这里的其他答案都不适合我。我试图在模糊上隐藏一个弹出窗口，但由于内容是绝对定位的，所以即使单击内部内容，onBlur也会启动。

以下是一个对我来说行之有效的方法：

// Inside the component:
onBlur(event) {
    // currentTarget refers to this component.
    // relatedTarget refers to the element where the user clicked (or focused) which
    // triggered this event.
    // So in effect, this condition checks if the user clicked outside the component.
    if (!event.currentTarget.contains(event.relatedTarget)) {
        // do your thing.
    }
},

希望这有帮助。

您只需在主体上安装一个双击处理程序，并在此元素上安装另一个。在该元素的处理程序中，只需返回false以防止事件传播。因此，当双击发生时，如果它在元素上，它将被捕获，并且不会传播到主体上的处理程序。否则它会被身体上的处理程序抓住。

更新：如果你真的不想阻止事件传播，你只需要使用closest来检查点击是发生在你的元素还是他的一个孩子身上：

<html>
<head>
<script src="https://code.jquery.com/jquery-2.1.4.min.js"></script>
<script>
$(document).on('click', function(event) {
    if (!$(event.target).closest('#div3').length) {
    alert("outside");
    }
});
</script>
</head>
<body>
    <div style="background-color:blue;width:100px;height:100px;" id="div1"></div>
    <div style="background-color:red;width:100px;height:100px;" id="div2"></div>
    <div style="background-color:green;width:100px;height:100px;" id="div3"></div>
    <div style="background-color:yellow;width:100px;height:100px;" id="div4"></div>
    <div style="background-color:grey;width:100px;height:100px;" id="div5"></div>
</body>
</html>

更新：不带jQuery:

<html>
<head>
<script>
function findClosest (element, fn) {
  if (!element) return undefined;
  return fn(element) ? element : findClosest(element.parentElement, fn);
}
document.addEventListener("click", function(event) {
    var target = findClosest(event.target, function(el) {
        return el.id == 'div3'
    });
    if (!target) {
        alert("outside");
    }
}, false);
</script>
</head>
<body>
    <div style="background-color:blue;width:100px;height:100px;" id="div1"></div>
    <div style="background-color:red;width:100px;height:100px;" id="div2"></div>
    <div style="background-color:green;width:100px;height:100px;" id="div3">
        <div style="background-color:pink;width:50px;height:50px;" id="div6"></div>
    </div>
    <div style="background-color:yellow;width:100px;height:100px;" id="div4"></div>
    <div style="background-color:grey;width:100px;height:100px;" id="div5"></div>
</body>
</html>

import { RefObject, useEffect } from 'react';

const useClickOutside = <T extends HTMLElement>(ref: RefObject<T>, fn: () => void) => {
    useEffect(() => {
        const element = ref?.current;
        function handleClickOutside(event: Event) {
            if (element && !element.contains(event.target as Node | null)) {
                fn();
            }
        }
        document.addEventListener('mousedown', handleClickOutside);
        return () => {
            document.removeEventListener('mousedown', handleClickOutside);
        };
    }, [ref]);
};

export default useClickOutside;

在我的DROPDOWN案例中，Ben Bud的解决方案工作得很好，但我有一个单独的切换按钮和一个onClick处理程序。因此，外部单击逻辑与单击切换按钮冲突。下面是我如何通过传递按钮的ref来解决这个问题：

import React, { useRef, useEffect, useState } from "react";

/**
 * Hook that triggers onClose when clicked outside of ref and buttonRef elements
 */
function useOutsideClicker(ref, buttonRef, onOutsideClick) {
  useEffect(() => {

    function handleClickOutside(event) {
      /* clicked on the element itself */
      if (ref.current && !ref.current.contains(event.target)) {
        return;
      }

      /* clicked on the toggle button */
      if (buttonRef.current && !buttonRef.current.contains(event.target)) {
        return;
      }

      /* If it's something else, trigger onClose */
      onOutsideClick();
    }

    // Bind the event listener
    document.addEventListener("mousedown", handleClickOutside);
    return () => {
      // Unbind the event listener on clean up
      document.removeEventListener("mousedown", handleClickOutside);
    };
  }, [ref]);
}

/**
 * Component that alerts if you click outside of it
 */
export default function DropdownMenu(props) {
  const wrapperRef = useRef(null);
  const buttonRef = useRef(null);
  const [dropdownVisible, setDropdownVisible] = useState(false);

  useOutsideClicker(wrapperRef, buttonRef, closeDropdown);

  const toggleDropdown = () => setDropdownVisible(visible => !visible);

  const closeDropdown = () => setDropdownVisible(false);

  return (
    <div>
      <button onClick={toggleDropdown} ref={buttonRef}>Dropdown Toggler</button>
      {dropdownVisible && <div ref={wrapperRef}>{props.children}</div>}
    </div>
  );
}

以上答案中没有一个对我有效，所以我最终做了如下：

从“React”导入React，｛Component｝；

/**
 * Component that alerts if you click outside of it
 */
export default class OutsideAlerter extends Component {
  constructor(props) {
    super(props);

    this.handleClickOutside = this.handleClickOutside.bind(this);
  }

  componentDidMount() {
    document.addEventListener('mousedown', this.handleClickOutside);
  }

  componentWillUnmount() {
    document.removeEventListener('mousedown', this.handleClickOutside);
  }

  /**
   * Alert if clicked on outside of element
   */
  handleClickOutside(event) {
    if (!event.path || !event.path.filter(item => item.className=='classOfAComponent').length) {
      alert('You clicked outside of me!');
    }
  }

  render() {
    return <div>{this.props.children}</div>;
  }
}

OutsideAlerter.propTypes = {
  children: PropTypes.element.isRequired,
};

战略示例

我喜欢所提供的解决方案，这些解决方案通过围绕组件创建包装器来完成相同的任务。

由于这更多是一种行为，我想到了战略，并提出了以下建议。

我是React的新手，我需要一些帮助来保存用例中的样板

请回顾并告诉我你的想法。

ClickOutside行为

import ReactDOM from 'react-dom';

export default class ClickOutsideBehavior {

  constructor({component, appContainer, onClickOutside}) {

    // Can I extend the passed component's lifecycle events from here?
    this.component = component;
    this.appContainer = appContainer;
    this.onClickOutside = onClickOutside;
  }

  enable() {

    this.appContainer.addEventListener('click', this.handleDocumentClick);
  }

  disable() {

    this.appContainer.removeEventListener('click', this.handleDocumentClick);
  }

  handleDocumentClick = (event) => {

    const area = ReactDOM.findDOMNode(this.component);

    if (!area.contains(event.target)) {
        this.onClickOutside(event)
    }
  }
}

示例用法

import React, {Component} from 'react';
import {APP_CONTAINER} from '../const';
import ClickOutsideBehavior from '../ClickOutsideBehavior';

export default class AddCardControl extends Component {

  constructor() {
    super();

    this.state = {
      toggledOn: false,
      text: ''
    };

    this.clickOutsideStrategy = new ClickOutsideBehavior({
      component: this,
      appContainer: APP_CONTAINER,
      onClickOutside: () => this.toggleState(false)
    });
  }

  componentDidMount () {

    this.setState({toggledOn: !!this.props.toggledOn});
    this.clickOutsideStrategy.enable();
  }

  componentWillUnmount () {
    this.clickOutsideStrategy.disable();
  }

  toggleState(isOn) {

    this.setState({toggledOn: isOn});
  }

  render() {...}
}

笔记

我想到了存储传递的组件生命周期挂钩，并用类似的方法覆盖它们：

const baseDidMount = component.componentDidMount;

component.componentDidMount = () => {
  this.enable();
  baseDidMount.call(component)
}

component是传递给ClickOutsideBehavior构造函数的组件。这将从该行为的用户中删除启用/禁用样板，但看起来不太好