2026-06-16 18:44:31 -05:00
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#include "memory/mm.h"
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2026-06-24 21:52:05 -05:00
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#include "lib/print.h"
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2026-06-13 20:43:09 -04:00
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#include "multiboot.h"
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2026-06-14 00:34:11 -05:00
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#include <stddef.h>
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extern uint8_t __kernel_start;
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extern uint8_t __kernel_end;
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2026-06-15 23:35:01 -05:00
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extern uint32_t page_directory[1024];
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2026-06-14 00:34:11 -05:00
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#define PAGE_SIZE 4096
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#define MAX_RAM 0xFFFFFFFF // 4GB
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#define BITMAP_SIZE ((MAX_RAM / PAGE_SIZE) / 8)
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#define PAGE_TABLES 0xFFC00000
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#define PAGE_DIRECTORY 0xFFFFF000
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#define TEMP_MAPPING_VADDR 0xDFFF0000
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static uint32_t max_address = 0;
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static uint32_t total_available_memory = 0;
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static uint8_t memory_bitmap[BITMAP_SIZE];
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static void mark_free(uint32_t addr) {
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uint32_t page_index = addr / PAGE_SIZE;
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2026-06-17 18:16:47 -05:00
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uint32_t byte_index = page_index / 8;
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uint32_t bit_index = page_index % 8;
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memory_bitmap[byte_index] &= ~(1 << bit_index);
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}
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static void mark_used(uint32_t addr) {
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uint32_t page_index = addr / PAGE_SIZE;
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uint32_t byte_index = page_index / 8;
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uint32_t bit_index = page_index % 8;
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memory_bitmap[byte_index] |= (1 << bit_index);
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}
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static uint32_t align(uint32_t addr, uint32_t len, uint32_t* usable_start, uint32_t* usable_end) {
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uint32_t start = addr;
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uint32_t end = addr + len;
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*usable_start = (start + 4095) & ~0xFFF;
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*usable_end = end & ~0xFFF;
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return *usable_end - *usable_start;
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}
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static void parse_multiboot_mmap(void* base, uint32_t limit) {
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multiboot_mmap_entry* entry = (multiboot_mmap_entry*)base;
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void* end = (void*)((uint32_t)base + limit);
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total_available_memory = 0;
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while ((void*)entry < end) {
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uint32_t entry_size = entry->size + sizeof(entry->size);
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if (entry->type == 1) {
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uint32_t region_start = (uint32_t)(entry->addr);
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uint32_t region_end = (uint32_t)(entry->addr + entry->len);
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if (region_end > max_address) {
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max_address = region_end;
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}
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uint32_t usable_start, usable_end, usable_size;
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usable_size = align(region_start, entry->len, &usable_start, &usable_end);
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if (usable_size <= 4096) {
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entry = (multiboot_mmap_entry*)((uint32_t)entry + entry_size);
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continue;
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}
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2026-06-15 18:09:04 -04:00
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uint32_t kernel_phys_start = (uint32_t)&__kernel_start - 0xC0000000;
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uint32_t kernel_phys_end = (uint32_t)&__kernel_end - 0xC0000000;
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for (uint32_t addr = usable_start; addr < usable_end; addr += 4096) {
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if (addr <= kernel_phys_end && addr >= kernel_phys_start) {
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continue;
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}
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if (addr >= (uint32_t)entry && addr <= (uint32_t)entry + entry_size) {
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continue;
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}
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2026-06-14 00:34:11 -05:00
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if (addr <= 0x200000) {
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continue;
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}
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2026-06-14 00:34:11 -05:00
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total_available_memory += 4096;
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mark_free(addr);
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}
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}
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entry = (multiboot_mmap_entry*)((uint32_t)entry + entry_size);
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}
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}
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2026-06-16 18:44:31 -05:00
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void* p_alloc_frame() {
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for (uint32_t i = 0; i < BITMAP_SIZE; i++) {
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uint8_t b = memory_bitmap[i];
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if (b == 0xFF) {
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continue;
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}
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for (int bit = 0; bit < 8; bit++) {
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if ((b & (1 << bit)) == 0) {
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uint32_t page_addr = (i * 8 + bit) * PAGE_SIZE;
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mark_used(page_addr);
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return (void*)page_addr;
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}
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}
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}
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return 0;
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}
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2026-06-29 17:00:07 -05:00
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void p_free_frame(void* addr) {
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mark_free((uint32_t)addr);
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2026-06-14 18:53:54 -05:00
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}
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2026-06-16 10:04:49 -04:00
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// MODIFIES THE ACTIVE PAGE TABLE AT THE PHYSICAL ADDRESS LOADED INTO CR3 VIA RECURSIVE MAPPING
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void map_page(uint32_t vaddr, uint32_t paddr, uint32_t flags) {
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uint32_t pde_entry = vaddr >> 22;
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uint32_t pte_entry = (vaddr >> 12) & 0x3FF;
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uint32_t* pd = (uint32_t*)PAGE_DIRECTORY;
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uint32_t* tablev = (uint32_t*)(PAGE_TABLES + (pde_entry * PAGE_SIZE));
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if ((pd[pde_entry] & PAGE_PRESENT) == 0) {
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uint32_t new_table = (uint32_t)p_alloc_frame();
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pd[pde_entry] = new_table | flags;
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flush_tlb();
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for (int i = 0; i < 1024; i++) {
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tablev[i] = 0;
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}
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}
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tablev[pte_entry] = paddr | flags;
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flush_tlb();
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}
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void init_pmm(void* mmap_base, uint32_t mmap_limit) {
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for (int i = 0; i < BITMAP_SIZE; i++) {
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memory_bitmap[i] = 0xFF;
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}
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if (mmap_base != NULL && mmap_limit > 0) {
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parse_multiboot_mmap(mmap_base, mmap_limit);
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}
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}
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2026-06-15 18:09:04 -04:00
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void init_page_tables() {
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uint32_t kernel_size = (uint32_t)&__kernel_end - (uint32_t)&__kernel_start;
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uint32_t num_pages = kernel_size / PAGE_SIZE + 1;
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uint32_t num_page_tables = (num_pages + 1023) / 1024;
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for (uint32_t table = 0; table < num_page_tables; table++) {
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uint32_t* kernel_table = p_alloc_frame();
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for (int i = 0; i < 1024; i++) {
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kernel_table[i] = (i * PAGE_SIZE) | 0x3;
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}
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page_directory[768 + table] = (uint32_t)(kernel_table) | 0x3;
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}
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page_directory[0] = 0;
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disable_pae();
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flush_tlb();
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}
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uint32_t total_free_memory() {
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return total_available_memory;
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}
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2026-06-26 20:05:01 -05:00
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void* create_task_pd() {
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uint32_t pd_address = (uint32_t)p_alloc_frame();
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if (pd_address == 0) {
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return 0;
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}
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map_page(TEMP_MAPPING_VADDR, pd_address, PAGE_PRESENT | PAGE_WRITABLE);
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2026-06-26 20:05:01 -05:00
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uint32_t* task_pd = (uint32_t*)TEMP_MAPPING_VADDR;
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uint32_t* kernel_pd = (uint32_t*)PAGE_DIRECTORY;
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2026-06-16 18:44:31 -05:00
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for(int i = 0; i < 768; i++) {
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task_pd[i] = 0;
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}
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for(int i = 768; i < 1023; i++) {
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task_pd[i] = kernel_pd[i];
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}
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2026-06-26 20:05:01 -05:00
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task_pd[1023] = (uint32_t)pd_address | PAGE_PRESENT | PAGE_WRITABLE;
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uint32_t pde = TEMP_MAPPING_VADDR >> 22;
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uint32_t pte = (TEMP_MAPPING_VADDR >> 12) & 0x3FF;
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uint32_t* kernel_pt = (uint32_t*)(PAGE_TABLES + (pde * PAGE_SIZE));
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kernel_pt[pte] = 0;
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return (void*)pd_address;
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2026-06-13 20:43:09 -04:00
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}
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