91

In my React component I have a button meant to send some data over AJAX when clicked. I need to happen only the first time, i.e. to disable the button after its first use.

How I'm trying to do this:

var UploadArea = React.createClass({

  getInitialState() {
    return {
      showUploadButton: true
    };
  },

  disableUploadButton(callback) {
    this.setState({ showUploadButton: false }, callback);
  },

  // This was simpler before I started trying everything I could think of
  onClickUploadFile() {
    if (!this.state.showUploadButton) {
      return;
    }
    this.disableUploadButton(function() {
      $.ajax({
        [...]
      });

    });
  },

  render() {
    var uploadButton;
    if (this.state.showUploadButton) {
      uploadButton = (
        <button onClick={this.onClickUploadFile}>Send</button>
      );
    }

    return (
      <div>
        {uploadButton}
      </div>
    );
  }

});

What I think happens is the state variable showUploadButton not being updated right away, which the React docs says is expected.

How could I enforce the button to get disabled or go away altogether the instant it's being clicked?

4
  • Did you notice a problem or are you just wondering? Were you able to double submit?
    – cquezel
    Commented Apr 4, 2018 at 3:31
  • Formik library by default handles this issue, search about issubmitting in Formik website
    – Mohammad
    Commented Oct 28, 2019 at 12:25
  • Please look at @cquezel's answer for cleaner approach. Disabling form controls with ref (shown in the accepted answer) is an old thingy and might have been relevant in initial versions of ReactJs.
    – RBT
    Commented Dec 3, 2019 at 4:19
  • check this as reference sandny.com/2017/11/01/…
    – ricky
    Commented Jan 18, 2022 at 17:07

15 Answers 15

82

The solution is to check the state immediately upon entry to the handler. React guarantees that setState inside interactive events (such as click) is flushed at browser event boundary. Ref: https://github.com/facebook/react/issues/11171#issuecomment-357945371

// In constructor
this.state = {
    disabled : false
};


// Handler for on click
handleClick = (event) => {
    if (this.state.disabled) {
        return;
    }
    this.setState({disabled: true});
    // Send     
}

// In render
<button onClick={this.handleClick} disabled={this.state.disabled} ...>
    {this.state.disabled ? 'Sending...' : 'Send'}
<button>
9
  • 4
    This is the cleanest approach and should be the accepted answer.
    – RBT
    Commented Dec 2, 2019 at 13:59
  • I also believe the same as @RBT, this is the most clean way to do it and we are doing it the same way also on projects. :) Commented Jan 20, 2020 at 10:48
  • @cquezel I get that each button will have its own handler, but this.state.disabled is the same for all buttons! isn't it? That's why it disabled all my buttons when I clicked one of them. I wanted to disable only that button which I clicked. Commented May 7, 2020 at 18:45
  • @cquezel your answer is perfect for a single button. Commented May 7, 2020 at 18:47
  • 1
    @ZeeshanAhmadKhalil "this.state" is different for each button. That's what the "this" is all about. "this" represents the state of each individual object.
    – cquezel
    Commented May 8, 2020 at 2:25
64

What you could do is make the button disabled after is clicked and leave it in the page (not clickable element).

To achieve this you have to add a ref to the button element

<button ref="btn" onClick={this.onClickUploadFile}>Send</button>

and then on the onClickUploadFile function disable the button

this.refs.btn.setAttribute("disabled", "disabled");

You can then style the disabled button accordingly to give some feedback to the user with

.btn:disabled{ /* styles go here */}

If needed make sure to reenable it with

this.refs.btn.removeAttribute("disabled");

Update: the preferred way of handling refs in React is with a function and not a string.

<button 
  ref={btn => { this.btn = btn; }} 
  onClick={this.onClickUploadFile}
>Send</button>


this.btn.setAttribute("disabled", "disabled");
this.btn.removeAttribute("disabled");

Update: Using react hooks

import {useRef} from 'react';
let btnRef = useRef();

const onBtnClick = e => {
  if(btnRef.current){
    btnRef.current.setAttribute("disabled", "disabled");
  }
}

<button ref={btnRef} onClick={onBtnClick}>Send</button>

here is a small example using the code you provided https://jsfiddle.net/69z2wepo/30824/

10
  • 3
    This got me half way there, but the React team has deprecated giving ref a string value, and instead are using with it a callback: reactjs.org/docs/refs-and-the-dom.html
    – Martin
    Commented Jan 29, 2018 at 1:10
  • It giving me an error 'TypeError: self.btn.setAttribute is not a function' :( Commented Mar 30, 2018 at 9:23
  • 1
    The best anser is debounce Commented Mar 30, 2018 at 10:07
  • 4
    @KushalKumar How is debounce an adequate solution for this problem and what rate would be adequate for an only once scenario?
    – cquezel
    Commented Apr 1, 2018 at 15:46
  • 8
    @KushalKumar My point is that this has nothing to do with speed. The requirement is "the button may be clicked only once". That is why I don't think debouce is the right tool for the job.
    – cquezel
    Commented Dec 18, 2018 at 13:06
22

Tested as working one: http://codepen.io/zvona/pen/KVbVPQ

class UploadArea extends React.Component {
  constructor(props) {
    super(props)

    this.state = {
      isButtonDisabled: false
    }
  }

  uploadFile() {
    // first set the isButtonDisabled to true
    this.setState({
      isButtonDisabled: true
    });
    // then do your thing
  }

  render() {
    return (
      <button
        type='submit'
        onClick={() => this.uploadFile()}
        disabled={this.state.isButtonDisabled}>
        Upload
      </button>
    )
  }
}

ReactDOM.render(<UploadArea />, document.body);
7
  • 15
    This would not solve the issue as state updations are debounced by React. Because of this, there would always be a delay in this.state.isButtonDisabled to get 'false' value. Clicking twice in quick succession would still register 2 onClick events.
    – Awol
    Commented Aug 23, 2017 at 9:52
  • @Awol makes a very good point, the batching of this.setState() causes double clicks to still happen.
    – ksloan
    Commented Mar 15, 2018 at 3:43
  • 1
    depending on the complexity of the component it should be fast enough for a double click and it's by far a better design than adding an attribute using refs. Commented May 18, 2018 at 12:23
  • 10
    @Awol React guarantees that setState inside interactive events (such as click) is flushed at browser event boundary. see my answer below. If you change read or set state in an event handler, this will not be a problem.
    – cquezel
    Commented May 19, 2018 at 18:19
  • @cquezel, I didn't know this. Learnt something new today. Good find, thanks!
    – Awol
    Commented May 21, 2018 at 12:28
9

You can try using React Hooks to set the Component State.

import React, { useState } from 'react';

const Button = () => {
  const [double, setDouble] = useState(false);
  return (
    <button
      disabled={double}
      onClick={() => {
        // doSomething();
        setDouble(true);
      }}
    />
  );
};

export default Button;

Make sure you are using ^16.7.0-alpha.x version or later of react and react-dom.

Hope this helps you!

3
  • you mean useState
    – lukas1994
    Commented Jul 18, 2019 at 12:52
  • 2
    This button would then stay disabled forever, or until the page is refreshed or the component is rendered? This doesn't seem ideal?
    – alexr89
    Commented Aug 5, 2021 at 14:27
  • 3
    This wouldn't immediately disable the button. You're relying on a setter to take effect, which requires a redraw of the component, so it won't be instantaneous.
    – gene b.
    Commented Aug 9, 2021 at 23:49
7

If you want, just prevent to submit.

How about using lodash.js debounce

Grouping a sudden burst of events (like keystrokes) into a single one.

https://lodash.com/docs/4.17.11#debounce

<Button accessible={true}
    onPress={_.debounce(async () => {
                await this.props._selectUserTickets(this.props._accountId)
    }, 1000)}
></Button>
1
  • Nice this is also possible , but
    – AmitNayek
    Commented Sep 20, 2023 at 0:17
7

If you disable the button during onClick, you basically get this. A clean way of doing this would be:

import React, { useState } from 'react';
import Button from '@material-ui/core/Button';

export default function CalmButton(props) {
    const [executing, setExecuting] = useState(false);

    const {
        disabled,
        onClick,
        ...otherProps
    } = props;

    const onRealClick = async (event) => {
        setExecuting(true);
        try {
            await onClick();
        } finally {
            setExecuting(false);
        }
    };

    return (
        <Button
            onClick={onRealClick}
            disabled={executing || disabled}
            {...otherProps}
        />
    )
}

See it in action here: https://codesandbox.io/s/extended-button-that-disabled-itself-during-onclick-execution-mg6z8

We basically extend the Button component with the extra behaviour of being disabled during onClick execution. Steps to do this:

  1. Create local state to capture if we are executing
  2. Extract properties we tamper with (disabled, onClick)
  3. Extend onClick operation with setting the execution state
  4. Render the button with our overridden onClick, and extended disabled

NOTE: You should ensure that the original onClick operation is async aka it is returning a Promise.

8
  • This is a very clean approach. But one important thing: the async task duration need to be higher that 600/1000 ms !!! To be sure that it works all the time add 'await sleep(1000)' after 'await onClick();' . sleep is documented in the original example
    – Chris
    Commented Dec 21, 2020 at 9:28
  • Why is the 600/1000ms minimum? What happens if runtime is shorter? Commented Dec 21, 2020 at 16:31
  • if less than 600/1000ms then the someOperation() (in your example) run twice on double click. But this perfectly normal as the second click will be detected before. This can be easily reproduced if I change in your example 'await sleep(1000);' 'with await sleep(10);'
    – Chris
    Commented Dec 23, 2020 at 9:02
  • but again ClamButton is nice, I added it in my toolset :)
    – Chris
    Commented Dec 23, 2020 at 9:02
  • 1
    There's a problem with this approach: if the button unmounts while awaiting the inner onClick, you end up modifying state of an unmounted component when you call setExecuting(false);, which is a React no-no.
    – Yarin
    Commented Feb 3, 2022 at 19:38
2

By using event.target , you can disabled the clicked button. Use arrow function when you create and call the function onClick. Don't forget to pass the event in parameter.

See my codePen

Here is the code:

class Buttons extends React.Component{
  constructor(props){
    super(props)
    this.buttons = ['A','B','C','D']
  }

  disableOnclick = (e) =>{
    e.target.disabled = true
  }

  render(){
    return(

     <div>
        {this.buttons.map((btn,index) => (
          <button type='button' 
            key={index} 
            onClick={(e)=>this.disableOnclick(e)}
            >{btn}</button>
        ))}
      </div>
  )}

}
ReactDOM.render(<Buttons />, document.body);
1
const once = (f, g) => {
    let done = false;
    return (...args) => {
        if (!done) {
            done = true;
            f(...args);
        } else {
            g(...args);
        }
    };
};

const exampleMethod = () => console.log("exampleMethod executed for the first time");
const errorMethod = () => console.log("exampleMethod can be executed only once")

let onlyOnce = once(exampleMethod, errorMethod);
onlyOnce();
onlyOnce();

output

exampleMethod executed for the first time
exampleMethod can be executed only once
1

You can get the element reference in the onClick callback and setAttribute from there, eg:

      <Button
        onClick={(e) => {
          e.target.setAttribute("disabled", true);
          this.handler();
        }}            
      >
        Submit
      </Button>
2
  • This does not seems Reacty way how to do it. Reminds me old-school JS development.
    – Fusion
    Commented Sep 20, 2020 at 14:36
  • This is also possible bit different approach, but we have to see the performance concerns? As well
    – AmitNayek
    Commented Sep 20, 2023 at 0:19
1

Keep it simple and inline:

<button type="submit"
        onClick={event => event.currentTarget.disabled = true}>
    save
</button>

But! This will also disable the button, when the form calidation failed! So you will not be able to re-submit.

In this case a setter is better.

This fix this set the disabled in the onSubmit of the form:


// state variable if the form is currently submitting
const [submitting, setSubmitting] = useState(false);

// ...
return (
<form onSubmit={e => {
                setSubmitting(true); // create a method to modify the element
            }}>

    <SubmitButton showLoading={submitting}>save</SubmitButton>
</form>
);

And the button would look like this:

import {ReactComponent as IconCog} from '../../img/icon/cog.svg';
import {useEffect, useRef} from "react";

export const SubmitButton = ({children, showLoading}) => {

    const submitButton = useRef();

    useEffect(() => {
        if (showLoading) {
            submitButton.current.disabled = true;
        } else {
            submitButton.current.removeAttribute("disabled");
        }
    }, [showLoading]);

    return (
        <button type="submit"
                ref={submitButton}>
            <main>
                <span>{children}</span>
            </main>
        </button>
    );

};
0

Another approach could be like so:

<button onClick={this.handleClick} disabled={isLoading ? "disabled" :""}>Send</button>
0

My approach is if event on processing do not execute anything.

class UploadArea extends React.Component {
constructor(props) {
super(props)

this.state = {
  onProcess:false
   }
}

uploadFile() {
 if (!this.state.onProcess){
   this.setState({
     onProcess: true
   });
   // then do your thing
   this.setState({
     onProcess: false;
   });
 }    
}

render() {
  return (
    <button
      type='submit'
      onClick={() => this.uploadFile()}>
      Upload
    </button>
   )
  }
}

ReactDOM.render(<UploadArea />, document.body);
0

Try with this code:

class Form extends React.Component {
    constructor() {
        this.state = {
            disabled: false,
        };
    }

    handleClick() {
        this.setState({
            disabled: true,
        });

        if (this.state.disabled) {
            return;
        }

        setTimeout(() => this.setState({ disabled: false }), 2000);
    }

    render() {
        return (
            <button type="submit" onClick={() => this.handleClick()} disabled={this.state.disabled}>
                Submit
            </button>
        );
    }
}

ReactDOM.render(<Form />, document.getElementById('root'));
0

If still someone facing with such issue, the solution is much easier then creating custom components etc...

Just,

  1. set a state value called disabled by default false.
  2. assign it to your button's disabled property.
  3. in onPress firstly set it to true, then do your stuff....
  4. then set it to false on your component's un mount...
function MyClickable() {
    const [disabled,setDisabled] = useState(false)
useEffect(() => {
return () => setDisabled(false)
},[])

    const onPress  = useCallback(() => {
                         setDisabled(true);
                         // do your stuff
                    },[]);

     <TouchableOpacity disabled={disabled} onPress={onPress}>
          // your things
     </TouchableOpacity>
0

Try with this code

<button 
    onClick={async (e) => {
    e.currentTarget.disabled = true;
    await onClickUploadFile();
    e.currentTarget.disabled = false;
}}>
    Upload
</button>

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