无法在MongoDB中实现$ addToSet以获取单个字段的值?
除非该值已存在,否则$addToSet运算符会将值添加到数组,在这种情况下,$addToSet对该数组不执行任何操作。
让我们创建一个包含文档的集合-
> db.demo533.insertOne({"ProjectName":"Online Hospital Management"});{ "acknowledged" : true,
"insertedId" : ObjectId("5e8b4cfaef4dcbee04fbbbfc")
}
> db.demo533.insertOne({"ProjectName":"Online Library Management"});{
"acknowledged" : true,
"insertedId" : ObjectId("5e8b4d02ef4dcbee04fbbbfd")
}
> db.demo533.insertOne({"ProjectName":"Online Hospital Management"});{
"acknowledged" : true,
"insertedId" : ObjectId("5e8b4d04ef4dcbee04fbbbfe")
}
> db.demo533.insertOne({"ProjectName":"Online Customer Tracker"});{
"acknowledged" : true,
"insertedId" : ObjectId("5e8b4d0def4dcbee04fbbbff")
}
在find()方法的帮助下显示集合中的所有文档-
> db.demo533.find();
这将产生以下输出-
{ "_id" : ObjectId("5e8b4cfaef4dcbee04fbbbfc"), "ProjectName" : "Online Hospital Management" }{ "_id" : ObjectId("5e8b4d02ef4dcbee04fbbbfd"), "ProjectName" : "Online Library Management" }
{ "_id" : ObjectId("5e8b4d04ef4dcbee04fbbbfe"), "ProjectName" : "Online Hospital Management" }
{ "_id" : ObjectId("5e8b4d0def4dcbee04fbbbff"), "ProjectName" : "Online Customer Tracker" }
以下是实现$addToSet并获取字段ProjectName的值的查询-
> db.demo533.aggregate(... [
... {
... $group:
... {
... _id:null,
... SetOfProject: { $addToSet: "$ProjectName" }
... }
... }
... ]
... )
这将产生以下输出-
{ "_id" : null, "SetOfProject" : [ "Online Customer Tracker", "Online Library Management", "Online Hospital Management" ] }以上是 无法在MongoDB中实现$ addToSet以获取单个字段的值? 的全部内容, 来源链接: utcz.com/z/322087.html
