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void print_task(void)
{
    for(;;)
    {
        taskLock();
        printf("this is task %d\n", taskIdSelf());
        taskUnlock();
        taskDelay(0);
    }
}
void print_test(void)
{
    taskSpawn("t1", 100,0,0x10000, (FUNCPTR)print_task, 0,0,0,0,0,0,0,0,0,0);
    taskSpawn("t2", 100,0,0x10000, (FUNCPTR)print_task, 0,0,0,0,0,0,0,0,0,0);
}

the above code show:

this is task this is task126738208 126672144 this is task this is task 126712667214438208

this is task this is task 1266721441 26738208 this is task 126672144 this is task

what is the right way to print a string in multitask?

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You might need to flush the printf buffers within the locked block. –  Vicky Apr 27 '13 at 6:51
    
I add "fflush(stdout)" just after printf, but still unsuccess –  Zhang Baolei Apr 27 '13 at 7:00

2 Answers 2

up vote 1 down vote accepted

The problem lies in taskLock();

Try semaphore or mutex instead.

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thanks , very great! –  Zhang Baolei Apr 27 '13 at 7:27
    
but why printf can break between taskLock and taskUnlock –  Zhang Baolei Apr 27 '13 at 7:29
    
tasklock doesn't work as expected, which we have met a couple of years ago. –  Daniel Apr 27 '13 at 7:41
1  
Task lock works exactly as expected. The documentation specifically mentions that a any blocking call made while taskLock is in effect will re-enable the scheduler. printf itself (esp. w/ parsing format string) and potentially taskIdSelf contain blocking code as there are mutex involved w/ stdio. –  Benoit May 11 '13 at 2:39

The main idea to print in multi-threaded environment is using dedicated task that printout. Normally in vxWorks there is a log task that gets the log messages from all tasks in the system and print to terminal from one task only. The main problem in vxWorks logger mechanism is that the logger task use very high priority and can change your system timing.

Therefore, you should create your own low priority task that get messages from other tasks (using message queue, shared memory protected by mutex, …). In that case there are 2 great benefits: The first one, all system printout will be printed from one single task.

The second, and most important benefit, the real-time tasks in the system should not loss time using printf() function. As you know, printf is very slow function that use system calls and for sure change the timing of your tasks according the debug information you add.

taskLock, taskLock use as a command to the kernel, it mean to leave the current running task in the CPU as READY.

As you wrote in the example code taskUnlock() function doesn't have arguments. The basic reason is to enable the kernel & interrupts to perform taskUnlock in the system.

There are many system calls that perform task unlock (and sometimes interrupts service routing do it also)

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