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  2. Robertson–Seymour theorem - Wikipedia

    en.wikipedia.org/wiki/RobertsonSeymour_theorem

    A similar theorem states that K 4 and K 2,3 are the forbidden minors for the set of outerplanar graphs. Although the RobertsonSeymour theorem extends these results to arbitrary minor-closed graph families, it is not a complete substitute for these results, because it does not provide an explicit description of the obstruction set for any family.

  3. Graph structure theorem - Wikipedia

    en.wikipedia.org/wiki/Graph_structure_theorem

    A minor of a graph G is any graph H that is isomorphic to a graph that can be obtained from a subgraph of G by contracting some edges. If G does not have a graph H as a minor, then we say that G is H-free. Let H be a fixed graph. Intuitively, if G is a huge H-free graph, then there ought to be a "good reason" for this.

  4. Graph minor - Wikipedia

    en.wikipedia.org/wiki/Graph_minor

    Another result relating the four-color theorem to graph minors is the snark theorem announced by Robertson, Sanders, Seymour, and Thomas, a strengthening of the four-color theorem conjectured by W. T. Tutte and stating that any bridgeless 3-regular graph that requires four colors in an edge coloring must have the Petersen graph as a minor.

  5. Neil Robertson (mathematician) - Wikipedia

    en.wikipedia.org/wiki/Neil_Robertson_(mathematician)

    In 1993, with Seymour and Robin Thomas, Robertson proved the -free case for which the Hadwiger conjecture relating graph coloring to graph minors is known to be true. [ 8 ] In 1996, Robertson, Seymour, Thomas, and Daniel P. Sanders published a new proof of the four color theorem , [ 9 ] confirming the Appel–Haken proof which until then had ...

  6. Graph minors theorem - Wikipedia

    en.wikipedia.org/?title=Graph_minors_theorem&...

    Retrieved from "https://en.wikipedia.org/w/index.php?title=Graph_minors_theorem&oldid=1102375387"

  7. Pathwidth - Wikipedia

    en.wikipedia.org/wiki/Pathwidth

    If a family F of graphs is closed under taking minors (every minor of a member of F is also in F), then by the RobertsonSeymour theorem F can be characterized as the graphs that do not have any minor in X, where X is a finite set of forbidden minors. [42]

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  9. Friedman's SSCG function - Wikipedia

    en.wikipedia.org/wiki/Friedman's_SSCG_function

    In mathematics, a simple subcubic graph (SSCG) is a finite simple graph in which each vertex has a degree of at most three. Suppose we have a sequence of simple subcubic graphs G 1, G 2, ... such that each graph G i has at most i + k vertices (for some integer k) and for no i < j is G i homeomorphically embeddable into (i.e. is a graph minor of) G j.