Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

My problem is to strip my panels with lattice framework.

testData<-data.frame(star=rnorm(1200),frame=factor(rep(1:12,each=100))
                     ,n=factor(rep(rep(c(4,10,50),each=100),4))
                     ,var=factor(rep(c("h","i","h","i"),each=300))
                     ,stat=factor(rep(c("c","r"),each=600))
 )
levels(testData$frame)<-c(1,7,4,10,2,8,5,11,3,9,6,12)# order of my frames
histogram(~star|factor(frame), data=testData
            ,as.table=T
            ,layout=c(4,3),type="density",breaks=20
            ,panel=function(x,params,...){
               panel.grid()
               panel.histogram(x,...,col=1)     
               panel.curve(dnorm(x,0,1), type="l",col=2)
              }
 )

What I'm looking for, is: striped plot

share|improve this question
    
You could add labels outside of R, but you should first check to see if the placement of the panels agrees with that labeling. I constructed a graph with strip labels generated by pasting "var" and "stat" and there were mixtures of "h" and "i" within the right and left halves of that graphic. – 42- Sep 30 '12 at 17:30
    
You can see this effect yourself by just adding this expression to your 'star' values + rep(c(-2,2), each=600) and redrawing your plot. If your placement theory were correct, all of the left-hand side plots should be shifted tot he same side of 0. They are not. – 42- Sep 30 '12 at 17:40
    
sry I dont really get you. I know the strip attribute but I dont know how to change it in the right way. what is really close to what Iam looking for is: – Klaus Sep 30 '12 at 18:06
    
h<-histogram(~star|factor(paste(var,stat))+factor(n), data=testData ,as.table=T ,layout=c(4,3),type="density",breaks=20 ,panel=function(x,params,...){ panel.grid() panel.histogram(x,...,col=1) panel.curve(dnorm(x,0,1), type="l",col=2) } ) plot(h) useOuterStrips(h,strip.left = strip.custom(horizontal = FALSE)) But there are some questions left. -how create a strip over to rows -how to use the properties, they updated with useOuterStrips directly in the histogram function – Klaus Sep 30 '12 at 18:06
up vote 0 down vote accepted

You should not need to add the factor call around items in the conditioning section of the formula when they are already factors. If you want to make a cross between two factors the interaction function is the best approach. It even has a 'sep' argument which will accept a new line character. This is the closest I can produce:

h<-histogram(~star|interaction(stat, var,  sep="\n") + n, data=testData  , 
              as.table=T ,layout=c(4,3), type="density", breaks=20 ,  
panel=function(x,params,...){ panel.grid() 
panel.histogram(x,...,col=1) 
panel.curve(dnorm(x,0,1), type="l",col=2) } ) 
plot(h) 
useOuterStrips(h,strip.left = strip.custom(horizontal = FALSE), 
                  strip.lines=2, strip.left.lines=1)

I get an error when I try to put in three factors separately and then try to use useOuterStrips. It won't accept three separate conditioning factors. I've searched for postings in Rhelp, but the only perfectly on-point question got an untested suggestion and when I tried it failed miserably.

share|improve this answer
    
Thx, how to use the properties, they updated with useOuterStrips directly in the histogram function? – Klaus Sep 30 '12 at 20:10
    
I don't understand what you are asking. What properties? Use in what fashion? – 42- Sep 30 '12 at 20:21
    
I want to assign strip.left etc. in the histogram function. – Klaus Sep 30 '12 at 21:28
1  
Look at useOuterStrips code. You will need to use modifyList on the strip component of standard.theme(.Device). You also need to provide strip and strip.left that are properly constructed. Doing this in a general way would involve rewriting most of useOuterStrips within your histogram call. It does not seem worth the aggravation. – 42- Sep 30 '12 at 23:56

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.