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Consider the following:

df <- list(df1 = data.frame(a.1 = 1, b..2 = 2), df2 = data.frame(c.1 = 3, d...4 = 5, e..3 = 8))
## $df1
##   a.1 b..2
## 1   1    2

## $df2
##   c.1 d...4 e..3
## 1   3     5    8

names(df[[1]])
## [1] "a.1"  "b..2"

Now, for example, I would like to remove the dotes out of the data frames' names so the output will be

## $df1
##   a1 b2
## 1   1    2

## $df2
##   c1 d4 e3
## 1   3     5    8

Obvioulsy the following won't work

lapply(names(df), function(x) gsub("[.]", "", x))

Neither will this

lapply(df[attributes(df)$names], function(x) gsub("[.]", "", x))

a for loop works though

for(i in 1:length(df)){names(df[[i]]) <- gsub("[.]", "", names(df[[i]]))}
## $df1
##   a1 b2
## 1  1  2

## $df2
##   c1 d4 e3
## 1  3  5  8

Edit

@jdharrison solution is very nice, but i was looking to find a way to operate only on the attributes rather on the whole data set (like in the for loop), something like

df2 <- list(a..1 = 2, b..3 = 5)
names(df2) <- lapply(names(df2), function(x) gsub("[.]", "", x))
share|improve this question

1 Answer 1

up vote 2 down vote accepted

Something like this maybe?

lapply(df, function(x){ 
  `names<-`(x, gsub("[.]", "",names(x)))
}
)

> lapply(df, function(x){ `names<-`(x, gsub("[.]", "",names(x)))})
$df1
  a1 b2
1  1  2

$df2
  c1 d4 e3
1  3  5  8
share|improve this answer
    
That is nice, So I guess I'll have to do something like df <- lapply(df, function(x) { names<-` (x, gsub("[.]", "", names(x)))})` in order to save the changes. Does it mean that I'm copying the whole data set instead of just operating on the names like in a for loop? –  David Arenburg May 5 at 9:37
    
You would need to ask someone more knowledgeable regarding the internals on that issue. –  jdharrison May 5 at 9:56
    
I've edited the original post, thanks for that great trick though –  David Arenburg May 5 at 10:33

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