thank you. The output for dput(df,"")

structure(list(`Apr 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 2L, `cc` = 4L, 
dd = 1L, Premium = 7L, `ff` = 5L), .Label = c("0.06641069", 
"0.10651308", "0.1937571", "0.2481513", "0.3090870", "0.3518203", 
"0.4697810", "Apr 2017"), class = "factor"), `May 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 2L, `cc` = 4L, 
dd = 1L, Premium = 7L, `ff` = 5L), .Label = c("0.06741159", 
"0.11548379", "0.1840005", "0.2579199", "0.3043959", "0.3634578", 
"0.4719425", "May 2017"), class = "factor"), `Jun 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 2L, `cc` = 4L, 
dd = 1L, Premium = 7L, `ff` = 5L), .Label = c("0.07305105", 
"0.11572389", "0.1807256", "0.2623222", "0.3030102", "0.3670747", 
"0.4766237", "Jun 2017"), class = "factor"), `Jul 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 2L, `cc` = 4L, 
dd = 1L, Premium = 7L, `ff` = 5L), .Label = c("0.07373854", 
"0.11272168", "0.1959589", "0.2673914", "0.2984132", "0.3676495", 
"0.4759238", "Jul 2017"), class = "factor"), `Aug 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 2L, `cc` = 4L, 
dd = 1L, Premium = 7L, `ff` = 5L), .Label = c("0.07043972", 
"0.11361587", "0.2039463", "0.2579430", "0.2970350", "0.3680581", 
"0.4828409", "Aug 2017"), class = "factor"), `Sep 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 2L, `cc` = 4L, 
dd = 1L, Premium = 7L, `ff` = 5L), .Label = c("0.07304338", 
"0.11503638", "0.2016886", "0.2550686", "0.2998945", "0.3657724", 
"0.4909182", "Sep 2017"), class = "factor"), `Oct 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 2L, `cc` = 4L, 
dd = 1L, Premium = 7L, `ff` = 5L), .Label = c("0.07651393", 
"0.11219458", "0.2025043", "0.2479362", "0.2866641", "0.3673334", 
"0.5121613", "Oct 2017"), class = "factor"), `Nov 2017` = structure(c(`zz` = 3L, 
aa = 6L, `bb` = 1L, `cc` = 4L, 
dd = 2L, Premium = 7L, `ff` = 5L), .Label = c("0.10724728", 
"0.15016708", "0.1857769", "0.2280702", "0.2691103", "0.3417920", 
"0.4948308", "Nov 2017"), class = "factor"), `Dec 2017` = structure(c(`zz` = 2L, 
aa = 5L, `bb` = 1L, `cc` = 3L, 
dd = 6L, Premium = 7L, `ff` = 4L), .Label = c("0.08775835", 
"0.1659323", "0.1945492", "0.2304338", "0.2958437", "0.29888712", 
"0.4493300", "Dec 2017"), class = "factor"), `Jan 2018` = structure(c(`zz` = 2L, 
aa = 5L, `bb` = 1L, `cc` = 3L, 
dd = 6L, Premium = 7L, `ff` = 4L), .Label = c("0.08016616", 
"0.1565603", "0.1753247", "0.2134740", "0.2811306", "0.34148205", 
"0.4315794", "Jan 2018"), class = "factor")), row.names = c("zz", 
"aa", "bb", "cc", "dd", 
"Premium", "ff"), class = "data.frame")
  • How is this data referenced in your code? Does intrc_pattern_re() return the data frame you're showing? – divibisan Aug 16 at 19:16
  • @divibisan intrc_pattern() was a mistake. intrc_pattern_re() returns the df which I have mentioned the structure above for. – SNT Aug 16 at 19:21
  • Did you retract your accepted answer? Are you still having problems with this? – divibisan Aug 20 at 14:05
  • @divibisan I actually figured that I was sending a df and not a column for df to get the breaks . I pass the right column from the correct df and it worked fine for me. Thanks your answer. – SNT Aug 20 at 14:07
up vote 5 down vote accepted
+50

The error you're getting: non-numeric argument to binary operator happens when you pass something that's not of type numeric to a binary operator like + or -. For example:

> 'a'+3
Error in "a" + 3 : non-numeric argument to binary operator

You're getting this error from your call to quantile because all the numbers in the data.frame you're passing in as intrc_pattern_re() are incorrectly classified as factors not numeric. If you look at the output of dput, you see that each line says class = "factor"))

Somewhere in quantile is a binary operator that is expecting to receive a numeric and throws the error when it gets a factor.

To solve this, you just need to make each column of the data.frame returned by intrc_pattern_re() into numeric.

If we load your data frame as df:

quantile(x, probs = seq(0, 1, 0.25), na.rm = TRUE)
Error in (1 - h) * qs[i] : non-numeric argument to binary operator

If we convert these factor variables to numeric (note you must first convert to character and then numeric) then it works:

df2 <- df %>%
    dplyr::mutate_if(is.factor, function(x) as.numeric(as.character(x)))

quantile(df2, probs = seq(0, 1, 0.25), na.rm = TRUE)
        0%        25%        50%        75%       100% 
0.06641069 0.15176539 0.25160995 0.34171451 0.51216130

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