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Christoph Lamm

Publications and source records attributed to Christoph Lamm.

13 recordsLinked to original sources

Multiple points of view: The simultaneous crossing number for knots with doubly transvergent diagrams

The simultaneous crossing number is a new knot invariant which is defined for strongly invertible knots having diagrams with two orthogonal transvergent axes of strong inversions. Because the composition of the two inversions gives a cyclic period of order 2 with an axis orthogonal to the two axes of strong inversion, knot diagrams with this property have three characteristic orthogonal directions. We define the simultaneous crossing number, $\operatorname{sim}(K)$, as the minimum of the sum of the numbers of crossings of projections in the 3 directions, where the minimum is taken over all embeddings of $K$ satisfying the symmetry condition. Dividing the simultaneous crossing number by the usual crossing number, $\operatorname{cr}(K)$, of a knot gives a number $\ge 3$, because each of the 3 diagrams is a knot diagram of the knot in question. We show that $\liminf_{\operatorname{cr}(K) \to \infty} \operatorname{sim}(K)/\operatorname{cr}(K) \le 8$, when the minimum over all knots and the limit over increasing crossing numbers is considered.

math.GT

The enumeration of doubly symmetric diagrams for strongly positive amphicheiral knots

This is the second part of the article on doubly symmetric diagrams and strongly positive amphicheiral knots. We develop an enumeration strategy for prime knots given by doubly symmetric diagrams and determine all cases up to 18 crossings in the doubly symmetric diagram. A digression covers the origin of Gauss words for long curves and explains how Gauss marked non-realizable words.

math.GT

Strongly positive amphicheiral knots with doubly symmetric diagrams

We determine the prime strongly positive amphicheiral knots up to 16 crossings and show that a large fraction of them admit knot diagrams with a double symmetry (rotational symmetry for strongly positive amphicheirality and an additional mirror symmetry for the ribbon property). The remaining knots are presented as `almost doubly symmetric' diagrams, defined as diagrams with double symmetry where exactly one symmetric pair of crossings is switched. We also find that the rosette knot 14a19470, which has period 7, is the first prime strongly positive amphicheiral knot in the knot tables which is not slice.

math.GT

The search for non-symmetric ribbon knots

We present the results of Axel Seeliger's tabulation of symmetric union presentations for ribbon knots with crossing numbers 11 and 12 and exhibit possible examples for ribbon knots which are not representable as symmetric unions. In addition, we give a complete atlas of band diagrams for prime ribbon knots with 11 and 12 crossings.

math.GT

Deformation of cylinder knots

Knots parametrized in cylinder coordinates by t -> (st, 3 + cos(nt), cos(mt + ϕ)) share properties of Lissajous and billiard knots in a cylinder. We use these 'billiard knots in a flat solid torus' to study two topics: when is Z(s,n,m) equal to Z(s,m,n)? And: why are the determinants of certain Lissajous and billiard knots in a cylinder equal?

math.GT

Fourier Knots

We show that every knot has a checkerbord diagram and that every knot is the closure of a rosette braid. We define Fourier knots of type (n_1, n_2, n_3) as knots which have parametrizations where each coordinate function x_i(t) is a finite Fourier series of length n_i, and conclude that every knot is a Fourier knot of type (1, 1, n) for some natural number n.

math.GT

A refined Jones polynomial for symmetric unions

Motivated by the study of ribbon knots we explore symmetric unions, a beautiful construction introduced by Kinoshita and Terasaka in 1957. For symmetric diagrams we develop a two-variable refinement $W_D(s,t)$ of the Jones polynomial that is invariant under symmetric Reidemeister moves. Here the two variables $s$ and $t$ are associated to the two types of crossings, respectively on and off the symmetry axis. From sample calculations we deduce that a ribbon knot can have essentially distinct symmetric union presentations even if the partial knots are the same. If $D$ is a symmetric union diagram representing a ribbon knot $K$, then the polynomial $W_D(s,t)$ nicely reflects the geometric properties of $K$. In particular it elucidates the connection between the Jones polynomials of $K$ and its partial knots $K_\pm$: we obtain $W_D(t,t) = V_K(t)$ and $W_D(-1,t) = V_{K_-}(t) \cdot V_{K_+}(t)$, which has the form of a symmetric product $f(t) \cdot f(t^{-1})$ reminiscent of the Alexander polynomial of ribbon knots.

math.GT

For which triangles is Pick's formula almost correct?

We present an intriguing question about lattice points in triangles where Pick's formula is "almost correct". The question has its origin in knot theory, but its statement is purely combinatorial. After more than 30 years the topological question was recently solved, but the lattice point problem is still open.

math.GT

Equivalence of symmetric union diagrams

Motivated by the study of ribbon knots we explore symmetric unions, a beautiful construction introduced by Kinoshita and Terasaka 50 years ago. It is easy to see that every symmetric union represents a ribbon knot, but the converse is still an open problem. Besides existence it is natural to consider the question of uniqueness. In order to attack this question we extend the usual Reidemeister moves to a family of moves respecting the symmetry, and consider the symmetric equivalence thus generated. This notion being in place, we discuss several situations in which a knot can have essentially distinct symmetric union representations. We exhibit an infinite family of ribbon two-bridge knots each of which allows two different symmetric union representations.

math.GT

Billiard knots in a cylinder

We define cylinder knots as billiard knots in a cylinder. We present a necessary condition for cylinder knots: after dividing cylinder knots by possible rotational symmetries we obtain ribbon knots. We obtain an upper bound for the number of cylinder knots with two fixed parameters (out of three). In addition we prove that rosette knots are cylinder knots.

math.GT