我已经看过各种建议来解决测试类属性没有成功的问题,并且想知道是否有人可能会对我可能出错的地方进行更多的了解,这里是我尝试了所有错误的测试预期模拟被调用的函数,但没有被调用.
Search.jsx
import React, { Component } from 'react'
import { func } from 'prop-types'
import Input from './Input'
import Button from './Button'
class SearchForm extends Component {
static propTypes = {
toggleAlert: func.isRequired
}
constructor() {
super()
this.state = {
searchTerm: ''
}
this.handleSubmit = this.handleSubmit.bind(this)
}
handleSubmit = () => {
const { searchTerm } = this.state
const { toggleAlert } = this.props
if (searchTerm === 'mocky') {
toggleAlert({
alertType: 'success',
alertMessage: 'Success!!!'
})
this.setState({
searchTerm: ''
})
} else {
toggleAlert({
alertType: 'error',
alertMessage: 'Error!!!'
})
}
}
handleChange = ({ target: { value } }) => {
this.setState({
searchTerm: value
})
}
render() {
const { searchTerm } = this.state
const btnDisabled = (searchTerm.length === 0) === true
return (
<div className="well search-form soft push--bottom">
<ul className="form-fields list-inline">
<li className="flush">
<Input
id="search"
name="search"
type="text"
placeholder="Enter a search term..."
className="text-input"
value={searchTerm}
onChange={this.handleChange}
/>
<div className="feedback push-half--right" />
</li>
<li className="push-half--left">
<Button className="btn btn--positive" disabled={btnDisabled} onClick={this.handleSubmit}>
Search
</Button>
</li>
</ul>
</div>
)
}
}
export default SearchForm
第一种选择:
it('should call handleSubmit function on submit', () => {
const wrapper = shallow(<Search toggleAlert={jest.fn()} />)
const spy = jest.spyOn(wrapper.instance(), 'handleSubmit')
wrapper.instance().forceUpdate()
wrapper.find('.btn').simulate('click')
expect(spy).toHaveBeenCalled()
spy.mockClear()
})
第二种选择:
it('should call handleSubmit function on submit', () => {
const wrapper = shallow(<Search toggleAlert={jest.fn()} />)
wrapper.instance().handleSubmit = jest.fn()
wrapper.update()
wrapper.find('.btn').simulate('click')
expect(wrapper.instance().handleSubmit).toHaveBeenCalled()
})
我得到了一个类属性,该函数是一个类的实例,需要更新组件才能注册该函数,但它看起来像组件handleSubmit函数被调用而不是模拟?
交换handleSubmit作为一个类函数作为一个方法让我访问类原型,它在窥探Search.prototype时通过了测试,但我真的想得到类属性方法的解决方案.
所有建议和建议将不胜感激!
解决方法:
如果任何不需要的代码发生变化,我认为你的单元测试应该足够强大以捕获错误.
请在测试中包含严格的断言.
对于条件陈述,请同时涵盖分支机构.例如,如果是if和else语句,则必须编写两个测试.
对于用户操作,您应该尝试模拟操作,而不是手动调用该函数.
请看下面的例子,
import React from 'react';
import { shallow } from 'enzyme';
import { SearchForm } from 'components/Search';
describe('Search Component', () => {
let wrapper;
const toggleAlert = jest.fn();
const handleChange = jest.fn();
const successAlert = {
alertType: 'success',
alertMessage: 'Success!!!'
}
const errorAlert = {
alertType: 'error',
alertMessage: 'Error!!!'
}
beforeEach(() => {
wrapper = shallow(<SearchForm toggleAlert={toggleAlert} />);
});
it('"handleSubmit" to have been called with "mocky"', () => {
expect(toggleAlert).not.toHaveBeenCalled();
expect(handleChange).not.toHaveBeenCalled();
wrapper.find('Input').simulate('change', { target: { value: 'mocky' } });
expect(handleChange).toHaveBeenCalledTimes(1);
expect(wrapper.state().searchTerm).toBe('mocky');
wrapper.find('Button').simulate('click');
expect(toggleAlert).toHaveBeenCalledTimes(1);
expect(toggleAlert).toHaveBeenCalledWith(successAlert);
expect(wrapper.state().searchTerm).toBe('');
});
it('"handleSubmit" to have been called with "other than mocky"', () => {
expect(toggleAlert).not.toHaveBeenCalled();
expect(handleChange).not.toHaveBeenCalled();
wrapper.find('Input').simulate('change', { target: { value: 'Hello' } });
expect(handleChange).toHaveBeenCalledTimes(1);
expect(wrapper.state().searchTerm).toBe('Hello');
wrapper.find('Button').simulate('click');
expect(toggleAlert).toHaveBeenCalledTimes(1);
expect(toggleAlert).toHaveBeenCalledWith(errorAlert);
expect(wrapper.state().searchTerm).toBe('Hello');
});
});