Synchronous coordinates
Template:Citations missing In combinatorics, a branch of mathematics, partition regularity is one notion of largeness for a collection of sets.
Given a set , a collection of subsets is called partition regular if every set A in the collection has the property that, no matter how A is partitioned into finitely many subsets, at least one of the subsets will also belong to the collection. That is, for any , and any finite partition , there exists an i ≤ n, such that belongs to . Ramsey theory is sometimes characterized as the study of which collections are partition regular.
Examples
- the collection of all infinite subsets of an infinite set X is a prototypical example. In this case partition regularity asserts that every finite partition of an infinite set has an infinite cell (i.e. the infinite pigeonhole principle.)
- sets with positive upper density in : the upper density of is defined as
- For any ultrafilter on a set , is partition regular. If , then for exactly one is .
- sets of recurrence: a set R of integers is called a set of recurrence if for any measure preserving transformation of the probability space (Ω, β, μ) and of positive measure there is a nonzero so that .
- Call a subset of natural numbers a.p.-rich if it contains arbitrarily long arithmetic progressions. Then the collection of a.p.-rich subsets is partition regular (Van der Waerden, 1927).
- Let be the set of all n-subsets of . Let . For each n, is partition regular. (Ramsey, 1930).
- For each infinite cardinal , the collection of stationary sets of is partition regular. More is true: if is stationary and for some , then some is stationary.
- This generalizes Ramsey's theorem, as each is a barrier. (Nash-Williams, 1965)
- finite products of infinite trees (Halpern–Läuchli, 1966)
- piecewise syndetic sets (Brown, 1968)
- Call a subset of natural numbers i.p.-rich if it contains arbitrarily large finite sets together with all their finite sums. Then the collection of i.p.-rich subsets is partition regular (Folkman–Rado–Sanders, 1968).
- (m, p, c)-sets (Deuber, 1973)
- IP sets (Hindman, 1974, see also Hindman, Strauss, 1998)
- MTk sets for each k, i.e. k-tuples of finite sums (Milliken–Taylor, 1975)
- central sets; i.e. the members of any minimal idempotent in , the Stone–Čech compactification of the integers. (Furstenberg, 1981, see also Hindman, Strauss, 1998)
References
- Vitaly Bergelson, N. Hindman Partition regular structures contained in large sets are abundant J. Comb. Theory (Series A) 93 (2001), 18–36.
- T. Brown, An interesting combinatorial method in the theory of locally finite semigroups, Pacific J. Math. 36, no. 2 (1971), 285–289.
- W. Deuber, Mathematische Zeitschrift 133, (1973) 109–123
- N. Hindman, Finite sums from sequences within cells of a partition of N, J. Combinatorial Theory (Series A) 17 (1974) 1–11.
- C.St.J.A. Nash-Williams, On well-quasi-ordering transfinite sequences, Proc. Camb. Phil. Soc. 61 (1965), 33–39.
- N. Hindman, D. Strauss, Algebra in the Stone–Čech compactification, De Gruyter, 1998
- J.Sanders, A Generalization of Schur's Theorem, Doctoral Dissertation, Yale University, 1968.