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consider the following:

    rule={x_, y_} -> {y, x};

    {{a, b}, {c, d}, {e, f}} /. rule
    {{a, b}, {c, d}} /. rule
    {{a, b}} /. {x_, y_} -> rule

the output is:

{{b, a}, {d, c}, {f, e}}
{{c, d}, {a, b}}
{{b, a}}

Suppose however that the length of the initial list is not known. how should I rewrite my rule so that the individual elements in the sublists are reversed, regardless of the length of the input list ie when the length is 2

share|improve this question
    
I think you want something like this: Replace[lists, rule, {2}]. It'll only try to apply the rule at level 2. – Joshua Martell Aug 22 '12 at 1:12

First it should be noted that this specific operation is better done with Reverse[x, {2}]:

Reverse[{{a, b}, {c, d}, {e, f}}, {2}]
{{b, a}, {d, c}, {f, e}}

That said, for replacement rules you should use either Replace with a levelspec (third argument) rather than ReplaceAll, or restrict your pattern such that it will only match on the elements you intend. (Additionally, remember to use :> instead of -> when using named patterns to properly localize these symbols.)

Replace[{{a, b}, {c, d}}, {x_, y_} :> {y, x}, {1}]
{{b, a}, {d, c}}

Examples of restricted pattern that will work with /. on your sample:

{{a, b}, {c, d}} /. {x : Except[_List], y_} :> {y, x}

{{a, b}, {c, d}} /. {x_Symbol, y_} :> {y, x}

{{a, b}, {c, d}} /. {x_, y_?AtomQ} :> {y, x}
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Here is a recursive way:

ClearAll[rule1]

rule1 = {z_, y___} :> {z /. x_List :> Reverse[x], Sequence @@ ({y} /. rule1)}

Which results:

{{1, 2, 3}, 2, {1, {2, 3}}, 4, head[x]} /. rule1

Out[]= {{3, 2, 1}, 2, {{2, 3}, 1}, 4, head[x]}

Although you may as well do this instead:

ClearAll[rule2]

rule2 = x_List :> (# /. z_List :> Reverse[z] &) /@ x

Alternatively, just

rule3 = x_List :> Reverse /@ x

will work as well if you know beforehand that all the elements of your list are lists.

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