如何将几个相似的SELECT表达式组合成一个表达式?
private static Expression<Func<Agency, AgencyDTO>> CombineSelectors(params Expression<Func<Agency, AgencyDTO>>[] selectors)
{
// ???
return null;
}
private void Query()
{
Expression<Func<Agency, AgencyDTO>> selector1 = x => new AgencyDTO { Name = x.Name };
Expression<Func<Agency, AgencyDTO>> selector2 = x => new AgencyDTO { Phone = x.PhoneNumber };
Expression<Func<Agency, AgencyDTO>> selector3 = x => new AgencyDTO { Location = x.Locality.Name };
Expression<Func<Agency, AgencyDTO>> selector4 = x => new AgencyDTO { EmployeeCount = x.Employees.Count() };
using (RealtyContext context = Session.CreateContext())
{
IQueryable<AgencyDTO> agencies = context.Agencies.Select(CombineSelectors(selector3, selector4));
foreach (AgencyDTO agencyDTO in agencies)
{
// do something..;
}
}
}
答案 0 :(得分:16)
不简单;你需要重写所有的表达式 - 严格来说,你可以回收其中的大多数表达式,但问题是你们每个都有不同的x(即使它看起来一样),因此你需要使用访问者使用 final x替换所有参数。幸运的是,这在4.0中并不算太糟糕:
static void Main() {
Expression<Func<Agency, AgencyDTO>> selector1 = x => new AgencyDTO { Name = x.Name };
Expression<Func<Agency, AgencyDTO>> selector2 = x => new AgencyDTO { Phone = x.PhoneNumber };
Expression<Func<Agency, AgencyDTO>> selector3 = x => new AgencyDTO { Location = x.Locality.Name };
Expression<Func<Agency, AgencyDTO>> selector4 = x => new AgencyDTO { EmployeeCount = x.Employees.Count() };
// combine the assignments from the 4 selectors
var convert = Combine(selector1, selector2, selector3, selector4);
// sample data
var orig = new Agency
{
Name = "a",
PhoneNumber = "b",
Locality = new Location { Name = "c" },
Employees = new List<Employee> { new Employee(), new Employee() }
};
// check it
var dto = new[] { orig }.AsQueryable().Select(convert).Single();
Console.WriteLine(dto.Name); // a
Console.WriteLine(dto.Phone); // b
Console.WriteLine(dto.Location); // c
Console.WriteLine(dto.EmployeeCount); // 2
}
static Expression<Func<TSource, TDestination>> Combine<TSource, TDestination>(
params Expression<Func<TSource, TDestination>>[] selectors)
{
var zeroth = ((MemberInitExpression)selectors[0].Body);
var param = selectors[0].Parameters[0];
List<MemberBinding> bindings = new List<MemberBinding>(zeroth.Bindings.OfType<MemberAssignment>());
for (int i = 1; i < selectors.Length; i++)
{
var memberInit = (MemberInitExpression)selectors[i].Body;
var replace = new ParameterReplaceVisitor(selectors[i].Parameters[0], param);
foreach (var binding in memberInit.Bindings.OfType<MemberAssignment>())
{
bindings.Add(Expression.Bind(binding.Member,
replace.VisitAndConvert(binding.Expression, "Combine")));
}
}
return Expression.Lambda<Func<TSource, TDestination>>(
Expression.MemberInit(zeroth.NewExpression, bindings), param);
}
class ParameterReplaceVisitor : ExpressionVisitor
{
private readonly ParameterExpression from, to;
public ParameterReplaceVisitor(ParameterExpression from, ParameterExpression to)
{
this.from = from;
this.to = to;
}
protected override Expression VisitParameter(ParameterExpression node)
{
return node == from ? to : base.VisitParameter(node);
}
}
这使用了找到的第一个表达式中的构造函数,因此可能想要完整性地检查所有其他构造函数是否在各自的NewExpression中使用了琐碎的构造函数。不过,我已经把它留给了读者了。
编辑:在评论中,@ Slaks指出更多的LINQ可以缩短它。他当然是对的 - 虽然容易阅读但有点密集:
static Expression<Func<TSource, TDestination>> Combine<TSource, TDestination>(
params Expression<Func<TSource, TDestination>>[] selectors)
{
var param = Expression.Parameter(typeof(TSource), "x");
return Expression.Lambda<Func<TSource, TDestination>>(
Expression.MemberInit(
Expression.New(typeof(TDestination).GetConstructor(Type.EmptyTypes)),
from selector in selectors
let replace = new ParameterReplaceVisitor(
selector.Parameters[0], param)
from binding in ((MemberInitExpression)selector.Body).Bindings
.OfType<MemberAssignment>()
select Expression.Bind(binding.Member,
replace.VisitAndConvert(binding.Expression, "Combine")))
, param);
}
答案 1 :(得分:0)
如果所有选择器仅 初始化AgencyDTO个对象(如您的示例),则可以将表达式转换为NewExpression个实例,然后调用Expression.New使用Members表达式。
您还需要一个ExpressionVisitor来替换原始表达式中的ParameterExpression,并为您正在创建的表达式添加一个ParameterExpression。
答案 2 :(得分:0)
万一其他人偶然发现了与我相似的用例(我根据所需的详细程度选择针对性不同的类):
简化方案:
public class BlogSummaryViewModel
{
public string Name { get; set; }
public static Expression<Func<Data.Blog, BlogSummaryViewModel>> Map()
{
return (i => new BlogSummaryViewModel
{
Name = i.Name
});
}
}
public class BlogViewModel : BlogSummaryViewModel
{
public int PostCount { get; set; }
public static Expression<Func<Data.Blog, BlogViewModel>> Map()
{
return (i => new BlogViewModel
{
Name = i.Name,
PostCount = i.Posts.Count()
});
}
}
我像这样修改了@Marc Gravell提供的解决方案:
public static class ExpressionMapExtensions
{
public static Expression<Func<TSource, TTargetB>> Concat<TSource, TTargetA, TTargetB>(
this Expression<Func<TSource, TTargetA>> mapA, Expression<Func<TSource, TTargetB>> mapB)
where TTargetB : TTargetA
{
var param = Expression.Parameter(typeof(TSource), "i");
return Expression.Lambda<Func<TSource, TTargetB>>(
Expression.MemberInit(
((MemberInitExpression)mapB.Body).NewExpression,
(new LambdaExpression[] { mapA, mapB }).SelectMany(e =>
{
var bindings = ((MemberInitExpression)e.Body).Bindings.OfType<MemberAssignment>();
return bindings.Select(b =>
{
var paramReplacedExp = new ParameterReplaceVisitor(e.Parameters[0], param).VisitAndConvert(b.Expression, "Combine");
return Expression.Bind(b.Member, paramReplacedExp);
});
})),
param);
}
private class ParameterReplaceVisitor : ExpressionVisitor
{
private readonly ParameterExpression original;
private readonly ParameterExpression updated;
public ParameterReplaceVisitor(ParameterExpression original, ParameterExpression updated)
{
this.original = original;
this.updated = updated;
}
protected override Expression VisitParameter(ParameterExpression node) => node == original ? updated : base.VisitParameter(node);
}
}
扩展类的Map方法将变为:
public static Expression<Func<Data.Blog, BlogViewModel>> Map()
{
return BlogSummaryViewModel.Map().Concat(i => new BlogViewModel
{
PostCount = i.Posts.Count()
});
}