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multithreading - Difference between racearound condition and deadlock

What is the difference between a dead lock and a race around condition in programming terms?

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Think of a race condition using the traditional example. Say you and a friend have an ATM cards for the same bank account. Now suppose the account has $100 in it. Consider what happens when you attempt to withdraw $10 and your friend attempts to withdraw $50 at exactly the same time.

Think about what has to happen. The ATM machine must take your input, read what is currently in your account, and then modify the amount. Note, that in programming terms, an assignment statement is a multi-step process.

So, label both of your transactions T1 (you withdraw $10), and T2 (your friend withdraws $50). Now, the numbers below, to the left, represent time steps.

       T1                        T2
       ----------------          ------------------------
 1.    Read Acct ($100)          
 2.                              Read Acct ($100)
 3.    Write New Amt ($90)
 4.                              Write New Amt ($50)
 5.                              End
 6.    End

After both transactions complete, using this timeline, which is possible if you don't use any sort of locking mechanism, the account has $50 in it. This is $10 more than it should (your transaction is lost forever, but you still have the money).

This is a called race condition. What you want is for the transaction to be serializable, that is in no matter how you interleave the individual instruction executions, the end result will be the exact same as some serial schedule (meaning you run them one after the other with no interleaving) of the same transactions. The solution, again, is to introduce locking; however incorrect locking can lead to dead lock.

Deadlock occurs when there is a conflict of a shared resource. It's sort of like a Catch-22.

   T1            T2
   -------       --------
1.  Lock(x)
2.               Lock(y)
3.  Write x=1
4.               Write y=19
5.  Lock(y)
6.  Write y=x+1
7.               Lock(x)
8.               Write x=y+2
9.  Unlock(x)
10.              Unlock(x)
11. Unlock(y)
12.              Unlock(y)

You can see that a deadlock occurs at time 7 because T2 tries to acquire a lock on x but T1 already holds the lock on x but it is waiting on a lock for y, which T2 holds.

This bad. You can turn this diagram into a dependency graph and you will see that there is a cycle. The problem here is that x and y are resources that may be modified together.

One way to prevent this sort of deadlock problem with multiple lock objects (resources) is to introduce an ordering. You see, in the previous example, T1 locked x and then y but T2 locked y and then x. If both transactions adhered here to some ordering rule that says "x shall always be locked before y" then this problem will not occur. (You can change the previous example with this rule in mind and see no deadlock occurs).

These are trivial examples and really I've just used the examples you may have already seen if you have taken any kind of undergrad course on this. In reality, solving deadlock problems can be much harder than this because you tend to have more than a couple resources and a couple transactions interacting.

Hope this helps a little bit. As always, use Wikipedia as a starting point for CS concepts:

http://en.wikipedia.org/wiki/Deadlock

http://en.wikipedia.org/wiki/Race_condition


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