Non-parametric parametricity

Author:

NEIS GEORG,DREYER DEREK,ROSSBERG ANDREAS

Abstract

AbstractType abstraction and intensional type analysis are features seemingly at odds—type abstraction is intended to guarantee parametricity and representation independence, while type analysis is inherently non-parametric. Recently, however, several researchers have proposed and implemented “dynamic type generation” as a way to reconcile these features. The idea is that, when one defines an abstract type, one should also be able to generate at runtime a fresh type name, which may be used as a dynamic representative of the abstract type for purposes of type analysis. The question remains: in a language with non-parametric polymorphism, does dynamic type generation provide us with the same kinds of abstraction guarantees that we get from parametric polymorphism?Our goal is to provide a rigorous answer to this question. We define a step-indexed Kripke logical relation for a language with both non-parametric polymorphism (in the form of type-safe cast) and dynamic type generation. Our logical relation enables us to establish parametricity and representation independence results, even in a non-parametric setting, by attaching arbitrary relational interpretations to dynamically generated type names. In addition, we explore how programs that are provably equivalent in a more traditional parametric logical relation may be “wrapped” systematically to produce terms that are related by our non-parametric relation, and vice versa. This leads us to develop a “polarized” variant of our logical relation, which enables us to distinguish formally between positive and negative notions of parametricity.

Publisher

Cambridge University Press (CUP)

Subject

Software

Cited by 12 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Two Parametricities Versus Three Universal Types;ACM Transactions on Programming Languages and Systems;2022-09-21

2. CPS transformation with affine types for call-by-value implicit polymorphism;Proceedings of the ACM on Programming Languages;2021-08-22

3. ReLoC Reloaded: A Mechanized Relational Logic for Fine-Grained Concurrency and Logical Atomicity;Logical Methods in Computer Science;2021-07-27

4. A unifying type-theory for higher-order (amortized) cost analysis;Proceedings of the ACM on Programming Languages;2021-01-04

5. Relational cost analysis in a functional-imperative setting;Journal of Functional Programming;2021

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