问题描述
我有一个Web服务,我正在GlassFish上部署它。我通过访问了它的wsdl。
现在我将WAR文件移植到Tomcat 6.0.24并进行部署。不过,我正尝试使用):
<?xml version =1.0encoding =UTF-8?>
< web-app version =2.5xmlns =http://java.sun.com/xml/ns/javaeexmlns:xsi =http://www.w3.org/2001/ XMLSchema-instancexsi:schemaLocation =http://java.sun.com/xml/ns/javaee http://java.sun.com/xml/ns/javaee/web-app_2_5.xsd\">
< listener>
< listener-class>
com.sun.xml.ws.transport.http.servlet.WSServletContextListener
< / listener-class>
< / listener>
< servlet>
< servlet-name> WebServicePort< / servlet-name>
< servlet-class>
com.sun.xml.ws.transport.http.servlet.WSServlet
< / servlet-class>
1< / load-on-startup>
< / servlet>
< servlet-mapping>
< servlet-name> WebServicePort< / servlet-name>
< url-pattern> / services / *< / url-pattern>
< / servlet-mapping>
< session-config>
< session-timeout> 60< / session-timeout>
< / session-config>
< / web-app>
然后在 sun-jaxws.xml (也包装在WEB-INF中),声明您的服务端点接口(SEI):
<?xml version = 1.0encoding =UTF-8?>
< endpoints xmlns =http://java.sun.com/xml/ns/jax-ws/ri/runtimeversion =2.0>
名称=MyHello
实现=hello.HelloImpl
url-pattern =/ hello
/>
< / endpoints>
您可以在以下位置访问WSDL:
http:// localhost:8080 /< mycontext> / services / hello?wsdl
ABCD
- A是servlet容器的主机和端口。
- B是war文件的名称。
- C来自web.xml文件中的url-pattern元素。
- D来自url-pattern属性的结尾部分sun-jaxws.xml文件。
I have a web service and I was deploying it on GlassFish. I accessed its wsdl through http://localhost:10697/APIService/APIServiceService?wsdl.
Now I ported the WAR file to a Tomcat 6.0.24 and it is deployed. However I am trying to access its wsdl using http://localhost:8080/APIService/APIServiceService?wsdl but I'm getting a 404 error. I tried various combinations but none seem to work.
How can I access the wsdl file plz?
Thanks and regards,
Update: Here you are: web.xml:
<?xml version="1.0" encoding="UTF-8"?>
<web-app version="2.5" xmlns="http://java.sun.com/xml/ns/javaee" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://java.sun.com/xml/ns/javaee http://java.sun.com/xml/ns/javaee/web-app_2_5.xsd">
<session-config>
<session-timeout>
30
</session-timeout>
</session-config>
<welcome-file-list>
<welcome-file>index.jsp</welcome-file>
</welcome-file-list>
</web-app>
I can't find sun-jaxws.xml however... Thanks a lot! Regards
The way to access a WSDL is not really container specific, it's more WS-stack specific. The WS-stack in GlassFish is Metro (Metro = JAX-WS RI + WSIT). Did you install/deploy Metro or JAX-WS RI on Tomcat? See Metro on Tomcat 6.x or Running JAX-WS Samples with Tomcat 6.x (JAX-WS RI might be enough in your case) for the steps.
Update: You need to declare the WSServlet in the web.xml (see Deploying Metro endpoint):
<?xml version="1.0" encoding="UTF-8"?>
<web-app version="2.5" xmlns="http://java.sun.com/xml/ns/javaee" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://java.sun.com/xml/ns/javaee http://java.sun.com/xml/ns/javaee/web-app_2_5.xsd">
<listener>
<listener-class>
com.sun.xml.ws.transport.http.servlet.WSServletContextListener
</listener-class>
</listener>
<servlet>
<servlet-name>WebServicePort</servlet-name>
<servlet-class>
com.sun.xml.ws.transport.http.servlet.WSServlet
</servlet-class>
<load-on-startup>1</load-on-startup>
</servlet>
<servlet-mapping>
<servlet-name>WebServicePort</servlet-name>
<url-pattern>/services/*</url-pattern>
</servlet-mapping>
<session-config>
<session-timeout>60</session-timeout>
</session-config>
</web-app>
And then in the sun-jaxws.xml (also packaged in WEB-INF), declare your Service Endpoint Interface (SEI):
<?xml version="1.0" encoding="UTF-8"?> <endpoints xmlns="http://java.sun.com/xml/ns/jax-ws/ri/runtime" version="2.0"> <endpoint name="MyHello" implementation="hello.HelloImpl" url-pattern="/hello" /> </endpoints>
And you access the WSDL at:
http://localhost:8080/<mycontext>/services/hello?wsdl
A B C D
- A is the host and port of the servlet container.
- B is the name of the war file.
- C comes from the url-pattern element in the web.xml file.
- D comes from the ending stem of the url-pattern attribute in the sun-jaxws.xml file.
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