我有返回记录列表的方法。每条记录都设置为字段。
public class R {
public final Set s;
}
我有所有预期的Set列表 - 如:
Set<String> set1 = new HashSet<String>(); set1.add("s1");
Set<String> set2 = new HashSet<String>(); set1.add("s2");
Set<String> set3 = new HashSet<String>(); set1.add("s3");
我想使用AssertJ(版本3.11.1)以简单的方式验证响应List<R>包含所有已定义的Set或者至少来自这些集合的所有元素的聚合等于来自集合set1, set2, set3的元素的聚合
注意:以下解决方案不起作用:
Set allElements = new HashSet<String>();
allElements.addAll(set1);
allElements.addAll(set2);
allElements.addAll(set3);
List<R> result = foo();
org.assertj.core.api.Assertions.assertThat(result)
.extracting(record -> record.s)
.containsOnly(allElements);
我有:
java.lang.AssertionError:
Expecting:
<[["s1.1", "s1.2"],
["s2.1", "s2.2"],
["s3.1", "s3.2"]]>
to contain only:
<[["s1.1",
"s1.2",
"s2.1",
"s2.2",
"s3.1",
"s3.2"]]>
看起来containsExactlyInAnyOrderElementsOf就是答案
解决方案是:
Set<Set<String>> referralSet = new HashSet<>();
referralSet.add(set1);
referralSet.add(set2);
referralSet.add(set3);
org.assertj.core.api.Assertions.assertThat(result)
.extracting(record -> record.s)
.containsExactlyInAnyOrderElementsOf(referralSet);
看起来像flatExtracting的用例,尝试类似:
.assertThat(result).flatExtracting(record -> record.s)
.containsExactlyInAnyOrderElementsOf(referralSet);