1

I need to differentiate the column ID (with a letter) if they are different in other variable ("Art" in this case). Like this:

Id<-c("RoLu1976", "RoLu1976", "AlBlKyFy1989", "ThSa1996", "AlBlKyFy1989","ThSa1996")
Art<-c("Econometric Policy Evaluation", "Policy Right", "Rules", "Expectations", "Nonneutrality of money","Expectations")
Yr<-c(1976, 1976, 1989, 1996, 1989, 1996)
df<-data.frame(Id,Art,Yr) 

In the above the Ids should be:

Id             Art                                Yr
RoLu1976a      Econometric Policy Evaluation     1976
RoLu1976b      Policy Right                      1976
AlBlKyFi1989a  Rules                             1989
ThSa1996       Expectations                      1996
AlBlKyFi1989b  Nonneutrality of money            1989
ThSa1996       Expectations                      1996

In this case, column ID are identical in some cases (for example with RoLu1976) but different in "Art" column.

4

Using the dplyr package:

library(dplyr)

df %>%
  arrange(Id, Art) %>%
  group_by(Id) %>%
  mutate(Id2 = if(length(unique(Art)) > 1) paste0(Id, "_", letters[as.numeric(factor(Art))]) else as.character(Id)) %>%
  ungroup %>%
  select(Id=Id2, everything(), -Id)
              Id                           Art    Yr
1 AlBlKyFy1989_a        Nonneutrality of money  1989
2 AlBlKyFy1989_b                         Rules  1989
3     RoLu1976_a Econometric Policy Evaluation  1976
4     RoLu1976_b                  Policy Right  1976
5       ThSa1996                  Expectations  1996
6       ThSa1996                  Expectations  1996
3
  • The ID ThSa1996 has the same value in Art column. It doesn't should have a letter.
    – Daniel
    Oct 7 '16 at 15:32
  • Maybe I didn't understand what you wanted. Shouldn't both rows of ThSa1996 have the same letter, since they both have the same value of Art?
    – eipi10
    Oct 7 '16 at 15:34
  • Cause ThSa1996 have the same value in Art it should not be "marked" with a letter. It should be the same, i.e. ThSa1996. This is what I'm looking for.
    – Daniel
    Oct 7 '16 at 15:37
1

A data.table solution

library(data.table)

setDT(df)
df[, tmp := seq(uniqueN(Art)), by = Id]
df[, addition := ifelse(.N>1, "",letters[tmp]), by = .(Id, Art)]
df[, Id := paste0(Id, addition)]
df[, c("tmp", "addition") := NULL]
1

With for loops:

df$Id <- as.character(df$Id)

# loop through Ids
for(id in unique(df$Id)){
  sub <- unique(df[df$Id == id,])
  # check if this Id needs to be manipulated
  if(nrow(sub) > 1){
    # assign unique Ids
    for(j in 1:nrow(sub)){
      sub[j,1] <- paste0(sub[j,1],letters[j])
    }
    # replace old Ids with new Ids
    df[df$Id == id, ] <- sub
  } 
}
1

With dplyr:

df%>%group_by(Id)%>%
  mutate(nb_art=length(unique(Art)))%>%
  mutate(lettre=letters[seq(nb_art)])%>%
  mutate(Id_letters=paste0(Id,ifelse(nb_art>1,lettre,"")))%>%
  ungroup()%>%
  mutate(Id=Id_letters)%>%
  select(Id,Art,Yr)

This can be shortened but it makes it very clear to read (I hope).

# A tibble: 7 x 3
             Id                           Art    Yr
          <chr>                        <fctr> <dbl>
1     RoLu1976a Econometric Policy Evaluation  1976
2     RoLu1976b                  Policy Right  1976
3 AlBlKyFy1989a                         Rules  1989
4      ThSa1996                  Expectations  1996
5 AlBlKyFy1989b        Nonneutrality of money  1989
6      ThSa1996                  Expectations  1996
1
  • The ID RoLu1976 and AlBlKyFi1989 has different value in Art column. They should have a different letter not the same.
    – Daniel
    Oct 7 '16 at 15:27

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