具有多个条件的排序函数
Sort function with multiple condition
我有一个如下所示的对象数组:
var data = [
{
name": "Name2",
"webOrderingEnabled": true,
"distance": 1.6989125091571928
},
{
"name": "Name3",
"webOrderingEnabled": false,
"distance": 1.9178283920396098
},
{
"name": "Name4",
"webOrderingEnabled": false,
"shutdown": {
"message": "",
"status": true
},
"distance": 6.94478210395609
},
{
"name": "Name1",
"webOrderingEnabled": true,
"shutdown": {
"message": "",
"status": false
},
"distance": 0.5368834377514055
}
]
我想对这个对象数组进行排序
1.webOrderingEnabled
2.shutdown.status = 假
3.距离
挑战是某些对象没有关闭键,如果它不存在则考虑打开商店
我尝试了以下方法,但对我不起作用
data.sort((a, b) => {
if (a.shutdown?.status && b.shutdown?.starus || !a.shutdown?.status && !b.shutdown?.status &&
a.webOrderingEnabled || b.webOrderingEnabled) {
return a.distance - b.distance;
}
if (a.shutdown?.status) {
return -1;
}
return 1;
});
预计:
[{
"name": "Name1",
"webOrderingEnabled": true,
"shutdown": {
"message": "",
"status": false
},
"distance": 0.5368834377514055
},
{
"name": "Name2",
"webOrderingEnabled": true
"distance": 1.6989125091571928
},
{
"name": "Name3",
"webOrderingEnabled": false,
"distance": 1.9178283920396098
},
{
"name": "Name4",
"webOrderingEnabled": false,
"shutdown": {
"message": "",
"status": true
},
"distance": 6.94478210395609
}]
一般来说,如果您想根据字段 A、B、C(按此顺序)对对象数组进行排序,您只需执行以下操作:
if (a.A < b.A) return -1;
else if (a.A > b.A) return 1;
// otherwise a.A == b.A, so let's proceed with considering B now...
if (a.B < b.B) return -1;
else if (a.B > b.B) return 1;
// otherwise a.A == b.A && a.B == b.B, so let's proceed with considering C now...
if (a.C < b.C) return -1;
else if (a.C > b.C) return 1;
return 0;
在这里您可以将 a.A < b.A 视为用于比较单个属性值的伪代码,具体如何完成取决于类型。
所以您的代码应该类似于
// I assume by "consider to be store open" you mean shutdown.status === false
function getShutdownStatus(a) {
return a?.shutdown?.status || false;
}
data.sort((a, b) => {
// Use ! here because true > false but it seems you want true to come first
if (!a.webOrderingEnabled < !b.webOrderingEnabled) return -1;
else if (!a.webOrderingEnabled > !b.webOrderingEnabled) return 1;
const aShutdown = getShutdownStatus(a);
const bShutdown = getShutdownStatus(b);
if (aShutdown < bShutdown) return -1;
else if (aShutdown > bShutdown) return 1;
// otherwise compare by distance
if (a.distance < b.distance) return -1;
else if (a.distance > b.distance) return 1
return 0;
});
完成此工作后,您可以简化代码:
data.sort((a, b) => {
if (a.webOrderingEnabled != b.webOrderingEnabled) return b.webOrderingEnabled - a.webOrderingEnabled;
const aShutdown = getShutdownStatus(a);
const bShutdown = getShutdownStatus(b);
if (aShutdown != bShutdown) return aShutdown - bShutdown;
return a.distance - b.distance;
});
我有一个如下所示的对象数组:
var data = [
{
name": "Name2",
"webOrderingEnabled": true,
"distance": 1.6989125091571928
},
{
"name": "Name3",
"webOrderingEnabled": false,
"distance": 1.9178283920396098
},
{
"name": "Name4",
"webOrderingEnabled": false,
"shutdown": {
"message": "",
"status": true
},
"distance": 6.94478210395609
},
{
"name": "Name1",
"webOrderingEnabled": true,
"shutdown": {
"message": "",
"status": false
},
"distance": 0.5368834377514055
}
]
我想对这个对象数组进行排序 1.webOrderingEnabled 2.shutdown.status = 假 3.距离 挑战是某些对象没有关闭键,如果它不存在则考虑打开商店 我尝试了以下方法,但对我不起作用
data.sort((a, b) => {
if (a.shutdown?.status && b.shutdown?.starus || !a.shutdown?.status && !b.shutdown?.status &&
a.webOrderingEnabled || b.webOrderingEnabled) {
return a.distance - b.distance;
}
if (a.shutdown?.status) {
return -1;
}
return 1;
});
预计:
[{
"name": "Name1",
"webOrderingEnabled": true,
"shutdown": {
"message": "",
"status": false
},
"distance": 0.5368834377514055
},
{
"name": "Name2",
"webOrderingEnabled": true
"distance": 1.6989125091571928
},
{
"name": "Name3",
"webOrderingEnabled": false,
"distance": 1.9178283920396098
},
{
"name": "Name4",
"webOrderingEnabled": false,
"shutdown": {
"message": "",
"status": true
},
"distance": 6.94478210395609
}]
一般来说,如果您想根据字段 A、B、C(按此顺序)对对象数组进行排序,您只需执行以下操作:
if (a.A < b.A) return -1;
else if (a.A > b.A) return 1;
// otherwise a.A == b.A, so let's proceed with considering B now...
if (a.B < b.B) return -1;
else if (a.B > b.B) return 1;
// otherwise a.A == b.A && a.B == b.B, so let's proceed with considering C now...
if (a.C < b.C) return -1;
else if (a.C > b.C) return 1;
return 0;
在这里您可以将 a.A < b.A 视为用于比较单个属性值的伪代码,具体如何完成取决于类型。
所以您的代码应该类似于
// I assume by "consider to be store open" you mean shutdown.status === false
function getShutdownStatus(a) {
return a?.shutdown?.status || false;
}
data.sort((a, b) => {
// Use ! here because true > false but it seems you want true to come first
if (!a.webOrderingEnabled < !b.webOrderingEnabled) return -1;
else if (!a.webOrderingEnabled > !b.webOrderingEnabled) return 1;
const aShutdown = getShutdownStatus(a);
const bShutdown = getShutdownStatus(b);
if (aShutdown < bShutdown) return -1;
else if (aShutdown > bShutdown) return 1;
// otherwise compare by distance
if (a.distance < b.distance) return -1;
else if (a.distance > b.distance) return 1
return 0;
});
完成此工作后,您可以简化代码:
data.sort((a, b) => {
if (a.webOrderingEnabled != b.webOrderingEnabled) return b.webOrderingEnabled - a.webOrderingEnabled;
const aShutdown = getShutdownStatus(a);
const bShutdown = getShutdownStatus(b);
if (aShutdown != bShutdown) return aShutdown - bShutdown;
return a.distance - b.distance;
});