1

select我正在尝试将数据库中的一些值放入表单( )中:

val kateg = Kategoria.findAll.map(a => (a.id.toString , a.nazwa))

接下来是形式:

 bind("entry", xhtml,
        "kateg" -> SHtml.select(kateg, Empty, select ), 
       "temat" -> SHtml.text(temat, temat = _),
        "opis" -> SHtml.textarea(opis, opis = _, "cols" -> "80", "rows" -> "8"),
        "submit" -> SHtml.submit("Add", processEntryAdd))

然后我有错误:

Description Resource    Path    Location    Type
type mismatch;  found   : List[(java.lang.String, a.nazwa.type) for 
Some { val a: code.model.Kategoria }]  
required: Seq[(String, String)] Forma.scala 
/lift-todo-mongo/src/main/scala/code/snippet    
line 51 Scala Problem

有任何想法吗 ?谢谢

4

1 回答 1

3

SHtml.select(..)允许您选择一个String值。它需要一个 Seq 元组(值:String,键String:)

在这种情况下,您可能需要编写:

val kateg = Kategoria.findAll.map(a => (a.id.toString , a.nazwa.is))

如果nazwaMappedString类别实体的字段。即kateg应该有一种Seq[(String, String)]

但我建议您使用SHtml.selectObj选择类别实体而不是字符串名称值:

val kateg: Seq[(Kategoria, String)] = Kategoria.findAll.map(a => (a, a.nazwa.is))
SHtml.selectObj[Kategoria](kateg, Empty, (k: Kategoria) => { .. /* assign */ .. })
于 2012-07-23T12:29:31.250 回答