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我試圖使用postForObject(...)方法使用restTemplate測試我們的REST服務。spring restTemplate複雜對象的POST參數
單元測試:
@Test
public void testPostOrder() {
String url = BASE_URL + "/orders/";
OrderDto orderDtoInput = new OrderDto();
orderDtoInput.setCustomerId(34);
UpdateReportDto updateReport = restTemplate.postForObject(url,
orderDtoInput, UpdateReportDto.class, new Object[] {});
}
有趣片我的配置的:
<bean id="restTemplate" class="org.springframework.web.client.RestTemplate">
<property name="messageConverters">
<list>
<ref bean="formHttpMessageConverter" />
<ref bean="marshallingHttpMessageConverter" />
</list>
</property>
</bean>
<bean id="formHttpMessageConverter" class="org.springframework.http.converter.FormHttpMessageConverter">
</bean>
據我所知,FormHttpMessageConverter將轉換爲和從MultiValueMap和媒體類型 應用程序/ x WWW的形式-urlencoded。
是否有任何魔術或工具我可以使用或電匯將我的Dto轉換爲MultiValueMap?還是我需要循環對象屬性,並在我的測試中構建自己的MultiValueMap?
我的服務器要求得到那個看起來像這樣POST參數:
id=11752&firstName=Joe&active=true&address1=1122&address2=2233&c
ellPhone=123-321-1234&childrensName1=bobby1&childrensName2=bobby2&childrensName3=bobby3&childrensName4=bobby4&city=someCity&
customHobbies=loves To Fly Planes&distributorId=407&[email protected]&fax=321-123-1234&fellowship=good fellows&fishing=false&golf=true&hunting=false&
insuranceCompany1=ins1&insuranceCompany2=ins2&insuranceCompany3=ins3&insuranceCompany4=ins4&lastName=Brownie&
mailMerge=true&medicalSchool=Granada U&officeDays=4&officeManager=manager&officeManagerPhone=456.654.4567&other=true&
paNurse=nurse 1&paNursePhone=345-543-3456&
phone=234-432-2345&
salesRepresentativeId=1935&specialty=meatball surgery&spouseName=Betty&state=AL&
surgeryDays=22&title=doc&version=2&zip=47474
promptValues[0].id=12&promptValues[0].miscPromptId=882&promptValues[0].value=meFirst&
promptValues[1].id=13&promptValues[1].miscPromptId=881&promptValues[1].value=youToo&residency=Jamaica General&
surgeonClinics[0].address1=newAddress&surgeonClinics[0].address2=newAddress2&surgeonClinics[0].city=clinic City&
surgeonClinics[0][email protected]&surgeonClinics[0].fax=123.456.7890&surgeonClinics[0].id=33273&
surgeonClinics[0].name=clinic name&surgeonClinics[0].phone=890-098-4567&
surgeonClinics[0].zip=34567&surgeonClinics[0].surgeryCenter1=MySurgeryCenter1&
surgeonClinics[0].surgeryCenter2=MySurgeryCenter2&
surgeonClinics[1].address1=newAddress11&surgeonClinics[1].address2=newAddress22&surgeonClinics[1].city=clinic2 City&
surgeonClinics[1][email protected]&surgeonClinics[1].fax=123.456.7890&surgeonClinics[1].id=33274&
surgeonClinics[1].name=clinic2 name&surgeonClinics[1].phone=890-098-4567&
surgeonClinics[1].zip=34567&
surgeonClinics[1].surgeryCenter1=MySurgeryCenter21&surgeonClinics[1].surgeryCenter2=MySurgeryCenter22&
這裏就是我不明白:我們的RestServiceController方法知道如何利用這個瘋狂的參數列表並重新創建我們的DTO目的。我們可以使用curl成功調用它。似乎在客戶端應該存在一些相互的魔法來將Dto變成參數列表。
下面是在服務器端控制方法的簽名:
// createOrder
@RequestMapping(method = { RequestMethod.POST, RequestMethod.PUT }, value = "/orders/")
@ResponseBody
public UpdateReportDto createOrder(OrderDto orderDto,
HttpServletRequest httpServletRequest,
HttpServletResponse httpServletResponse) {