编辑:异步调用现在已放置在axios.all()调用中以加快进程。问题仍然相同。
在我的应用程序中,当在登录屏幕上按注销时,存储在设备上的令牌被删除。
登录.js:
async resetKey() {
try {
await AsyncStorage.removeItem('@MySuperStore:key');
this.setState({
token: null,
loggedIn: false,
});
} catch (error) {
this.setState({
token: null,
loggedIn: false,
});
}
}
现在我想在另一个页面中使用这个事实,我将渲染基于 prop loggedIn。如果已登录,那么true,我将呈现活动以及一个绿色或红色框,指示用户是否已注册该活动。这一切都很简单,并且工作正常:
if (this.state.loggedIn) {
return (
<ScrollView refreshControl={
<RefreshControl refreshing={this.state.refreshing} onRefresh={this.onRefresh.bind(this)} />
}>
<Loader loading={this.state.loading} />
<Text style={styles.foodHeader}>Activiteiten</Text>
{this.state.activities.map((activity) => (
<TouchableOpacity key={activity.id} onPress={() => this.onOpenActivity(activity)} style={styles.foodActivityField}>
<Text>{`${activity.name}`}</Text>
<View>
{this.showRegistered(activity.id) ? registered : notRegistered}
</View>
</TouchableOpacity>
))}
<Text style={styles.foodHeader}>Eten</Text>
{this.state.foods.map((food) => (
<TouchableOpacity key={food.id} onPress={() => this.onOpenFood(food)} style={styles.foodActivityField}>
<Text>{`${food.name}`}</Text>
<View>
{this.showRegistered(food.id) ? registered : notRegistered}
</View>
</TouchableOpacity>
))}
</ScrollView>
);
}
但是,当用户刚刚注销时,不应显示此信息。在这种情况下,它应该显示一个简单的文本,上面写着“您必须登录才能查看活动”。
else {
{/** User is not logged in */ }
return (
<ScrollView refreshControl={
<RefreshControl refreshing={this.state.refreshing} onRefresh={this.onRefresh.bind(this)} />
}>
<Loader loading={this.state.loading} />
<Text>You have to be logged in to view activities</Text>
</ScrollView>
);
}
为简单起见,省略了registered、notRegistered和onOpenFood和函数的渲染。onOpenActivity对于刷新的功能和 API 调用,我有这段代码(API 调用的功能在单独的文件中,这些是基本的 axios 请求,两者都是GET和POST):
constructor(props) {
super(props);
this.state = {
loading: true,
refreshing: false,
activities: [],
foods: [],
registered: []
}
this.getData
}
/* Handles the action necessary to refresh */
onRefresh = () => {
this.setState({ refreshing: true });
this.getData().then(() => {
this.setState({ refreshing: false });
});
}
async componentDidMount() {
// Do the necessary API calls
this.getData();
}
getData = async () => {
this.setState({loading: true})
/* Get token from storage */
try {
console.log('trying to get key...')
const value = await AsyncStorage.getItem('@MySuperStore:key');
if (value) {
this.setState({
token: value,
loggedIn: true
});
/* Retrieve activities */
const activities = await getActivities();
this.setState({ activities });
/* Retrieve food */
const foods = await getFood();
this.setState({ foods });
/* Retrieve the activity ID's the user is registered for */
const registered = await getRegistered(this.state.token);
this.setState({ registered });
this.setState({ loading: false })
} else {
this.setState({
token: null,
loggedIn: false,
loading: false
});
}
} catch (error) {
this.setState({
token: null,
loggedIn: false
});
console.log("help")
}
}
现在的问题是,this.state.registered重新打开页面时看不到更改,导致页面显示不正确。刷新页面有效,因为整个状态都被重置了。如何解决这个问题?有没有办法例如onRefresh在再次加载页面时调用?页面以及函数onOpenFood和onOpenActivity导航到的页面是 StackNavigator 的一部分,StackNavigator 本身也是 DrawerNavigator 的一部分(react-navigation 3.3.2)。