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Hales–Jewett theorem

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In mathematics, the Hales–Jewett theorem[1] is a fundamental combinatorial result of Ramsey theory named after Alfred W. Hales and Robert I. Jewett, concerning the degree to which high-dimensional objects must necessarily exhibit some combinatorial structure.

An informal geometric statement of the theorem is that for any positive integers n and c there is a number H such that if the cells of a H-dimensional n×n×n×...×n cube are colored with c colors, there must be one row, column, or certain diagonal (more details below) of length n all of whose cells are the same color. In other words, assuming n and c are fixed, the higher-dimensional, multi-player, n-in-a-row generalization of a game of tic-tac-toe with c players cannot end in a draw, no matter how large n is, no matter how many people c are playing, and no matter which player plays each turn, provided only that it is played on a board of sufficiently high dimension H. By a standard strategy-stealing argument, one can thus conclude that if two players alternate, then the first player has a winning strategy when H is sufficiently large, though no practical algorithm for obtaining this strategy is known.

Formal statement

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Combinatorical line in a cube

Let WH
n
be the set of words of length H over an alphabet with n letters; that is, the set of sequences of {1, 2, ..., n} of length H. This set forms the hypercube that is the subject of the theorem. A variable word w(x) over WH
n
still has length H but includes the special element x in place of at least one of the letters. The words w(1), w(2), ..., w(n) obtained by replacing all instances of the special element x with 1, 2, ..., n, form a combinatorial line in the space WH
n
; combinatorial lines correspond to rows, columns, and (some of the) diagonals of the hypercube. The Hales–Jewett theorem then states that for given positive integers n and c, there exists a positive integer H, depending on n and c, such that for any partition of WH
n
into c parts, there is at least one part that contains an entire combinatorial line.

For example, take n = 3, H = 2, and c = 2. The hypercube WH
n
in this case is just the standard tic-tac-toe board, with nine positions:

11 12 13
21 22 23
31 32 33

A typical combinatorial line would be the word 2x, which corresponds to the line 21, 22, 23; another combinatorial line is xx, which is the line 11, 22, 33. (Note that the line 13, 22, 31, while a valid line for the game tic-tac-toe, is not considered a combinatorial line.) In this particular case, the Hales–Jewett theorem does not apply; it is possible to divide the tic-tac-toe board into two sets, e.g. {11, 22, 23, 31} and {12, 13, 21, 32, 33}, neither of which contain a combinatorial line (and would correspond to a draw in the game of tic-tac-toe). On the other hand, if we increase H to, say, 8 (so that the board is now eight-dimensional, with 38 = 6561 positions), and partition this board into two sets (the "noughts" and "crosses"), then one of the two sets must contain a combinatorial line (i.e. no draw is possible in this variant of tic-tac-toe). For a proof, see below.

Proof of Hales–Jewett theorem (in a special case)

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We now prove the Hales–Jewett theorem in the special case n = 3, c = 2, H = 8 discussed above. The idea is to reduce this task to that of proving simpler versions of the Hales–Jewett theorem (in this particular case, to the cases n = 2, c = 2, H = 2 and n = 2, c = 6, H = 6). One can prove the general case of the Hales–Jewett theorem by similar methods, using mathematical induction.

Each element of the hypercube W8
3
is a string of eight numbers from 1 to 3, e.g. 13211321 is an element of the hypercube. We are assuming that this hypercube is completely filled with "noughts" and "crosses". We shall use a proof by contradiction and assume that neither the set of noughts nor the set of crosses contains a combinatorial line. If we fix the first six elements of such a string and let the last two vary, we obtain an ordinary tic-tac-toe board, for instance "132113??" gives such a board. For each such board "abcdef??", we consider the positions "abcdef11", "abcdef12", "abcdef22". Each of these must be filled with either a nought or a cross, so by the pigeonhole principle two of them must be filled with the same symbol. Since any two of these positions are part of a combinatorial line, the third element of that line must be occupied by the opposite symbol (since we are assuming that no combinatorial line has all three elements filled with the same symbol). In other words, for each choice of "abcdef" (which can be thought of as an element of the six-dimensional hypercube W6
3
), there are six (overlapping) possibilities:

  1. abcdef11 and abcdef12 are noughts; abcdef13 is a cross.
  2. abcdef11 and abcdef22 are noughts; abcdef33 is a cross.
  3. abcdef12 and abcdef22 are noughts; abcdef32 is a cross.
  4. abcdef11 and abcdef12 are crosses; abcdef13 is a nought.
  5. abcdef11 and abcdef22 are crosses; abcdef33 is a nought.
  6. abcdef12 and abcdef22 are crosses; abcdef32 is a nought.

Thus we can partition the six-dimensional hypercube W6
3
into six classes, corresponding to each of the above six possibilities. (If an element abcdef obeys multiple possibilities, we can choose one arbitrarily, e.g. by choosing the highest one on the above list).

Now consider the seven elements 111111, 111112, 111122, 111222, 112222, 122222, 222222 in W6
3
. By the pigeonhole principle, two of these elements must fall into the same class. Suppose for instance 111112 and 112222 fall into class (5), thus 11111211, 11111222, 11222211, 11222222 are crosses and 11111233, 11222233 are noughts. But now consider the position 11333233, which must be filled with either a cross or a nought. If it is filled with a cross, then the combinatorial line 11xxx2xx is filled entirely with crosses, contradicting our hypothesis. If instead it is filled with a nought, then the combinatorial line 11xxx233 is filled entirely with noughts, again contradicting our hypothesis. Similarly if any other two of the above seven elements of W6
3
fall into the same class. Since we have a contradiction in all cases, the original hypothesis must be false; thus there must exist at least one combinatorial line consisting entirely of noughts or entirely of crosses.

The above argument was somewhat wasteful; in fact the same theorem holds for H = 4.[2] If one extends the above argument to general values of n and c, then H will grow very fast; even when c = 2 (which corresponds to two-player tic-tac-toe) the H given by the above argument grows as fast as the Ackermann function. The first primitive recursive bound is due to Saharon Shelah,[3] and is still the best known bound in general for the Hales–Jewett number H = H(nc).

Connections with other theorems

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Observe that the above argument also gives the following corollary: if we let A be the set of all eight-digit numbers whose digits are all either 1, 2, 3 (thus A contains numbers such as 11333233), and we color A with two colors, then A contains at least one arithmetic progression of length three, all of whose elements are the same color. This is simply because all of the combinatorial lines appearing in the above proof of the Hales–Jewett theorem, also form arithmetic progressions in decimal notation. A more general formulation of this argument can be used to show that the Hales–Jewett theorem generalizes van der Waerden's theorem. Indeed the Hales–Jewett theorem is substantially a stronger theorem.

Just as van der Waerden's theorem has a stronger density version in Szemerédi's theorem, the Hales–Jewett theorem also has a density version. In this strengthened version of the Hales–Jewett theorem, instead of coloring the entire hypercube WH
n
into c colors, one is given an arbitrary subset A of the hypercube WH
n
with some given density 0 < δ < 1. The theorem states that if H is sufficiently large depending on n and δ, then the set A must necessarily contain an entire combinatorial line.

The density Hales–Jewett theorem was originally proved by Furstenberg and Katznelson using ergodic theory.[4] In 2009, the Polymath Project developed a new proof[5][6] of the density Hales–Jewett theorem based on ideas from the proof of the corners theorem.[7] Dodos, Kanellopoulos, and Tyros gave a simplified version of the Polymath proof.[8]

The Hales–Jewett is generalized by the Graham–Rothschild theorem, on higher-dimensional combinatorial cubes.

References

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  1. ^ Hales, Alfred W.; Jewett, Robert I. (1963). "Regularity and positional games". Trans. Amer. Math. Soc. 106 (2): 222–229. doi:10.1090/S0002-9947-1963-0143712-1. MR 0143712.
  2. ^ Hindman, Neil; Tressler, Eric (2014). "The first nontrivial Hales-Jewett number is four" (PDF). Ars Combinatoria. 113: 385–390. MR 3186481.
  3. ^ Shelah, Saharon (1988). "Primitive recursive bounds for van der Waerden numbers". J. Amer. Math. Soc. 1 (3): 683–697. doi:10.2307/1990952. JSTOR 1990952. MR 0929498.
  4. ^ Furstenberg, Hillel; Katznelson, Yitzhak (1991). "A density version of the Hales–Jewett theorem". Journal d'Analyse Mathématique. 57 (1): 64–119. doi:10.1007/BF03041066. MR 1191743. S2CID 123036744.
  5. ^ D. H. J. Polymath (2012). "A new proof of the density Hales–Jewett theorem". Annals of Mathematics. 175 (3): 1283–1327. doi:10.4007/annals.2012.175.3.6. MR 2912706.
  6. ^ Gowers, William Timothy (2010). "Polymath and the density Hales-Jewett theorem". In Bárány, Imre; Solymosi, József (eds.). An irregular mind. Bolyai Society Mathematical Studies. Vol. 21. Budapest: János Bolyai Mathematical Society. pp. 659–687. doi:10.1007/978-3-642-14444-8_21. ISBN 978-963-9453-14-2. MR 2815619.
  7. ^ Ajtai, Miklós; Szemerédi, Endre (1974). "Sets of lattice points that form no squares". Stud. Sci. Math. Hungar. 9: 9–11. MR 0369299.
  8. ^ Dodos, Pandelis; Kanellopoulos, Vassilis; Tyros, Konstantinos (2014). "A simple proof of the density Hales–Jewett theorem". Int. Math. Res. Not. IMRN. 2014 (12): 3340–3352. arXiv:1209.4986. doi:10.1093/imrn/rnt041. MR 3217664.
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