19

I have a dictionary as [String:Any].Now i want to convert this dictionary keys & value as key=value&key=value.I have created below extension to work but it didn't work for me.

extension Dictionary {

    var queryString: String? {
        var output: String = ""
        for (key,value) in self {
            output +=  "\(key)=\(value)\(&)"
        }
        return output
    }
}
6
  • 3
    The Foundation framework provides the classes URLComponents / URLQueryItems for this purpose. And why is queryString optional?
    – vadian
    Jun 30, 2017 at 4:19
  • Check this stackoverflow.com/a/44824746/6433023 to Make Array of URLQueryItems from Dictionary
    – Nirav D
    Jun 30, 2017 at 4:24
  • Check my answer: stackoverflow.com/a/44838558/4061501 Apr 15, 2018 at 11:44
  • @rmaddy all answers here crash when you pass nested dictionary. Sep 6, 2018 at 12:03
  • @SuhasAithal Why are you telling me? It's not my question. None of the answers are mine. If you have a different need then post your own question with all relevant details. Even link to this question as a similar, but different need.
    – rmaddy
    Sep 6, 2018 at 14:17

12 Answers 12

28

Use NSURLQueryItem.

An NSURLQueryItem object represents a single name/value pair for an item in the query portion of a URL. You use query items with the queryItems property of an NSURLComponents object.

To create one use the designated initializer queryItemWithName:value: and then add them to NSURLComponents to generate an NSURL. For example:

OBJECTIVE-C:

NSDictionary *queryDictionary = @{ @"q": @"ios", @"count": @"10" };
NSMutableArray *queryItems = [NSMutableArray array];
for (NSString *key in queryDictionary) {
    [queryItems addObject:[NSURLQueryItem queryItemWithName:key value:queryDictionary[key]]];
}
components.queryItems = queryItems;
NSURL *url = components.URL; // http://stackoverflow.com?q=ios&count=10

Swift:

let queryDictionary = [ "q": "ios", "count": "10" ]
var components = URLComponents()
components.queryItems = queryDictionary.map {
     URLQueryItem(name: $0, value: $1)
}
let URL = components.url
3
  • 2
    Please write code in Swift because question tagged with Swift
    – Nirav D
    Jun 30, 2017 at 4:23
  • 1
    Thats good But now instead of using absoluteString use directly url
    – Nirav D
    Jun 30, 2017 at 4:44
  • This crashes when you pass nested dictionary Sep 6, 2018 at 12:05
26

Another Swift-esque approach:

let params = [
    "id": 2,
    "name": "Test"
]

let urlParams = params.flatMap({ (key, value) -> String in
    return "\(key)=\(value)"
}).joined(separator: "&")
1
  • 2
    Thank you it working greate in Swift 4.2 But now .flatMap become .compactMap in Swift 4.2
    – Basil
    Jan 16, 2019 at 5:44
12
var populatedDictionary = ["key1": "value1", "key2": "value2"]

extension Dictionary {
    var queryString: String {
        var output: String = ""
        for (key,value) in self {
            output +=  "\(key)=\(value)&"
        }
        output = String(output.characters.dropLast())
        return output
    }
}

print(populatedDictionary.queryString)

// Output : key1=value1&key2=value2

Hope it helps. Happy Coding!!

8
  • why not increasing index
    – TechChain
    Jun 30, 2017 at 5:43
  • 1
    index plays no role here. I just dropped last char from the string. I have updated output I got. Is that what u required?? Jun 30, 2017 at 5:46
  • why downvote. Ans satisfied the requirement. I know there are many ways to accomplish same task, Instead of implementing same task another way ,I just modified @deepakkumar existing code to match the requirements. Jul 4, 2017 at 3:57
  • @luckyShubhra have you tried to run the code it has one error in it Use of unresolved identifier 'output', that's why someone down-voted it, please correct it otherwise other user will also down-vote it. Oct 6, 2017 at 9:44
  • 1
    if you use a value with the spaces or "?" or "&" you won't get an URL with this query string Oct 3, 2018 at 7:51
4
extension Dictionary {
    var queryString: String? {
        return self.reduce("") { "\($0!)\($1.0)=\($1.1)&" }
    }
}
1
  • 1
    Nice, but leaves last "&"
    – bashan
    Aug 4, 2018 at 14:33
3

Same as @KKRocks with update for swift 4.1.2

func queryItems(dictionary: [String:Any]) -> String {
    var components = URLComponents()
    print(components.url!)
    components.queryItems = dictionary.map {
        URLQueryItem(name: $0, value: String(describing: $1))
    }
   return (components.url?.absoluteString)!
}
3

Compact version of @luckyShubhra's answer

Swift 5.0

extension Dictionary {
    var queryString: String {
        var output: String = ""
        forEach({ output += "\($0.key)=\($0.value)&" })
        output = String(output.dropLast())
        return output
    }
}

Usage

let populatedDictionary = ["key1": "value1", "key2": "value2"]
let urlQuery = populatedDictionary.queryString
print(urlQuery)
1
  • I think StringProtocol conformance will make this safer. ie extension Dictionary where Key : StringProtocol, Value : StringProtocol ... Dec 9, 2020 at 4:01
2

Try this :

func queryItems(dictionary: [String:Any]) -> String {
        var components = URLComponents()
        print(components.url!)
        components.queryItems = dictionary.map {
            URLQueryItem(name: $0, value: $1)
        }
       return (components.url?.absoluteString)!
    }
1
import Foundation

    extension URL {
        var queryItemsDictionary: [String: String] {
            var queryItemsDictionary = [String: String]()

            // we replace the "+" to space and then encode space to "%20" otherwise after creating URLComponents object
            // it's not possible to distinguish the real percent from the space in the original URL
            let plusEncodedString = self.absoluteString.replacingOccurrences(of: "+", with: "%20")

            if let queryItems = URLComponents(string: plusEncodedString)?.queryItems {
                queryItems.forEach { queryItemsDictionary[$0.name] = $0.value }
            }
            return queryItemsDictionary
        }
    }

That extension will allow you to parse URL where you have both encoded + sign and space with plus, for example:

https://stackoverflow.com/?q=First+question&email=mail%2B10@mail.com

That extension will parse "q" as "First question" and "email" as "mail+10@mail.com"

1
protocol ParametersConvertible {
    func asParameters() -> [String:Any] 
}

protocol QueryStringConvertible {
    func asQuery() -> String
}

extension QueryStringConvertible where Self: ParametersConvertible {
    func asQuery() -> String {
        var queries: [URLQueryItem] = []
        for (key, value) in self.asParameters() {
            queries.append(.init(name: key, value: "\(value)"))
        }

        guard var components = URLComponents(string: "") else {
            return ""
        }

        components.queryItems = queries
        return components.percentEncodedQuery ?? ""
    }
}
0

Add this function to your controller

func getQueryString(params : [String : Any])-> String{

        let urlParams = params.compactMap({ (key, value) -> String in
            return "\(key)=\(value)"
        }).joined(separator: "&")
        var urlString = "?" + urlParams
        if let url = urlString.addingPercentEncoding(withAllowedCharacters: .urlQueryAllowed){
            urlString = url
        }
          return urlString
    }

Example

self.getQueryString(params: ["name" : "deep ios developer" , "age" :22])

0

For anyone that wants the "short, short" version.

Condensed using map, you don't need the forEach or for loops. Also protocol constrained for type enforcement on the dictionary.

extension Dictionary where Key : StringProtocol, Value : StringProtocol {
    var queryString: String {
        self.map { "\($0)=\($1)" }.joined(separator: "&")
    }
}
0

I wrote this helper fn, which I thought was clean:

private static func queryStringParamsToString(_ dictionary: [String: Any]) -> String {
    return dictionary
        .map({(key, value) in "\(key)=\(value)"})
        .joined(separator: "&")
        .addingPercentEncoding(withAllowedCharacters: .urlPathAllowed)!

}

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