5

我正在使用 Apache Jackrabbit 作为数据库。

In my case, root node has numbers of child nodes(only at depth 1).
All child node has unique name, i.e., some Integer.
Each child Node have some properties that I have used further.

我的任务

我必须选择键(整数值)最小的前 10 个节点。

我的想法

为了实现上述目标,我进行了一个查询,对所有子节点的键进行排序,然后选择前 10 个。然后通过使用这些键,我得到所有对应的节点,并在工作后删除所有键/值对。

为此,我在互联网上搜索了很多如何运行查询。你能告诉我如何在 apache jackrabit 上运行查询吗?很好,如果你用例子来解释。

编辑编号 1

公共类 JackRabbit {

public static void main(String[] args) throws Exception {

    try {

        Repository repository = JcrUtils.getRepository("http://localhost:4502/crx/server");
        javax.jcr.Session session = repository.login(new SimpleCredentials("admin", "admin".toCharArray()));

        Node root = session.getRootNode();


        // Obtain the query manager for the session via the workspace ...
        javax.jcr.query.QueryManager queryManager = session.getWorkspace().getQueryManager();

        // Create a query object ...
        String expression = "select * from nt:base where name= '12345' ";
        javax.jcr.query.Query query = queryManager.createQuery(expression, javax.jcr.query.Query.JCR_SQL2);

        // Execute the query and get the results ...
        javax.jcr.query.QueryResult result = query.execute();


        session.logout();

    } catch (Exception e) {
        e.printStackTrace();
    }
}

}

例外

javax.jcr.query.InvalidQueryException: Query:
select * from nt:(*)base where name= '12345'; expected: <end>
    at sun.reflect.NativeConstructorAccessorImpl.newInstance0(Native Method)
    at sun.reflect.NativeConstructorAccessorImpl.newInstance(NativeConstructorAccessorImpl.java:57)
    at sun.reflect.DelegatingConstructorAccessorImpl.newInstance(DelegatingConstructorAccessorImpl.java:45)
    at java.lang.reflect.Constructor.newInstance(Constructor.java:525)
    at org.apache.jackrabbit.spi2dav.ExceptionConverter.generate(ExceptionConverter.java:69)
    at org.apache.jackrabbit.spi2dav.ExceptionConverter.generate(ExceptionConverter.java:51)
    at org.apache.jackrabbit.spi2dav.ExceptionConverter.generate(ExceptionConverter.java:45)
    at org.apache.jackrabbit.spi2dav.RepositoryServiceImpl.executeQuery(RepositoryServiceImpl.java:2004)
    at org.apache.jackrabbit.jcr2spi.WorkspaceManager.executeQuery(WorkspaceManager.java:349)
    at org.apache.jackrabbit.jcr2spi.query.QueryImpl.execute(QueryImpl.java:149)
    at jackrabbit.JackRabbit.main(JackRabbit.java:36)

我想写一个关于下面场景的查询

在此处输入图像描述

这里具有整数值的节点具有一些属性。我想按它们的整数值对这些节点进行排序,并提取前 50 个节点以进行进一步处理。

帮助我。

4

3 回答 3

4

您应该在 JCR-SQL2 中引用您的节点类型名称:

select * from [nt:base]

这是JCR-SQLJCR-SQL2之间的主要区别之一。此外,name是一个采用选择器参数的动态操作数。因此,编写查询的更好方法是:

select * from [nt:base] as b where name(b) = '12345'
于 2013-05-24T07:29:09.393 回答
1

根据您要使用的查询语言,您有不同的方式来执行您的查询。

查看此代码,了解一些仅使用 API 而不是 SQL 之类的字符串查询的简单查询。您也可以查看JBoss Modeshape 文档以获取示例,因为它是另一个 JCR 2.0 实现。

于 2013-05-23T06:05:02.397 回答
1

我希望这将帮助您执行查询:

public FolderListReturn listFolder(String parentNode, String userid,String password) {
    System.out.println("getting folders and files from = "+parentNode+" of user : "+userid);


    SessionWrapper sessions =JcrRepositoryUtils.login(userid, password);
    Session jcrsession = sessions.getSession();

    Assert.notNull(name);
    FolderListReturn folderList1 = new FolderListReturn();
    ArrayOfFolders folders = new ArrayOfFolders();
    try {
                javax.jcr.query.QueryManager queryManager;

                queryManager = jcrsession.getWorkspace().getQueryManager();
                String expression = "select * from [nt:folder] AS s WHERE ISCHILDNODE(s,'"+name+"')and CONTAINS(s.[edms:owner],'*"+userid+"*')  ORDER BY s.["+Config.EDMS_Sorting_Parameter+"] ASC";

                javax.jcr.query.Query query = queryManager.createQuery(expression, javax.jcr.query.Query.JCR_SQL2);
                javax.jcr.query.QueryResult result = query.execute();
                        for (NodeIterator nit = result.getNodes(); nit.hasNext();) {
                Node node = nit.nextNode();
                Folder folder = new Folder();
                folder=setProperties(node,folder,userid,password,jcrsession,name);
                folders.getFolderList().add(folder);
                }
        folderList1.setFolderListResult(folders);
        folderList1.setSuccess(true);

    } catch (Exception e) {
        e.printStackTrace();
    }finally{
        //JcrRepositoryUtils.logout(sessionId);
    }
    return folderList1;
}
于 2015-09-14T10:45:14.467 回答