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This commit contains a couple large, interdependent changes: - In preparation for capability checking, the _syscall_verify_* functions now load most handles passed in, and verify that they exist and are of the correct type. Lists and out-handles are not converted to objects. - Also in preparation for capability checking, the internal representation of handles has changed. j6_handle_t is now 32 bits, and a new j6_cap_t (also 32 bits) is added. Handles of a process are now a util::map<j6_handle_t, handle> where handle is a new struct containing the id, capabilities, and object pointer. - The kernel object definition DSL gained a few changes to support auto generating the handle -> object conversion in the _syscall_verify_* functions, mostly knowing the object type, and an optional "cname" attribute on objects where their names differ from C++ code. (Specifically vma/vm_area) - Kernel object code and other code under kernel/objects is now in a new obj:: namespace, because fuck you <cstdlib> for putting "system" in the global namespace. Why even have that header then? - Kernel object types constructed with the construct_handle helper now have a creation_caps static member to declare what capabilities a newly created object's handle should have.
143 lines
4.7 KiB
C++
143 lines
4.7 KiB
C++
#pragma once
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/// \file vm_space.h
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/// Structure for tracking a range of virtual memory addresses
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#include <stdint.h>
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#include <util/enum_bitfields.h>
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#include <util/spinlock.h>
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#include <util/vector.h>
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#include "page_table.h"
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struct TCB;
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namespace obj {
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class process;
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class vm_area;
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}
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/// Tracks a region of virtual memory address space
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class vm_space
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{
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public:
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/// Constructor for the kernel address space
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/// \arg pml4 The existing kernel PML4
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vm_space(page_table *pml4);
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/// Constructor. Creates a new address space.
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vm_space();
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~vm_space();
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/// Add a virtual memorty area to this address space
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/// \arg base The starting address of the area
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/// \arg area The area to add
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/// \returns True if the add succeeded
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bool add(uintptr_t base, obj::vm_area *area);
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/// Remove a virtual memory area from this address space
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/// \arg area The area to remove
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/// \returns True if the area was removed
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bool remove(obj::vm_area *area);
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/// Get the virtual memory area corresponding to an address
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/// \arg addr The address to check
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/// \arg base [out] if not null, receives the base address of the area
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/// \returns The vm_area, or nullptr if not found
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obj::vm_area * get(uintptr_t addr, uintptr_t *base = nullptr);
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/// Check if this is the kernel space
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inline bool is_kernel() const { return m_kernel; }
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/// Get the kernel virtual memory space
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static vm_space & kernel_space();
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/// Map virtual addressses to the given physical pages
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/// \arg area The VMA this mapping applies to
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/// \arg offset Offset of the starting virutal address from the VMA base
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/// \arg phys The starting physical address
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/// \arg count The number of contiugous physical pages to map
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void page_in(const obj::vm_area &area, uintptr_t offset, uintptr_t phys, size_t count);
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/// Clear mappings from the given region
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/// \arg area The VMA these mappings applies to
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/// \arg offset Offset of the starting virutal address from the VMA base
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/// \arg count The number of pages worth of mappings to clear
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/// \arg free If true, free the pages back to the system
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void clear(const obj::vm_area &vma, uintptr_t start, size_t count, bool free = false);
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/// Look up the address of a given VMA's offset
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uintptr_t lookup(const obj::vm_area &vma, uintptr_t offset);
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/// Check if this space is the current active space
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bool active() const;
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/// Set this space as the current active space
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void activate() const;
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enum class fault_type : uint8_t {
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none = 0x00,
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present = 0x01,
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write = 0x02,
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user = 0x04,
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reserved = 0x08,
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fetch = 0x10
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};
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/// Allocate pages into virtual memory. May allocate less than requested.
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/// \arg virt The virtual address at which to allocate
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/// \arg count The number of pages to allocate
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/// \arg phys [out] The physical address of the pages allocated
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/// \returns The number of pages actually allocated
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size_t allocate(uintptr_t virt, size_t count, uintptr_t *phys);
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/// Handle a page fault.
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/// \arg addr Address which caused the fault
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/// \arg ft Flags from the interrupt about the kind of fault
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/// \returns True if the fault was successfully handled
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bool handle_fault(uintptr_t addr, fault_type fault);
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/// Set up a TCB to operate in this address space.
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void initialize_tcb(TCB &tcb);
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/// Copy data from one address space to another
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/// \arg source The address space data is being copied from
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/// \arg dest The address space data is being copied to
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/// \arg from Pointer to the data in the source address space
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/// \arg to Pointer to the destination in the dest address space
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/// \arg length Amount of data to copy, in bytes
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/// \returnd The number of bytes copied
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static size_t copy(vm_space &source, vm_space &dest, const void *from, void *to, size_t length);
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private:
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friend class obj::vm_area;
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/// Find a given VMA in this address space
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bool find_vma(const obj::vm_area &vma, uintptr_t &base) const;
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/// Check if a VMA can be resized
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bool can_resize(const obj::vm_area &vma, size_t size) const;
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/// Copy a range of mappings from the given address space
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void copy_from(const vm_space &source, const obj::vm_area &vma);
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/// Remove an area's mappings from this space
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void remove_area(obj::vm_area *area);
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bool m_kernel;
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page_table *m_pml4;
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struct area {
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uintptr_t base;
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obj::vm_area *area;
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int compare(const struct area &o) const;
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bool operator==(const struct area &o) const;
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};
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util::vector<area> m_areas;
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util::spinlock m_lock;
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};
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is_bitfield(vm_space::fault_type);
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