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So I have a little piece of code that in theory could be parrelized easily.

The structure is very simple, quite similiar to the following:

for (int i = 0; i < some_value; ++i) {
    // we have a function called do_stuff
    // somewhere in the code

    // Create a new pthread
    // using do_stuff as start routine
}

Now all the variables are not shared between the threads. That is, no inter-communication of variables between the threads is necessary. However I do use the variable i to write data to arrays and such.

What I'm wondering is: if I pass the variable i as argument for the pthread start routine and the value of i changes (because i gets incremented when in the next loop iteration), does the value of i in the already existing threads also change?

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How are you planning to pass it to the threads? –  Joachim Isaksson Mar 14 at 11:35
    
It depends on how you pass the variable, and where it is declared. Each thread has its own stack, and thus their own local variables (unless they are static) Everything in C is pass-by-value, so a copy would be made, but you might do something else, e.g. pass a pointer to i. But it is unclear what you mean by a threaded function, functions arn't threaded - you create threads, and threads call functions. –  nos Mar 14 at 11:37
1  
I believe he calls 'threaded function' the function you provide when calling pthread_create –  Tonio Mar 14 at 11:40

2 Answers 2

up vote 4 down vote accepted

If you pass the address of i to all functions, and they each try to modify it, well of course i gets messed up because they all have the address of the same variable. What you need is to give each thread the range they need to work on and let them iterate over it with a local variable. Something like this:

struct thread_data
{
    int start;
    int end;
    pthread_t tid;
};

struct thread_data td[N]; // assuming N threads

/* divide up the ranges */
for (i = 0; i < N; ++i)
    td[i] = (struct thread_data){ .start = i*len/N, .end = (i+1)*len/N };
td[N-1].end = len;

/* create the threads */
for (i = 0; i < N; ++i)
    pthread_create(&td[i].tid, NULL, func, &td[i]);

and in func:

void *func(void *arg)
{
    struct thread_data *data = arg;

    for (int i = data->start; i < data->end; ++i)
        /* do some work */
}

You may also be interested in learning about OpenMP which is designed to automate exactly what you are asking for.

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If you provide a pointer to multiple threads, their behavior may modify the value(s) pointed in an undeterministic fashion. If you share variables between threads, you should use semaphors or mutexes to manage read/write accesses between threads.

If you know the threads only access different memory locations, there is no need for that. For instance, if each thread writes in the same array but for different indices, you don't need to protect the array.

EDIT:

If you provide the address of the variable i then yes it will be modified outside the thread by the loop. If you create a temporary variable in the loop and pass its address, however, you'll be fine. This example might help you see what's happening: http://timmurphy.org/2010/05/04/pthreads-in-c-a-minimal-working-example/

In C, anytime you provide a pointer to a function, the value it points to may be modified both from the inside and from the outside of that function (no matter whether or not it is on the same thread). pthread_create requires you to provide the arguments of your start routine in the shape of a void *, so anything that has a pointer to the same variable is able to modify its value at any time.

As @Shahbaz suggested, you might be interested in OpenMP. With OpenMP, you add pragmas to your code in order to facilitate thread creation. You also specify whether threads share a variable or not.

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each thread write to the same array but different indices exactly the way you say. the index is defined by the 'i' variable in the for loop. now what I am wondering is if I call the function and pass i as the variable to it, then the for loop continues and i gets incremented. does the I also get incremented in the threads running or not? Or a more basic way of saying is: is i that I pass to a function the same i in memory than the i variable currently in the for loop? –  user3021085 Mar 14 at 11:42
    
It depends on how you pass it to the function. If you provide the address to i yes it will be modified outside because of the loop, if you create a temporary variable in the loop and pass its address, you'll be fine. This example might help you see what's happening: timmurphy.org/2010/05/04/… –  Tonio Mar 14 at 12:34

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