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As part of an effort to remove a specific geom from a plot I've already created (SO link here), I'd like to dynamically determine the geom type of each layer of a ggplot2 object.

Assuming I don't know the order in which I added layers, is there a way to dynamically find layers with a specific geom? If I print out the layers like I do below I can see that the layers are stored in a list, but I can't seem to access the geom type.

library(ggplot2)
dat <- data.frame(x=1:3, y=1:3, ymin=0:2, ymax=2:4)
p <- ggplot(dat, aes(x=x, y=y)) + geom_ribbon(aes(ymin=ymin, ymax=ymax), alpha=0.3) + geom_line()
p$layers

[[1]]
mapping: ymin = ymin, ymax = ymax 
geom_ribbon: na.rm = FALSE, alpha = 0.3 
stat_identity:  
position_identity: (width = NULL, height = NULL)

[[2]]
geom_line:  
stat_identity:  
position_identity: (width = NULL, height = NULL)

I'm not familiar with proto objects and things I've tried from the proto documentation don't seem to work (e.g. p$layers[[1]]$str()).


Thanks to the answers below I was able to come up with a function that removes a layer dynamically:

remove_geom <- function(ggplot2_object, geom_type) {
  layers <- lapply(ggplot2_object$layers, function(x) if(x$geom$objname == geom_type) NULL else x)
  layers <- layers[!sapply(layers, is.null)]

  ggplot2_object$layers <- layers
  ggplot2_object
}
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Just as an added convenience could you provide a small reproducible data set along with your code? –  Dason Nov 19 '12 at 16:05
    
Whoops, copy-paste fail. Thanks, @Dason –  Erik Shilts Nov 19 '12 at 16:07
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2 Answers

up vote 4 down vote accepted

If we're just looking to get the geom name for each item this appears to be in the $geom$objname part of each layer.

p$layers[[1]]$geom$objname
#[1] "ribbon"
lapply(p$layers, function(x){x$geom$objname})
#[[1]]
#[1] "ribbon"
#
#[[2]]
#[1] "line"

As an added note - the reason you couldn't use the p$layers[[1]]$str() syntax is (probably) because you didn't explicitly load the proto package. ggplot2 uses it internally but it imports it instead of using Depends. Notice the difference:

> library(ggplot2)
> dat <- data.frame(x=1:3, y=1:3, ymin=0:2, ymax=2:4)
> p <- ggplot(dat, aes(x=x, y=y)) + geom_ribbon(aes(ymin=ymin, ymax=ymax), alpha=0.3) + geom_line()
> p$layers
[[1]]
mapping: ymin = ymin, ymax = ymax 
geom_ribbon: na.rm = FALSE, alpha = 0.3 
stat_identity:  
position_identity: (width = NULL, height = NULL)

[[2]]
geom_line:  
stat_identity:  
position_identity: (width = NULL, height = NULL)

> p$layers[[1]]$str()
Error: attempt to apply non-function
> library(proto)
> p$layers[[1]]$str()
proto object 
 $ geom_params:List of 2 
 $ mapping    :List of 2 
 $ stat_params: Named list() 
 $ stat       :proto object  
  ..parent: proto object  
 .. .. parent: proto object  
 $ inherit.aes: logi TRUE 
 $ geom       :proto object  
  ..parent: proto object  
 .. .. parent: proto object  
 $ position   :proto object  
  ..parent: proto object  
 .. .. parent: proto object  
 .. .. .. parent: proto object  
 $ subset     : NULL 
 $ data       : list() 
  ..- attr(*, "class")= chr "waiver" 
 $ show_guide : logi NA 
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1  
Thanks for explaining why $str() was not available. –  BondedDust Nov 19 '12 at 18:21
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Here's one way of looking at proto objects. They are environments as I understand it, so using ls gives you the names (apparently even for items extracted from the parent environment which is the plot object, p.):

 ls(p$layers[[1]])
# [1] "data"        "geom"        "geom_params" "inherit.aes" "mapping"    
# [6] "position"    "show_guide"  "stat"        "stat_params" "subset" 

 p$layers[[1]][["geom"]]
#geom_ribbon: 

 sapply( p$layers, "[[", "geom")
#---------------
[[1]]
geom_ribbon: 

[[2]]
geom_line: 

@Dason points out that you might have wanted a character vector as a result, so using sapply with "[[" again should satisfy that possible desire:

 sapply( sapply( p$layers, "[[", "geom"), "[[", 'objname')
#[1] "ribbon" "line"
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Your sapply call still returns proto objects though which isn't ideal for working with. If you grab the objname portion of what you return then you get a nice character string instead. –  Dason Nov 19 '12 at 16:52
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