Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to rename the 104 columns in a dataframe (df) using a list or character vector (I've tried it both ways).

Instead of assigning the 104 elements in the vector or list to the 104 columns one each, it assigns all 104 elements to the first column, and all others get NA.

Any suggestions as to why this behavior and how to do it correctly?

> names(df)


 [1] "V1"   "V2"   "V3"   "V4"   "V5"   "V6"   "V7"   "V8"   "V9"   "V10"  "V11"  "V12"  "V13"  "V14"  "V15"  "V16"  "V17"  "V18"  "V19"  "V20"  "V21"  "V22"  "V23"  "V24"  "V25"  "V26"  "V27" 
 [28] "V28"  "V29"  "V30"  "V31"  "V32"  "V33"  "V34"  "V35"  "V36"  "V37"  "V38"  "V39"  "V40"  "V41"  "V42"  "V43"  "V44"  "V45"  "V46"  "V47"  "V48"  "V49"  "V50"  "V51"  "V52"  "V53"  "V54" 
 [55] "V55"  "V56"  "V57"  "V58"  "V59"  "V60"  "V61"  "V62"  "V63"  "V64"  "V65"  "V66"  "V67"  "V68"  "V69"  "V70"  "V71"  "V72"  "V73"  "V74"  "V75"  "V76"  "V77"  "V78"  "V79"  "V80"  "V81" 
 [82] "V82"  "V83"  "V84"  "V85"  "V86"  "V87"  "V88"  "V89"  "V90"  "V91"  "V92"  "V93"  "V94"  "V95"  "V96"  "V97"  "V98"  "V99"  "V100" "V101" "V102" "V103" "V104"

> d2 = as.character(strapply(name,"(?<=[0-9]{1}=)(.{2,}?)((?= V[0-9])|(?=   $))",perl=TRUE))
> d2
[1] "c(\"ICPSR MEMBER ID NUMBER\", \"CONGRESS\", \"CHAMBER/CLASS\", \"STATE\", \"DISTRICT\", \"PARTY\", \"POL PARTY\", \"FULL NAME\", \"SEX\", \"REGION\", \"STATE BORN ..... \"ICPSR STUDY NUMBER\", \"ICPSR VERSION NUMBER\", \"ICPSR PART NUMBER\")"

 > class(d2)
 [1] "character"
 > colnames(df2) = d2
 > head(df2,1)


 c("ICPSR MEMBER ID NUMBER", "CONGRESS", "CHAMBER/CLASS", "STATE", "DISTRICT", "PARTY", "POL PARTY", "FULL NAME", "SEX", "REGION", "STATE BORN (ICPSR CODE)", "BORN/REP SAME STATE", "BORN/REP SAME REGION", "ICPSR RELATIVES CODE", "RELATIVES CLLPS", "SE ...
    1 

                                                                                                                                                                                                                                                             1
  NA NA NA NA  NA NA                        NA NA NA NA NA NA NA NA NA  NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA NA  NA  NA NA NA NA NA  NA  NA NA NA
share|improve this question
    
Don't wrap d2 in as.character... you're making a single string out of the vector of new names... –  Justin Oct 18 '13 at 16:47
    
So if I don't, it generates a list. If I apply the list it has the same behavior. –  user2547308 Oct 18 '13 at 17:04
1  
Change the list into a vector and then assign it. ?unlist –  Michael Oct 18 '13 at 17:16
    
?unlist did the trick. Thanks Michael and Justin for your help. –  user2547308 Oct 18 '13 at 17:21

1 Answer 1

up vote 0 down vote accepted

Create a vector of labels and then assign it to the data frame, no need for as.character.

labels <- c("ICPSR MEMBER ID NUMBER", "CONGRESS")
colnames(df) <- labels
share|improve this answer
    
I'm not understanding your response - d2 is a character vector. When I apply it using colnames(df) <-d2, it assigns all the elements to the first column, and all others are NA. Maybe I should mention that d2 is pulling the names from a string of variable names stored in name. –  user2547308 Oct 18 '13 at 16:58
    
Make sure d2 is actually a vector, it looks like it is just a single character string (try eliminating as.character). It should take the format of my labels variable above. –  Michael Oct 18 '13 at 17:05
    
c("ICPSR MEMBER ID NUMBER", "CONGRESS", "CHAMBER/CLASS", "STATE", "DISTRICT", "PARTY", "POL PARTY", "FULL NAME", "SEX", "REGION", "STATE BORN (I... Michael - when it puts the names into the first column name, this is how it appears. Which seems to match your format. –  user2547308 Oct 18 '13 at 17:13
    
Nope, your code "c(\"ICPSR MEMBER ID ...\")" says what was once a vector of strings is now a single string. (because you wrapped strapply with as.character: as.character(c('a', 'b')). Instead, use unlist(strapply(...)). –  Justin Oct 18 '13 at 17:22

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.