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I have this question a while back. Just wonder what is the best way (efficiency and elegance) to do this. The way I can think of is to use RandomPermutation to randomize the indices of the list, then choose the first m (of course needs to be less than the length of the list) elements from the list. But this requires the Combinatorica package.

Any better options?

Thank you.

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The obvious algorithm is to remove elements as you select them. Very easily implemented recursively, but I haven't had access to mathematica in such a long time that I hesitate to try to implement it for you. –  Jefromi Jun 9 '11 at 22:04

4 Answers 4

up vote 5 down vote accepted

Oh. It turns out (since version 6) that Mathematica will just do it for you: RandomSample[list, m]

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oh wow! upvote for you and egg on my face for wasting 10 min cooking my answer up :) –  acl Jun 9 '11 at 22:07

As stated by Jefromi, for MMA6 and up RandomSample will do. For versions lower than 6 you can use the RandomPermutation function from the Combinatorica package (which is quite different from the MMA8 function RandomPermutation):

list[[ Take[RandomPermutation[Length[list]],m] ]]
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+1 for the archeology course –  belisarius Jun 10 '11 at 0:12

OK, pointless as it's built in, but here is how to implement what Jefromi suggested:

ClearAll@getel;
getel[{els_, lst_}] := Module[
{pos = RandomInteger[{1, Length@lst}]},
{els~Join~{lst\[LeftDoubleBracket]pos\[RightDoubleBracket]}, 
  Delete[lst, pos]}]

ClearAll@getN;
getN[lst_, n_] := First@Nest[getel, {{}, lst}, n]

and usage: getN[Range[10000], 3000]. A mere 4 orders of magnitude slower than the built-in function...

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How about this?

s={{{3, 1}}, {{3, 2}}, {{4, 2}}, {{5, 1}}, {{5, 2}}}

i = 1;
j = 1;
rand[list_] := Drop[
list,
Flatten[
Position[list,   var[i++] = {Flatten[RandomSample[list, 1]]}     ]]
]

Table[var[j++], {Length[s]}]

This produces a random arrangement of s with no repeats:

{{{5, 2}}, {{3, 1}}, {{5, 1}}, {{4, 2}}, {{3, 2}}}
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Or you could just use RandomSample @ s ;-) –  Mr.Wizard Sep 15 '12 at 15:07
    
Yes, I agree. RandomSample[l, m] is a better solution. –  Austin Henley Sep 24 '12 at 3:06

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