通用参数无法推断(swift 3)
[英]generic parameter could not be inferred (swift 3)
问题描述
我在我的项目中使用AFNetworking和Mantle库。 我决定迁移swift 3.我得到了这个错误 - > getSources函数中的“泛型参数'ResponseType'无法推断”
ApiBaseHelper.swift
class func GET<ResponseType>(url: String, parameters: AnyObject!, path: String!, callback: @escaping (_ operation: AFHTTPRequestOperation?, _ result: [ResponseType]?, _ error: Error?) -> ()) -> AFHTTPRequestOperation! where ResponseType: MTLJSONSerializing, ResponseType: MTLModel{
return NetworkManager.sharedInstance!.get(url, parameters: parameters,
success: {(operation: AFHTTPRequestOperation?, result: Any?) -> Void in
self.parseResponse(response: result as AnyObject!, operation: operation, path: path, callback: callback)
},
failure: { (operation: AFHTTPRequestOperation?, error: Error?) -> Void in
print("error get request => \(error)")
callback(operation, nil, error as Error?)
}
)
}
ApiHelper.swift
class func getSources(_ callback: @escaping (_ operation: AFHTTPRequestOperation?, _ contents: [Source]?, _ error: Error?) -> ()) {
var params = [String: AnyObject]()
params["apiKey"] = API_KEY as AnyObject?
let url = String(format: SOURCE_PATH)
//generic parameter 'ResponseType' could not be inferred
GET(url: url, parameters: params as AnyObject!, path: "sources") { (operation: AFHTTPRequestOperation!, result: [Source]?, error: Error!) -> () in
callback(operation, result, error)
}
}
1 个解决方案
解决方案1
0 2016-09-28 20:41:25
尝试将params类型更改为[String:Any]
无法推断Swift 3 NSCache通用参数'KeyType'
[英]Swift 3 NSCache Generic parameter 'KeyType' could not be inferred
通用参数'T'无法用闭包推断 - Swift 4
[英]Generic parameter 'T' could not be inferred with a closure - Swift 4
Swift 4:使用Codable`通用参数'T'无法推断
[英]Swift 4: With Codable `Generic parameter 'T' could not be inferred`
声明:本站的技术帖子网页,遵循CC BY-SA 4.0协议,如果您需要转载,请注明本站网址或者原文地址。任何问题请咨询:yoyou2525@163.com.