22

For example say you create a Julia DataFrame like so with 20 columns:

y=convert(DataFrame, randn(10,20))

How do you convert the column names (:x1 ... :x20) to something else, like (:col1, ..., :col20) for example, all at once?

1
  • 2
    I've tried the below for v0.6 with no success, can we reopen?
    – jjjjjj
    Jul 25, 2017 at 4:55

9 Answers 9

26

You might find the names! function more concise:

julia> using DataFrames

julia> df = DataFrame(x1 = 1:2, x2 = 2:3, x3 = 3:4)
2x3 DataFrame
|-------|----|----|----|
| Row # | x1 | x2 | x3 |
| 1     | 1  | 2  | 3  |
| 2     | 2  | 3  | 4  |

julia> names!(df, [symbol("col$i") for i in 1:3])
Index([:col2=>2,:col1=>1,:col3=>3],[:col1,:col2,:col3])

julia> df
2x3 DataFrame
|-------|------|------|------|
| Row # | col1 | col2 | col3 |
| 1     | 1    | 2    | 3    |
| 2     | 2    | 3    | 4    |
3
  • I would like this more concise solution, but it does not seem to work with new Julia versions (e.g. 0.6.2). Solution with rename! still works.
    – Antti
    Mar 21, 2018 at 6:50
  • 1
    In julia v0.6.2, change symbol to Symbol
    – Frank
    Apr 24, 2018 at 17:40
  • 4
    names!() is deprecated now, you can use the above if you replace names! by rename!
    – linx
    Jul 8, 2020 at 9:17
8

One way to do this is with the rename! function. The method of the rename function takes a DataFrame as input though only allows you to change a single column name at a time (as of the development version 0.3 branch on 1/4/2014). Looking into the code of Index.jl in the DataFrames repository lead me to this solution which works for me:

rename!(y.colindex, [(symbol("x$i")=>symbol("col$i")) for i in 1:20])

y.colindex returns the index for the dataframe y, and the next argument creates a dictionary mapping the old column symbols to the new column symbols. I imagine that by the time someone else needs this, there will be a nicer way to do this, but I just spent a few hours figuring this out in the development version 0.3 of Julia, so I thought i would share!

5

As an update to the answer of @JohnMylesWhite, the names! function has been deprecated in DataFrames v 0.20.2. The latest way of going about this is by using the rename! function:

import DataFrames
DF = DataFrames

df = DF.DataFrame(x1 = 1:2, x2 = 2:3, x3 = 3:4)
println(df)
DF.rename!(df, [Symbol("Col$i") for i in 1:size(df,2)])
println(df)
3

v1.1.0

One can directly change the column names by

names!(df, colNames_as_Symbols)

To rename the columns with a vector of strings, this can be done via

names!(df, Symbol.(colNames_as_strings) ) 
2
  • Just trying this, I think this should be names!
    – Crown42
    Apr 23, 2019 at 12:37
  • @Crown42: yep! That leaves me asking why didn't I copy and paste?
    – Cliff AB
    Apr 23, 2019 at 14:02
3
# import Pkg; Pkg.add("DataFrames")
using DataFrames

The question has been answered, but for the additional clarity, sometimes you just want to specify the names without using loops (i.e. over-engineering):

rename!(df, [:Date, :feature_1, :feature_2 ], makeunique=true)

Example output:

141 rows × 3 columns

Date    feature_1   feature_2
Date    Float64?    Float64?
1   2020-08-03  44.3    missing
2

Update: For Julia 0.4, as described by John Myles White, all the names can be changed with:

names!(df::AbstractDataFrame, vals)

where vals is a Vector{Symbol} the same length as the number of columns in df.

Specific names can be changed with:

rename!(df::AbstractDataFrame, from::Symbol, to::Symbol)
rename!(df::AbstractDataFrame, d::Associative)
rename!(f::Function, df::AbstractDataFrame)

where d is an Associative type that maps the original name to a new name and f is a function that has the old column name (a symbol) as input and new column name (a symbol) as output.

This is documented in the code at https://github.com/JuliaStats/DataFrames.jl/blob/7e2f48ad9f31185d279fdd81d6413a79b7e42e87/src/abstractdataframe/abstractdataframe.jl

0
1

This is the short and simple answer for Julia 1.1.1:

names!(df, [Symbol("Col$i") for i in 1:size(df,2)])
1

Use the rename function with an array containing the new names:

Vector_with_names = ["col1","col2","col3"]
rename!(df,Vector_with_names) 

0

Using John's dataframe, i had to use colnames! instead of names!

df = DataFrame(x1 = 1:2, x2 = 2:3, x3 = 3:4)
colnames!(df, ["col$i" for i in 1:3])

My version of Julia is 0.2.1

1
  • 1
    As far as I can tell, this is depreciated (Julia v1.1.0)
    – Cliff AB
    Apr 21, 2019 at 15:18

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