implementation of WS-08 is complete #1
@@ -20,18 +20,38 @@ public class DeadlockPreventionWorkshop {
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}
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}
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public static void useResources(Resource r1, Resource r2) {
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public static void useResources(Resource r1, Resource r2) {
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// TODO: Prevent deadlock by enforcing a consistent lock acquisition order
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// Hint: Compare resource IDs and always synchronize on the resource with the smaller ID first.
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System.out.println(Thread.currentThread().getName() + " is attempting to lock " + r1.getName());
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// Always lock resources in ascending order of ID
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synchronized (r1) {
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Resource first = r1;
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System.out.println("+ " + Thread.currentThread().getName() + " locked " + r1.getName());
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Resource second = r2;
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try { Thread.sleep(100); } catch (InterruptedException ignored) {}
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System.out.println(Thread.currentThread().getName() + " is attempting to lock " + r2.getName());
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if (r1.getId() > r2.getId()) {
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synchronized (r2) {
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first = r2;
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System.out.println("+ " + Thread.currentThread().getName() + " locked " + r2.getName());
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second = r1;
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System.out.println(Thread.currentThread().getName() + " using " + r1.getName() + " and " + r2.getName());
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}
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System.out.println(Thread.currentThread().getName()
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+ " is attempting to lock " + first.getName());
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synchronized (first) {
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System.out.println("+ " + Thread.currentThread().getName()
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+ " locked " + first.getName());
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try {
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Thread.sleep(100);
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} catch (InterruptedException ignored) {
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}
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System.out.println(Thread.currentThread().getName()
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+ " is attempting to lock " + second.getName());
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synchronized (second) {
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System.out.println("+ " + Thread.currentThread().getName()
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+ " locked " + second.getName());
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System.out.println(Thread.currentThread().getName()
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+ " using " + first.getName()
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+ " and " + second.getName());
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}
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}
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}
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}
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}
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}
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@@ -40,7 +60,8 @@ public class DeadlockPreventionWorkshop {
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Resource resA = new Resource(1, "ResourceA");
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Resource resA = new Resource(1, "ResourceA");
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Resource resB = new Resource(2, "ResourceB");
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Resource resB = new Resource(2, "ResourceB");
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// Thread 1 locks A then B; Thread 2 locks B then A (causing deadlock if unordered)
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// Thread 1 requests A then B
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// Thread 2 requests B then A
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Thread t1 = new Thread(() -> useResources(resA, resB), "Thread-1");
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Thread t1 = new Thread(() -> useResources(resA, resB), "Thread-1");
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Thread t2 = new Thread(() -> useResources(resB, resA), "Thread-2");
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Thread t2 = new Thread(() -> useResources(resB, resA), "Thread-2");
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@@ -6,15 +6,20 @@ import java.util.concurrent.locks.ReentrantLock;
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public class LockWorkshop {
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public class LockWorkshop {
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public static int counter = 0;
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public static int counter = 0;
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// TODO: Create a ReentrantLock instance to protect the critical section
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// Lock protecting the shared counter
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private static final Lock lock = new ReentrantLock();
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public static class MyRunnable implements Runnable {
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public static class MyRunnable implements Runnable {
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@Override
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@Override
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public void run() {
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public void run() {
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int i;
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int i;
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for (i = 0; i < 1_000_000; i++) {
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for (i = 0; i < 1_000_000; i++) {
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// TODO: Acquire the lock, increment the counter, and release the lock safely in a finally block
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lock.lock();
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try {
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counter += 1;
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counter += 1;
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} finally {
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lock.unlock();
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}
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}
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}
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System.out.println("Increments completed by " + Thread.currentThread().getName() + ": " + i);
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System.out.println("Increments completed by " + Thread.currentThread().getName() + ": " + i);
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}
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}
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@@ -3,16 +3,19 @@ package workshop.exercises;
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public class SynchronizedWorkshop {
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public class SynchronizedWorkshop {
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public static int counter = 0;
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public static int counter = 0;
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// TODO: Define a lock object to prevent race condition
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// Lock object used for synchronization
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private static final Object lock = new Object();
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public static class MyRunnable implements Runnable {
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public static class MyRunnable implements Runnable {
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@Override
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@Override
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public void run() {
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public void run() {
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int i;
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int i;
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for (i = 0; i < 1_000_000; i++) {
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for (i = 0; i < 1_000_000; i++) {
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// TODO: Use a synchronized block to protect the counter increment
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// Protect the shared counter
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synchronized (lock) {
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counter += 1;
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counter += 1;
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}
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}
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}
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System.out.println("Increments completed by " + Thread.currentThread().getName() + ": " + i);
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System.out.println("Increments completed by " + Thread.currentThread().getName() + ": " + i);
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}
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}
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}
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}
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@@ -21,14 +21,34 @@ public class TaylorSeries {
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@Override
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@Override
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public void run() {
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public void run() {
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// TODO: Calculate the n-th term of the Taylor series for sin(x):
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// term = (-1)^n * x^(2n+1) / (2n+1)!
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// term = (-1)^n * (x^(2n+1)) / (2n+1)!
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// Add the term to the global sum ensuring thread-safety.
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int exponent = 2 * n + 1;
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BigDecimal numerator = x.pow(exponent, mc);
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BigDecimal denominator = factorial(exponent);
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BigDecimal term = numerator.divide(denominator, mc);
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if (n % 2 == 1) {
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term = term.negate();
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}
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}
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// TODO: Implement factorial(k) using BigDecimal
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// Thread-safe update of the global sum
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synchronized (TaylorSeries.class) {
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sum = sum.add(term, mc);
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}
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}
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// Computes k!
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private BigDecimal factorial(int k) {
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private BigDecimal factorial(int k) {
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return BigDecimal.ZERO;
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BigDecimal result = BigDecimal.ONE;
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for (int i = 2; i <= k; i++) {
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result = result.multiply(BigDecimal.valueOf(i), mc);
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}
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return result;
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}
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}
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}
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}
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@@ -41,7 +61,7 @@ public class TaylorSeries {
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// Submit tasks to calculate terms
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// Submit tasks to calculate terms
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for (int i = 0; i < 100; i++) {
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for (int i = 0; i < 100; i++) {
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// TODO: Submit task to the thread pool
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threadPool.submit(new CalculateSin(x, i));
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}
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}
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threadPool.shutdown();
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threadPool.shutdown();
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Reference in New Issue
Block a user