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// down = acquire the resource
// up = release the resource

typedef int semaphore;
  semaphore resource_1;
  semaphore resource_2;


 void process_A(void) {
    down(&resource_1);
    down(&resource_2);
    use_both_resources();
    up(&resource_2);
    up(&resource_1);
 }

 void process_B(void) {
    down(&resource_2);
    down(&resource_1);
    use_both_resources();
    up(&resource_1);
    up(&resource_2);
 }

Why does this code causes deadlock?

If we change the code of process_B where the both processes ask for the resources in the same order as:

 void process_B(void) {
    down(&resource_1);
    down(&resource_2);
    use_both_resources();
    up(&resource_2);
    up(&resource_1);
 }

Then there is no deadlock.

Why so?

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2 Answers 2

up vote 3 down vote accepted

Imagine that process A is running and try to get the resource_1 and gets it.

Now, process B takes control and try to get resource_2. And gets it. Now, process B tries to get resource_1 and does not get it, because it belongs to resource A. Then, process B goes to sleep.

Process A gets control again and try to get resource_2, but it belongs to process B. Now he goes to sleep too.

At this point, process A is waiting for resource_2 and process B is waiting for resource_1.

If you change the order, process B will never lock resource_2 unless it gets resource_1 first, the same for process A.

They will never be dead locked.

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A necessary condition for a deadlock is a cycle of resource acquisitions. The first example constructs this a cycle 1->2->1. The second example acquires the resources in a fixed order which makes a cycle and henceforth a deadlock impossible.

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