50

Let's say I have a Java Person class:

class Person {
    String name;
    String email;
}

With REST Assured, you can deserialize this JSON object

{"name":"Bob", "email":"bob@email.com"} 

to a Java Person instance using

Person bob = given().when().get("person/Bob/").as(Person.class);

How does one use REST Assured to deserialize this JSON array

[{"name":"Bob", "email":"bob@email.com"}, 
 {"name":"Alice", "email":"alice@email.com"}, 
 {"name":"Jay", "email":"jay@email.com"}]

into a List<Person>? For example, this would be handy:

List<Person> persons = given().when().get("person/").as(...);
0
64

I found a way to achieve what I wanted:

List<Person> persons = given().when().get("person/").as(Person[].class);

UPDATE: Using Rest-Assured 1.8.1, looks like cast to List is not supported anymore. You need to declare and object array like this:

Person[] persons = given().when().get("person/").as(Person[].class);
3
22

for those who found out that accepted answer does not work anymore.

    List<Entity> list = new ArrayList<>();
    list = given()
            .contentType(CONTENT_TYPE)
        .when()
            .get(getRestOperationPath())
        .then()
            .extract().body().as(list.getClass());

hopefully, you understand that getRestOperationPath is returning rest operation path; and CONTENT_TYPE is placeholder for your content type (application/json for example)

upd: checked different versions, behavior differs depending on version, so you might want to try different approaches

upd2: cleaner solution was pointed by @Arigion in comments:

to use .extract().body().jsonPath().getList(".", Entity.class);
3
  • 2
    This should be the correct answer. Clean, simple, and the most up-to-date response. – Ryan Cox Sep 27 '16 at 20:19
  • 5
    it is better to use .extract().body().jsonPath().getList(".", Entity.class); You'd get an unchecked warning otherwise. – Arigion Sep 4 '18 at 7:41
  • @Arigion included that into answer :) please tell me if you made Answer with that so I can link it; I didn't find it. – Andrii Plotnikov Dec 11 '18 at 12:53
20

To extract a Java List, and not an Array, from a JSON API response, you just have to remember to use jsonPath rather than as:

List<Person> persons = given()
        .when()
        .get("/person")
        .then()
        .extract()
        .body()
        // here's the magic
        .jsonPath().getList(".", Person.class);

Your json path can point to anywhere you expect to have a list of json objects in your body. in this example (and working for your question) it just points to the json root.

sidenode: rest-assured is internally using jackson for deserialization (for .jsonPath as well as .as)

9

You could also do this if you were interested in using "expect()"

expect().
 body("get(0).firstName", equalTo("Mike")).
when().
 get("person/");

This was my case

1
  • Thank you. "get(0)" is what I needed. – asmaier May 21 '15 at 14:10
6

If anyone's still looking. Using Java 1.8 and RestAssured 2.9 the solution is really simple and it does not throw "Unchecked Warning".

return Arrays.asList(given()
            .when()
            .get("restPath")
            .then()
            .extract()
            .response()
            .body()
            .as(Player[].class));
0

If you are not comfortable with JsonPath, i would suggest using any java serialization/de-serialization using GSON or Jackson.

0

We can now use TypeRef much as it's possible to do it with the JsonPath library:

List<Person> persons = given().when().get("person/")
    .as(new TypeRef<List<Person>>() {});

As with https://github.com/json-path/JsonPath#what-is-returned-when - the anonymous inner class new TypeRef<List<Person>>() {} gets around type erasure and captures the type information enough that the framework can access the raw type - List in this case. The internal generic type - Person - is a safe cast that can be made under the circumstances.

-1

This would be helpful, works with current version of rest assured.

@Test
    public void apostUser() {
        Map<String,String> user = new HashMap<>();
        user.put("User_Id", "xyx1111");
        user.put("First_Name", "KS");
        user.put("Designation", "DR");

        given()
        .contentType("application/json")
        .body(user)
        .when().post("URI").then()
        .statusCode(200);
    }
-1

Since you want to map

[{"name":"Bob", "email":"bob@email.com"}, 
 {"name":"Alice", "email":"alice@email.com"}, 
 {"name":"Jay", "email":"jay@email.com"}]

to java object, you can create a new Java class like

public class PersonArray{
List<Person> personList;
}

Note that this person array class contains list of person. Now while calling the endpoint you can directly map to the PersonArray class as shown below

PersonArray personArray = given().when().get("person/").as(PersonArray.class);

Note the Person class should remain same i.e. no need to do any modification for the person class.

public class Person{
 String name;
 String email;
}
1
  • The type PersonArray has a field personList which is not present in the above data. – Ashley Frieze Mar 24 at 18:43

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