21

Has anyone been able to find a way to parse through JSON files in Swift 3? I have been able to get the data to return but I am unsuccessful when it comes to breaking the data down into specific fields. I would post sample code but I've gone through so many different methods unsuccessfully and haven't saved any. The basic format I want to parse through is something like this. Thanks in advance.

{
  "Language": {

    "Field":[
          {
          "Number":"976",
          "Name":"Test"
          },
          {
          "Number":"977",
          "Name":"Test"
          }
       ]
   }
}
2
  • Your sample is invalid JSON. It needs to start and end with another {…}. Jul 2, 2016 at 1:13
  • I fixed that. However, it was just pasted in here wrong. My actual file had the correct formatting. Thanks
    – Nas5296
    Jul 2, 2016 at 1:17

8 Answers 8

28

Have you tried JSONSerialization.jsonObject(with:options:)?

var jsonString = "{" +
    "\"Language\": {" +
    "\"Field\":[" +
    "{" +
    "\"Number\":\"976\"," +
    "\"Name\":\"Test\"" +
    "}," +
    "{" +
    "\"Number\":\"977\"," +
    "\"Name\":\"Test\"" +
    "}" +
    "]" +
    "}" +
    "}"

var data = jsonString.data(using: .utf8)!

let json = try? JSONSerialization.jsonObject(with: data)

Swift sometimes produces some very odd syntax.

if let number = json?["Language"]??["Field"]??[0]?["Number"] as? String {
    print(number)
}

Everything in the JSON object hierarchy ends up getting wrapped as an optional (ie. AnyObject?). Array<T> subscript returns a non-optional T. For this JSON, which is wrapped in an optional, array subscript returns Optional<AnyObject>. However, Dictionary<K, V> subscript returns an Optional<V>. For this JSON, subscript returns the very odd looking Optional<Optional<AnyObject>> (ie. AnyObject??).

  • json is an Optional<AnyObject>.
  • json?["Language"] returns an Optional<Optional<AnyObject>>.
  • json?["Language"]??["Field"] returns an Optional<Optional<AnyObject>>.
  • json?["Language"]??["Field"]??[0] returns an Optional<AnyObject>.
  • json?["Language"]??["Field"]??[0]?["Number"] returns an Optional<Optional<AnyObject>>.
  • json?["Language"]??["Field"]??[0]?["Number"] as? String returns an Optional<String>.

The Optional<String> is then used by the if let syntax to product a String.


Final note: iterating the field array looks like this.

for field in json?["Language"]??["Field"] as? [AnyObject] ?? [] {
    if let number = field["Number"] as? String {
        print(number)
    }
}

Swift 4 Update

Swift 4 makes this all much easier to deal with. Again we will start with your test data (""" makes this so much nicer).

let data = """
{
  "Language": {

    "Field":[
          {
          "Number":"976",
          "Name":"Test"
          },
          {
          "Number":"977",
          "Name":"Test"
          }
       ]
   }
}
""".data(using: .utf8)!

Next we can define classes around the objects used in your JSON.

struct Object: Decodable {
    let language: Language
    enum CodingKeys: String, CodingKey { case language="Language" }
}

struct Language: Decodable {
    let fields: [Field]
    enum CodingKeys: String, CodingKey { case fields="Field" }
}

struct Field: Decodable {
    let number: String
    let name: String
    enum CodingKeys: String, CodingKey { case number="Number"; case name="Name" }
}

The CodingKeys enum is how struct properties are mapped to JSON object member strings. This mapping is done automagically by Decodable.


Parsing the JSON now is simple.

let object = try! JSONDecoder().decode(Object.self, from: data)

print(object.language.fields[0].name)

for field in object.language.fields {
    print(field.number)
}
4
  • How can I get down to just pulling the value of something like number? This code gets me to field but I can't figure out what would come next. var data = jsonString.data(using: .utf8)! let json = try? JSONSerialization.jsonObject(with: data) if let language = json?["Language"] { if let field = language?["Field"] { print(field) } }
    – Nas5296
    Jul 2, 2016 at 1:28
  • @Nas5296 I updated my answer for how to access a JSON object. Jul 2, 2016 at 2:31
  • Thank you so much! That's a really weird format (classic Swift), but exactly what I needed!
    – Nas5296
    Jul 2, 2016 at 2:35
  • Do you need to import anything other than Foundation and Glibc? I get: error: use of unresolved identifier 'JSONSerialization' on Swift version 3.0 (swift-3.0-PREVIEW-2). Jul 18, 2016 at 4:44
14

In Xcode 8 and Swift 3 id now imports as Any rather than AnyObject

This means that JSONSerialization.jsonObject(with: data) returns Any. So you have to cast the json data to a specific type like [String:Any]. Same applies to the next fields down the json.

var jsonString = "{" +
    "\"Language\": {" +
    "\"Field\":[" +
    "{" +
    "\"Number\":\"976\"," +
    "\"Name\":\"Test1\"" +
    "}," +
    "{" +
    "\"Number\":\"977\"," +
    "\"Name\":\"Test2\"" +
    "}" +
    "]" +
    "}" +
"}"

var data = jsonString.data(using: .utf8)!
if let parsedData = try? JSONSerialization.jsonObject(with: data) as! [String:Any] {
    let language = parsedData["Language"] as! [String:Any]
    print(language)
    let field = language["Field"] as! [[String:Any]]
    let name = field[0]["Name"]!
    print(name) // ==> Test1
}

In practice you would probably want some specific field buried in the json. Lets assume it's the Name field of the first element of Field array. You can use a chain of unwraps like this to safely access the field:

var data = jsonString.data(using: .utf8)!
if let json = try? JSONSerialization.jsonObject(with: data) as? [String:Any],
    let language = json?["Language"] as? [String:Any],
    let field = language["Field"] as? [[String:Any]],
    let name = field[0]["Name"] as? String, field.count > 0 {
    print(name) // ==> Test1
} else {
    print("bad json - do some recovery")
}

Also you may want to check Apple's Swift Blog Working with JSON in Swift

1
3

Shoving JSON into a string manually is a pita. Why don't you just put the JSON into a file and read that in?

Swift 3:

let bundle = Bundle(for: type(of: self))
    if let theURL = bundle.url(forResource: "response", withExtension: "json") {
        do {
            let data = try Data(contentsOf: theURL)
            if let parsedData = try? JSONSerialization.jsonObject(with: data) as! [String:Any] {
                grok(parsedData)
            }
        } catch {
            print(error)
        }
    }
0
 override func viewDidLoad() {
        super.viewDidLoad()
        let url=URL(string:"http://api.androidhive.info/contacts/")
        do {
            let allContactsData = try Data(contentsOf: url!)
            let allContacts = try JSONSerialization.jsonObject(with: allContactsData, options: JSONSerialization.ReadingOptions.allowFragments) as! [String : AnyObject]
            if let arrJSON = allContacts["contacts"] {
                for index in 0...arrJSON.count-1 {
                    let aObject = arrJSON[index] as! [String : AnyObject]
                    names.append(aObject["name"] as! String)
                    contacts.append(aObject["email"] as! String)
                }
            }
            print(names)
            print(contacts)
            self.tableView.reloadData()
        }
        catch {
        }
    }
0

JSON Parsing in swift 4 using Decodable Protocol :

I create a mocky file using your json object :

http://www.mocky.io/v2/5a280c282f0000f92c0635e6

Here is the code to parse the JSON :

Model Creation :

import UIKit

struct Item : Decodable { 
// Properties must be the same name as specified in JSON , else it will return nil
var Number : String
var Name : String
}

struct Language : Decodable {
 var Field : [Item]
}

struct Result : Decodable {
 var Language : Language
}

You can use optional in the model if you are uncertain that something might be missing in JSON file.

This is the parsing Logic :

class ViewController: UIViewController {

let url = "http://www.mocky.io/v2/5a280c282f0000f92c0635e6"

private func parseJSON() {

    guard let url = URL(string: url) else { return }

    let session = URLSession.shared.dataTask(with: url) { (data, response, error) in
        guard let data = data else { return }
        guard let result = try? JSONDecoder().decode(Result.self, from: data) else { return }
        print("\n\nResult : \(result)")
    }
    session.resume()
}

override func viewDidLoad() {
    super.viewDidLoad()
    parseJSON()
}
}

The Print Output :

 Result : Result(Language: JSON_Parsing.Language(Field: [JSON_Parsing.Item(Number: "976", Name: "Test"), JSON_Parsing.Item(Number: "977", Name: "Test")]))

This the github Project link. You can check.

0

JSON Parsing using Swift 4 in Simple WAY

   let url = URL(string: "http://mobileappdevelop.co/TIPIT/webservice/get_my_groups?user_id=5")
    URLSession.shared.dataTask(with:url!, completionHandler: {(data, response, error) in
        guard let data = data, error == nil else { return }

        do {
            let json = try JSONSerialization.jsonObject(with: data, options: .allowFragments) as! [String:Any]

             print(json)

            let posts =  json["Field"] as? [[String: Any]] ?? []
            print(posts)
        } catch let error as NSError {
            print(error)
        }

    }).resume()

}
0

Use SwiftJson library. I think its very easy way to parse.

let count: Int? = json["Field"].array?.count
if let ct = count {            
    for index in 0...ct-1{
        let number = json ["Field"][index]["number"].string
        let name = json ["Field"][index]["name"].string 

....

like this .

-1
dict = {
    message = "Login successfully.";
    status = 1;
    "user_details" =     (
                {
            dob = "1900-11-18";
            email = "rizwan@gmail.com";
            gender = male;
            name = Rizwan;
            nickname = Shaikh;
            "profile_pic" = "1483434421.jpeg";
            "social_id" = "<null>";
            "user_id" = 2;
        }
    );
}

We can parse above json in Swift 3 as

var dict2  = dict as! [String : Any]
print(dict);
let demoStr = dict2["message"] as! String
print(demoStr)
let demoArray = dict2["user_details"] as! [Any]
let demoDict = demoArray[0] as! [String:Any]
print(demoDict["dob"]!)
0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.