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I have an expression which involves x1,x2,...,x100, I also have a list lst with 100 elements, how to apply the rule to this expression to achieve something like the following:

exp/.{x1->lst[[1]],x2->lst[[2]],...,x100->lst[[100]]}

Thanks!

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3 Answers 3

up vote 6 down vote accepted
 exp /.  Table[Symbol["x" <> ToString[i]] -> lst[[i]], {i, 1, 100}]  

So you don't need to write X1,X2, ... X100

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2  
For very long replacement lists that are applied to complex formulas I recommend using Dispatch: reference.wolfram.com/mathematica/ref/Dispatch.html. –  Timo Jan 20 '11 at 7:45
    
@Timo You are right, Dispatch optimizes a lot! Thanks for remembering that. –  belisarius Jan 20 '11 at 9:10

You can use Thread to apply the rules to each pair of expressions:

Thread[{a, b, c} -> {1, 2, 3}]
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It is much simpler and more convenient to solve such tasks using indexed variables instead of generation of a list of different Symbols. In this way:

listOfRules = Array[f@# :> list[[#]] &, {100}];
Short@%

=> {f[1]:>list[[1]],f[2]:>list[[2]],f[3]:>list[[3]],f[4]:>list[[4]],
<<92>>,f[97]:>list[[97]],f[98]:>list[[98]],f[99]:>list[[99]],f[100]:>list[[100]]}

If you plan to make such replacement many times, it is worth to Dispatch large list of rules:

listOfRules = Dispatch@listOfRules;

The replacement can be made as usual:

expr /. listOfRules
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