React Jest测试按钮onClick

问题描述 投票:1回答:1

我正在使用React开发一个应用程序,并且对它的测试框架还是陌生的。我正在尝试开发一种测试方法,以检查是否单击了onClick按钮。我读到我需要一个“间谍”功能来获取有关是否被调用的信息。

我的测试方法:

test("Btn1 click", () => {
    const wrapper = mount(<Register />);
    const spyOn = jest.spyOn(wrapper.instance(), "openWindow")
    const element = wrapper.find({id: "btn-how-to-choose-provider"}).first();
    element.simulate("click");
    expect(spyOn).toHaveBeenCalled();
});

我要测试的Register.js组件:

export default function Register() {
    const classes = useStyles();

    function openWindow(url) {
        window.open(url);
    }

    return (
        <div>
            <NavBar />
            <Container component="main" maxWidth="sm">
                <Card className={classes.root} elevation={4}>
                    <CssBaseline />
                    <div className={classes.paper}>
                        <Avatar className={classes.avatar}>
                            <AccountCircleIcon />
                        </Avatar>
                        <Typography component="h1" variant="h5">Hi! Welcome to Solid.</Typography>
                        <div className={classes.form}>

                            <Button
                                id="btn-how-to-choose-provider"
                                fullWidth
                                color="primary"
                                className={classes.link}
                                startIcon={<EmojiPeopleIcon/>}
                                onClick={(e) => openWindow('https://solid.inrupt.com/how-it-works')}
                            >How to choose a Provider?</Button>

                            <Button
                                id="btn-inrupt-provider"
                                fullWidth
                                variant="outlined"
                                color="primary"
                                className={classes.submit}
                                startIcon={<ContactsOutlinedIcon/>}
                                onClick={(e) => window.open('https://inrupt.net/register')}
                            >Inrupt</Button>

                            <Button
                                id="btn-solid-community-provider"
                                fullWidth
                                variant="outlined"
                                color="primary"
                                className={classes.submit}
                                startIcon={<ContactsIcon/>}
                                onClick={() => window.open('https://solid.community/register')}
                            >Solid Community</Button>

                        </div>
                    </div>
                </Card>
            </Container>
            <Grid
                    item
                    xs={12}
                    sm={12}
                    md={12}
                style={{marginTop: '36rem'}}
                >
                    <Footer />
                </Grid>
        </div>
    );
}

使用此配置,我得到以下错误:

TypeError: Cannot read property 'openWindow' of null

      34 | test("Btn1 click", () => {
      35 |     const wrapper = mount(<Register />);
    > 36 |     const spyOn = jest.spyOn(wrapper.instance(), "openWindow")
         |                        ^
      37 |     const element = wrapper.find({id: "btn-how-to-choose-provider"}).first();
      38 |     element.simulate("click");
      39 |     expect(spyOn).toHaveBeenCalled();

      at ModuleMockerClass.spyOn (node_modules/jest-mock/build/index.js:837:28)
      at Object.<anonymous> (src/components/containers/register/Register.test.js:36:24)

我的问题是:是否可以使用Jest或任何其他测试框架来测试按钮的onClick功能?

javascript reactjs sinon jest
1个回答
0
投票

[好的,因此,在进行了更多研究之后,我发现React Testing Library提供了一些工具来测试某些按钮的onClick事件(至少那些与我在上面的示例中显示的按钮类似)。这些工具之一是fireEvent,它有助于完成我想要的操作:

test("Click", () => {
    const {container} = render(<Register />);

    const button = getByTestId(container, 'btn-how-to-choose-provider');
    fireEvent.click(button);
});
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