3

我有一个 JPQL 语句来返回体育比赛的时间表:

SELECT NEW com.kawoolutions.bbstats.view.ScheduleGameLine(
    ga.id                                                                                           AS gid
  , ga.scheduledTipoff                                                                              AS scheduledtipoff
  ...
  , sch.finalScore                                                                                  AS homefinalscore
  , sca.finalScore                                                                                  AS awayfinalscore
  , sch.finalScore IS NOT NULL AND sca.finalScore IS NOT NULL                              AS hasfinalscore
)

我希望最后一个表达式(布尔值)评估为布尔值,以指示游戏的最终得分是否已完全报告(得分类型的两个实体,这里 sch 和 sca 代表主场和客场得分)。但是,Hibernate 失败并出现异常:

11.02.2011 18:40:16 org.hibernate.hql.ast.ErrorCounter reportError
SCHWERWIEGEND: <AST>:17:32: unexpected AST node: AND
Exception in thread "main" java.lang.NullPointerException
    at org.hibernate.hql.ast.HqlSqlWalker.setAlias(HqlSqlWalker.java:1000)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.aliasedSelectExpr(HqlSqlBaseWalker.java:2381)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.constructor(HqlSqlBaseWalker.java:2505)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.selectExpr(HqlSqlBaseWalker.java:2256)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.selectExprList(HqlSqlBaseWalker.java:2121)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.selectClause(HqlSqlBaseWalker.java:1522)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.query(HqlSqlBaseWalker.java:593)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.selectStatement(HqlSqlBaseWalker.java:301)
    at org.hibernate.hql.antlr.HqlSqlBaseWalker.statement(HqlSqlBaseWalker.java:244)
    at org.hibernate.hql.ast.QueryTranslatorImpl.analyze(QueryTranslatorImpl.java:254)
    at org.hibernate.hql.ast.QueryTranslatorImpl.doCompile(QueryTranslatorImpl.java:185)
    at org.hibernate.hql.ast.QueryTranslatorImpl.compile(QueryTranslatorImpl.java:136)
    at org.hibernate.engine.query.HQLQueryPlan.<init>(HQLQueryPlan.java:101)
    at org.hibernate.engine.query.HQLQueryPlan.<init>(HQLQueryPlan.java:80)
    at org.hibernate.engine.query.QueryPlanCache.getHQLQueryPlan(QueryPlanCache.java:124)
    at org.hibernate.impl.AbstractSessionImpl.getHQLQueryPlan(AbstractSessionImpl.java:156)
    at org.hibernate.impl.AbstractSessionImpl.createQuery(AbstractSessionImpl.java:135)
    at org.hibernate.impl.SessionImpl.createQuery(SessionImpl.java:1770)
    at org.hibernate.ejb.AbstractEntityManagerImpl.createQuery(AbstractEntityManagerImpl.java:272)
    at com.kawoolutions.bbstats.Main.executeJpqlStatement(Main.java:167)
    at com.kawoolutions.bbstats.Main.main(Main.java:154)

当用 CASE WHEN 包围最后一个表达式以返回 TRUE 或 FALSE 时,我得到了我期望的结果:

SELECT NEW com.kawoolutions.bbstats.view.ScheduleGameLine(
    ga.id                                                                                           AS gid
  , ga.scheduledTipoff                                                                              AS scheduledtipoff
  ...
  , sch.finalScore                                                                                  AS homefinalscore
  , sca.finalScore                                                                                  AS awayfinalscore
  , CASE WHEN sch.finalScore IS NOT NULL AND sca.finalScore IS NOT NULL THEN TRUE ELSE FALSE END    AS hasfinalscore
  )

我真的很想知道为什么这不适用于 CASE WHEN。这里有什么问题?那是我吗?是JPA吗?是休眠吗?漏洞?

4

1 回答 1

4

它看起来像一个指定的行为。尽管允许表达式,但JPA 根本不允许在SELECT子句中使用条件CASE表达式。

以下是JPA 规范中 JPQL 语法的相关部分:

选择表达式 ::=
    单值路径表达式 |
    标量表达式 |
    聚合表达式 |
    识别变量 |
    对象(标识变量)|
    构造函数表达式

构造函数表达式 ::=
    新的constructor_name(constructor_item {,constructor_item}*)

构造器项目 ::=
    单值路径表达式 |
    标量表达式 |
    聚合表达式 |
    识别变量

标量表达式 ::=
    simple_arithmetic_expression |
    string_primary |
    enum_primary |
    datetime_primary |
    boolean_primary |
    案例表达式 |
    entity_type_expression
于 2011-02-11T18:29:44.623 回答