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I'd like to extract arguments from instances of Inequality. Following doesn't work, any idea why and how to fix it?

Inequality[1, Less, x, Less, 2] /. Inequality[a_, _, c_, _, e_] -> {a, c, e}
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up vote 8 down vote accepted
Inequality[1,Less,x,Less,2] /. HoldPattern[Inequality[a_,_,b_,_,c_]] -> {a, b, c}


Out: {1, x, 2}
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I wondered why HoldPattern is required, and Trace reveals why: Inequality[a_,_,b_,_,c_] becomes Inequality[a_, _, c_] && Inequality[c_, _, e_]. So, it no longer matches what you expect. – rcollyer Feb 16 '11 at 14:44
    
@rcollyer Yep, a pattern is evaluated. Try this example MatchQ[a/b, /] // Trace – Dr. belisarius Feb 16 '11 at 15:38
    
That would drive me nuts for hours trying to get that pattern to work. – rcollyer Feb 16 '11 at 17:28
    
@Yaroslav - Thanks for asking this! And +1 for the answer. @rcollyer - it HAS driven me nuts for hours. :P – telefunkenvf14 Jun 20 '11 at 21:50

Why don't you use standard access to subexpression?

expr = Inequality[1, Less, x, Less, 2]; {a,c,e} = {expr[[1]], expr[[3]], expr[[5]]};

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Because I need to replace all inequalities with equalities in something like this -- pastebin.com/wN2ENmL6 – Yaroslav Bulatov Oct 3 '10 at 20:23

Also, you can do this:

Inequality[1, Less, x, Less, 2] /. Literal @ Inequality[ a_ , _ , c_ , _ , e_ ] -> {a, c, e}

ADL

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