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Trying to do this :

list={{{33, 105, 203, 295}, {34, 106, 204, 296}}, 
      {{21, 135, 201, 333}, {22,136, 202, 334}}}

I would like to transform sublists so that the first one:

{{33, 105, 203, 295}, {34, 106, 204, 296}}

becomes

{{33, 204, 106, 295}, {34, 106, 105, 296}}

I don`t understand what I am doing wrong in the following :

list /. {{a_,b_,c_,d_}, {e_,f_,g_,h_}} :> 
        {{a_,g_,f_,d_}, {e_,c_,b_,h_}}

EDIT

Thanks to Leonid`s Comment, the below now works

 list /. {{a_,b_,c_,d_}, {e_,f_,g_,h_}} :> 
         {{a,g,f,d}, {e,c,b,h}}

If somebody knows a better way to do this, don`t hesitate.

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1  
Just remove the blanks on the r.h.s. of your rule: a instead of a_ etc. Blanks are normally only used on the l.h.s. of the rule, and pattern variables are used on the r.h.s. Is your total list large? –  Leonid Shifrin Dec 10 '11 at 21:44
    
@Leonid, I actually don`t have the blank in my code but it still does not work. Total list is only 48 such sublist. Thank You –  500 Dec 10 '11 at 21:49
    
I meant not the blank spaces, but the underscore characters _. Your rule should be {{a_,b_,c_,d_}, {e_,f_,g_,h_}} :> {{a,g,f,d}, {e,c,b,h}}. –  Leonid Shifrin Dec 10 '11 at 21:50
    
You want to write that as a solution :-) ? –  500 Dec 10 '11 at 22:17
    
No time right now to generalize it so that it is more generally useful. Unless someone else takes it up, will do tomorrow. –  Leonid Shifrin Dec 10 '11 at 23:07

1 Answer 1

up vote 6 down vote accepted

As Leonid wrote, but declined to post as an answer, your pattern works once it is corrected:

list /. {{a_,b_,c_,d_}, {e_,f_,g_,h_}} :> {{a, g, f, d}, {e, c, b, h}}

This is the most direct way to accomplish this task, but as Leonid also wrote, it is not the most general. Here is another way, admittedly without patterns, that you might approach this:

orderBy[list_, order_] := Partition[Flatten[#][[order]], 4] & /@ list

orderBy[list, {1, 7, 6, 4, 5, 3, 2, 8}]

This allows you to specify the reordering as a simple permuation, easily written by hand, or generated with RandomeSample@Range@8.

If your data has more variety of shape, this can be extended with different Partition parameters, etc.

share|improve this answer
    
thank You Sir ! –  500 Dec 11 '11 at 1:20
    
+1 Thanks for taking care of this ! –  Leonid Shifrin Dec 11 '11 at 10:58
    
@500 I changed orderBy slightly, making it significantly more efficient. –  Mr.Wizard Dec 12 '11 at 14:07
    
@Mr., Thank You ! –  500 Dec 12 '11 at 19:36

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