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I defined 2 objects:

f=x^2
g=x->#1

Why does this:

f /. x -> #1 &[5]

give me the expected result:

25

But this:

f /. g &[5]

gives me:

#1^2

As if the #1 wasn't evaluated to 5. Please help.

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3  
As so often with Mathematica, wrapping your expressions in Trace[] and examining the output is instructive here. –  High Performance Mark Feb 18 '12 at 21:46
    
Thanks. But how could I modify the statement which gives me the wrong result to work as expected? I'm really a beginner in Mathematica so I don't know most things. –  user1161552 Feb 18 '12 at 22:26

2 Answers 2

Function (short form &) has attribute HoldAll:

Attributes[Function]
{HoldAll, Protected}

Therefore g remains unevaluated. You can force it with Evaluate:

Evaluate[f /. g] &[5]
25

Evaluate will not work deeper in the expression; you cannot write f /. Evaluate[g] &

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Interesting - I didn't try wrapping the fuller expression in Evaluate. –  Chris Degnen Feb 19 '12 at 10:37

You can make it work by keeping the pure function components together.

f = x^2
g = x -> #1 &

f/. g[5]

25

To run it over a list form the function before mapping.

f = x^2
g = x -> #1
list = {1, 2, 3, 4, 5};
b = Block[{a}, Function[f /. a] /. a -> g]
Map[b, list]

{1, 4, 9, 16, 25}

And for the specific problem in the comments...

vars = {x, y};
f = x + y;
g = Table[vars[[i]] -> Slot[i], {i, 1, Length[vars]}];
b = Block[{a}, Function[f /. a] /. a -> g];
list = {{1, 2}, {3, 4}, {5, 6}};
Map[b[Sequence @@ #] &, list]

{3, 7, 11}

With Mr. Wizard's answer this can become:

vars = {x, y};
f = x + y;
g = Table[vars[[i]] -> Slot[i], {i, 1, Length[vars]}];
list = {{1, 2}, {3, 4}, {5, 6}};
Map[Evaluate[f /. g] &[Sequence @@ #] &, list]

{3, 7, 11}

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Okay, the problem is: Map[f /. {x -> #1} &, list] –  user1161552 Feb 18 '12 at 23:00
    
Okay, the problem is, I'd like to do something like this: vars={x,y}; f=x+y; g=Table[vars[[i]] -> Slot[i], {i, 1, Length[vars]}]; list={{1,2},{3,4},{5,6}}; Map[f /. g &, list]; and get {5, 7, 11} This is because f would some expression from user and vars would be variable list so I can't hardcode the variables. –  user1161552 Feb 18 '12 at 23:06
    
Great, thanks. One thing I don't understand: you send a Sequence to the block b. So the sequence is understood as parameter list for that block? –  user1161552 Feb 19 '12 at 0:13
    
@ user1161552 - the function b expects input as a sequence, e.g. b[1,2] and will not accept a list like b[{1,2}]. Applying Sequence formats the input to b[1,2]. The Block is just used to shield 'a' in case 'a' was defined anywhere else, which would upset the replacement. –  Chris Degnen Feb 19 '12 at 0:21
    
Got it. Thanks. –  user1161552 Feb 19 '12 at 0:25

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