4

there is a problem, I don't know how to implement the component technically correctly. I want to do conditional rendering of an element depending on the device screen. Example: if the screen is less than 700 px then I make one conclusion, if more then the second

if(window.innerWidth > 700) {
   return(
    <Content>
       1 
    </Content>)
};
return (
<Content>
       2
</Content>)

I use react, next js, and typeScript technologies

how to do this?

2 Answers 2

15

Create a width state in your component, and update state on window resize event, like this:

const App = () => {
  const [width, setWidth] = React.useState(window.innerWidth);
  const breakpoint = 700;
  React.useEffect(() => {
   const handleResizeWindow = () => setWidth(window.innerWidth);
    // subscribe to window resize event "onComponentDidMount"
    window.addEventListener("resize", handleResizeWindow);
    return () => {
      // unsubscribe "onComponentDestroy"
      window.removeEventListener("resize", handleResizeWindow);
    };
  }, []);
  if (width > breakpoint) {
    return (
      <div>
        <h3>Component 1</h3>
        <p>Current width is {width} px</p>
      </div>
    );
  }
  return (
    <div>
      <h3>Component 2</h3>
      <p>Current width is {width} px</p>
    </div>
  );
}


class Root extends React.Component {
  render() {
    return (
      <App/>
    );
  }
}

ReactDOM.render(<Root />, document.getElementById('root'));
<script src="https://unpkg.com/react@16/umd/react.development.js" crossorigin></script>
  <script src="https://unpkg.com/react-dom@16/umd/react-dom.development.js" crossorigin></script>
<div id="root">
</div>

-4

You can use ternary operator in react like this for conditional rendering of component.

{ window.innerWidth > 700 ? (
   <Content>
       1 
   </Content>
 ) : (
  <Content>
       2
  </Content>
  )
}

1
  • 2
    Just tried with a similar solution. It works on initial rendering but it won't work if the window.innerWidth is changed afterward. May 21, 2022 at 3:46

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.