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HW-09-Advanced-Multithreading/Answers.md
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2026-06-12 21:10:49 +03:30

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1 - What are atomic variables?

Explain their purpose and how they differ from ordinary (non-atomic) variables.

Answer:

Atomic variables are variables on which reading and writing operations are atomic.
It means that when a Thread is making changes to a variable, no other Thread can interfere with it.
They Use hardware-level instructions to ensure that only one thread can modify the value at a time without locks.
But for ordinary variables, operations like balance += amount are not atomic for example if another thread interrupts between these steps, it causes Race Conditions and data corruption.

2 - Name at least four classes from the java.util.concurrent.atomic package that provide atomic operations for different data types.

For one of them, briefly describe a typical use case.

Answer:

  • AtomicInteger
  • AtomicLong
  • AtomicBoolean
  • AtomicReference

Example :

private AtomicLong balance = new AtomicLong(0);

public void deposit(long amount) 
{
    balance.addAndGet(amount); 
}

Atomically adds amount to current balance.
It is fast & it does not need synchronized .
But it is only good for simple operations on one variable.


3 - Compare locks with atomic variables.

In which scenarios is using a lock a better choice than an atomic variable, and vice versa?

Answer:

Feature Lock (ReentrantLock / synchronized) Atomic Variables
Complexity of operations Great for complex, multi-step operations Great for simple operations on a variable
Scope of Locking You can lock blocks of code It only locks the variable itself
Conditional Logic Supports conditional checks;You can check if (balance > 0) and then withdraw Difficult; requires loops with compareAndSet which can be complex.
Resource Management Requires manual unlocking in finally Automatic
Deadlock Dangerous None

When to Use Which?

Use Locks When:

  • You need to perform compound operations involving multiple state variables atomically (e.g., in our banking project: balance -= amount AND target.balance += amount must happen together).
  • You need to wait for a condition (using Condition.await()/signal()).
  • The critical section contains complex logic that cannot be reduced to a single atomic instruction.

Use Atomic Variables When:

  • You are modifying a single variable (e.g., a global counter, a status flag).
  • Performance is critical and contention is expected to be low.
  • You want to avoid the complexity of managing lock lifecycles (acquire/release).

4 - A program is completely free of race conditions but still performs poorly under high contention.

Explain how this situation can occur.

Answer:

Even without race conditions, high contention causes bottlenecks due to:

  • Thread Contention: Threads block waiting for locks, turning parallel execution into sequential processing. CPU time is wasted managing queues rather than computing.
  • Context Switching Overhead: Frequent blocking/unblocking forces the OS to save/restore thread states. High switch rates consume CPU cycles needed for actual work.
  • False Sharing: Unrelated variables in the same cache line cause unnecessary cache invalidations across cores, forcing slow main memory accesses despite logical independence.

5 - Many concurrent systems experience performance degradation as the number of threads increases.

Explain why adding more threads does not always improve performance.

Your answer should discuss concepts such as:

Context switching

Contention

coherence

Synchronization overhead

Answer:

Performance degrades with excessive threads due to:

  • Synchronization Overhead: Lock acquisition/release costs exceed computation time for small tasks.
  • Contention: Increased probability of lock conflicts leads to long wait times, shifting from parallel to serialized execution.
  • Context Switching: Beyond core limits, CPUs spend more time switching contexts than executing instructions (“thread explosion”).
  • Cache Coherence: Frequent writes to shared data trigger inter-core synchronization (MESI protocol), saturating the communication bus and increasing latency

6 - Deadlocks often only appear in production, not during testing.

Explain why this might happen from a thread-scheduling perspective.

Describe two strategies a developer can use to increase the likelihood of exposing deadlocks during testing.

Answer:

Why they hide in testing:

  • Timing: Tests are fast and deterministic; production has I/O/network delays that alter thread interleaving.
  • Concurrency: Tests use few threads; deadlocks often require high concurrency to trigger naturally.

Strategies to Expose Deadlocks:

  • Stress Testing: Spawn hundreds of threads performing random operations to exponentially increase the chance of hitting cyclic dependency windows.
  • Inject Delays: Add Thread.sleep() or use tools like JMH to disrupt natural flow, increasing the likelihood that a thread holds one lock while waiting for another.