我正在尝试实现一个过滤功能,该功能将按业务类型显示业务。这是“搜索表单”,用户可以在其中选择他们想要显示的业务类型
@(businessList: List[Business], formSearch: Form[Business])
@import helper._
@main("All businesses"){
@form(action=routes.Application.displayAllBusinesses("")){
@select(formSearch("type"),options(Seq("Dining","Accomodation","Manufacturing","Retail", "Services")),'_label ->"Business Type",'_default->"--Select a business type--")
<input type="submit" class="btn btn-success" value="Search by type">
<a class="btn" href="@routes.Application.displayAllBusinesses()">Show all businesses</a>
<a class="btn" href="/registerBusiness">Register a business</a>
}
然后我有一个 for 循环来显示所有商家:
<ul>
@for(business <- businessList) {
<li>
<p>Business Name: @business.getName()</p>
<p>Business Type: @business.getType()</p>
<p>Business Email: @business.getEmail()</p>
<p>Business Location: @business.getLocation()</p>
<p>Business Description: @business.getDescription()</p>
<p>Id is: @business.id </p>
<a class="btn" href="@routes.Application.displayUpdateBusiness(business.id)">Update</a>
@form(routes.Application.deleteBusiness(business.id)) {
<input class="btn" type="submit" value="Delete">
}
</li>
}
</ul>
当用户提交表单时,displayAllbusinesses 路由如下所示(这是出现错误的地方):
GET /listBusinesses controllers.Application.displayAllBusinesses(type: String ?= "all")
app/Application.java 中的 displayAllbusinesses 方法是:
public static Result displayAllBusinesses(String type){
List<Business> businesses;
if(type=="all"){
businesses = allBusinesses;
} else {
businesses = Business.find.where().like("type", type).findList();
//TRACE
System.out.println(businesses);
}
return ok(listBusinesses.render(businesses, businessForm));
}
当我运行此代码时,我得到/listBusinesses 路由的“简单表达式非法开始”。这是什么意思?
最佳答案
type 是 Scala 中的保留关键字。路由编译器没有正确转义它,我认为这是一个已知的错误。
关于java - Play框架-简单表达式的非法开始,我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/18042166/