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I am creating a program that parses and processes XML files. There needs to be a GUI that runs while the XML files are being parsed and processed. There are a couple JProgressBars, 4 counters, and 2 text fields for showing current file and directory.

I am having trouble getting the GUI to update while the parsing and processing is happening. I figured the best way to go about this is to create a newFixedThreadPool() to have both run at the same time. The problem is that I want to have the GUI update every second, but also have the parsing and processing running constantly, so it seems like having a ScheduledThreadPool is out of the question.

So my question is, is it possible to run a scheduled thread and a regular thread in a FixedThreadPool? If so, how would I go about doing that, and if not, do any of you have any suggestions about how to approach this problem?

GUIThread class:

GUIThread()
{
    guiThread = new Thread(this);
    guiThread.start();
}   
@Override
public void run() 
{
    try{
        checkProcessedFiles(getFilesProcessed());
        checkDirErrorCount(getErrorCount());
        checkAwardCount(getAwardCount());
        checkErrorCount(getErrorCount());
    } catch(IOException ioe){}

}

ProcessThread class:

ProcessThread()
{
    processThread = new Thread(this);
    processThread.start();
}
@Override
public void run()
{
    try{
        MainGUI mGUI = new MainGUI();
        Migrate migrate = new Migrate(mGUI.getXMLDirectory());
        migrate.processDirectory();
    } catch(Exception e){}
}

Main method:

ExecutorService es = Executors.newFixedThreadPool(2);
es.execute(new GUIThread()); //THIS NEEDS TO BE SCHEDULED
es.execute(new ProcessThread());
share|improve this question

1 Answer 1

Semaphores An instance of the System.Threading.Semaphore class allows you to constrain the number of simultaneous accesses to a resource. You can imagine the entry gate of a parking lot which contains only a certain number of parking spots. The gate will only open when there is room left in the parking. In the same way, an attempts to enter a semaphore using the WaitOne() method becomes blocking when the number of current entries reached a certain maximum number. This maximum entry number is set by the second argument of the constructors for the Semaphore class. The first argument defines the initial number of free entries. If the first argument is a value inferior to the second, the thread calling the constructor automatically holds a certain number of entries defined by the difference between these two values. This last remark shows that a same thread can hold several entries to a same semaphore. The following example illustrates all this by launching 3 threads which regularly attempt to enter into a semaphore where the maximal number of entries is set to five. The main thread maintains three entries to this semaphore, forcing the 3 threads to share the remaining 2 entries. Example

using System;
using System.Threading;
class Program {
static Semaphore semaphore;
static void Main() {
// Initial number of free slots : 2.
// Maximal number of slots used simulteanously : 5.
// Number of slot owned by the main thread : 3 (5-2).
semaphore = new Semaphore( 2, 5 );
for ( int i = 0; i < 3; ++i ) {
Thread t = new Thread( WorkerProc );
t.Name = “Thread” + i;
t.Start();
Thread.Sleep( 30 );
}
}
Example:
static void WorkerProc() {
for ( int j = 0; j < 3; j++ ) {
semaphore.WaitOne();
Console.WriteLine( Thread.CurrentThread.Name + “: Begin” );
Thread.Sleep( 200 ); // Simulate a 200 milliseconds task.
Console.WriteLine( Thread.CurrentThread.Name + “: End” );
semaphore.Release();
}
}
}

Here is the display of the program. We see that there will never be more than 2 child threads which will be working simultaneously: Thread0: Begin Thread1: Begin Thread0: End Thread2: Begin Thread1: End Thread1: Begin Thread2: End Thread2: Begin Thread1: End Thread1: Begin Thread2: End Thread2: Begin Thread1: End Thread0: Begin Thread2: End Thread0: End Thread0: Begin

Thread0: End

I think it is possible with semaphores You can use 8 ms instade of 100 or 200 becouse the quanta time is 6~ ms.

share|improve this answer
    
Crap, I should have specified this is in Java. I will google to see if there is a semaphore class in Java –  Collin May 28 '13 at 16:34
    
Yes you should that there must be WorkerProc in Java (i think) –  Hamit Yıldırım May 28 '13 at 16:36

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