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I want to use wolframalpha to find the probability of a line y = a x + b passes through the point [2,8], when a and b are determined by fair dice roll.

This does what i want:

Count[Flatten[Table[a 2 + b, {a,6},{b,6}]],8]/
Length[Flatten[Table[a 2 + b, {a,6},{b,6}]]]

, but I don't like the repetition. I'm not fully certain why following will not work:

Count[x, 8]/Length[x] /. x -> Flatten[Table[a 2 + b, {a, 6}, {b, 6}]]

Can i get around this and what is happening?

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Margus, if you have more Mathematica related questions I recommend you join us on -- it is far more active now than StackOverflow (for mathematica tag) and you will get better answers sooner. – Mr.Wizard Feb 5 '12 at 0:20
Margus: PE level 12. Well done! – Mr.Wizard Feb 5 '12 at 0:33

2 Answers 2

up vote 4 down vote accepted

The order of evaluation in this is not what you desire:

Count[x, 8]/Length[x] /. x -> Flatten[Table[a 2 + b, {a, 6}, {b, 6}]]

The left side of /. evaluates before replacement, and therefore becomes: Indeterminate

You need to delay evaluation. The normal method for this is to use a "pure function." See Function & and Slot #:

Count[#, 8]/Length[#] & @ Flatten[Table[a 2 + b, {a, 6}, {b, 6}]]

It is possible to force ReplaceAll (short form /.) to work, but it is nonstandard:

Unevaluated[ Count[x, 8]/Length[x] ] /.
    x -> Flatten[Table[a 2 + b, {a, 6}, {b, 6}]]

Unevaluted here keeps the left-hand side from evaluating prematurely.

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interesting use of Unevaluated. I thought you would have to do a Hold and ReleaseHold to get that to work. ...but of course that doesn't :) ...sometimes you just need to see it running to know what to do – Mike Honeychurch Feb 5 '12 at 0:20
@Mike admittedly Unevaluated is rather unpredictable. See Leonid's comments to this answer. – Mr.Wizard Feb 5 '12 at 0:22
I must admit I would have expected the expression to remain unevaluated. I don;t work with held and unevaluated expressions that much and because of that generally don;t have an intuitive feel for it. With with HoldForm is about as sophisticated as I get :) – Mike Honeychurch Feb 5 '12 at 0:24
@Mike notice that Unevaluated only extends to the LHS of /. and in fact that part doesn't evaluate; ReplaceAll sees the unevaluated form and does the replacement, but Unevaluated does not persist outside of the surrounding function (in this case ReplaceAll) and therefore evaluation continues. – Mr.Wizard Feb 5 '12 at 0:27
yes I just ran Trace to see what was happening – Mike Honeychurch Feb 5 '12 at 0:28

The reason this produces an error is because x has no value and Length[x] returns zero. What you need to do is define x:

x=Flatten[Table[a 2 + b, {a, 6}, {b, 6}]];
Count[x, 8]/Length[x] 
share|improve this answer
And that's another way to do it. – Mr.Wizard Feb 5 '12 at 0:20
...and also use With: With[{x=...},Count[x, 8]/Length[x]] – kkm Feb 5 '12 at 10:24

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