MATRIX 2019 Interactions: Exercises

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m (The (stable) Cannon Conjecture)
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# [[Extensions of groups (Ex)]]
# [[Extensions of groups (Ex)]]
# [[Boundaries of Fuchsian groups (Ex)]]
# [[Boundaries of Fuchsian groups (Ex)]]
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=== Lecture 3: Topological rigidity ===
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=== Lecture 4: L<sup>2</sup>-invariants ===
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=== Lecture 5: The (stable) Cannon Conjecture ===
== Invariants of knots from Heegaard Floer homology ==
== Invariants of knots from Heegaard Floer homology ==

Revision as of 14:11, 6 January 2019

This page lists the exercises for consideration during the MATRIX 2019 Interactions meeting.

Participants are encouraged to work on the exercises and contribute solutions on the discussion page.

Contents

1 Surgery: high-d methods in low-d

1.1 Lecture 1: Normal maps and the surgery obstruction

  1. Stability of vector bundles (Ex)
  2. Normal maps - (non)-examples (Ex)
  3. Immersing n-spheres in 2n-space (Ex)
  4. Surgery obstruction, signature (Ex)
  5. Surgery obstruction, Arf-invariant (Ex)

1.2 Lecture 2: Foundations of topological 4-manifolds

1.3 Lecture 3: Stable diffeomorphism and the Q-form conjecture

1.4 Lecture 4: The surgery machine applied in low dimensions

1.5 Lecture 5: Topological concordance of classical knows: Where are we?

2 The (stable) Cannon Conjecture

2.1 Lecture 1: An introduction to 3-manifolds

  1. Betti numbers of 3-manifolds (Ex)
  2. Non-prime solvable fundamental groups (Ex)
  3. Atoroidal 3-manifolds (Ex)
  4. Three dimensional Heisenberg group (Ex)
  5. Circle actions on 3-manifolds (Ex)

2.2 Lecture 2: An introduction to hyperbolic groups

  1. Torsion-free solvable hyperbolic groups (Ex)
  2. Fundamental groups of surfaces (Ex)
  3. Minimal dimension of BG (Ex)
  4. Extensions of groups (Ex)
  5. Boundaries of Fuchsian groups (Ex)

2.3 Lecture 3: Topological rigidity

2.4 Lecture 4: L2-invariants

2.5 Lecture 5: The (stable) Cannon Conjecture

3 Invariants of knots from Heegaard Floer homology

3.1 Lecture 1: Heegaard diagrams

3.2 Lecture 2: Floer homology

3.3 Lecture 3: Knot Floer homology

3.4 Lecture 4: The Upsilon invariant

3.5 Lecture 5: Further applications

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