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.

After start a detach Thread, the thread go to sleep for a while. At the End of the sleep time, a variable was changed. But the variable only change the value in the thread. After exit of the thread the change don't exist any more.

That code run under Lam/MPI 7.4. Don't now if that is different to normal gcc.

typedef struct theadSleep {
    struct task *task;
    int sleeptime;
    int result;
} ThreadSleep;

void sleepTask(void *dummy) {
    static volatile ThreadSleep *tS;
    tS = (ThreadSleep*) dummy;
    time_t t1;
    t1 = time(NULL );
    int t1int = (int) t1;
    t1int = t1int + tS->sleeptime;
    while (t1int >= (int) time(NULL )) {
        sleep(1);
    }
    tS->task->result = tS->result;
    pthread_exit(NULL );
}


// Function to start the thread
pthread_attr_t attrSleep; /* Attribut für Posix Thread */
pthread_t sleepT; /* Posix Thread */
static volatile ThreadSleep ts1;
ts1.result = 0;
ts1.sleeptime = 0;
ts1.result = resultRecieved[0];
ts1.sleeptime = resultRecieved[1];
ts1.task = tmpTask;
pthread_attr_init(&attrSleep);
pthread_attr_setdetachstate(&attrSleep, PTHREAD_CREATE_DETACHED);
if (pthread_create(&sleepT, &attrSleep, &sleepTask, (void*) &ts1)   == -1) {
  fprintf(stderr, "Fehler bei Starten des Sleep Threads Task %i Kind %i.\n",
  tmpTask->taskindex, tmpTask->taskkind);
}

        }

Here the staement tS->task->result = tS->result; has no effect!

Example, but error free.

#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <time.h>
#include <pthread.h>
#include <unistd.h>

typedef struct task {
        int result;
        int sleeptime;
} Task;

typedef struct theadSleep {
        struct task *task;
        int sleeptime;
        int result;
} ThreadSleep;


void sleepTask(void *dummy) {
    ThreadSleep *tS;
    tS = (ThreadSleep*) dummy;
    time_t t1;

    t1 = time(NULL );
    int t1int = (int) t1;
    t1int = t1int + tS->sleeptime;
    while (t1int >= (int) time(NULL )) {
        sleep(1);
    }
    tS->task->result = tS->result;
    printf("Detach Thread is ready.\n");
    pthread_exit(NULL );
}

int main (){
  Task *newtask = malloc(sizeof(Task));
  newtask->result = 0;
  newtask->sleeptime = 3;

  pthread_attr_t attrSleep; /* Attribut für Posix Thread */
  pthread_t sleepT; /* Posix Thread */
  ThreadSleep ts1;
  ts1.result = 14;
  ts1.sleeptime = newtask->sleeptime;
  ts1.task = newtask;

  pthread_attr_init(&attrSleep);
  pthread_attr_setdetachstate(&attrSleep, PTHREAD_CREATE_DETACHED);
  if (pthread_create(&sleepT, &attrSleep, &sleepTask, (void*) &ts1)
                                        == -1) {
    fprintf(stderr, "Fehler bei Starten des Sleep Threads.\n");
  }
  sleep (5);

  printf("Task result: %i \n",newtask->result);

return 0;
}
share|improve this question
1  
Please give us a short, self contained compilable example that clearly shows the problem. –  pilcrow Jun 19 '13 at 19:19
    
Did just finish the code example. But that one is error free. The code example you see here, is in different source files. And it is compiled with mpicc from LAM/MPI. The self contained example is compiled with gcc (Ubuntu/Linaro 4.6.3-1ubuntu5). –  Thor Jun 19 '13 at 20:15
1  
I'm not sure what value the example that doesn't exhibit the error has to your question. –  Michael Burr Jun 19 '13 at 20:22
    
The value for me is, I try to find the error and pilcrow want a short example. I gave the best I can do. But that one I wrote, is error free. On the other hand, work in a detach posix thread and change a value is nothing new. If that fail under LAM/MPI somebody now that. –  Thor Jun 20 '13 at 4:14

2 Answers 2

You have no memory synchronization between the "sleepTask" thread and the main thread.

So, the sleepTask thread may update some area of memory (like tS->task->result), but the main thread is not guaranteed to see this update. (It will eventually, but eventually can be a long time in concurrent programming.)

Mutex-protected access would solve this problem, as would having the main thread join the worker thread and then checking the memory in question.

share|improve this answer

You are missing memcpy(tS, dummy, sizeof(ThreadSleep));
Also, remove tS = (ThreadSleep*) dummy;
That applies if you want to make changes locally only. Else, forget the memcpy and malloc. In that case, just cast the 'dummy' to ThreadSleep*. Buit, if you leave it and if you want to avoid memory leaks, also add free();.

share|improve this answer
    
I try to change my code. You see the differences in my example. But that dosn't help. –  Thor Jun 19 '13 at 19:38
    
I don't understand what behavior you have and what do you expect to get? If you are about to answer this one, please use debugger and provide some useful information (values). Otherwise this question is a nice candidate for deletion. –  user1764961 Jun 20 '13 at 7:36
    
My English is not the best, because of that my problem is not good explained. I use a test licence from DDT link and with that, I saw that the variable 'tS->task->result' change, after thread exit it change again to the original value. I need a function, that change value after a specified time. Without block the whole program. If I try the same thing with gcc, nothing went wrong. –  Thor Jun 20 '13 at 10:49

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.