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enderton | 
1.1 | 
function [v6t] = split_C_cub(v3d,kad) | 
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% [v6t] = split_C_cub(v3d,[kad]) | 
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%--------------------------------------------- | 
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% split 2d/3d arrays V, center, to 2d/3d x 6 faces | 
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% and (kad=1): add 1 column + 1 row <== at the begining !!! | 
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%  => output is v6t(ny+1,ny+1,[nr],6) | 
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% and (kad=2): add also 1 column + 1 row <== at the end !!! | 
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%  => output is v6t(ny+2,ny+2,[nr],6) | 
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%---------------------------------------------- | 
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if nargin < 2, kad=1; end | 
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if kad~=0 & kad~=1 & kad~=2, fprintf('kad= %f => Bad value',kad); return;end | 
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%-- | 
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enderton | 
1.2 | 
dims=size(v3d); | 
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nx=dims(1); ny=dims(2); | 
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enderton | 
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nyp=ny+1; n2p=ny+2; nye=ny+kad; | 
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1.2 | 
if length(dims) == 2,  | 
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 nr=1;  | 
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%fprintf('split_C_cub: kad= %i ; output dim: %i %i %i \n',kad,nye,nye,6); | 
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else  | 
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 nr=prod(dims(3:end)); | 
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%fprintf('split_C_cub: kad= %i ; output dim: %i %i %i %i \n',kad,nye,nye,nr,6); | 
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end | 
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enderton | 
1.1 | 
%================================================================= | 
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%- split on to 6 tiles with overlap in i+1 & j+1 : | 
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1.2 | 
 v3d=reshape(v3d,[nx ny nr]); | 
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 v6t=zeros(nye,nye,6,nr); | 
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1.1 | 
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 if kad == 0, | 
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enderton | 
1.2 | 
  v6t=permute(reshape(v3d,[ny 6 ny nr]),[1 3 2 4]); | 
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enderton | 
1.1 | 
 else | 
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  for n=1:6, | 
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1.2 | 
   v6t([2:nyp],[2:nyp],n,:)=v3d([(n-1)*ny+1:n*ny],[1:ny],:); | 
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1.1 | 
  end | 
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%- add overlap in i=1 & j=1 : | 
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enderton | 
1.2 | 
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  v6t(1,[2:nyp], 1,:)=v6t([nyp:-1:2],nyp,5,:); | 
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  v6t(1,[2:nyp], 3,:)=v6t([nyp:-1:2],nyp,1,:); | 
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  v6t(1,[2:nyp], 5,:)=v6t([nyp:-1:2],nyp,3,:); | 
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  v6t(1,[2:nyp], 2,:)=v6t(nyp,[2:nyp],1,:); | 
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  v6t(1,[2:nyp], 4,:)=v6t(nyp,[2:nyp],3,:); | 
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  v6t(1,[2:nyp], 6,:)=v6t(nyp,[2:nyp],5,:); | 
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  v6t([1:nyp],1, 1,:)=v6t([1:nyp],nyp,6,:); | 
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  v6t([1:nyp],1, 3,:)=v6t([1:nyp],nyp,2,:); | 
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  v6t([1:nyp],1, 5,:)=v6t([1:nyp],nyp,4,:); | 
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  v6t([2:nyp],1, 2,:)=v6t(nyp,[nyp:-1:2],6,:); | 
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  v6t([2:nyp],1, 4,:)=v6t(nyp,[nyp:-1:2],2,:); | 
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  v6t([2:nyp],1, 6,:)=v6t(nyp,[nyp:-1:2],4,:); | 
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  v6t(1,1,2,:)=v6t(nyp,2,1,:); | 
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  v6t(1,1,4,:)=v6t(nyp,2,3,:); | 
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  v6t(1,1,6,:)=v6t(nyp,2,5,:); | 
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enderton | 
1.1 | 
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 end | 
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%- add overlap in i=ny+1 & j=ny+1 : | 
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 if kad == 2, | 
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enderton | 
1.2 | 
  v6t(n2p,[1:nyp], 1,:)=v6t(2,[1:nyp],2,:); | 
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  v6t(n2p,[1:nyp], 3,:)=v6t(2,[1:nyp],4,:); | 
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  v6t(n2p,[1:nyp], 5,:)=v6t(2,[1:nyp],6,:); | 
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  v6t(n2p,[2:n2p], 2,:)=v6t([nyp:-1:1],2,4,:); | 
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  v6t(n2p,[2:n2p], 4,:)=v6t([nyp:-1:1],2,6,:); | 
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  v6t(n2p,[2:n2p], 6,:)=v6t([nyp:-1:1],2,2,:); | 
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  v6t(n2p,n2p,1,:)=v6t(2,2,3,:); | 
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  v6t(n2p,n2p,3,:)=v6t(2,2,5,:); | 
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  v6t(n2p,n2p,5,:)=v6t(2,2,1,:); | 
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  v6t(n2p,1,2,:)=v6t(nyp,1,6,:); | 
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  v6t(n2p,1,4,:)=v6t(nyp,1,2,:); | 
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  v6t(n2p,1,6,:)=v6t(nyp,1,4,:); | 
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  v6t([1:n2p],n2p, 2,:)=v6t([1:n2p],2,3,:); | 
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  v6t([1:n2p],n2p, 4,:)=v6t([1:n2p],2,5,:); | 
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  v6t([1:n2p],n2p, 6,:)=v6t([1:n2p],2,1,:); | 
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  v6t([2:n2p],n2p, 1,:)=v6t(2,[nyp:-1:1],3,:); | 
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  v6t([2:n2p],n2p, 3,:)=v6t(2,[nyp:-1:1],5,:); | 
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  v6t([2:n2p],n2p, 5,:)=v6t(2,[nyp:-1:1],1,:); | 
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  v6t(1,n2p,1,:)=v6t(1,nyp,5,:); | 
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  v6t(1,n2p,3,:)=v6t(1,nyp,1,:); | 
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  v6t(1,n2p,5,:)=v6t(1,nyp,3,:); | 
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enderton | 
1.1 | 
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 end | 
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enderton | 
1.2 | 
%- Put back to standard shape: | 
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 v6t=permute(v6t,[1 2 4 3]); | 
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 if length(dims) == 2, | 
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   v6t=squeeze(v6t); | 
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 else | 
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   v6t=reshape(v6t,[nye nye dims(3:end) 6]); | 
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enderton | 
1.1 | 
 end | 
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return |