【发布时间】:2018-04-18 23:54:16
【问题描述】:
我有以下条件查询,它从Anfrage 和Sparte 实体中检索一些字段以及sparte.i18nKey 的翻译字符串。
如果我不使用orderBy,这将按预期工作。
现在我需要按sparte.i18nKey 的翻译字符串排序并使用orderBy 如下所示,结果为QuerySyntaxException: unexpected AST node
所以问题一定是orderBy子句中的子选择!
select distinct new
my.domain.model.dto.AnfrageDTO(
anfrage0.id,
anfrage0.name,
anfrage0.sparte.id,
anfrage0.sparte.i18nKey,
-- retrieve translated string for sparte.i18nKey
(select rb0.value from at.luxbau.mis2.domain.model.ResourceBundleEntity as rb0
where (anfrage0.sparte.i18nKey = rb0.key) and (rb0.language = 'de'))
)
from my.domain.model.impl.Anfrage as anfrage0
left join anfrage0.sparte as sparte
order by (
-- sort by translated string for sparte.i18nKey
select rb1.value
from my.domain.model.ResourceBundleEntity as rb1
where (anfrage0.sparte.i18nKey = rb1.key) and (rb1.language = 'de')
) asc
我的 Java 代码如下所示:
private List<AnfrageDTO> getAnfragen() {
CriteriaBuilder cb = entityManager.getCriteriaBuilder();
CriteriaQuery<AnfrageDTO> query = cb.createQuery(AnfrageDTO.class);
Root<Anfrage> anfrage = query.from(Anfrage.class);
anfrage.join(Anfrage_.sparte, JoinType.LEFT);
query.select(cb.construct(AnfrageDTO.class,
anfrage.get(Anfrage_.id),
anfrage.get(Anfrage_.name),
anfrage.get(Anfrage_.sparte).get(Sparte_.id),
anfrage.get(Anfrage_.sparte).get(Sparte_.i18nKey),
// create subquery for translated sparte.i18nKey
createResourceBundleSubQuery(cb, query, anfrage.get(Anfrage_.sparte).get(Sparte_.i18nKey)).getSelection()));
TypedQuery<AnfrageDTO> tq = entityManager
.createQuery(query)
// use subquery to sort by translated sparte.i18nKey
.orderBy(cb.asc(createResourceBundleSubQuery(cb, query, anfrage.get(Anfrage_.sparte).get(Sparte_.i18nKey))));
tq.setMaxResults(10);
List<AnfrageDTO> anfragen = tq.getResultList();
return anfragen;
}
public Subquery<String> createResourceBundleSubQuery(CriteriaBuilder cb, CriteriaQuery<?> query, <String> expr) {
Subquery<String> subquery = query.subquery(String.class);
Root<ResourceBundleEntity> rb = subquery.from(ResourceBundleEntity.class);
subquery
.select(rb.get(ResourceBundleEntity_.value))
.where(cb.and(
cb.equal(expr, rb.get(ResourceBundleEntity_.key)),
cb.equal(rb.get(ResourceBundleEntity_.language), "de")));
return subquery;
}
在 orderBy 中使用带有 subselect 的本机 SQL 查询也可以正常工作。
select distinct
anfrage0_.id,
anfrage0_.name,
anfrage0_.sparte_id,
sparte4_.i18n_key,
(select rb3.i18n_value from resource_bundle rb3 where rb3.language_code = 'de' and rb3.i18n_key = sparte4_.i18n_key) as sparte_i18n_value
from
mis2.anfrage anfrage0_
left outer join mis2.sparte sparte4_ on anfrage0_.sparte_id = sparte4_.id
order by (
select rb.i18n_value
from mis2.resource_bundle rb
where sparte4_.i18n_key = rb.i18n_key and rb.language_code = 'de'
) asc
在本机 SQL 查询中使用别名也可以按预期工作。
select distinct
anfrage0_.id,
anfrage0_.name,
anfrage0_.sparte_id,
sparte4_.i18n_key,
(select rb3.i18n_value from resource_bundle rb3 where rb3.language_code = 'de' and rb3.i18n_key = sparte4_.i18n_key) as sparte_i18n_value
from
mis2.anfrage anfrage0_
left outer join mis2.sparte sparte4_ on anfrage0_.sparte_id = sparte4_.id
order by sparte_i18n_value
asc
如果 JPA Criteria API 支持在 orderBy 子句中使用别名,那就太好了!
欢迎任何提示 - 谢谢!
我的环境是 WildFly 11 和 PostgreSQL 9.6。
【问题讨论】:
-
答案取决于使用的 JPA 提供程序。从生成的 SQL 来看,您使用的是 Hibernate。 JPA 规范没有指定在 ORDER 子句中使用 SUBQUERY。一些 JPA 提供程序(例如 DataNucleus)确实允许这样做,尽管您的似乎不允许。
标签: jpa criteria-api