Files
ppsspp/Core/MemMap.h
T
Henrik RydgårdandClaude Opus 5 016f976b1f Fix a batch of missing or wrong range validation
Memory::IsValidAddress and friends tested the extended-RAM range with
(address & 0x3F000000), i.e. at 16MB granularity, so they accepted the whole 16MB
block containing the end of RAM. That's harmless at 32MB and 64MB, but the Sora no
Kiseki SC/3rd HD remasters run with 0x04C00000, so addresses from 0x0CC00000 to
0x0CFFFFFF read as valid, and MaxSizeAtAddress then underflowed to ~4GB there -
which defeats ClampValidSizeAt and IsValidRange entirely for that window. Mask
with 0x3FFFFFFF instead, in all five helpers and the copies in MemMapFunctions.cpp.

IsValidTextureAddress's extended-RAM branch repeated the first branch's whole mask
rather than just its alignment bits, so it was dead code and extended RAM was never
accepted as a texture source.

ComputeTextureHash checked IsValidAddress(addr + sizeInRAM), i.e. only the end
address, which can land in a different valid region than the start - a VRAM texture
with a large enough computed size ends exactly at the base of RAM and "passes"
while reading far past the 8MB VRAM view. Use IsValidRange.

TextureReplacer::ComputeHash's strided path had no range check at all, unlike the
contiguous path right above it. Also clamp the pack-supplied reduce-hash factor to
1.0 - it's a reduction, and the ini parser only rejects exactly 0.

ZipExtractFileToMemory read an uninitialized zip_stat when zip_stat_index failed
(it ignored the return value) and sized a host allocation directly from the zip's
declared uncompressed size. Reached just by opening an archive.

Memory::Reinit ignored Init()'s return value, and DoState fed it a memory size
taken straight from the savestate. A bogus size made the map fail to allocate and
left base null, after which DoMemoryVoid wrote RAM through it. Validate the size,
propagate the failure, and roll back to the previous size if reinit fails.

314 pspautotests pass, all unit tests pass.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01DCPmm7FoQUoqrbMdhfqhQ2
2026-08-30 23:05:04 +02:00

717 lines
21 KiB
C++

// Copyright (C) 2003 Dolphin Project / 2012 PPSSPP Project.
// This program is free software: you can redistribute it and/or modify
// it under the terms of the GNU General Public License as published by
// the Free Software Foundation, version 2.0 or later versions.
// This program is distributed in the hope that it will be useful,
// but WITHOUT ANY WARRANTY; without even the implied warranty of
// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
// GNU General Public License 2.0 for more details.
// A copy of the GPL 2.0 should have been included with the program.
// If not, see http://www.gnu.org/licenses/
// Official SVN repository and contact information can be found at
// http://code.google.com/p/dolphin-emu/
#pragma once
#include "ppsspp_config.h"
#include <cstring>
#include <cstdint>
#ifndef offsetof
#include <stddef.h>
#endif
#include "Common/Common.h"
#include "Common/CommonTypes.h"
#include "Common/Swap.h"
#include "Core/Opcode.h"
// PPSSPP is very aggressive about trying to do memory accesses directly, for speed.
// This can be a problem when debugging though, as stray memory reads and writes will
// crash the whole emulator.
// If safe memory is enabled and JIT is disabled, all memory access will go through the proper
// memory access functions, and thus won't crash the emu when they go out of bounds.
#if defined(_DEBUG)
//#define SAFE_MEMORY
#endif
// Global declarations
class PointerWrap;
// The PPGe font atlas doesn't live in emulated RAM, but the GE still needs an address to texture
// from, so we hand it this fake one and translate it back to a host pointer where it's used.
// NOTE: The top 4 bits must be zero due to how the address is stored in the gstate.
constexpr u32 PPGE_ATLAS_FAKE_ADDRESS = 0x03000000;
// The size of the atlas, or 0 when PPGe isn't initialized. Set up by PPGeDraw.cpp.
extern u32 g_ppgeAtlasFakeSize;
inline bool IsPPGEAtlasFakeAddress(u32 addr, u32 *offset) {
if (addr >= PPGE_ATLAS_FAKE_ADDRESS && addr < PPGE_ATLAS_FAKE_ADDRESS + g_ppgeAtlasFakeSize) {
if (offset) {
*offset = addr - PPGE_ATLAS_FAKE_ADDRESS;
}
return true;
} else {
return false;
}
}
typedef void (*writeFn8 )(const u8, const u32);
typedef void (*writeFn16)(const u16,const u32);
typedef void (*writeFn32)(const u32,const u32);
typedef void (*writeFn64)(const u64,const u32);
typedef void (*readFn8 )(u8&, const u32);
typedef void (*readFn16)(u16&, const u32);
typedef void (*readFn32)(u32&, const u32);
typedef void (*readFn64)(u64&, const u32);
namespace Memory {
// Base is a pointer to the base of the memory map. Yes, some MMU tricks
// are used to set up a full GC or Wii memory map in process memory. on
// 32-bit, you have to mask your offsets with 0x3FFFFFFF. This means that
// some things are mirrored too many times, but eh... it works.
// In 64-bit, this might point to "high memory" (above the 32-bit limit),
// so be sure to load it into a 64-bit register.
extern u8 *base;
// This replaces RAM_NORMAL_SIZE at runtime.
extern u32 g_MemorySize;
extern u32 g_PSPModel;
// UWP has such limited memory management that we need to mask
// even in 64-bit mode. Also, when using the sanitizer, we need to mask as well.
#if PPSSPP_ARCH(32BIT) || PPSSPP_PLATFORM(UWP) || USE_ASAN || PPSSPP_PLATFORM(IOS) || defined(__EMSCRIPTEN__)
#define MASKED_PSP_MEMORY
#endif
enum {
// This may be adjusted by remaster games.
RAM_NORMAL_SIZE = 0x02000000,
// Used if the PSP model is PSP-2000 (Slim).
RAM_DOUBLE_SIZE = RAM_NORMAL_SIZE * 2,
VRAM_SIZE = 0x00200000,
SCRATCHPAD_SIZE = 0x00004000,
#ifdef MASKED_PSP_MEMORY
// This wraparound should work for PSP too.
MEMVIEW32_MASK = 0x3FFFFFFF,
#endif
};
enum {
MV_MIRROR_PREVIOUS = 1,
MV_IS_PRIMARY_RAM = 0x100,
MV_IS_EXTRA1_RAM = 0x200,
MV_IS_EXTRA2_RAM = 0x400,
MV_KERNEL = 0x800, // Can be skipped on platforms where memory is tight.
MV_NULL_PAGE = 0x1000,
};
struct MemoryView {
u8 **out_ptr;
u32 virtual_address;
u32 size;
u32 flags;
};
enum class MemMapSetupFlags {
Default = 0,
AllocNullPage = 1,
};
ENUM_CLASS_BITOPS(MemMapSetupFlags);
// Init and Shutdown
bool Init(MemMapSetupFlags flags);
void Shutdown();
void DoState(PointerWrap &p);
// False when shutdown has already been called.
bool IsActive();
// used by JIT to read instructions. Does not resolve replacements.
Opcode Read_Opcode_JIT(const u32 _Address);
// used by JIT. Reads in the "Locked cache" mode
void Write_Opcode_JIT(const u32 _Address, const Opcode& _Value);
// Should be used by analyzers, disassemblers etc. Does resolve replacements.
Opcode Read_Instruction(const u32 _Address, bool resolveReplacements = false);
Opcode ReadUnchecked_Instruction(const u32 _Address, bool resolveReplacements = false);
u8 ReadOrException_U8(const u32 _Address);
u16 ReadOrException_U16(const u32 _Address);
u32 ReadOrException_U32(const u32 _Address);
inline u8* GetPointerWriteUnchecked(const u32 address) {
#ifdef MASKED_PSP_MEMORY
return (u8 *)(base + (address & MEMVIEW32_MASK));
#else
return (u8 *)(base + address);
#endif
}
inline const u8* GetPointerUnchecked(const u32 address) {
#ifdef MASKED_PSP_MEMORY
return (const u8 *)(base + (address & MEMVIEW32_MASK));
#else
return (const u8 *)(base + address);
#endif
}
inline u64 ReadUnchecked_U64(const u32 address) {
#ifdef MASKED_PSP_MEMORY
return *(u64_le *)(base + (address & MEMVIEW32_MASK));
#else
return *(u64_le *)(base + address);
#endif
}
inline u32 ReadUnchecked_U32(const u32 address) {
#ifdef MASKED_PSP_MEMORY
return *(u32_le *)(base + (address & MEMVIEW32_MASK));
#else
return *(u32_le *)(base + address);
#endif
}
inline float ReadUnchecked_Float(const u32 address) {
#ifdef MASKED_PSP_MEMORY
return *(float_le *)(base + (address & MEMVIEW32_MASK));
#else
return *(float_le *)(base + address);
#endif
}
inline u16 ReadUnchecked_U16(const u32 address) {
#ifdef MASKED_PSP_MEMORY
return *(u16_le *)(base + (address & MEMVIEW32_MASK));
#else
return *(u16_le *)(base + address);
#endif
}
inline u8 ReadUnchecked_U8(const u32 address) {
#ifdef MASKED_PSP_MEMORY
return (*(u8 *)(base + (address & MEMVIEW32_MASK)));
#else
return (*(u8 *)(base + address));
#endif
}
inline void WriteUnchecked_U64(u64 data, u32 address) {
#ifdef MASKED_PSP_MEMORY
*(u64_le *)(base + (address & MEMVIEW32_MASK)) = data;
#else
*(u64_le *)(base + address) = data;
#endif
}
inline void WriteUnchecked_U32(u32 data, u32 address) {
#ifdef MASKED_PSP_MEMORY
*(u32_le *)(base + (address & MEMVIEW32_MASK)) = data;
#else
*(u32_le *)(base + address) = data;
#endif
}
inline void WriteUnchecked_Float(float data, u32 address) {
#ifdef MASKED_PSP_MEMORY
*(float_le *)(base + (address & MEMVIEW32_MASK)) = data;
#else
*(float_le *)(base + address) = data;
#endif
}
inline void WriteUnchecked_U16(u16 data, u32 address) {
#ifdef MASKED_PSP_MEMORY
*(u16_le *)(base + (address & MEMVIEW32_MASK)) = data;
#else
*(u16_le *)(base + address) = data;
#endif
}
inline void WriteUnchecked_U8(u8 data, u32 address) {
#ifdef MASKED_PSP_MEMORY
(*(u8 *)(base + (address & MEMVIEW32_MASK))) = data;
#else
(*(u8 *)(base + address)) = data;
#endif
}
void WriteOrException_U8(const u8 data, const u32 address);
void WriteOrException_U16(const u16 data, const u32 address);
void WriteOrException_U32(const u32 data, const u32 address);
void WriteOrException_U64(const u64 data, const u32 address);
u8* GetPointerWriteOrException(const u32 address);
const u8* GetPointerOrException(const u32 address);
u8 *GetPointerWriteRangeOrException(const u32 address, const u32 size);
template<typename T>
T* GetTypedPointerWriteRange(const u32 address, const u32 size) {
return reinterpret_cast<T*>(GetPointerWriteRangeOrException(address, size));
}
const u8 *GetPointerRangeOrException(const u32 address, const u32 size);
template<typename T>
const T* GetTypedPointerRange(const u32 address, const u32 size) {
return reinterpret_cast<const T*>(GetPointerRangeOrException(address, size));
}
bool IsRAMAddress(const u32 address);
// Note that VRAM is not mirrored up into kernel space. So we use BF800000 instead of 3F800000 to check for VRAM addresses.
inline bool IsVRAMAddress(const u32 address) {
return ((address & 0xBF800000) == 0x04000000);
}
inline bool IsDepthTexVRAMAddress(const u32 address) {
return ((address & 0xBFE00000) == 0x04200000) || ((address & 0xBFE00000) == 0x04600000);
}
// TODO: To re-evaluate.
inline bool IsMMIOAccess(const u32 address) {
return ((address & 0xFC000000) == 0xBC000000);
}
// 0x08000000 -> 0x08800000
inline bool IsKernelAddress(const u32 address) {
return ((address & 0x3F800000) == 0x08000000);
}
// 0x08000000 -> 0x08400000
inline bool IsKernelAndNotVolatileAddress(const u32 address) {
return ((address & 0x3FC00000) == 0x08000000);
}
bool IsScratchpadAddress(const u32 address);
inline void MemcpyUnchecked(void *to_data, const u32 from_address, const u32 len) {
memcpy(to_data, GetPointerUnchecked(from_address), len);
}
inline void MemcpyUnchecked(const u32 to_address, const void *from_data, const u32 len) {
memcpy(GetPointerWriteUnchecked(to_address), from_data, len);
}
inline void MemcpyUnchecked(const u32 to_address, const u32 from_address, const u32 len) {
MemcpyUnchecked(GetPointerWriteUnchecked(to_address), from_address, len);
}
inline bool AddressesEqualAfterMask(const u32 address1, const u32 address2) {
return (address1 & 0x3FFFFFFF) == (address2 & 0x3FFFFFFF);
}
// Applies to user mode.
// Without a length, IsValidAddress is generally semi-meaningless, unless it's about a single byte access. For larger accesses, use IsValid4AlignedAddress
// etc when appropriate, or for longer sizes, use IsValidRange or IsValid4AlignedRange for example. Checking aligned-ness helps avoid the problem
// of reading past the last byte, say reading 4 bytes at offset 5 of a memory sized 8.
inline bool IsValidAddress(const u32 address) {
if ((address & 0x3E000000) == 0x08000000) {
return true;
} else if ((address & 0xBF800000) == 0x04000000) {
return true; // 0xBxx above: Let's disallow kernel-flagged VRAM. We don't have it mapped and I am not sure if it's accessible.
} else if ((address & 0x3FFFC000) == 0x00010000) {
return true;
} else if ((address & 0x3FFFFFFF) >= 0x08000000 && (address & 0x3FFFFFFF) < 0x08000000 + g_MemorySize) {
return true;
} else {
return false;
}
}
inline bool IsValid2AlignedAddress(const u32 address) {
if ((address & 0x3E000001) == 0x08000000) {
return true;
} else if ((address & 0xBF800001) == 0x04000000) {
return true; // 0xBxx above: Let's disallow kernel-flagged VRAM. We don't have it mapped and I am not sure if it's accessible.
} else if ((address & 0x3FFFC001) == 0x00010000) {
return true;
} else if ((address & 0x3FFFFFFF) >= 0x08000000 && (address & 0x3FFFFFFF) < 0x08000000 + g_MemorySize) {
return (address & 1) == 0;
} else {
return false;
}
}
inline bool IsValid4AlignedAddress(const u32 address) {
if ((address & 0x3E000003) == 0x08000000) {
return true;
} else if ((address & 0xBF800003) == 0x04000000) {
return true; // 0xBxx above: Let's disallow kernel-flagged VRAM. We don't have it mapped and I am not sure if it's accessible.
} else if ((address & 0x3FFFC003) == 0x00010000) {
return true;
} else if ((address & 0x3FFFFFFF) >= 0x08000000 && (address & 0x3FFFFFFF) < 0x08000000 + g_MemorySize) {
return (address & 3) == 0;
} else {
return false;
}
}
template<int A>
inline bool IsValidNAlignedAddress(const u32 address) {
if ((address & (0x3E000000 | (A - 1))) == 0x08000000) {
return true;
} else if ((address & (0xBF800000 | (A - 1))) == 0x04000000) {
return true; // 0xBxx above: Let's disallow kernel-flagged VRAM. We don't have it mapped and I am not sure if it's accessible.
} else if ((address & (0x3FFFC000 | (A - 1))) == 0x00010000) {
return true;
} else if ((address & 0x3FFFFFFF) >= 0x08000000 && (address & 0x3FFFFFFF) < 0x08000000 + g_MemorySize) {
return (address & (A - 1)) == 0;
} else {
return false;
}
}
inline u32 MaxSizeAtAddress(const u32 address) {
if ((address & 0x3E000000) == 0x08000000) {
return 0x08000000 + g_MemorySize - (address & 0x3FFFFFFF);
} else if ((address & 0xBF800000) == 0x04000000) {
return 0x04800000 - (address & 0x3FFFFFFF); // VRAM. Same 0xBxx trick as above, modified for this use case.
} else if ((address & 0x3FFFC000) == 0x00010000) {
return 0x00014000 - (address & 0x3FFFFFFF);
} else if ((address & 0x3FFFFFFF) >= 0x08000000 && (address & 0x3FFFFFFF) < 0x08000000 + g_MemorySize) {
return 0x08000000 + g_MemorySize - (address & 0x3FFFFFFF);
} else {
return 0;
}
}
inline const char *GetCharPointerUnchecked(const u32 address) {
return (const char *)GetPointerUnchecked(address);
}
// Differences from the above functions: Check for 16-byte alignment, disallow scratchpad (can't texture from there, I don't think).
inline bool IsValidTextureAddress(const u32 address) {
if ((address & 0x3E00000F) == 0x08000000) {
return true; // Can texture from RAM (not sure if kernel RAM too, but let's allow it).
} else if ((address & 0xBF80000F) == 0x04000000) {
return true; // 0xBxx above: Let's disallow kernel-flagged VRAM. We don't have it mapped and I am not sure if it's accessible.
} else if ((address & 0x0F) == 0 && (address & 0x3FFFFFFF) >= 0x08000000 && ((address & 0x3FFFFFFF) < 0x08000000 + g_MemorySize)) {
// Extended RAM. This used to repeat the first branch's full mask, which made it dead code -
// only the 16-byte alignment part of it belongs here.
return true;
} else if (IsPPGEAtlasFakeAddress(address, nullptr)) {
return true; // PPGe atlas texture
} else {
// Can't texture from scratchpad or other kinds of memory.
return false;
}
}
// This is a bit of a hack, to let the JITs and interpreters know where to apply kernel
// mode restrictions on instruction emulation (and where to use slow memory handlers that can handle MMIO).
inline bool IsKernelCodeAddress(u32 address) {
address &= 0x3FFFFFFF;
return ((address & 0x0F800003) == 0x08000000) && address >= 0x08000100;
}
// I believe this is the same, but let's keep a separate function.
inline bool IsValidCLUTAddress(const u32 address) {
return IsValidTextureAddress(address);
}
// NOTE: Unlike the similar IsValidRange/IsValidAddress functions, this one is linear cost vs the size of the string,
// for hopefully-obvious reasons.
inline bool IsValidNullTerminatedString(const u32 address) {
u32 max_size = MaxSizeAtAddress(address);
if (max_size == 0) {
return false;
}
const char *c = GetCharPointerUnchecked(address);
if (memchr(c, '\0', max_size)) {
return true;
}
return false;
}
inline u32 ClampValidSizeAt(const u32 address, const u32 requestedSize) {
u32 max_size = MaxSizeAtAddress(address);
if (requestedSize > max_size) {
return max_size;
}
return requestedSize;
}
// NOTE: If size == 0, any address will be accepted. This may not be ideal for all cases.
inline bool IsValidRange(const u32 address, const u32 size) {
return ClampValidSizeAt(address, size) == size;
}
// NOTE: If size == 0, any address will be accepted. This may not be ideal for all cases.
// Also, length is not checked for alignment.
inline bool IsValid4AlignedRange(const u32 address, const u32 size) {
if (address & 3) {
return false;
}
return ClampValidSizeAt(address, size) == size;
}
// Used for auto-converted char * parameters, which can sometimes legitimately be null -
// so we don't want to get caught in GetPointer's crash reporting
// TODO: This should use IsValidNullTerminatedString, but may be expensive since this is used so much - needs evaluation.
inline const char *GetCharPointer(const u32 address) {
if (address && IsValidAddress(address)) {
return GetCharPointerUnchecked(address);
} else {
return nullptr;
}
}
// Remaps the host pointer (potentially 64bit) into the 32bit virtual pointer, no checks are made
inline u32 GetAddressFromHostPointerUnchecked(const void* host_ptr) {
auto address = static_cast<const u8*>(host_ptr) - base;
return static_cast<u32>(address);
}
// Remaps the host pointer (potentially 64bit) into the 32bit virtual pointer with checks
inline u32 GetAddressFromHostPointer(const void* host_ptr) {
u32 address = GetAddressFromHostPointerUnchecked(host_ptr);
if (!IsValidAddress(address)) {
// Somehow report the error?
return 0;
}
return address;
}
// Like GetPointer, but bad values don't result in a memory exception, instead nullptr is returned.
inline const u8* GetPointerOrNull(const u32 address) {
return IsValidAddress(address) ? GetPointerUnchecked(address) : nullptr;
}
} // namespace Memory
// Avoiding a global include for NotifyMemInfo.
void PSPPointerNotifyRW(int rw, uint32_t ptr, uint32_t bytes, const char *tag, size_t tagLen);
// TODO: These are actually quite annoying because they can't be followed in the MSVC debugger...
// Need to find a solution for that. Can't just change the internal representation though, because
// these can be present in PSP-native structs.
template <typename T>
struct PSPPointer
{
u32_le ptr;
inline T &operator*() const
{
#ifdef MASKED_PSP_MEMORY
return *(T *)(Memory::base + (ptr & Memory::MEMVIEW32_MASK));
#else
return *(T *)(Memory::base + ptr);
#endif
}
inline const T &operator[](int i) const
{
#ifdef MASKED_PSP_MEMORY
return *((T *)(Memory::base + (ptr & Memory::MEMVIEW32_MASK)) + i);
#else
return *((const T *)(Memory::base + ptr) + i);
#endif
}
inline T &operator[](int i)
{
#ifdef MASKED_PSP_MEMORY
return *((T *)(Memory::base + (ptr & Memory::MEMVIEW32_MASK)) + i);
#else
return *((T *)(Memory::base + ptr) + i);
#endif
}
inline const T *operator->() const
{
#ifdef MASKED_PSP_MEMORY
return (T *)(Memory::base + (ptr & Memory::MEMVIEW32_MASK));
#else
return (const T *)(Memory::base + ptr);
#endif
}
inline T *operator->()
{
#ifdef MASKED_PSP_MEMORY
return (T *)(Memory::base + (ptr & Memory::MEMVIEW32_MASK));
#else
return (T *)(Memory::base + ptr);
#endif
}
inline PSPPointer<T> operator+(int i) const
{
PSPPointer other;
other.ptr = ptr + i * sizeof(T);
return other;
}
inline PSPPointer<T> &operator=(u32 p)
{
ptr = p;
return *this;
}
inline PSPPointer<T> &operator+=(int i)
{
ptr = ptr + i * sizeof(T);
return *this;
}
inline PSPPointer<T> operator-(int i) const
{
PSPPointer other;
other.ptr = ptr - i * sizeof(T);
return other;
}
inline PSPPointer<T> &operator-=(int i)
{
ptr = ptr - i * sizeof(T);
return *this;
}
inline PSPPointer<T> &operator++()
{
ptr += sizeof(T);
return *this;
}
inline PSPPointer<T> operator++(int i)
{
PSPPointer<T> other;
other.ptr = ptr;
ptr += sizeof(T);
return other;
}
inline PSPPointer<T> &operator--()
{
ptr -= sizeof(T);
return *this;
}
inline PSPPointer<T> operator--(int i)
{
PSPPointer<T> other;
other.ptr = ptr;
ptr -= sizeof(T);
return other;
}
inline operator T*()
{
#ifdef MASKED_PSP_MEMORY
return (T *)(Memory::base + (ptr & Memory::MEMVIEW32_MASK));
#else
return (T *)(Memory::base + ptr);
#endif
}
inline operator const T*() const
{
#ifdef MASKED_PSP_MEMORY
return (const T *)(Memory::base + (ptr & Memory::MEMVIEW32_MASK));
#else
return (const T *)(Memory::base + ptr);
#endif
}
bool IsValid() const {
return Memory::IsValidRange(ptr, (u32)sizeof(T));
}
void FillWithZero() {
memset(Memory::GetPointerWriteOrException(ptr), 0, sizeof(T));
}
bool Equals(u32 addr) const {
return ptr == addr;
}
T *PtrOrNull() {
if (IsValid())
return (T *)*this;
return nullptr;
}
const T *PtrOrNull() const {
if (IsValid())
return (const T *)*this;
return nullptr;
}
template <size_t tagLen>
void NotifyWrite(const char(&tag)[tagLen]) const {
PSPPointerNotifyRW(1, (uint32_t)ptr, (uint32_t)sizeof(T), tag, tagLen - 1);
}
template <size_t tagLen>
void NotifyRead(const char(&tag)[tagLen]) const {
PSPPointerNotifyRW(2, (uint32_t)ptr, (uint32_t)sizeof(T), tag, tagLen - 1);
}
size_t ElementSize() const
{
return sizeof(T);
}
static PSPPointer<T> Create(u32 ptr) {
PSPPointer<T> p;
p = ptr;
return p;
}
};
constexpr u32 PSP_GetScratchpadMemoryBase() { return 0x00010000;}
constexpr u32 PSP_GetScratchpadMemoryEnd() { return 0x00014000;}
constexpr u32 PSP_GetKernelMemoryBase() { return 0x08000000;}
inline u32 PSP_GetUserMemoryEnd() { return PSP_GetKernelMemoryBase() + Memory::g_MemorySize;}
constexpr u32 PSP_GetKernelMemoryEnd() { return 0x08400000;}
// "Volatile" RAM is between 0x08400000 and 0x08800000, can be requested by the
// game through sceKernelVolatileMemTryLock.
constexpr u32 PSP_GetVolatileMemoryStart() { return 0x08400000; }
constexpr u32 PSP_GetVolatileMemoryEnd() { return 0x08800000; }
constexpr u32 PSP_GetUserMemoryBase() { return 0x08800000; }
constexpr u32 PSP_GetDefaultLoadAddress() { return 0; }
constexpr u32 PSP_GetVidMemBase() { return 0x04000000; }
constexpr u32 PSP_GetVidMemEnd() { return 0x04800000; }
template <typename T>
inline bool operator==(const PSPPointer<T> &lhs, const PSPPointer<T> &rhs) {
return lhs.ptr == rhs.ptr;
}
template <typename T>
inline bool operator!=(const PSPPointer<T> &lhs, const PSPPointer<T> &rhs) {
return lhs.ptr != rhs.ptr;
}
template <typename T>
inline bool operator<(const PSPPointer<T> &lhs, const PSPPointer<T> &rhs) {
return lhs.ptr < rhs.ptr;
}
template <typename T>
inline bool operator>(const PSPPointer<T> &lhs, const PSPPointer<T> &rhs) {
return lhs.ptr > rhs.ptr;
}
template <typename T>
inline bool operator<=(const PSPPointer<T> &lhs, const PSPPointer<T> &rhs) {
return lhs.ptr <= rhs.ptr;
}
template <typename T>
inline bool operator>=(const PSPPointer<T> &lhs, const PSPPointer<T> &rhs) {
return lhs.ptr >= rhs.ptr;
}