Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I didn't find anwser to my question on Stack Overflow so I allowed myself to write this one. I would like to make ordered stacked barplot (with two or more grouping/filling variables) so I wrote code which you can find below.

I wonder whether it is posible to do it simpler/inside ggplot function without creating ordered factor? I would be very grateful for all hints.

Here is my code

p<-ggplot(data=gf18l, aes(x=variable,y=valuep,fill=ID)) +
  geom_bar(position='stack',stat='identity')

varorder<-gf18l[order(gf18l$ID,gf18l$valuep), ]
varorder<-varorder[varorder$ID==1,'variable']
gf18l$variable<-factor(as.character(gf18l$variable),
                       levels=varorder,
                       labels=varorder,
                       ordered=T)
p %+% gf18l + coord_flip()

and here is my data

gf18l<-structure(list(ID = c("1", "2", "1", "2", "1", "2", "1", "2", 
        "1", "2", "1", "2", "1", "2", "1", "2", "1", "2", "1", "2", "1", 
        "2", "1", "2", "1", "2", "1", "2", "1", "2", "1", "2", "1", "2", 
        "1", "2", "1", "2"), variable = structure(c(1L, 1L, 2L, 2L, 3L, 
                   3L, 4L, 4L, 5L, 5L, 6L, 6L, 7L, 7L, 8L, 8L, 9L, 9L, 10L, 10L, 
                   11L, 11L, 12L, 12L, 13L, 13L, 14L, 14L, 15L, 15L, 16L, 16L, 17L, 
                   17L, 18L, 18L, 19L, 19L), .Label = c("GF18A_01", "GF18A_02", 
                             "GF18A_03", "GF18A_04", "GF18A_05", "GF18A_06", "GF18A_07", "GF18A_08", "GF18A_09", "GF18A_10", "GF18A_11", "GF18A_12", "GF18A_13", "GF18A_14", 
"GF18A_15", "GF18A_16", "GF18A_17", "GF18A_18", "GF18A_19"), class = "factor"), 
       value = c(11336L, 1007L, 2691L, 9629L, 7192L, 5136L, 7740L, 
        4581L, 8794L, 3536L, 7014L, 5317L, 1991L, 10323L, 529L, 11777L, 
        5685L, 6649L, 5465L, 6869L, 906L, 11406L, 357L, 11964L, 7828L, 
        4510L, 7809L, 4525L, 6269L, 6061L, 126L, 12186L, 1533L, 10782L, 
        9719L, 2601L, 989L, 11285L), valuep = c(0.918415296119258, 
                  0.0815847038807421, 0.218425324675325, 0.781574675324675, 
                  0.583387410772226, 0.416612589227774, 0.628195763330898, 
                  0.371804236669102, 0.713219789132198, 0.286780210867802, 
                  0.568810315465088, 0.431189684534912, 0.161685885983434, 
                  0.838314114016567, 0.042987160734601, 0.957012839265399, 
                  0.460921031295606, 0.539078968704394, 0.443084157613102, 
                  0.556915842386898, 0.0735867446393762, 0.926413255360624, 
                  0.0289749208668128, 0.971025079133187, 0.634462635759442, 
                  0.365537364240558, 0.633127939030323, 0.366872060969677, 
                  0.508434712084347, 0.491565287915653, 0.010233918128655, 
                  0.989766081871345, 0.124482338611449, 0.875517661388551, 
                  0.78887987012987, 0.21112012987013, 0.080576829069578, 0.919423170930422
        )), .Names = c("ID", "variable", "value", "valuep"), row.names = c(NA, 
                           -38L), class = "data.frame")
share|improve this question

You can use the limits argument within the scale_x_discrete function from ggplot2 to order your bars.

ggplot(data=gf18l, aes(x=variable,y=valuep,fill=ID)) +
  geom_bar(position='stack',stat='identity') + 
  scale_x_discrete(limits=with(gf18l, variable[ID==1][order(valuep[ID==1])])) + 
  coord_flip()
share|improve this answer
    
Thanks! Would it be flexible for more than two gruping variables? – Maciej Apr 1 '14 at 12:57
    
I am not sure how you would like to sort more your bars with more than 2 groups. But if you know, which order you want the bars to be in, then you can specify this order in limits. It is essentially the same thing that you did with the ordered variable, so it is no more and no less flexible. – shadow Apr 1 '14 at 13:01

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.