Reference. Calculating the Fundamental Group of the Circle in Homotopy Type Theory

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@inproceedings{licata-2013-calculating, title={Calculating the Fundamental Group of the Circle in Homotopy Type Theory}, url={http://dx.doi.org/10.1109/lics.2013.28}, DOI={10.1109/lics.2013.28}, booktitle={2013 28th Annual ACM/IEEE Symposium on Logic in Computer Science}, publisher={IEEE}, author={Licata, Daniel R. and Shulman, Michael}, year={2013}, month=June, pages={223–232} }
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licata-2013-calculating:
  type: article
  title: Calculating the Fundamental Group of the Circle in Homotopy Type Theory
  author:
  - Licata, Daniel R.
  - Shulman, Michael
  date: 2013-06
  page-range: 223-232
  serial-number:
    doi: 10.1109/lics.2013.28
  parent:
    type: proceedings
    title: 2013 28th Annual ACM/IEEE Symposium on Logic in Computer Science
    publisher: IEEE
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Two tricks to trivialize higher-indexed families zhang-2023-two

The conventional general syntax of indexed families in dependent type theories follow the style of “constructors returning a special case”, as in Agda, Lean, Idris, Coq, and probably many other systems. Fording is a method to encode indexed families of this style with index-free inductive types and an identity type. There is another trick that merges interleaved higher inductive-inductive types into a single big family of types. It makes use of a small universe as the index to distinguish the original types. In this paper, we show that these two methods can trivialize some very fancy-looking indexed families with higher inductive indices (which we refer to as higher indexed families).
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Constructing Higher Inductive Types as Groupoid Quotients vanderweide-2020-constructing

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Cubical Agda: A Dependently Typed Programming Language with Univalence and Higher Inductive Types VezzosiMortbergAbel2019

Proof assistants based on dependent type theory provide expressive languages for both programming and proving within the same system. However, all of the major implementations lack powerful extensionality principles for reasoning about equality, such as function and propositional extensionality. These principles are typically added axiomatically which disrupts the constructive properties of these systems. Cubical type theory provides a solution by giving computational meaning to Homotopy Type Theory and Univalent Foundations, in particular to the univalence axiom and higher inductive types. This paper describes an extension of the dependently typed functional programming language Agda with cubical primitives, making it into a full-blown proof assistant with native support for univalence and a general schema of higher inductive types. These new primitives make function and propositional extensionality as well as quotient types directly definable with computational content. Additionally, thanks also to copatterns, bisimilarity is equivalent to equality for coinductive types. This extends Agda with support for a wide range of extensionality principles, without sacrificing type checking and constructivity.
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All (∞,1)-toposes have strict univalent universes shulman-2019-all

We prove the conjecture that any Grothendieck (∞,1)-topos can be presented by a Quillen model category that interprets homotopy type theory with strict univalent universes. Thus, homotopy type theory can be used as a formal language for reasoning internally to (∞,1)-toposes, just as higher-order logic is used for 1-toposes. As part of the proof, we give a new, more explicit, characterization of the fibrations in injective model structures on presheaf categories. In particular, we show that they generalize the coflexible algebras of 2-monad theory.
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Quotient Inductive-Inductive Types altenkirch_etal_2018

Higher inductive types (HITs) in Homotopy Type Theory allow the definition of datatypes which have constructors for equalities over the defined type. HITs generalise quotient types, and allow to define types with non-trivial higher equality types, such as spheres, suspensions and the torus. However, there are also interesting uses of HITs to define types satisfying uniqueness of equality proofs, such as the Cauchy reals, the partiality monad, and the well-typed syntax of type theory. In each of these examples we define several types that depend on each other mutually, i.e. they are inductive-inductive definitions. We call those HITs quotient inductive-inductive types (QIITs). Although there has been recent progress on a general theory of HITs, there is not yet a theoretical foundation for the combination of equality constructors and induction-induction, despite many interesting applications. In the present paper we present a first step towards a semantic definition of QIITs. In particular, we give an initial-algebra semantics. We further derive a section induction principle, stating that every algebra morphism into the algebra in question has a section, which is close to the intuitively expected elimination rules.
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Homotopy type theory is an extension of Martin-Löf type theory, based on a correspondence with homotopy theory and higher category theory. In homotopy type theory, the propositional equality type is proof-relevant, and corresponds to paths in a space. This allows for a new class of datatypes, called higher inductive types, which are specified by constructors not only for points but also for paths. In this paper, we consider a programming application of higher inductive types. Version control systems such as Darcs are based on the notion of patches—syntactic representations of edits to a repository. We show how patch theory can be developed in homotopy type theory. Our formulation separates formal theories of patches from their interpretation as edits to repositories. A patch theory is presented as a higher inductive type. Models of a patch theory are given by maps out of that type, which, being functors, automatically preserve the structure of patches. Several standard tools of homotopy theory come into play, demonstrating the use of these methods in a practical programming context.
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Homotopy Type Theory: Univalent Foundations of Mathematics hottbook

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Cites 25 works (2 here)
With notes (2)

Homotopy Type Theory: Univalent Foundations of Mathematics hottbook

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Observational equality, now! altenkirch-2007-observational

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licata-2013-calculating reference entries/refs/licata-2013-calculating/licata-2013-calculating.hel