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I have to write a program that will get lists in a list, and should reverse every second list, then return the result. Something like this:

doStuff([[1,2], [3,4], [5,6], [7,8]], R).

R = [[1,2], [4,3], [5,6], [8,7]]

This is what I have so far:

doStuff([],_).
doStuff([X,S|T],R):- reverse(S,Rev), add(X,Rev,R), doStuff(T,R).
doStuff([X|[]], R):- add(X,R,R).

reverse([X|Y],Z,W) :- reverse(Y,[X|Z],W).
reverse([],X,X).

add(X,[],X).
add(X,L,[X,L]).

My problem is that, in the second iteration the add function fails. I'm also concerned about what will happen when the original list contains only one list at the end.

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1 Answer 1

up vote 0 down vote accepted

since you said that add/3 fails after the second iteration i assume that you used trace/0
anyway, here it is:

[trace]  ?- doStuff([[1,2], [3,4], [5,6], [7,8]], R).
   Call: (6) doStuff([[1, 2], [3, 4], [5, 6], [7, 8]], _G405) ? creep
   Call: (7) lists:reverse([3, 4], _G496) ? creep
   Exit: (7) lists:reverse([3, 4], [4, 3]) ? creep
   Call: (7) add([1, 2], [4, 3], _G405) ? creep
   Exit: (7) add([1, 2], [4, 3], [[1, 2], [4, 3]]) ? creep
   Call: (7) doStuff([[5, 6], [7, 8]], [[1, 2], [4, 3]]) ? creep
   Call: (8) lists:reverse([7, 8], _G514) ? creep
   Exit: (8) lists:reverse([7, 8], [8, 7]) ? creep
   Call: (8) add([5, 6], [8, 7], [[1, 2], [4, 3]]) ? creep
   Fail: (8) add([5, 6], [8, 7], [[1, 2], [4, 3]]) ? creep
   Redo: (7) doStuff([[5, 6], [7, 8]], [[1, 2], [4, 3]]) ? creep
   Fail: (7) doStuff([[5, 6], [7, 8]], [[1, 2], [4, 3]]) ? creep
   Redo: (6) doStuff([[1, 2], [3, 4], [5, 6], [7, 8]], _G405) ? creep
   Fail: (6) doStuff([[1, 2], [3, 4], [5, 6], [7, 8]], _G405) ? creep
false.

so why does it fail? it's because of one of prolog's main characteristics basically, a variable in prolog, once it takes a value, it can never change this may sound kinda weird if you used imperative languages so far but consider that exactly the same thing happens in math.
For example, consider the following equations:

x+3=4  
4-x=5

from the first we get that x=1
and from the second we get that x=-1
since x cannot be 1 and -1 we say that there is no x to satisfy the equations above;
not that x is -1 since that's the value of the second (and last) equation

exactly the same thing happens in yout program:

doStuff([X,S|T],R):- reverse(S,Rev), add(X,Rev,R), doStuff(T,R).

so the first time R is assigned a value and the doStuff/2 is call with a value for R.
obviously, this is not the correct value so doStuff/2 fails

so how can you fix this? look at the way you wrote [X,S|T] to separate the first two elements that you wanted to process. you only have to do exactly the same with the result:
write it like [XResult,SResult|Rest] of course XResult will be simply X and SResult will be the reverse of S (Rev)
Rest will be what you get from the recursive call of doStuff/2

last but not least you should check the clauses that are called in the end.

you could check some stuff about lists and recursion

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Hello. Thanks for the answer. I've been trying to implement it in the past few days. So my problem is that the R variable already has a value in the second iteration when the add function tries to change it. So I would need to use temporary variable. This is what I wrote based on your answer. It returns but does not return the result list. doStuff([X,S|T],R):- reverse(S,Rev), add(X,Rev,[XResult,SResult|Rest]), doStuff(T,[XResult,SResult|Rest]). what am I doing wrong? Thanks again. –  eidolon May 16 '11 at 15:46
    
you shouldnt pass XResult,SResult to the recursive call of doStuff/2 instead, you just call doStuff(T,Rest). the result list is R so you shall define what R is. for example, you can write R=[X,Rev|Rest]. so basically you have this: doStuff([X,S|T],R):- reverse(S,Rev), doStuff(T,Rest), R=[X,Rev|Rest]. since you dont use R anywhere else you can simply write: doStuff([X,S|T],[X,Rev|Rest]):- reverse(S,Rev), doStuff(T,Rest). –  thanosQR May 16 '11 at 17:05
    
okay, now i see what you meant before, don't need the add function. Thank you, I really appreciate it. –  eidolon May 16 '11 at 18:15

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