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Given a list say

{"a", "b", "c", "d"}

Is there any easier way to generate list of sequential subsets like this (order of the result is not important)

{
 {"a"},
 {"a b"},
 {"a b c"},
 {"a b c d"},
 {"b"},
 {"b c"},
 {"b c d"},
 {"c"},
 {"c d"},
 {"d"}
}
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7 Answers 7

up vote 19 down vote accepted

I think I like this best of all:

set = {"a", "b", "c", "d"};

ReplaceList[set, {___, x__, ___} :> {x}]

With the string joining:

ReplaceList[set, {___, x__, ___} :> "" <> Riffle[{x}, " "]]

In a similar vein, specific to strings:

StringCases["abcd", __, Overlaps -> All]

Since Nasser says I am cheating, here is a more manual approach that also has greater efficiency on large sets:

ClearAll[f, f2]
f[i_][x_] := NestList[i, x, Length@x - 1]
f2[set_]  := Join @@ ( f[Most] /@ f[Rest][set] )

f2[{"a", "b", "c", "d"}]
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+1, that is not fair Mr Wizard, you are letting Mathematica do all the hard work using this method. You are supposed to do something ! –  Nasser Jan 14 '12 at 13:31
    
This is magic, not programming! –  acl Jan 14 '12 at 13:36
3  
This is great! and I think it's a great accordance with Mathematica's core conception rather than a cheating :) –  Silvia Jan 14 '12 at 15:32
    
Neat!!! If you use your two NestList functions inside the following form StringJoin @@@ (f[Most]/@f[Rest]@set // Flatten[#, 1] &) // Partition[#, 1] & // InputForm you get the desired output –  kguler Jan 15 '12 at 16:01
    
+1, Brilliant, just brilliant. –  rcollyer Jan 16 '12 at 2:48
Flatten[Partition[{a, b, c, d}, #, 1] & /@ {1, 2, 3, 4}, 1]

gives

{{a}, {b}, {c}, {d}, {a, b}, {b, c}, {c, d}, {a, b, c}, {b, c, d}, {a, b, c, d}}

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+1, More complex than Mr. Wizard's, but still good. –  rcollyer Jan 16 '12 at 2:50

How about this:

origset = {"a", "b", "c", "d"};

bdidxset = Subsets[Range[4], {1, 2}]

origset[[#[[1]] ;; #[[-1]]]] & /@ bdidxset

which gives

{{"a"}, {"b"}, {"c"}, {"d"}, {"a", "b"}, {"a", "b", "c"}, {"a", "b", 
  "c", "d"}, {"b", "c"}, {"b", "c", "d"}, {"c", "d"}}
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I like TomD's method better, but this is what came to my mind, sans string processing:

set = {"a", "b", "c", "d"};

n = Length@set;

Join @@ Table[set~Take~{s, f}, {s, n}, {f, s, n}] // Column

Mathematica graphics

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1  
Why two answers? –  r.m. Jan 14 '12 at 15:36
1  
@yoda More rep, of course –  Peter Olson Jan 14 '12 at 17:45
3  
@yoda I thought the answers were of sufficiently different character. I see a problem with omnibus answers: it is not clear which method people are voting for, devaluing the purpose of votes, and voters may feel they have to vote for methods they do not like (or outright fail) if they want to vote for one they do. Contrary to Peter's assertion I was not gaming votes. –  Mr.Wizard Jan 15 '12 at 0:02
    
@Peter, see above. –  Mr.Wizard Jan 15 '12 at 0:03
    
@Mr.Wizard I know, and I didn't pay heed to Peter's comment. I know that you do this for sufficiently different answers, but I was curious why here, when you seem to have clubbed two different styles in the other answer. I later realized that this was the first answer and you probably added the edit to that one to keep close to Nasser's comment. In any case, I don't really care – just curious. –  r.m. Jan 15 '12 at 0:07

Here is one possible solution

a={"a","b","c","d"};
StringJoin@Riffle[#, " "] & /@ 
  DeleteDuplicates[
   LongestCommonSubsequence[a, #] & /@ 
    DeleteCases[Subsets@a, {}]] // Column

Result

a
b
c
d
a b
b c
c d
a b c
b c d
a b c d
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one way:

makeList[lst_] := Map[ Union[lst[[1 ;; #]]] &, Range@Length[lst]]
r = Map[makeList[lst[[# ;; -1]]] &, Range@Length[lst]];
Flatten[r, 1]

gives

{{"a"}, 
 {"a", "b"}, 
 {"a", "b", "c"}, 
 {"a", "b", "c", "d"}, 
 {"b"},
 {"b", "c"},
 {"b", "c", "d"},
 {"c"}, 
 {"c", "d"}, 
 {"d"}}
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You can do it like this:

a = {"a", "b", "c", "d"};
b = List[StringJoin[Riffle[#, " "]]] & /@
  Flatten[Table[c = Drop[a, n];
    Table[Take[c, i], {i, Length[c]}],
    {n, 0, Length[a]}], 1]

the output will look like this:

{{"a"}, {"a b"}, {"a b c"}, {"a b c d"}, {"b"}, {"b c"}, {"b c d"}, {"c"}, {"c d"}, {"d"}}
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