我想从给定的url获取querystrting传递值,例如:http://localhost:8080/app?contentid=10我想从我的spring控制器中的上面的url获取contentid is: 10的值,怎么能我知道了吗?
请注意,如果我在那里传递任何值(例如10,50,100,200,......等等 - 它可以是任何数字),所以不管我传递给contentid,该值应该进入我的控制器。我想仅从contentid获取此url值,而不是从我的html页面获取,或者我不想从我的html页面传递。目前我从控制器中的以下代码获取null,我没有得到传递值(如url中的10)。我怎样才能做到这一点?在此先感谢您的帮助!
app.html:
<form action="#" th:action="@{/app}" th:object="${TestData}" method="post">
<div class="form-group">
<label for="firstname">First Name: </label> <input type="text"
class="form-control" id="firstname" name="firstname" ></textarea>
</div>
<div class="form-group">
<label for="secondname">Second Name:</label> <input type="text"
class="form-control" id="secondname" name="secondname" />
</div>
<button type="submit" value="Submit">Submit</button>
</form>
TestData.java:
public class TestData implements Serializable{
private String firstname;
private String secondname;
private int contentid;
//setters and getters
public TestData() {}
public TestData(String firstname, String secondname, int contentid, ){
this.firstname = firstname;
this.secondname = secondname;
this.contentid = contentid;
}
@Override
public String toString() {
return String.format(
"TestData[firstname=%s, secondname=%s, contentid=%d]",
firstname, secondname, contentid);
}
}
控制器:
public class TestDataController {
@Autowired
TestService testDataService;
@RequestMapping(value="/app", method=RequestMethod.POST)
public String testDataSubmit(@RequestParam(required=false) Integer contentid, @ModelAttribute TestData testData, Model model, HttpServletRequest request) {
String id = request.getQueryString();
System.out.println("My Id: "+id);//null
System.out.println("URL Parameter: "+testData.getContentid());//0
System.out.println("URL Parameter passed objectid: "+contentid); //null
testDataService.saveTestDataDetails(testData);
return "app";
}
}
服务:
@Service
public class TestService {
@PersistenceContext
private EntityManager entityManager;
public void saveTestDataDetails(TestData testData) {
StoredProcedureQuery sp = entityManager.createStoredProcedureQuery("APP.TESTDATA");
sp.registerStoredProcedureParameter("firstname", String.class, ParameterMode.IN);
sp.registerStoredProcedureParameter("secondname", Integer.class, ParameterMode.IN);
sp.registerStoredProcedureParameter("contentid", Integer.class, ParameterMode.IN);
sp.setParameter("firstname", testData.getFirstname());
sp.setParameter("secondname", testData.getSecondname());
sp.setParameter("contentid", testData.getContentid());
sp.execute();
}
}
答案 0 :(得分:1)
在每次聊天讨论后,我会为您提供一个可行的解决方案,您可以根据自己的需要指定任何内容。
app.html:
<!DOCTYPE html>
<html xmlns="http://www.w3.org/1999/xhtml"
xmlns:th="http://www.thymeleaf.org"
xmlns:sec="http://www.thymeleaf.org/thymeleaf-extras-springsecurity4">
<head>
<title></title>
</head>
<body>
<th:block th:if="${contentid != null}">
<div th:text="${'contentId: ' + contentid}"></div>
</th:block>
<form action="#" th:action="@{/app(contentid=${contentid})}" th:object="${TestData}"
method="post">
<div class="form-group">
<label for="firstname">First Name: </label>
<input type="text" class="form-control" id="firstname"
name="firstname" />
</div>
<div class="form-group">
<label for="secondname">Second Name:</label>
<input type="text" class="form-control" id="secondname"
name="secondname" />
</div>
<button type="submit" value="Submit">Submit</button>
</form>
</body>
</html>
控制器:
@Controller
public class MyController {
@GetMapping("/app")
public String getApp(Model model) {
return "app";
}
@PostMapping("/app")
public String postApp(@RequestParam(required=false) Integer contentid, @ModelAttribute TestData testData, Model model, HttpServletRequest request) {
System.out.println(contentid);
if(contentid == null) {
contentid = ThreadLocalRandom.current().nextInt(0, 100 + 1);
}
model.addAttribute("contentid",contentid);
return "app";
}
}
答案 1 :(得分:0)
首先更改您的html代码th:action="@{/app?contentid=10},然后在TestData类中为实例变量添加setter和getter方法。