
加锁解锁流程
- 先从构造器开始看,默认为非公平锁实现:
public ReentrantLock() {
sync = new NonfairSync();
}
NonfairSync 继承自 AQS 没有竞争时
- 第一个竞争出现时:
Thread-1 执行了
当前线程进入 acquireQueued 逻辑:
- 再次有多个线程经历上述过程竞争失败,变成这个样子:
除了最后一个结点的state 为0 其余的都为-1,因为结点(线程)是由上一个结点唤醒的
- Thread-0 释放锁,进入 tryRelease 流程,如果成功:
当前队列不为 null,并且 head 的 waitStatus = -1,进入 unparkSuccessor 流程,找到队列中离 head 最近的一个 Node(没取消的),unpark 恢复其运行,本例中即为 Thread-1
回到 Thread-1 的 acquireQueued 流程
如果加锁成功(没有竞争),会设置:
如果这时候有其它线程来竞争(非公平的体现),例如这时有 Thread-4 来了
如果不巧又被 Thread-4 占了先:
重复获得锁时state(初始值为0 获得一次锁会自增1)会执行累加操作,释放锁时只有state = 0时才会释放锁
static final class NonfairSync extends Sync {
// ...
// Sync 继承过来的方法, 方便阅读, 放在此处
final boolean nonfairTryAcquire(int acquires) {
final Thread current = Thread.currentThread();
int c = getState();
if (c == 0) {
if (compareAndSetState(0, acquires)) {
setExclusiveOwnerThread(current);
return true;
}
}
// 如果已经获得了锁, 线程还是当前线程, 表示发生了锁重入
else if (current == getExclusiveOwnerThread()) {
// state++
int nextc = c + acquires;
if (nextc < 0) // overflow
throw new Error("Maximum lock count exceeded");
setState(nextc);
return true;
}
return false;
}
// Sync 继承过来的方法, 方便阅读, 放在此处
protected final boolean tryRelease(int releases) {
// state--
int c = getState() - releases;
if (Thread.currentThread() != getExclusiveOwnerThread())
throw new IllegalMonitorStateException();
boolean free = false;
// 支持锁重入, 只有 state 减为 0, 才释放成功
if (c == 0) {
free = true;
setExclusiveOwnerThread(null);
}
setState(c);
return free;
}
}
在此模式下,即使它被打断,仍会驻留在 AQS 队列中,一直要等到获得锁后方能得知自己被打断了
// Sync 继承自 AQS
static final class NonfairSync extends Sync {
// ...
private final boolean parkAndCheckInterrupt() {
// 如果打断标记已经是 true, 则 park 会失效
LockSupport.park(this);
// interrupted 会清除打断标记
return Thread.interrupted();
}
final boolean acquireQueued(final Node node, int arg) {
boolean failed = true;
try {
boolean interrupted = false;
for (; ; ) {
final Node p = node.predecessor();
if (p == head && tryAcquire(arg)) {
setHead(node);
p.next = null;
failed = false;
// 还是需要获得锁后, 才能返回打断状态
return interrupted;
}
if (
shouldParkAfterFailedAcquire(p, node) &&
parkAndCheckInterrupt()
) {
// 如果是因为 interrupt 被唤醒, 返回打断状态为 true
interrupted = true;
}
}
} finally {
if (failed)
cancelAcquire(node);
}
}
public final void acquire(int arg) {
if (
!tryAcquire(arg) &&
acquireQueued(addWaiter(Node.EXCLUSIVE), arg)
) {
// 如果打断状态为 true
selfInterrupt();
}
}
static void selfInterrupt() {
// 重新产生一次中断
Thread.currentThread().interrupt();
}
}
static final class NonfairSync extends Sync {
public final void acquireInterruptibly(int arg) throws InterruptedException {
if (Thread.interrupted())
throw new InterruptedException();
// 如果没有获得到锁, 进入 ㈠
if (!tryAcquire(arg))
doAcquireInterruptibly(arg);
}
// ㈠ 可打断的获取锁流程
private void doAcquireInterruptibly(int arg) throws InterruptedException {
final Node node = addWaiter(Node.EXCLUSIVE);
boolean failed = true;
try {
for (;;) {
final Node p = node.predecessor();
if (p == head && tryAcquire(arg)) {
setHead(node);
p.next = null; // help GC
failed = false;
return;
}
if (shouldParkAfterFailedAcquire(p, node) &&
parkAndCheckInterrupt()) {
// 在 park 过程中如果被 interrupt 会进入此
// 这时候抛出异常, 而不会再次进入 for (;;)
throw new InterruptedException();
}
}
} finally {
if (failed)
cancelAcquire(node);
}
}
}