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Is it possibile to attach titles via an apply-family function to a series of histograms where the titles are picked from a list?

The code below creates three histograms. I want to give each a different name from a list (named "list"), in order. How do I do this?

data <- read.csv("outcome-of-care-measures.csv")
outcome <-data[,c(11,17,23)]
out <- apply(outcome, 2,as.data.frame) 
par(mfrow=c(3,1))
apply(outcome,2, hist, xlim=range(out,na.rm=TRUE), xlab="30 day death rate") 
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I have edited your question. If you feel I made a mistake, please don't hesitate to revert my edit. –  user1895420 Jan 25 at 13:07
    
@user1895420 thank you :) –  MCalvi Jan 25 at 14:07
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2 Answers 2

up vote 0 down vote accepted

As it is not only the columns but another argument that changes, you may use mapply to have a function from the apply family.

args <- list(xlim=range(data, na.rm=TRUE), xlab="30 day death rate")
titles <- list("Title 1", "Title 2", "Title 3")
par(mfrow=c(3,1))
mapply(hist, data, main=titles, MoreArgs=args)

If you wrap the invisible function around the last line you can avoid the console output.

enter image description here

Note: I think using loops here is far more straightforward.

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I am trying to use the github data "outcome-of-care-measures.csv". But I am not reaching there the plot like you. –  user2530371 Jan 25 at 15:38
    
my plot uses random data. add a link to the data to make your example fully reproducible. –  Mark Heckmann Jan 25 at 15:41
    
@MarkHeckmann That's is near my original idea, using the apply-family instead of loops if possibile. But seems don't working in the specific case and/or with this data. What I obtain is this error Error in hist.default(dots[[1L]][[4L]], main = dots[[2L]][[1L]], xlab = "30 day death rate", : invalid number of 'breaks' –  MCalvi Jan 25 at 16:19
    
Please make your example (in your question above) complete and reproducible. Right now we do not know why the code fails, and do not have the information to provide additional feedback. –  Paul Hiemstra Jan 25 at 16:31
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I'd use facet_wrap from ggplot2 to get this done. ggplot2 supports this kind of plots very painlessly:

library(ggplot2)
theme_set(theme_bw())

df = data.frame(values = rnorm(3000), ID = rep(LETTERS[1:3], each = 1000))
ggplot(df, aes(x = values)) + geom_histogram() + facet_wrap(~ ID)

enter image description here

To change the text in the box above each facet, simply replace the text in the ID variable:

id_to_text_translator = c(A = 'Facet text for A',
                          B = 'Facet text for B',
                          C = 'Facet text for C')
df$ID = id_to_text_translator[df$ID]

I would recommend taking a close look at what happens in these two lines. Using vectorized subsetting to perform this kind of replacement has compact syntax and high performance. Replacing this code would require a for or apply loop combined with a set of if statements would make the code much longer and slower.

Another option is to directly influence the levels of ID, which is a factor:

levels(df$ID) = id_to_text_translator[levels(df$ID)]

This is a lot faster, especially on datasets with a lot of rows. In addition, it keeps ID a factor, while the previous solution makes ID a character vector.

The resulting plot:

ggplot(df, aes(x = values)) + geom_histogram() + facet_wrap(~ ID)

enter image description here

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Nice, but if I want different, more articulate, name for each histogram? Or name picked from a list how I could do that? –  MCalvi Jan 25 at 14:08
    
+ Inf for ggplot! It's really great. Here is the documentation: For the "title" that is actually the facets name, i would just modify my data accordingly. –  Martín Bel Jan 25 at 15:59
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