是的,我有解决方案
例如:
{ "foo": "string", "bar": "integer", "baz": "boolean"}使用http://www.jsonschema2pojo.org/创建的我的POJO类
范例.java
public class Example { @SerializedName("foo") @Expose private String foo; @SerializedName("bar") @Expose private String bar; @SerializedName("baz") @Expose private String baz; public String getFoo() { return foo; } public void setFoo(String foo) { this.foo = foo; } public String getBar() { return bar; } public void setBar(String bar) { this.bar = bar; } public String getBaz() { return baz; } public void setBaz(String baz) { this.baz = baz; }}使用或转换的 Kotlin 类 Code -> Convert Java File to Kotlin File
CTRL + ALT+ SHIFT + K
范例.kt
class Example { @SerializedName("foo") @Expose var foo: String? = null @SerializedName("bar") @Expose var bar: String? = null @SerializedName("baz") @Expose var baz: String? = null}谢谢你们。
