一尘不染

使用ColdFusion ORM在类型表中的列上排序

hibernate

我有三个表,结构如下:

http://dl.dropbox.com/u/2586403/ORMIssues/TableLayout.png

我正在处理的三个对象在这里:

http://dl.dropbox.com/u/2586403/ORMIssues/Objects.zip

我需要能够获取PartObject,然后提取其所有属性,并按Types表中的AttributeName进行排序。这是我遇到的问题:

  1. 我无法按PartObject的Attribute.AttributeName属性对Attributes属性进行排序

  2. 我无法将Attribute.AttributeName属性添加到ObjectAttribute实体,因为出现关于列名的错误。Hibernate将ID放在连接的错误一侧

这是显示错误查询的hibernate日志文件

10/14 16:36:39 [jrpp-12] HIBERNATE DEBUG - select objectattr0_.ID as ID1116_, objectattr0_.AttributeValue as Attribut2_1116_, objectattr0_.AttributeID as Attribut3_1116_, objectattr0_1_.AttributeName as Attribut2_1117_ from ObjectAttributes objectattr0_ inner join Attributes objectattr0_1_ on objectattr0_.ID=objectattr0_1_.AttributeID 
10/14 16:36:39 [jrpp-12] HIBERNATE ERROR - [Macromedia] [SQLServer JDBC Driver][SQLServer]Invalid column name 'AttributeID'. 
10/14 16:36:39 [jrpp-12] HIBERNATE ERROR - [Macromedia] [SQLServer JDBC Driver][SQLServer]Statement(s) could not be prepared.

这是查询中令人讨厌的部分:

from ObjectAttributes objectattr0_ 
inner join Attributes objectattr0_1_ on objectattr0_.ID=objectattr0_1_.AttributeID

它应该是:

from ObjectAttributes objectattr0_ 
inner join Attributes objectattr0_1_ on objectattr0_.AttributeID=objectattr0_1_.ID

ObjectAttribute.cfc上的AttributeName属性是导致问题的一个:

component  output="false" persistent="true" table="ObjectAttributes" 
{ 
        property name="ID" column="ID" generator="native" type="numeric" ormtype="int" fieldtype="id" unsavedvalue="0" ; 
        property name="AttributeValue" type="string" ; 
        property name="Attribute" fieldtype="many-to-one" cfc="Attribute" fkcolumn="AttributeID" fetch="join"; 
        property name="AttributeName" table="Attributes" joincolumn="AttributeID" ; 
}

我也尝试过使用公式来获取ObjectAttribute实体上的AttributeName,如下所示:

component  output="false" persistent="true" table="ObjectAttributes"
{
    property name="ID" column="ID" generator="native" type="numeric" ormtype="int" fieldtype="id" unsavedvalue="0" ;
    property name="AttributeValue" type="string" ;
    property name="Attribute" fieldtype="many-to-one" cfc="Attribute" fkcolumn="AttributeID" fetch="join";
    property name="AttributeName" type="string" formula="(SELECT A.AttributeName FROM Attributes A WHERE A.ID = AttributeID)";
}

这行得通,但我无法按该计算列排序。如果然后我像这样调整PartObject.cfc:

property name="Attributes" cfc="ObjectAttribute" type="array" fkcolumn="ObjectID" fieldtype="one-to-many" orderby="AttributeName";

我在hibernatesql日志中收到以下错误:

10/17 16:51:55 [jrpp-0] HIBERNATE DEBUG - select attributes0_.ObjectID as ObjectID2_, attributes0_.ID as ID2_, attributes0_.ID as ID244_1_, attributes0_.AttributeValue as Attribut2_244_1_, attributes0_.AttributeID as Attribut3_244_1_, ((SELECT A.AttributeName FROM Attributes A WHERE A.ID = attributes0_.AttributeID)) as formula25_1_, attribute1_.ID as ID246_0_, attribute1_.AttributeName as Attribut2_246_0_ from ObjectAttributes attributes0_ left outer join Attributes attribute1_ on attributes0_.AttributeID=attribute1_.ID where attributes0_.ObjectID=? order by attributes0_.AttributeName
10/17 16:51:55 [jrpp-0] HIBERNATE ERROR - [Macromedia][SQLServer JDBC Driver][SQLServer]Invalid column name 'AttributeName'.
10/17 16:51:55 [jrpp-0] HIBERNATE ERROR - [Macromedia][SQLServer JDBC Driver][SQLServer]Statement(s) could not be prepared.

这是一个 没有 该属性的转储,以显示其余关系正常运行:

http://dl.dropbox.com/u/2586403/ORMIssues/Dump.pdf

我不知道如何解决此问题。您能提供的任何帮助将不胜感激。

谢谢,


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2020-06-20

共1个答案

一尘不染

我在Sam的帮助下解决了这一问题,方法是在Service中设置一种方法,该方法以所需顺序返回商品。我只是使用ORMExecuteQuery以正确的顺序获取项目,如果没有项目,则返回一个空数组。

最终方法如下所示,其中规范按照我想要的顺序直接在对象中设置:

/**
@hint Gets a SpecGroups object based on ID. Pass 0 to retrieve a new empty SpecGroups object
@ID the numeric ID of the SpecGroups to return
@roles Admin, User
*/
remote ORM.SpecGroups function getSpecGroup(required numeric ID){
    if(Arguments.ID EQ 0){
        return New ORM.SpecGroups();
    }else{
        LOCAL.SpecGroup = EntityLoadByPK("SpecGroups", Arguments.ID);
        LOCAL.SpecsInGroup = ORMExecuteQuery("SELECT Spec FROM SpecInGroup G WHERE G.SpecGroupID = :GroupID ORDER BY SpecLabel, SpecName", {GroupID = LOCAL.SpecGroup.getID()});
        LOCAL.SpecGroup.setSpecifications(LOCAL.SpecsInGroup);
        return LOCAL.SpecGroup;
    }
}
2020-06-20