73

React is complaining about code below, saying it useEffect is being called conditionally:

import React, { useEffect, useState } from 'react'
import VerifiedUserOutlined from '@material-ui/icons/VerifiedUserOutlined'
import withStyles from '@material-ui/core/styles/withStyles'
import firebase from '../firebase'
import { withRouter } from 'react-router-dom'

function Dashboard(props) {
  const { classes } = props
  
  const [quote, setQuote] = useState('')

    if(!firebase.getCurrentUsername()) {
        // not logged in
        alert('Please login first')
        props.history.replace('/login')
        return null
    }

    useEffect(() => {
        firebase.getCurrentUserQuote().then(setQuote)
    })

    return (
        <main>
            // some code here
        </main>
    )

    async function logout() {
        await firebase.logout()
        props.history.push('/')
    }
}

export default withRouter(withStyles(styles)(Dashboard))

And that returns me the error:

React Hook "useEffect" is called conditionally. React Hooks must be called in the exact same order in every component render.

Does anyone happen to know what the problem here is?

2
  • 2
    return null? from if condition? A component can only return valid JSX
    – A dev
    Aug 23, 2019 at 6:34
  • 5
    @NatGeo null is a valid JSX expression stackoverflow.com/q/42083181/1176601 ... but the code after return is only executed when the if statement is false, similar to else { ... } - a.k.a. "conditionally" which is forbidden by rules-of-hooks
    – Aprillion
    Aug 23, 2019 at 6:51

5 Answers 5

83

Your code, after an if statement that contains return, is equivalent to an else branch:

if(!firebase.getCurrentUsername()) {
    ...
    return null
} else {
    useEffect(...)
    ...
}

Which means that it's executed conditionally (only when the return is NOT executed).

To fix:

useEffect(() => {
  if(firebase.getCurrentUsername()) {
    firebase.getCurrentUserQuote().then(setQuote)
  }
}, [firebase.getCurrentUsername(), firebase.getCurrentUserQuote()])

if(!firebase.getCurrentUsername()) {
  ...
  return null
}
0
17

Don’t call Hooks inside loops, conditions, or nested functions. Instead, always use Hooks at the top level of your React function. You can follow the documentation here.

I couldn't find the use case in the above code. If you need the effect to run when the return value of firebase.getCurrentUsername() changes, you might want to use it outside the if condition like:

useEffect(() => {
    firebase.getCurrentUserQuote().then(setQuote)
}, [firebase.getCurrentUsername()]);
1
  • 7
    while true, this does not address the question.
    – Aprillion
    Aug 23, 2019 at 6:35
2

The issue here is that when we are returning null from the if block, the useEffect hook code will be unreachable, since we returned before it, and hence the error that it is being called conditionally.

You might want to define all the hooks first and then start writing the logic for rendering, be it null or empty string, or a valid JSX.

2

I had a similar problem with the same error message, where the order of variable declarations was the source of the error:

Bad example

if (loading) return <>loading...</>;
if (error) return <>Error! {error.message}</>;

const [reload, setReload] = useState(false);

Good example

const [reload, setReload] = useState(false);

if (loading) return <>loading...</>;
if (error) return <>Error! {error.message}</>;

The hook needs to be created before potential conditional return blocks

1

I would argue there is a way to call hooks conditionally. You just have to export some members from that hook. Copy-paste this snippet in codesandbox:

import React from "react";
import ReactDOM from "react-dom";

function useFetch() {
  return {
    todos: () =>
      fetch("https://jsonplaceholder.typicode.com/todos/1").then(response =>
        response.json()
      )
  };
}

const App = () => {
  const fetch = useFetch(); // get a reference to the hook

  if ("called conditionally") {
    fetch.todos().then(({title}) => 
      console.log("it works: ", title)); // it works:  delectus aut autem  
  }

  return null;
};

const rootElement = document.getElementById("root");
ReactDOM.render(<App />, rootElement);

Here's an example with a wrapped useEffect:

import React, { useEffect } from "react";
import ReactDOM from "react-dom";

function useWrappedEffect() {
  const [runEffect, setRunEffect] = React.useState(false);

  useEffect(() => {
    if (runEffect) {
      console.log("running");
      setRunEffect(false);
    }
  }, [runEffect]);

  return {
    run: () => {
      setRunEffect(true);
    }
  };
}

const App = () => {
  const myEffect = useWrappedEffect(); // get a reference to the hook
  const [run, setRun] = React.useState(false);

  if (run) {
    myEffect.run();
    setRun(false);
  }

  return (
    <button
      onClick={() => {
        setRun(true);
      }}
    >
      Run
    </button>
  );
};

const rootElement = document.getElementById("root");
ReactDOM.render(<App />, rootElement);
5
  • Your useFetch is not a hook. It does not use useState or useEffect (or any other React core hooks)
    – DLight
    Mar 16, 2021 at 10:12
  • I kept the example to a minimum. Feel free to make use of useState inside if you like 😉 Mar 17, 2021 at 10:17
  • The question is about useEffect, could you update your example to use that? Because I don't see how it would work.
    – DLight
    Mar 18, 2021 at 11:55
  • Thanks! But it's misleading, you don't "have to export some members from that hook" to trigger the useEffect conditionally. As I understand, the key is to put an if inside the useEffect. (Also I see you used two states, we don't need both)
    – DLight
    Mar 21, 2021 at 21:20
  • Yes the key is to put an if statement inside useEffect. I know my answer is not exactly the solution to the problem, but overall it's a powerfull concept since you can extract logic in a separate custom hook (not actually the native useEffect) and use it wherever afterwords Mar 22, 2021 at 15:24

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