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강연자 Jean V. Bellissard
소속 Georgia Institute of Technology, School of Mathematics and School of Physics
date 2014-03-20

After a review of various types of tilings and aperiodic materials, the notion of tiling space (or Hull) will be defined. The action of the translation group makes it a dynamical system. Various local properties, such as the notion of "Finite Local Complexity" or of "Repetitivity" will be interpreted in terms of the tiling space. The special case of quasicrystal will be described. In the second part of the talk, various tools will be introduced to compute the topological invariants of the tiling space. First the tiling space will be seen as an inverse limit of compact branched oriented manifolds (the Anderson-Putnam complex). Then various cohomologies will be defined on the tiling space giving rise to isomorphic cohomology groups. As applications, the "Gap Labeling Theorem" will be described, and some results for the main quasicrystal and simple tilings will be given.


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첨부 '1'
  1. Idempotents and topologies

  2. Recent progress on the Brascamp-Lieb inequality and applications

  3. Existence of positive solutions for φ-Laplacian systems

  4. Riemann-Hilbert correspondence for irregular holonomic D-modules

  5. Normal form reduction for unconditional well-posedness of canonical dispersive equations

  6. Random conformal geometry of Coulomb gas formalism

  7. Categorification of Donaldson-Thomas invariants

  8. Noncommutative Surfaces

  9. The Shape of Data

  10. Topological Mapping of Point Cloud Data

  11. Structures on Persistence Barcodes and Generalized Persistence

  12. Persistent Homology

  13. 21Mar
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    in 수학강연회

    Topological aspects in the theory of aperiodic solids and tiling spaces

  14. Subgroups of Mapping Class Groups

  15. Irreducible Plane Curve Singularities

  16. Analytic torsion and mirror symmetry

  17. Fefferman's program and Green functions in conformal geometry

  18. 최고과학기술인상수상 기념강연: On the wild world of 4-manifolds

  19. 정년퇴임 기념강연: Volume Conjecture

  20. Queer Lie Superalgebras

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