Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Currently I create a thread the following way (the normal way)

Public loginThread As Thread
Public loginThreadStart As New ThreadStart(AddressOf LogIntoWhatever)
Public callLoggedIn As New MethodInvoker(AddressOf loggedIn)

However, what I want to be able to do is something along the lines of (this obviously does not work, and is entirely pseudocode)

dim i as integer = 0
for i = 0 to i = 25
Public loginThread(i) as Thread
Public loginThreadStart(i) as New ThreadStart(AddressOf LogIntoWhatever)
next i
Public callLoggedIn as new MethodInvoker(AddressOf loggedIn)

Where I could change 25 to whatever I wanted and have that number of threads created. They would all be running an identical sub which does do not make calls of any kind to each other, they don't need knowledge of each other. Is anything like this possible? If so, direction towards a solution would help.

Thanks in advance.

share|improve this question

3 Answers 3

up vote 2 down vote accepted

Try the following

Public Function RunThreads(count as Integer, start As ThreadStart) As List(Of Thread)
  Dim list as New List(Of Thread)
  For i = 0 to count -1 
    Dim thread = new Thread(start)
    thread.Start()
    list.Add(thread)
  Next
  Return list
End Function

Or using the thread pool

Public Sub RunThreads(count as Integer, callBack as WaitCallBack) 
  For i = 0 To count-1
    ThreadPool.QueueUserWorkItem(callBack)
  Next
End Sub
share|improve this answer
    
This unfortunately has an error on the "Return thread". 'Thread' is a type and cannot be used as an expression. –  bahhumbug Jan 6 '10 at 20:53
    
changed the return to list and this works as expected now. Thanks! –  bahhumbug Jan 6 '10 at 20:58

Here is an example using a simple thread pool.

share|improve this answer

Have a look at this Smart Thread Pool, though it is written in C#.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.