In R, how do you add a new row to a dataframe once the dataframe has already been initialized?

So far I have this:

df<-data.frame("hi","bye")
names(df)<-c("hello","goodbye")
#I am trying to add hola and ciao as a new row
de<-data.frame("hola","ciao")
merge(df,de) #adds to the same row as new columns
#I couldnt find an rbind solution that wouldnt give me an error

Any ideas?

  • 1
    assign names to de too. names(de) <- c("hello","goodbye") and rbind – Khashaa Feb 12 '15 at 0:14
  • 2
    Or in one line rbind(df, setNames(de, names(df))) – Rich Scriven Feb 12 '15 at 0:15
  • 1
    This really is an area which base R fails miserably at, and has for a long time: stackoverflow.com/questions/13599197/… – thelatemail Feb 12 '15 at 0:49
  • @thelatemail disagree. data frames are a special structure in r. a list of lists with common dimnames and attributes and methods. I think it is very expected that one cannot rbind(data.frame(a = 1), data.frame(b = 2)).. why would you want to? I would hope that would throw an error regardless. It's like merge'ing with a random by variable. And this is 2015, doesn't everyone set options(stringsAsFactors = FALSE)? – rawr Feb 12 '15 at 15:34
  • 1
    @rawr - sure, different names shouldn't be bound, but R can't handle binding no names to no names, binding names to no names with the same dimensions, or binding new data to incorporate new factor levels. I think that's a weakness. Particularly when it can handle binding repeated names and all NA names. And setting stringsAsFactors=FALSE can be a quick fix, but changing the defaults that other people are going to have set differently can really ruin a day. – thelatemail Feb 12 '15 at 22:21
up vote 71 down vote accepted

Like @Khashaa and @Richard Scriven point out in comments, you have to set consistent column names for all the data frames you want to append.

Hence, you need to explicitly declare the columns names for the second data frame, de, then use rbind(). You only set column names for the first data frame, df:

df<-data.frame("hi","bye")
names(df)<-c("hello","goodbye")

de<-data.frame("hola","ciao")
names(de)<-c("hello","goodbye")

newdf <- rbind(df, de)
  • Thanks! Any idea how to fix this if I dont have a second dataframe declared, but instead have each value I want to add to a new row stored as a variable? – Rilcon42 Feb 12 '15 at 3:57
  • 5
    Try: newdf<-rbind(df, data.frame(hello="hola", goodbye="ciao")) OR with variable: newdf<-rbind(df, data.frame(hello=var1, goodbye=var2)) – Parfait Feb 12 '15 at 4:04

Let's make it simple:

df[nrow(df) + 1,] = list("v1","v2")

edited based on comments. list in place of c prevents class changes in case of adding mixed class rows.

  • 5
    This causes problems when trying to add a new row with mixed data types (some string, some numeric). In such a case, even the numeric values are converted to string. One workaround is to add the values separately, something like the following (assuming there are 3 columns): df[nrow(df) + 1, 1:2] = c("v1", "v2") and df[nrow(df), 3] = 100 But still it's a good point about adding new row. So, +1 – The Student Soul Aug 3 '17 at 8:05
  • 5
    Or use "list" instead of "c". – Ytsen de Boer Aug 3 '17 at 9:13
  • nice idea, but how can I do if I want to insert or add a new row a the first position? – Darwin PC May 8 at 14:55
  • @Matheus Araujo: Is this the most efficient way to add row to a df? I have 100k+ rows to be added in a loop. Feel like nrow would get slower as number of rows increase. – Chintan Pathak Jun 14 at 19:51
  • @ChintanPathak, to be honest, I don't know if using nrow() is very naive (I'm open to suggestion). However, I know that if you know the size of your final data.frame and if you allocate it in memory before populating it, the action will be faster. – Matheus Araujo Jun 15 at 9:12

Or, as inspired by @MatheusAraujo:

df[nrow(df) + 1,] = list("v1","v2")

This would allow for mixed data types.

I like list instead of c because it handles mixed data types better. Adding an additional column to the original poster's question:

#Create an empty data frame
df <- data.frame(hello=character(), goodbye=character(), volume=double())
de <- list(hello="hi", goodbye="bye", volume=3.0)
df = rbind(df,de, stringsAsFactors=FALSE)
de <- list(hello="hola", goodbye="ciao", volume=13.1)
df = rbind(df,de, stringsAsFactors=FALSE)

Note that some additional control is required if the string/factor conversion is important.

Or using the original variables with the solution from MatheusAraujo/Ytsen de Boer:

df[nrow(df) + 1,] = list(hello="hallo",goodbye="auf wiedersehen", volume=20.2)

Note that this solution doesn't work well with the strings unless there is existing data in the dataframe.

Not terribly elegant, but:

data.frame(rbind(as.matrix(df), as.matrix(de)))

From documentation of the rbind function:

For rbind column names are taken from the first argument with appropriate names: colnames for a matrix...

  • This solution works without needing to specify the columns to add, which is much better for applications on large datasets – Phil_T Sep 1 '17 at 23:50

I need to add stringsAsFactors=FALSE when creating the dataframe.

> df <- data.frame("hello"= character(0), "goodbye"=character(0))
> df
[1] hello   goodbye
<0 rows> (or 0-length row.names)
> df[nrow(df) + 1,] = list("hi","bye")
Warning messages:
1: In `[<-.factor`(`*tmp*`, iseq, value = "hi") :
  invalid factor level, NA generated
2: In `[<-.factor`(`*tmp*`, iseq, value = "bye") :
  invalid factor level, NA generated
> df
  hello goodbye
1  <NA>    <NA>
> 

.

> df <- data.frame("hello"= character(0), "goodbye"=character(0), stringsAsFactors=FALSE)
> df
[1] hello   goodbye
<0 rows> (or 0-length row.names)
> df[nrow(df) + 1,] = list("hi","bye")
> df[nrow(df) + 1,] = list("hola","ciao")
> df[nrow(df) + 1,] = list(hello="hallo",goodbye="auf wiedersehen")
> df
  hello         goodbye
1    hi             bye
2  hola            ciao
3 hallo auf wiedersehen
> 

There is a simpler way to append a record from one dataframe to another IF you know that the two dataframes share the same columns and types. To append one row from xx to yy just do the following where i is the i'th row in xx.

yy[nrow(yy)+1,] <- xx[i,]

Simple as that. No messy binds. If you need to append all of xx to yy, then either call a loop or take advantage of R's sequence abilities and do this:

zz[(nrow(zz)+1):(nrow(zz)+nrow(yy)),] <- yy[1:nrow(yy),]

Make certain to specify stringsAsFactors=FALSE when creating the dataframe:

> rm(list=ls())
> trigonometry <- data.frame(character(0), numeric(0), stringsAsFactors=FALSE)
> colnames(trigonometry) <- c("theta", "sin.theta")
> trigonometry
[1] theta     sin.theta
<0 rows> (or 0-length row.names)
> trigonometry[nrow(trigonometry) + 1, ] <- c("0", sin(0))
> trigonometry[nrow(trigonometry) + 1, ] <- c("pi/2", sin(pi/2))
> trigonometry
  theta sin.theta
1     0         0
2  pi/2         1
> typeof(trigonometry)
[1] "list"
> class(trigonometry)
[1] "data.frame"

Failing to use stringsAsFactors=FALSE when creating the dataframe will result in the following error when attempting to add the new row:

> trigonometry[nrow(trigonometry) + 1, ] <- c("0", sin(0))
Warning message:
In `[<-.factor`(`*tmp*`, iseq, value = "0") :
  invalid factor level, NA generated

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