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.

I came across a situation where I started doubting whether the two-phase commit protocol really guarantees the ACID properties, especially the 'A' part of it.

Let's look at a theoretical distributed transaction involving 2 resources. (More practical description of the problem I had to deal with you can find in my blog). The scenario is a normal execution of a distributed transaction (no failures or recovery). An application starts a transaction, updates both resources and issues a commit() call. After commit is completed the application checks both resources and sees all the changes from the completed transaction. Everything is fine, the 2PC protocol did its job, right?

Now, a small change to the scenario. While the distributed transaction is doing commit(), another application is going to the same 2 resources. Can it see only part of the changes from the transaction? Let's say, changes to one resource are already visible while the changes to the second resource are not yet visible?

In all the information I have read on the 2PC protocol I could not find any guarantees about the visibility of the changes in the individual resources relative to each other. And I could not find anything that says that all the resources finish their individual commits at exactly the same time.

share|improve this question

3 Answers 3

I think you're confusing 2PC with concurrency control. Two-phase commit ensures that all the participating threads in a transaction either commit or abort. Concurrency control ensures some sort of ordering of transactions in the same or separate applications. There are various ways of handling this depending on your requirements, but fully serialized transactions are certainly possible.

share|improve this answer
    
I am not confusing the 2PC with concurrency control. I am not thinking of it when I am relying on the transaction infrastructure to do it correctly. Facts are: 1. I do not have to worry about this if I am using a non-distributed transaction. (If such a transaction changes multiple tables in a database no other application running in parallel with the first transaction being committed sees changes to one table but no changes to other table.) 2. I might not even know I am running within a distributed transaction. –  user568826 Jan 10 '11 at 8:58
1  
3. Even if I know: there is already a heavy infrastructure to ensure some basic transactional properties. Why do I need to invent my own next to it to really-really-really ensure it? 4. After reading about [the 2PC][1] and the linked article on atomic commit my understanding is: I can safely expect "all or nothing" semantics from the 2PC. [1]: en.wikipedia.org/wiki/Two_phase_commit –  user568826 Jan 10 '11 at 8:59
    
You say "If such a [non-distributed] transaction changes multiple tables in a database no other application running in parallel with the first transaction being committed sees changes to one table but no changes to other table" - but this is not true. If you have a REPEATABLE READ isolation level, and transaction A reads from table X, then transaction B writes to tables X and Y, then transaction A re-reads from X and also reads from Y, it will see old data from X, and new data from Y. –  Tom Anderson Mar 13 '11 at 21:39

I think you are confusing topics. 2PC ensures that transactions commit with a certain visibility. I.e. in your transaction the data you commit will be ordered in a specific way and commits with that transactions will commit serially.

Outside of your transaction the behaviour you see will depend on how locking works in your database. Typically you would expect that a read-only query would either see the before transaction state or the after transaction state (with no guarantee per-se as to which it receives unless it is using the same locking semantics). Write semantics would typically result in locking all items in the transaction, but again this really depends on how your database is configured.

2PC really only promises that an operation is Atomic, and even then it is only necessarily atomic within the scope of that transaction depending on how your database is configured.

share|improve this answer

From Wikipedia

The article explicitly states early-on that 2PC is not resilient to all possible failure configurations. More specific reference here: Three phase commit protocol:

3PC was originally described by Dale Skeen and Michael Stonebraker in their paper, “A Formal Model of Crash Recovery in a Distributed System”.[1] In that work, they modeled 2PC as a system of non-deterministic finite state automata and proved that it is not resilient to a random single site failure.

EDIT: This can be used to disrupt all 4 of ACID properties. My initial answer was wrong.

The visibility of the changes

is an orthogonal issue and depends on involved cohort configuration (see Isolation levels).

The main body of your question and the blog is about Isolation, not Atomicity. Atomicity means the transaction always finishes to the end, committing all changes eventually (or rolling all back).

Even if all cohorts are Serializable and use the same TransactionManager, I still see the possibility to circumvent isolation by starting new transactions at the right time.

After studying your blog, I would say, two-phase commit protocol will not solve your problem, MDB communication must be redesigned more creatively.

From personal experience

Due to blocking nature, 2PC is an overkill in almost any practical situation and a wise design of storage locations and data flows can give a better solution. Basically, you need a unique most authoritative source of any kind of information and all other involved parties must be able to update themselves to that authoritative state. http://en.wikipedia.org/wiki/Communicating_sequential_processes is a great inspiration, especially as implemented in Go. Modern distributed databases are BASE instead of ACID (http://en.wikipedia.org/wiki/Eventual_consistency).

share|improve this answer

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.