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Apologies if I'm missing the obvious...

I am plotting a 3d surface with rgl. My code is

library(rgl)
dem1 = read.table(file="file.txt",skip=5,header=F,na.strings="0.")
dem = dem1[order(dem1$V1,dem1$V2),] 
z = matrix(dem$V3,nrow=1250,ncol=1250)
is.na(z) = (z < 200)

#create x y dimensions
x=4*(1:nrow(z))
y=4*(1:ncol(z))

open3d()
bg3d("white")
persp3d(x,y,z)

which gives this map (the color was added to see the features better even though I didn't put the code for it above)

enter image description here

The problem is that whatever I do to this map, it is upside down i.e. x should be y and what is currently y goes from west (0) to east (5000) but it should be the opposite such that the elevated feature should actually be bottom left rather than bottom right.

I plotted a very simple contour map using the same file with this script

dem=read.table("file.txt",header=F,skip=5,na.strings="0.")
library(lattice)
contourplot(dem$V3 ~ dem$V1+dem$V2)

which gives

enter image description here

and which gets the right axes and the most elevated region in the bottom left, exactly where it should be, so there is no problem with the data.

I explain how the data looks here and why I feel the need to reorder it with

dem = dem1[order(dem1$V1,dem1$V2),] 

The odd thing is whether I use the above command or not the 3d surface map looks exactly the same, which makes me wonder if the code is really using the "dem" dataset created with the order command or whether it is still using the original "dem1" data which it read from the file and which is in the wrong order.

I am very happy to send the data on request or to put it somewhere it can be seen but I can't copy it here as it is 1250 rows x1250 columns.

Thanks in advance!

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1  
This isn't due to the way you build up matrix z is it? R will fill by columns not rows. See if z <- matrix(dem$V3, nrow=1250, ncol=1250, byrow = TRUE) works. That is the only difference I can see between what is used by contourplot() and persp3d() –  Gavin Simpson Aug 24 '11 at 15:47
    
Yes it is! Thank you so much! I just spent a whole day on this. I guess I was indeed missing the obvious... –  SnowFrog Aug 24 '11 at 15:58
    
By yes it is I meant yes, I had to write 'z <- matrix(dem$V3, nrow=1250, ncol=1250, byrow = TRUE)'... –  SnowFrog Aug 24 '11 at 15:59
    
OK, I'll add as an Answer so you can accept and this can be considered solved ;-) Glad it worked. –  Gavin Simpson Aug 24 '11 at 16:03

1 Answer 1

up vote 2 down vote accepted

The problem is with the creation of z, the matrix of elevations. R fills matrices by columns when creating matrices. It is this filling by columns that is rearranging the elevations relative to one another. This is compounded by the fact that the matrix is square. If the matrix were not square, the relationship between x, y and z would have changed more markedly, instead of just being flipped.

The solution is to have R fill the matrix by rows, e.g. define z using:

z <- matrix(dem$V3, nrow=1250, ncol=1250, byrow = TRUE)
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