247

I have a notification component, and I have a timeout setting for it. After timeout I call this.setState({isTimeout:true}).

What I want to do is if already timeout, I want just render nothing:

render() {
  let finalClasses = "" + (this.state.classes || "");
  if (isTimeout){
    return (); // here has some syntax error
  }
  return (<div>{this.props.children}</div>);
}

The problem is:

return (); // here has some syntax error

8 Answers 8

413

Yes you can, but instead of blank, simply return null if you don't want to render anything from component, like this:

return (null);

Another important point is, inside JSX if you are rendering element conditionally, then in case of condition=false, you can return any of these values false, null, undefined, true. As per DOC:

booleans (true/false), null, and undefined are valid children, they will be Ignored means they simply don’t render.

All these JSX expressions will render to the same thing:

<div />

<div></div>

<div>{false}</div>

<div>{null}</div>

<div>{undefined}</div>

<div>{true}</div>

Example:

Only odd values will get rendered, because for even values we are returning null.

const App = ({ number }) => {
  if(number%2) {
    return (
      <div>
        Number: {number}
      </div>
    )
  }
  
  return (null);           //===> notice here, returning null for even values
}

const data = [1,2,3,4,5,6];

ReactDOM.render(
  <div>
    {data.map(el => <App key={el} number={el} />)}
  </div>,
  document.getElementById('app')
)
<script src="https://cdnjs.cloudflare.com/ajax/libs/react/15.1.0/react.min.js"></script>
<script src="https://cdnjs.cloudflare.com/ajax/libs/react/15.1.0/react-dom.min.js"></script>

<div id='app' />

6
  • 12
    Why are you returning (null) and not simply null?
    – wederer
    Aug 2, 2018 at 11:51
  • 10
    @wederer there is no difference between return null and return (null) they are same :) Aug 2, 2018 at 11:55
  • 1
    But the way, you can't just drop out of your function (which is the same as returning undefined). If you don't have any return then React gives an error. So the return null is required. May 13, 2020 at 15:39
  • Btw, returning empty array from component or JSX expression still counts by react as valid empty value. This is in particular useful to understand while making data.map(...) in JSX when data is variable which could have no elements in it.
    – Mesqalito
    Jun 15, 2022 at 21:11
  • 2
    @MayankShukla return null and return (null) are not the same; a dimension of the result may be the same but the latter includes 2 useless characters Jul 14, 2022 at 17:20
48

Some answers are slightly incorrect and point to the wrong part of the docs:

If you want a component to render nothing, just return null, as per doc:

In rare cases you might want a component to hide itself even though it was rendered by another component. To do this return null instead of its render output.

If you try to return undefined for example, you'll get the following error:

Nothing was returned from render. This usually means a return statement is missing. Or, to render nothing, return null.

As pointed out by other answers, null, true, false and undefined are valid children which is useful for conditional rendering inside your jsx, but it you want your component to hide / render nothing, just return null.

EDIT React 18:

React 18 will allow rendering undefined instead of throwing. See this announcement.

22

Yes you can return an empty value from a React render method.

You can return any of the following: false, null, undefined, or true

According to the docs:

false, null, undefined, and true are valid children. They simply don’t render.

You could write

return null; or
return false; or
return true; or
return <div>{undefined}</div>; 

However return null is the most preferred as it signifies that nothing is returned

3
  • 5
    return undefined is wrong. it would return error. Instead return <div>{undefined}</div> is right way.
    – jay dhawan
    Feb 25, 2020 at 13:49
  • 2
    @jaydhawan return null is the recommended way. And yes, return undefined will give error so this answer is flawed.
    – Rahul Jain
    Aug 24, 2020 at 11:58
  • @jaydhawan the problem with this approch is that it will create "real" div element. Sep 29, 2022 at 18:34
8

If you are using Typescript and your component/function has return type React.Element, you will get the following error.

Type 'null' is not assignable to type 'ReactElement<any, string | JSXElementConstructor>'.

The solution is React.Fragment.

return <React.Fragment />

or

return <></>
2
7

Slightly off-topic but if you ever needed a class-based component that never renders anything and you are happy to use some yet-to-be-standardised ES syntax, you might want to go:

render = () => null

This is basically an arrow method that currently requires the transform-class-properties Babel plugin. React will not let you define a component without the render function and this is the most concise form satisfying this requirement that I can think of.

I'm currently using this trick in a variant of ScrollToTop borrowed from the react-router documentation. In my case, there's only a single instance of the component and it doesn't render anything, so a short form of "render null" fits nice in there.

1
  • 1
    The code has been already finished, but I like this style, looks the simplest code.
    – Xin
    Jun 26, 2018 at 4:08
3

for those developers who came to this question about checking where they can return null from component instead of checking in ternary mode to render or not render the component, the answer is YES, You Can!

i mean instead of this junk ternary condition inside your jsx in render part of your component:

// some component body
return(
  <section>
   {/* some ui */}
   
   { someCondition && <MyComponent /> }
   or
   { someCondition ? <MyComponent /> : null }

   {/* more ui */}
  </section>
)

you can check than condition inside your component like:

const MyComponent:React.FC = () => {
  
  // get someCondition from context at here before any thing


  if(someCondition) return null; // i mean this part , checking inside component! 
  
  return (
    <section>   
     // some ui...
    </section>
  )
}

Just Consider that in my case i provide the someCondition variable from a context in upper level component ( for example, just consider in your mind ) and i don't need to prop drill the someCondition inside MyComponent.

Just look how clean view your code gets after that, i mean you don't need to user ternary operator inside your JSX, and your parent component would like below:

// some component body
return(
  <section>
   {/* some ui */}
   
   <MyComponent />

   {/* more ui */}
  </section>
)

and MyComponent would handle the rest for you!

1

We can return like this,

return <React.Fragment />;
4
  • 2
    is this better or worse than returning null?
    – strider
    Aug 9, 2019 at 21:10
  • 1
    @bitstrider using Fragment instead of null triggers just a lose of memory.
    – koo
    Aug 29, 2019 at 18:17
  • 2
    not sure why this answer is downvoted, its shows the developer's intent explicitly
    – ktingle
    May 4, 2020 at 1:55
  • 1
    @ktingle From react docs: "A common pattern in React is for a component to return multiple elements. Fragments let you group a list of children without adding extra nodes to the DOM." null is more correct, "React docs, In rare cases you might want a component to hide itself even though it was rendered by another component. To do this return null instead of its render output."
    – row
    Feb 4, 2022 at 14:34
0

Returning falsy value in the render() function will render nothing. So you can just do

 render() {
    let finalClasses = "" + (this.state.classes || "");
    return !isTimeout && <div>{this.props.children}</div>;
  }

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