38

How can I validate that the supplied prop is a component class (not instance)?

e.g.

export default class TimelineWithPicker extends React.PureComponent {

    static propTypes = {
        component: PropTypes.any, // <-- how can I validate that this is a component class (or stateless functional component)?
    };

    render() {
        return (
            <this.props.component {...this.props} start={this.state.start}/>
        );
    }
}
51

For anyone using PropTypes >= 15.7.0 a new PropTypes.elementType was added in this pull request and was released on february 10, 2019.

This prop type supports all components (native components, stateless components, stateful components, forward refs React.forwardRef, context providers/consumers).

And it throws a warning when is not any of those elements, it also throws a warning when the prop passed is an element (PropTypes.element) and not a type.

Finally you can use it like any other prop type:

const propTypes = {
    component: PropTypes.elementType,
    requiredComponent: PropTypes.elementType.isRequired,
};
1
  • 1
    If I understand what a React element is, this prop type is actually quite badly named : > One might confuse elements with a more widely known concept of “components”.
    – challet
    Apr 14 '20 at 9:47
25

EDITED: Added React's FancyButton example to codesandbox as well as a custom prop checking function that works with the new React.forwardRef api in React 16.3. The React.forwardRef api returns an object with a render function. I'm using the following custom prop checker to verify this prop type. - Thanks for Ivan Samovar for noticing this need.

FancyButton: function (props, propName, componentName) {
  if(!props[propName] || typeof(props[propName].render) != 'function') {
    return new Error(`${propName}.render must be a function!`);
  }
}

You'll want to use PropTypes.element. Actually... PropType.func works for both stateless functional components and class components.

I've made a sandbox to prove that this works... Figured this was needed considering I gave you erroneous information at first. Very sorry about that!

Working sandbox example!

Here is the code for the test in case link goes dead:

import React from 'react';
import { render } from 'react-dom';
import PropTypes from "prop-types";

class ClassComponent extends React.Component {
  render() {
    return <p>I'm a class component</p>
  }
}

const FancyButton = React.forwardRef((props, ref) => (
  <button ref={ref} className="FancyButton">
    {props.children}
  </button>
));

// You can now get a ref directly to the DOM button:
const ref = React.createRef();
<FancyButton ref={ref}>Click me!</FancyButton>;

const FSComponent = () => (
    <p>I'm a functional stateless component</p>
);

const Test = ({ ClassComponent, FSComponent, FancyButton }) => (
  <div>
    <ClassComponent />
    <FSComponent />
    <FancyButton />
  </div>
);
Test.propTypes = {
  ClassComponent: PropTypes.func.isRequired,
  FSComponent: PropTypes.func.isRequired,
  FancyButton: function (props, propName, componentName) {
    if(!props[propName] || typeof(props[propName].render) != 'function') {
      return new Error(`${propName}.render must be a function!`);
    }
  },
}

render(<Test
         ClassComponent={ ClassComponent }
         FSComponent={ FSComponent }
         FancyButton={ FancyButton } />, document.getElementById('root'));
10
  • 2
    Also use oneOfType for different types: PropTypes.oneOfType([...])
    – btzr
    Jul 26 '17 at 3:37
  • 1
    Isn't that an instance? I thought <Foo> (aka React.createElement(Foo, null)) was a react element, whereas I want to check for raw Foo.
    – mpen
    Jul 26 '17 at 4:42
  • Nope :) There's a separate PropType for that. Jul 26 '17 at 4:52
  • @btzr please check update if you have not resolved this issue. I made a sandbox so that you can see THIS does work. I ran into this in something I'm working on today, used element and thought, "dang... i need to correct that". Documentation could use updating about this. Jul 27 '17 at 5:07
  • 1
    so regarding to initial question there is no simple prop type that can validate any possible component type Apr 14 '18 at 20:17

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