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https://github.com/RPCS3/rpcs3.git
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92a75cfa80
Not very useful.
171 lines
3.5 KiB
C++
171 lines
3.5 KiB
C++
#pragma once
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#include "types.h"
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#include "util/atomic.hpp"
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#include <shared_mutex>
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#include "asm.h"
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// Lightweight condition variable
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class cond_variable
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{
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// Internal waiter counter
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atomic_t<u32> m_value{0};
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protected:
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// Internal waiting function
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bool imp_wait(u32 _old, u64 _timeout) noexcept;
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// Try to notify up to _count threads
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void imp_wake(u32 _count) noexcept;
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public:
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constexpr cond_variable() = default;
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// Intrusive wait algorithm for lockable objects
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template <typename T>
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bool wait(T& object, u64 usec_timeout = -1)
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{
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const u32 _old = m_value.fetch_add(1); // Increment waiter counter
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object.unlock();
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const bool res = imp_wait(_old, usec_timeout);
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object.lock();
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return res;
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}
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// Unlock all specified objects but don't lock them again
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template <typename... Locks>
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bool wait_unlock(u64 usec_timeout, Locks&&... locks)
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{
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const u32 _old = m_value.fetch_add(1); // Increment waiter counter
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(..., std::forward<Locks>(locks).unlock());
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return imp_wait(_old, usec_timeout);
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}
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// Wake one thread
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void notify_one() noexcept
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{
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if (m_value)
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{
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imp_wake(1);
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}
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}
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// Wake all threads
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void notify_all() noexcept
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{
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if (m_value)
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{
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imp_wake(65535);
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}
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}
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static constexpr u64 max_timeout = u64{UINT32_MAX} / 1000 * 1000000;
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};
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// Condition variable fused with a pseudo-mutex supporting only reader locks (up to 32 readers).
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class shared_cond
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{
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// For information, shouldn't modify
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enum : u64
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{
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// Wait bit is aligned for compatibility with 32-bit futex.
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c_wait = 1,
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c_sig = 1ull << 32,
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c_lock = 1ull << 32 | 1,
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};
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// Split in 32-bit parts for convenient bit combining
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atomic_t<u64> m_cvx32{0};
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class shared_lock
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{
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shared_cond* m_this;
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u32 m_slot;
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friend class shared_cond;
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public:
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shared_lock(shared_cond* _this) noexcept
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: m_this(_this)
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{
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// Lock and remember obtained slot index
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m_slot = m_this->m_cvx32.atomic_op([](u64& cvx32)
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{
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// Combine used bits and invert to find least significant bit unused
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const u32 slot = static_cast<u32>(utils::cnttz64(~((cvx32 & 0xffffffff) | (cvx32 >> 32)), true));
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// Set lock bits (does nothing if all slots are used)
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const u64 bit = (1ull << slot) & 0xffffffff;
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cvx32 |= bit | (bit << 32);
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return slot;
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});
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}
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shared_lock(const shared_lock&) = delete;
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shared_lock(shared_lock&& rhs)
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: m_this(rhs.m_this)
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, m_slot(rhs.m_slot)
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{
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rhs.m_slot = 32;
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}
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shared_lock& operator=(const shared_lock&) = delete;
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~shared_lock()
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{
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// Clear the slot (does nothing if all slots are used)
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const u64 bit = (1ull << m_slot) & 0xffffffff;
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m_this->m_cvx32 &= ~(bit | (bit << 32));
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}
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explicit operator bool() const noexcept
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{
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// Check success
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return m_slot < 32;
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}
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bool wait(u64 usec_timeout = -1) const noexcept
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{
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return m_this->wait(*this, usec_timeout);
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}
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};
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bool imp_wait(u32 slot, u64 _timeout) noexcept;
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void imp_notify() noexcept;
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public:
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constexpr shared_cond() = default;
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shared_lock try_shared_lock() noexcept
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{
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return shared_lock(this);
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}
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u32 count() const noexcept
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{
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const u64 cvx32 = m_cvx32;
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return utils::popcnt32(static_cast<u32>(cvx32 | (cvx32 >> 32)));
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}
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bool wait(shared_lock const& lock, u64 usec_timeout = -1) noexcept
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{
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AUDIT(lock.m_this == this);
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return imp_wait(lock.m_slot, usec_timeout);
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}
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void wait_all() noexcept;
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bool wait_all(shared_lock& lock) noexcept;
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void notify_all() noexcept
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{
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if (LIKELY(!m_cvx32))
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return;
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imp_notify();
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}
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bool notify_all(shared_lock& lock) noexcept;
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};
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