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@@ -7,10 +7,12 @@
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#include "common/assert.h"
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#include "common/common_funcs.h"
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#include "common/logging/log.h"
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+#include "core/core.h"
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#include "core/hle/kernel/errors.h"
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#include "core/hle/kernel/kernel.h"
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#include "core/hle/kernel/process.h"
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#include "core/hle/kernel/resource_limit.h"
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+#include "core/hle/kernel/scheduler.h"
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#include "core/hle/kernel/thread.h"
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#include "core/hle/kernel/vm_manager.h"
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#include "core/memory.h"
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@@ -128,6 +130,91 @@ void Process::Run(VAddr entry_point, s32 main_thread_priority, u32 stack_size) {
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Kernel::SetupMainThread(kernel, entry_point, main_thread_priority, *this);
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}
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+void Process::PrepareForTermination() {
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+ status = ProcessStatus::Exited;
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+
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+ const auto stop_threads = [this](const std::vector<SharedPtr<Thread>>& thread_list) {
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+ for (auto& thread : thread_list) {
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+ if (thread->owner_process != this)
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+ continue;
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+
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+ if (thread == GetCurrentThread())
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+ continue;
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+
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+ // TODO(Subv): When are the other running/ready threads terminated?
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+ ASSERT_MSG(thread->status == ThreadStatus::WaitSynchAny ||
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+ thread->status == ThreadStatus::WaitSynchAll,
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+ "Exiting processes with non-waiting threads is currently unimplemented");
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+
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+ thread->Stop();
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+ }
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+ };
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+
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+ auto& system = Core::System::GetInstance();
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+ stop_threads(system.Scheduler(0)->GetThreadList());
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+ stop_threads(system.Scheduler(1)->GetThreadList());
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+ stop_threads(system.Scheduler(2)->GetThreadList());
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+ stop_threads(system.Scheduler(3)->GetThreadList());
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+}
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+
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+/**
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+ * Finds a free location for the TLS section of a thread.
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+ * @param tls_slots The TLS page array of the thread's owner process.
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+ * Returns a tuple of (page, slot, alloc_needed) where:
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+ * page: The index of the first allocated TLS page that has free slots.
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+ * slot: The index of the first free slot in the indicated page.
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+ * alloc_needed: Whether there's a need to allocate a new TLS page (All pages are full).
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+ */
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+static std::tuple<std::size_t, std::size_t, bool> FindFreeThreadLocalSlot(
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+ const std::vector<std::bitset<8>>& tls_slots) {
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+ // Iterate over all the allocated pages, and try to find one where not all slots are used.
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+ for (std::size_t page = 0; page < tls_slots.size(); ++page) {
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+ const auto& page_tls_slots = tls_slots[page];
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+ if (!page_tls_slots.all()) {
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+ // We found a page with at least one free slot, find which slot it is
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+ for (std::size_t slot = 0; slot < page_tls_slots.size(); ++slot) {
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+ if (!page_tls_slots.test(slot)) {
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+ return std::make_tuple(page, slot, false);
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+ }
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+ }
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+ }
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+ }
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+
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+ return std::make_tuple(0, 0, true);
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+}
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+
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+VAddr Process::MarkNextAvailableTLSSlotAsUsed(Thread& thread) {
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+ auto [available_page, available_slot, needs_allocation] = FindFreeThreadLocalSlot(tls_slots);
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+
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+ if (needs_allocation) {
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+ tls_slots.emplace_back(0); // The page is completely available at the start
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+ available_page = tls_slots.size() - 1;
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+ available_slot = 0; // Use the first slot in the new page
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+
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+ // Allocate some memory from the end of the linear heap for this region.
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+ auto& tls_memory = thread.GetTLSMemory();
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+ tls_memory->insert(tls_memory->end(), Memory::PAGE_SIZE, 0);
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+
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+ vm_manager.RefreshMemoryBlockMappings(tls_memory.get());
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+
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+ vm_manager.MapMemoryBlock(Memory::TLS_AREA_VADDR + available_page * Memory::PAGE_SIZE,
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+ tls_memory, 0, Memory::PAGE_SIZE, MemoryState::ThreadLocal);
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+ }
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+
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+ tls_slots[available_page].set(available_slot);
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+
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+ return Memory::TLS_AREA_VADDR + available_page * Memory::PAGE_SIZE +
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+ available_slot * Memory::TLS_ENTRY_SIZE;
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+}
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+
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+void Process::FreeTLSSlot(VAddr tls_address) {
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+ const VAddr tls_base = tls_address - Memory::TLS_AREA_VADDR;
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+ const VAddr tls_page = tls_base / Memory::PAGE_SIZE;
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+ const VAddr tls_slot = (tls_base % Memory::PAGE_SIZE) / Memory::TLS_ENTRY_SIZE;
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+
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+ tls_slots[tls_page].reset(tls_slot);
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+}
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+
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void Process::LoadModule(SharedPtr<CodeSet> module_, VAddr base_addr) {
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const auto MapSegment = [&](CodeSet::Segment& segment, VMAPermission permissions,
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MemoryState memory_state) {
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