B.B*_*dan 4 c# delegates task taskfactory c#-4.0
我想在包含操作的任务中添加多个参数。我查看了现有的堆栈溢出问题Create a Task with an Action<T>
请帮助我如何在任务的 Action 方法中传递多个参数
Action<string, int> action = (string msg, int count) =>
{
Task.Factory.StartNew(async () =>
{ await LoadAsync(msg, count); });
};
Task task = new Task(action, ....);
动作方法是
public static async Task<string> LoadAsync(string message, int count)
{
await Task.Run(() => { Thread.Sleep(1500); });
Console.WriteLine("{0} {1} Exceuted Successfully !", message ?? string.Empty, (count == 0) ? string.Empty : count.ToString());
return "Finished";
}
请帮助我如何创建异步方法的操作以及如何将操作添加到任务中。
只需像这样传递参数。
Action<string, int> action = async (msg, count) => await LoadAsync(msg, count);
Task task = new Task(() => action("", 0)); // pass parameters you want
如果您还想获得返回值
Func<string, int, Task<string>> func = LoadAsync;
Task<string> task = func("", 0); // pass parameters you want
var result = await task; // later in async method
创建另一个 lambda 来执行您的操作并在那里传递参数
var task = Task.Run(() => youraction(parameter1, parameter2));
特别是您的情况,您不需要创建大量任务和线程,这些任务和线程将使用Task.Run或创建StartNew
如果您将方法更改为异步而不浪费线程Thread.Sleep
public static async Task<string> LoadAsync(string message, int count)
{
await Task.Delay(1500);
var countOutput = count == 0 ? string.Empty : count.ToString();
var output = $"{message} {countOUtput}Exceuted Successfully !";
Console.WriteLine(output);
return "Finished";
}
然后你就可以在任何地方调用它而无需Task.Run
await LoadAsync("", 0);
您的LoadAsync方法已经返回一个Task<string>,您可以随时启动并“等待”。所以你不需要用来Task.Run启动另一个任务(在你的情况下是线程)。
var task = LoadAsync("param1", 3);
// do something else
var result = await task;