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've heard the phrase 'priority inversion' in reference to development of operating systems.

What exactly is priority inversion?

What is the problem it's meant to solve, and how does it solve it?

share|improve this question
1  

8 Answers 8

up vote 24 down vote accepted

Priority inversion is a problem, not a solution. The typical example is a low priority process acquiring a resource that a high priority process needs, and then being preempted by a medium priority process, so the high priority process is blocked on the resource while the medium priority one finishes (effectively being executed with a lower priority).

A rather famous example was the problem experienced by the Mars Pathfinder rover: http://www.cs.duke.edu/~carla/mars.html, it's a pretty interesting read.

share|improve this answer
2  
I'm confused! Why cannot the high priority process preempt the low priority process from the beginning? The medium priority process can do this, surely the high priority process must be able to also do that? I've read numerous explanations on the subject now, but I feel there's something missing. –  Viktor Oct 18 '13 at 13:01
    
The assumption is that the HP process yields periodically, so other processes do run. It's only when it tries to acquire a resource that the LP already has, that the problem arises. –  Dmitri Oct 19 '13 at 1:04
7  
@Viktor The high priority task doesn't run 100% of the time. And when it doesn't run, a low priority task could come along and grab a mutex. In the middle of the work, a medium process comes along and preempts the low running task. Then the high priority task wakes up and wants to grab the mutex that the low priority task now owns. But the high priority task cant acquire the mutex now - it's owned by the low priority process - so now there's a problem, the high priority task can't get any further. –  nos Jan 11 '14 at 0:29

Priority inversion is where a lower priority process gets ahold of a resource that a higher priority process needs, preventing the higher priority process from proceeding till the resource is freed.

eg: FileA needs to be accessed by Proc1 and Proc2. Proc 1 has a higher priority than Proc2, but Proc2 manages to open FileA first.

Normally Proc1 would run maybe 10 times as often as Proc2, but won't be able to do anything because Proc2 is holding the file.

So what ends up happening is that Proc1 blocks until Proc2 finishes with FileA, essentially their priorities are 'inverted' while Proc2 holds FileA's handle.

As far as 'Solving a problem' goes, priority inversion is a problem in itself if it keeps happening. The worst case (most operating systems won't let this happen though) is if Proc2 wasn't allowed to run until Proc1 had. This would cause the system to lock as Proc1 would keep getting assigned CPU time, and Proc2 will never get CPU time, so the file will never be released.

share|improve this answer
    
I think you are explaining blocking and not priority inversion. Priority inversion occurs when a medium priority process runs ahead of a higher priority process because of a lower priority process holding up a resource needed by the higher priority process. Also, you conclude "file will never be released". Your example has only 2 processes. If Proc1 is done with FileA, it will release the file. If it forgets to do so, its a problem of bad programming than of priority inversion. –  xeek Feb 21 '14 at 2:22

It is the problem rather than the solution.

It describes the situation that when low-priority threads obtain locks during their work, high-priority threads will have to wait for them to finish (which might take especially long since they are low-priority). The inversion here is that the high-priority thread cannot continue until the low-priority thread does, so in effect it also has low priority now.

A common solution is to have the low-priority threads temporarily inherit the high priority of everyone who is waiting on locks they hold.

share|improve this answer

Imagine three (3) tasks of different priority: tLow, tMed and tHigh. tLow and tHigh access the same critical resource at different times; tMed does its own thing.

  1. tLow is running, tMed and tHigh are presently blocked (but not in critical section).
  2. tLow comes along and enters the critical section.
  3. tHigh unblocks and since it is the highest priority task in the system, it runs.
  4. tHigh then attempts to enter the critical resource but blocks as tLow is in there.
  5. tMed unblocks and since it is now the highest priority task in the system, it runs.

tHigh can not run until tLow gives up the resource. tLow can not run until tMed blocks or ends. The priority of the tasks has been inverted; tHigh though it has the highest priority is at the bottom of the execution chain.

To "solve" priority inversion, the priority of tLow must be bumped up to be at least as high as tHigh. Some may bump its priority to the highest possible priority level. Just as important as bumping up the priority level of tLow, is dropping the priority level of tLow at the appropriate time(s). Different systems will take different approaches.

When to drop the priority of tLow ...

  1. No other tasks are blocked on any of the resources that tLow has. This may be due to timeouts or the releasing of resources.
  2. No other tasks contributing to the raising the priority level of tLow are blocked on the resources that tLow has. This may be due to timeouts or the releasing of resources.
  3. When there is a change in which tasks are waiting for the resource(s), drop the priority of tLow to match the priority of the highest priority level task blocked on its resource(s).

Method #2 is an improvement over method #1 in that it shortens the length of time that tLow has had its priority level bumped. Note that its priority level stays bumped at tHigh's priority level during this period.

Method #3 allows the priority level of tLow to step down in increments if necessary instead of in one all-or-nothing step.

Different systems will implement different methods depending upon what factors they consider important.

  • memory footprint
  • complexity
  • real time responsiveness
  • developer knowledge

Hope this helps.

share|improve this answer
    
nice explanation :) –  Anil Sharma Jan 9 '13 at 14:59
1  
Thanks. I was once responsible for implementing a priority inheritance algorithm for a commercial RTOS--fun times. :) –  Sparky Jan 9 '13 at 18:57

Suppose an application has three threads:

Thread 1 has high priority.
Thread 2 has medium priority.
Thread 3 has low priority.

Thread 1 and thread 2 are sleeping or blocked at the beginning of the example. Thread 3 runs and enters a critical section.

At that moment, thread 2 starts running, preempting thread 3 because thread 2 has a higher priority. So, thread 3 continues to own a critical section.

Later, thread 1 starts running, preempting thread 2. Thread 1 tries to enter the critical section that thread 3 owns, but because it is owned by another thread, thread 1 blocks, waiting for the critical section.

At that point, thread 2 starts running because it has a higher priority than thread 3 and thread 1 is not running. Thread 3 never releases the critical section that thread 1 is waiting for because thread 2 continues to run.

Therefore, the highest-priority thread in the system, thread 1, becomes blocked waiting for lower-priority threads to run.

share|improve this answer
2  
Better explanation than all the above examples –  aknon Jul 31 '14 at 8:29

Priority inversion occurs as such: Given processes H, M and L where the names stand for high, medium and low priorities, only H and L share a common resource.

Say, L acquires the resource first and starts running. Since H also needs that resource, it enters the waiting queue. M doesn't share the resource and can start to run, hence it does. When L is interrupted by any means, M takes the running state since it has higher priority and it is running on the instant that interrupt happens. Although H has higher priority than M, since it is on the waiting queue, it cannot acquire the resource, implying a lower priority than even M. After M finishes, L will again take over CPU causing H to wait the whole time.

share|improve this answer

[ Assume, Low process = LP, Medium Process = MP, High process = HP ]

LP is executing a critical section. While entering the critical section, LP must have acquired a lock on some object, say OBJ. LP is now inside the critical section.

Meanwhile, HP is created. Because of higher priority, CPU does a context switch, and HP is now executing (not the same critical section, but some other code). At some point during HP's execution, it needs a lock on the same OBJ (may or may not be on the same critical section), but the lock on OBJ is still held by LP, since it was pre-empted while executing the critical section. LP cannot relinquish now because the process is in READY state, not RUNNING. Now HP is moved to BLOCKED / WAITING state.

Now, MP comes in, and executes its own code. MP does not need a lock on OBJ, so it keeps executing normally. HP waits for LP to release lock, and LP waits for MP to finish executing so that LP can come back to RUNNING state (.. and execute and release lock). Only after LP has released lock can HP come back to READY (and then go to RUNNING by pre-empting the low priority tasks.)

So, effectively it means that until MP finishes, LP cannot execute and hence HP cannot execute. So, it seems like HP is waiting for MP, even though they are not directly related through any OBJ locks. -> Priority Inversion.

A solution to Priority Inversion is Priority Inheritance -

increase the priority of a process (A) to the maximum priority of any other process waiting for any resource on which A has a resource lock.

share|improve this answer

Priority Inversion Problem :
Lets Consider one example: Tasks:
High Priority (H)
Medium Priority (M)
Low Priority (L)

and a lock X, may be semaphore_lock(X).

Scenario:
1. L runs and acquires X
2. Then H tries to access X while L has it, because of semaphore, H sleeps.
3. M arrives, pre-empts L and runs. In effect, H & M were two processes waiting to run but M ran because H was waiting on lock and couldn't run.
4. M finishes, H can't enter because L has the lock, so L runs.
5. L finishes, relinquishes the lock. Now H gets the lock and executes.

H had the highest priority but ran after the lower priority processes had run. This is Priority Inversion. Priority Inversion Problem

Now Solution of Priority Inversion.
When a low priority process has is running and has a lock, and if a high priority process tries to acquire the lock, the priority of the low priority process is raised to the priority of the high priority process. That is, if L is running and and has the lock, when H tries to acquire it, L's priority will be raised to that of the H for the duration L holds the lock. This way, M can't pre-emp it. After, L finishes, H runs and acquires the lock. After H is done, M runs preserving the priority ordering.

**Priority Inversion Solution**

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.