Skip to content

typescriptbob/contravariant

BranchesTags

Folders and files

NameName
Last commit message
Last commit date

Latest commit

 

History

14 Commits

cpp

cpp

 
 

cs

cs

 
 

remark

remark

 
 

ts

ts

 
 

.gitignore

.gitignore

 
 

README.md

README.md

 
 

package.json

package.json

 
 

Repository files navigation

Contraviance in TypeScript

Bob Cook ( @typescriptbob )

TypeScript functions are contravarient

with respect to their parameters

What does this mean ?

Let's break that down

Types and Sub Types for basic types

Types and Sub Types are easy to think about for basic types

Each of the following resolves to true

(view in TypeScript Playground and hover over the type to evaluate it)

type NumberExtendsObject = number extends Object? true: false;
type StringExtendsObject = string extends Object ? true : false;
type NeverExtendsObject = never extends Object ? true : false;

Object vs object vs any

Note the use of Object rather than object. The former is a TypeScript type while object is the Javascript object type.

Using any here would be be misleading. Note the following

type NumberExtendsAny = number extends any? true: false; // true
type AnyExtendsNumber = any extends number? true: false; // boolean !

any has special behaviour outside the type hierarchy and is best avoided

Types and sub types for objects

For objects, the subtype relationship is defined by the set of properties of the object.

Each of the following are true

type XExtendsEmpty = { x: number } extends {} ? true: false;
type XYExtendsX = { x: number, y: number } extends {x: number} ? true : false;

You can think of this in terms of inheritance - a class that inherits from a base class is a subtype of the base. It can add more properties, but it cannot remove any.

Types and sub types for functions

Functions also have subtypes and supertypes. Each of these type relationships are true

function f1(a: { x: number, y: number }) { }
function f2(a: { x: number }) { }
function f3() { return 42;}
function f4() { }

type f2ExtendsF1 = typeof f2 extends typeof f1? true: false;
type f3ExtendsF2 = typeof f3 extends typeof f2? true: false;
type f4ExtendsF1 = typeof f4 extends typeof f1? true: false;

The second line could also be written more descriptively as

type FnOfXExtendsFnfXY = typeof f2 extends typeof f1? true: false;

Note the inverse relationship to the object containing X and Y

The following code is valid due to these relationships

function apply(fn: typeof f1) {
    fn({x:42, y:64});
}
apply(f4);

You can see here that the Higher Order function expects a function of f1 type, but it accepts a function of f4 type because f4 is a subtype of f1

This is because the parameter of f4 is a supertype of the parameter of f1

Hence we say the function is contravariant to the type of it's parameters

About

A short presentation on contravariance in TypeScript

Resources

Readme
Activity

Stars

0 stars

Watchers

1 watching

Forks

0 forks
Report repository

Releases

No releases published

Packages

No packages published

Contributors 2

  •  
  •  

Languages