Swift 4: 使用 Codable `无法推断通用参数 'T'`
Swift 4: With Codable `Generic parameter 'T' could not be inferred`
我收到以下错误:
Generic parameter 'T' could not be inferred
在线:let data = try encoder.encode(obj)
这是代码
import Foundation
struct User: Codable {
var firstName: String
var lastName: String
}
let u1 = User(firstName: "Ann", lastName: "A")
let u2 = User(firstName: "Ben", lastName: "B")
let u3 = User(firstName: "Charlie", lastName: "C")
let u4 = User(firstName: "David", lastName: "D")
let a = [u1, u2, u3, u4]
var ret = [[String: Any]]()
for i in 0..<a.count {
let param = [
"a" : a[i],
"b" : 45
] as [String : Any]
ret.append(param)
}
let obj = ["obj": ret]
let encoder = JSONEncoder()
encoder.outputFormatting = .prettyPrinted
let data = try encoder.encode(obj) // This line produces an error
print(String(data: data, encoding: .utf8)!)
我做错了什么?
该消息具有误导性,真正的错误是 obj 是类型 [String: Any],它不符合 Codable 因为 Any 不符合。
想一想,Any永远无法符合Codable。当 Swift 可以是整数、字符串或对象时,Swift 将使用什么来存储 JSON 实体?您应该定义一个适当的结构来保存您的数据。
我收到以下错误:
Generic parameter 'T' could not be inferred
在线:let data = try encoder.encode(obj)
这是代码
import Foundation
struct User: Codable {
var firstName: String
var lastName: String
}
let u1 = User(firstName: "Ann", lastName: "A")
let u2 = User(firstName: "Ben", lastName: "B")
let u3 = User(firstName: "Charlie", lastName: "C")
let u4 = User(firstName: "David", lastName: "D")
let a = [u1, u2, u3, u4]
var ret = [[String: Any]]()
for i in 0..<a.count {
let param = [
"a" : a[i],
"b" : 45
] as [String : Any]
ret.append(param)
}
let obj = ["obj": ret]
let encoder = JSONEncoder()
encoder.outputFormatting = .prettyPrinted
let data = try encoder.encode(obj) // This line produces an error
print(String(data: data, encoding: .utf8)!)
我做错了什么?
该消息具有误导性,真正的错误是 obj 是类型 [String: Any],它不符合 Codable 因为 Any 不符合。
想一想,Any永远无法符合Codable。当 Swift 可以是整数、字符串或对象时,Swift 将使用什么来存储 JSON 实体?您应该定义一个适当的结构来保存您的数据。