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@@ -8,13 +8,24 @@
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#include <kernel/vga.h>
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#include <kernel_main.h>
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#include <types/bitmap.h>
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+#include <types/list.h>
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+
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+// static variables
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+
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+struct mm kernel_mm;
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+struct mm* kernel_mm_head;
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+
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+// ---------------------
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+
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+// constant values
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+
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+#define EMPTY_PAGE_ADDR ((phys_ptr_t)0x5000)
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+#define EMPTY_PAGE_END ((phys_ptr_t)0x6000)
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+
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+// ---------------------
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static void* p_start;
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static void* p_break;
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-static segment_descriptor* gdt;
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-
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-// temporary
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-static struct tss32_t _tss;
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static size_t mem_size;
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static char mem_bitmap[1024 * 1024 / 8];
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@@ -27,6 +38,9 @@ static int32_t set_heap_start(void* start_addr)
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static int32_t brk(void* addr)
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{
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+ if (addr >= KERNEL_HEAP_LIMIT) {
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+ return GB_FAILED;
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+ }
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p_break = addr;
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return 0;
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}
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@@ -45,12 +59,9 @@ static void* sbrk(size_t increment)
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int init_heap(void)
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{
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- // start of the available address space
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- // TODO: adjust heap start address
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- // according to user's memory size
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- set_heap_start(HEAP_START);
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+ set_heap_start(KERNEL_HEAP_START);
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- if (brk(HEAP_START) != 0) {
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+ if (brk(KERNEL_HEAP_START) != 0) {
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return GB_FAILED;
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}
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struct mem_blk* p_blk = sbrk(0);
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@@ -163,29 +174,41 @@ void k_free(void* ptr)
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// TODO: fusion free blocks nearby
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}
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-static inline page_t phys_addr_to_page(phys_ptr_t ptr)
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-{
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- return ptr >> 12;
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-}
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-
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-static inline pd_i_t page_to_pd_i(page_t p)
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+void* p_ptr_to_v_ptr(phys_ptr_t p_ptr)
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{
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- return p >> 10;
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+ if (p_ptr <= 0x30000000) {
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+ // memory below 768MiB is identically mapped
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+ return (void*)p_ptr;
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+ } else {
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+ // TODO: address translation
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+ MAKE_BREAK_POINT();
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+ return (void*)0xffffffff;
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+ }
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}
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-static inline pt_i_t page_to_pt_i(page_t p)
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+phys_ptr_t l_ptr_to_p_ptr(struct mm* mm, linr_ptr_t v_ptr)
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{
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- return p & (1024-1);
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-}
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+ if (mm == kernel_mm_head && v_ptr < (linr_ptr_t)KERNEL_IDENTICALLY_MAPPED_AREA_LIMIT) {
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+ return (phys_ptr_t)v_ptr;
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+ }
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+ while (mm != NULL) {
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+ if (v_ptr < mm->start || v_ptr >= mm->start + mm->len * 4096) {
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+ goto next;
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+ }
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+ size_t offset = (size_t)(v_ptr - mm->start);
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+ LIST_LIKE_AT(struct page, mm->pgs, offset / PAGE_SIZE, result);
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+ return page_to_phys_addr(result->phys_page_id) + (offset % 4096);
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+ next:
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+ mm = mm->next;
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+ }
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-static inline phys_ptr_t page_to_phys_addr(page_t p)
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-{
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- return p << 12;
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+ // TODO: handle error
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+ return 0xffffffff;
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}
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-static inline pd_i_t phys_addr_to_pd_i(phys_ptr_t ptr)
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+phys_ptr_t v_ptr_to_p_ptr(void* v_ptr)
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{
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- return page_to_pd_i(phys_addr_to_page(ptr));
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+ return l_ptr_to_p_ptr(kernel_mm_head, (linr_ptr_t)v_ptr);
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}
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static inline void mark_page(page_t n)
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@@ -200,18 +223,20 @@ static inline void free_page(page_t n)
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static void mark_addr_len(phys_ptr_t start, size_t n)
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{
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- if (n == 0) return;
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+ if (n == 0)
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+ return;
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page_t start_page = phys_addr_to_page(start);
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- page_t end_page = phys_addr_to_page(start + n + 4095);
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+ page_t end_page = phys_addr_to_page(start + n + 4095);
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for (page_t i = start_page; i < end_page; ++i)
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mark_page(i);
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}
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static void free_addr_len(phys_ptr_t start, size_t n)
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{
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- if (n == 0) return;
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+ if (n == 0)
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+ return;
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page_t start_page = phys_addr_to_page(start);
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- page_t end_page = phys_addr_to_page(start + n + 4095);
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+ page_t end_page = phys_addr_to_page(start + n + 4095);
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for (page_t i = start_page; i < end_page; ++i)
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free_page(i);
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}
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@@ -226,7 +251,7 @@ static inline void free_addr_range(phys_ptr_t start, phys_ptr_t end)
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free_addr_len(start, end - start);
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}
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-static int alloc_page(void)
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+page_t alloc_raw_page(void)
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{
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for (page_t i = 0; i < 1024 * 1024; ++i) {
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if (bm_test(mem_bitmap, i) == 0) {
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@@ -237,188 +262,30 @@ static int alloc_page(void)
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return GB_FAILED;
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}
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-// allocate ONE whole page
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-static phys_ptr_t _k_p_malloc(void)
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-{
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- return page_to_phys_addr(alloc_page());
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-}
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-
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-static void _k_p_free(phys_ptr_t ptr)
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-{
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- free_page(phys_addr_to_page(ptr));
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-}
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-
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-static inline void create_pd(page_directory_entry* pde)
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+struct page* allocate_page(void)
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{
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- for (int i = 0; i < 1024; ++i)
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- {
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- pde->v = 0;
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- ++pde;
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- }
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+ // TODO: allocate memory on identically mapped area
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+ struct page* p = (struct page*)k_malloc(sizeof(struct page));
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+ memset(p, 0x00, sizeof(struct page));
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+ p->phys_page_id = alloc_raw_page();
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+ p->ref_count = (size_t*)k_malloc(sizeof(size_t));
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+ return p;
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}
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-static page_directory_entry* _kernel_pd = KERNEL_PAGE_DIRECTORY_ADDR;
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-
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-// map n pages from p_ptr to v_ptr
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-// p_ptr and v_ptr needs to be 4kb-aligned
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-static int p_map(
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- page_directory_entry* pd,
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- phys_ptr_t p_ptr,
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- virt_ptr_t v_ptr,
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- size_t n,
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- int rw,
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- int priv);
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-
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-// map n pages
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-static inline int p_n_map(
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- page_directory_entry* pd,
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- phys_ptr_t p_ptr,
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- virt_ptr_t v_ptr,
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- size_t n,
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- int rw,
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- int priv);
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-
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-// map n bytes identically
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-static inline int _p_ident_n_map(
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- page_directory_entry* pd,
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- phys_ptr_t p_ptr,
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- size_t n,
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- int rw,
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- int priv);
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-
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-static inline void make_page_table(page_directory_entry* pd, page_t p)
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+static inline void make_page_table(page_table_entry* pt)
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{
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- phys_ptr_t pp_pt = page_to_phys_addr(p);
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-
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- page_table_entry* pt = (page_table_entry*)pp_pt;
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-
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memset(pt, 0x00, sizeof(page_table_entry) * 1024);
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-
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- _p_ident_n_map(
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- pd,
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- pp_pt,
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- sizeof(page_table_entry) * 1024, 1, 1
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- );
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-}
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-
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-// map n pages from p_ptr to v_ptr
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-// p_ptr and v_ptr needs to be 4kb-aligned
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-static int p_map(
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- page_directory_entry* pd,
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- phys_ptr_t p_ptr,
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- virt_ptr_t v_ptr,
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- size_t n,
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- int rw,
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- int priv)
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-{
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- // pages to be mapped
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- page_t v_page_start = phys_addr_to_page(v_ptr);
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- page_t v_page_end = v_page_start + n;
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-
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- for (pd_i_t pde_index = page_to_pd_i(v_page_start); pde_index <= page_to_pd_i(v_page_end); ++pde_index)
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- {
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- // page table not present
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- if (pd[pde_index].in.p != 1)
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- {
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- pd[pde_index].in.p = 1;
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- pd[pde_index].in.a = 0;
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- pd[pde_index].in.rw = 1;
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- page_t p_page = alloc_page();
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- pd[pde_index].in.addr = p_page;
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- make_page_table(pd, p_page);
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- }
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- }
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-
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- for (size_t i = 0; i < n; ++i)
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- {
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- page_t v_page = v_page_start + i;
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- pd_i_t pd_i = page_to_pd_i(v_page);
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- page_table_entry* pt = (page_table_entry*) page_to_phys_addr(pd[pd_i].in.addr);
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- pt += page_to_pt_i(v_page);
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-
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- if (pt->in.p == 1)
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- {
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- errno = EEXIST;
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- return GB_FAILED;
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- }
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- pt->in.p = 1;
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- pt->in.rw = (rw == 1);
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- pt->in.us = !(priv == 1);
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- pt->in.a = 0;
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- pt->in.d = 0;
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-
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- pt->in.addr = phys_addr_to_page(p_ptr) + i;
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- }
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-
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- return GB_OK;
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}
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-// map n pages
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-static inline int p_n_map(
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- page_directory_entry* pd,
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- phys_ptr_t p_ptr,
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- virt_ptr_t v_ptr,
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- size_t n,
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- int rw,
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- int priv)
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-{
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- return p_map(
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- pd,
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- p_ptr,
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- v_ptr,
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- (n + 4096 - 1) >> 12,
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- rw,
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- priv
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- );
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-}
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-
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-// map n bytes identically
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-static inline int _p_ident_n_map(
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- page_directory_entry* pd,
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- phys_ptr_t p_ptr,
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- size_t n,
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- int rw,
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- int priv)
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-{
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- return p_n_map(
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- pd,
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- p_ptr,
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- p_ptr,
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- n,
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- rw,
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- priv
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- );
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-}
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-
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-static inline int _create_kernel_pd(void)
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-{
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- create_pd(_kernel_pd);
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-
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- int result = 0;
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-
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- result |= _p_ident_n_map(_kernel_pd,
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- (phys_ptr_t)KERNEL_PAGE_DIRECTORY_ADDR,
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- sizeof(page_directory_entry) * 1024, 1, 1);
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- result |= _p_ident_n_map(_kernel_pd,
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- (0x00080000),
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- (0xfffff - 0x80000 + 1), 1, 1);
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- result |= _p_ident_n_map(_kernel_pd,
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- KERNEL_START_ADDR,
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- kernel_size, 1, 1);
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- result |= _p_ident_n_map(_kernel_pd,
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- KERNEL_EARLY_STACK_ADDR - KERNEL_EARLY_STACK_SIZE,
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- KERNEL_EARLY_STACK_SIZE, 1, 1);
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-
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- return result;
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-}
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-
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-static void init_mem_layout(void)
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+static inline void init_mem_layout(void)
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{
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mem_size = 1024 * mem_size_info.n_1k_blks;
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mem_size += 64 * 1024 * mem_size_info.n_64k_blks;
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// mark kernel page directory
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- mark_addr_range(0x00000000, 0x00001000);
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+ mark_addr_range(0x00000000, 0x00005000);
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+ // mark empty page
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+ mark_addr_range(EMPTY_PAGE_ADDR, EMPTY_PAGE_END);
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// mark EBDA and upper memory as allocated
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mark_addr_range(0x80000, 0xfffff);
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// mark kernel
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@@ -427,86 +294,252 @@ static void init_mem_layout(void)
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if (e820_mem_map_entry_size == 20) {
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struct e820_mem_map_entry_20* entry = (struct e820_mem_map_entry_20*)e820_mem_map;
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for (uint32_t i = 0; i < e820_mem_map_count; ++i, ++entry) {
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- if (entry->type != 1)
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- {
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+ if (entry->type != 1) {
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mark_addr_len(entry->base, entry->len);
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}
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}
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} else {
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struct e820_mem_map_entry_24* entry = (struct e820_mem_map_entry_24*)e820_mem_map;
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for (uint32_t i = 0; i < e820_mem_map_count; ++i, ++entry) {
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- if (entry->in.type != 1)
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- {
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+ if (entry->in.type != 1) {
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mark_addr_len(entry->in.base, entry->in.len);
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}
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}
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}
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}
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-void init_paging(void)
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+int is_l_ptr_valid(struct mm* mm_area, linr_ptr_t l_ptr)
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{
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- init_mem_layout();
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+ while (mm_area != NULL) {
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+ if (l_ptr >= mm_area->start && l_ptr < mm_area->start + mm_area->len * PAGE_SIZE) {
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+ return GB_OK;
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+ }
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+ mm_area = mm_area->next;
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+ }
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+ return GB_FAILED;
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+}
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- if (_create_kernel_pd() != GB_OK) {
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- asm_cli();
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- asm_hlt();
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+struct page* find_page_by_l_ptr(struct mm* mm, linr_ptr_t l_ptr)
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+{
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+ if (mm == kernel_mm_head && l_ptr < (linr_ptr_t)KERNEL_IDENTICALLY_MAPPED_AREA_LIMIT) {
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+ // TODO: make mm for identically mapped area
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+ MAKE_BREAK_POINT();
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+ return (struct page*)0xffffffff;
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+ }
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+ while (mm != NULL) {
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+ if (l_ptr >= mm->start && l_ptr < mm->start + mm->len * 4096) {
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+ size_t offset = (size_t)(l_ptr - mm->start);
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+ LIST_LIKE_AT(struct page, mm->pgs, offset / PAGE_SIZE, result);
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+ return result;
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+ }
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+ mm = mm->next;
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}
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- asm_enable_paging(_kernel_pd);
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+
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+ // TODO: error handling
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+ return NULL;
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}
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-static inline void
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-set_segment_descriptor(
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- segment_descriptor* sd,
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- uint32_t base,
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- uint32_t limit,
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- uint8_t access,
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- uint8_t flags)
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+void map_raw_page_to_pte(
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|
+ page_table_entry* pte,
|
|
|
+ page_t page,
|
|
|
+ int rw,
|
|
|
+ int priv)
|
|
|
{
|
|
|
- sd->access = access;
|
|
|
- sd->flags = flags;
|
|
|
- sd->base_low = base;
|
|
|
- sd->base_mid = base >> 16;
|
|
|
- sd->base_high = base >> 24;
|
|
|
- sd->limit_low = limit;
|
|
|
- sd->limit_high = limit >> 16;
|
|
|
+ // set P bit
|
|
|
+ pte->v = 0x00000001;
|
|
|
+ pte->in.rw = (rw == 1);
|
|
|
+ pte->in.us = (priv == 1);
|
|
|
+ pte->in.page = page;
|
|
|
}
|
|
|
|
|
|
-void init_gdt_with_tss(void* kernel_esp, uint16_t kernel_ss)
|
|
|
+static void _map_raw_page_to_addr(
|
|
|
+ struct mm* mm_area,
|
|
|
+ page_t page,
|
|
|
+ int rw,
|
|
|
+ int priv)
|
|
|
{
|
|
|
- // TODO: fix this
|
|
|
- return;
|
|
|
- gdt = k_malloc(sizeof(segment_descriptor) * 6);
|
|
|
- // since the size in the struct is an OFFSET
|
|
|
- // it needs to be added one to get its real size
|
|
|
- uint16_t asm_gdt_size = (asm_gdt_descriptor.size + 1) / 8;
|
|
|
- segment_descriptor* asm_gdt = (segment_descriptor*)asm_gdt_descriptor.address;
|
|
|
-
|
|
|
- for (int i = 0; i < asm_gdt_size; ++i) {
|
|
|
- gdt[i] = asm_gdt[i];
|
|
|
+ linr_ptr_t addr = (linr_ptr_t)mm_area->start + mm_area->len * 4096;
|
|
|
+ page_directory_entry* pde = mm_area->pd + linr_addr_to_pd_i(addr);
|
|
|
+ // page table not exist
|
|
|
+ if (!pde->in.p) {
|
|
|
+ // allocate a page for the page table
|
|
|
+ pde->in.p = 1;
|
|
|
+ pde->in.rw = 1;
|
|
|
+ pde->in.us = 0;
|
|
|
+ pde->in.pt_page = alloc_raw_page();
|
|
|
+
|
|
|
+ make_page_table((page_table_entry*)p_ptr_to_v_ptr(page_to_phys_addr(pde->in.pt_page)));
|
|
|
}
|
|
|
|
|
|
- set_segment_descriptor(gdt + 5, (uint32_t)&_tss, sizeof(struct tss32_t), SD_TYPE_TSS, 0b0000);
|
|
|
+ // map the page in the page table
|
|
|
+ page_table_entry* pte = (page_table_entry*)p_ptr_to_v_ptr(page_to_phys_addr(pde->in.pt_page));
|
|
|
+ pte += linr_addr_to_pt_i(addr);
|
|
|
+ map_raw_page_to_pte(pte, page, rw, priv);
|
|
|
+}
|
|
|
+
|
|
|
+// map page to the end of mm_area in pd
|
|
|
+int k_map(
|
|
|
+ struct mm* mm_area,
|
|
|
+ struct page* page,
|
|
|
+ int read,
|
|
|
+ int write,
|
|
|
+ int priv,
|
|
|
+ int cow)
|
|
|
+{
|
|
|
+ struct page* p_page_end = mm_area->pgs;
|
|
|
+ while (p_page_end != NULL && p_page_end->next != NULL)
|
|
|
+ p_page_end = p_page_end->next;
|
|
|
+
|
|
|
+ if (cow) {
|
|
|
+ // find its ancestor
|
|
|
+ while (page->attr.cow)
|
|
|
+ page = page->next;
|
|
|
+
|
|
|
+ // create a new page node
|
|
|
+ struct page* new_page = k_malloc(sizeof(struct page));
|
|
|
+
|
|
|
+ new_page->attr.read = (read == 1);
|
|
|
+ new_page->attr.write = (write == 1);
|
|
|
+ new_page->attr.system = (priv == 1);
|
|
|
+ new_page->attr.cow = 1;
|
|
|
+ // TODO: move *next out of struct page
|
|
|
+ new_page->next = NULL;
|
|
|
+
|
|
|
+ new_page->phys_page_id = page->phys_page_id;
|
|
|
+ new_page->ref_count = page->ref_count;
|
|
|
+
|
|
|
+ if (p_page_end != NULL)
|
|
|
+ p_page_end->next = new_page;
|
|
|
+ else
|
|
|
+ mm_area->pgs = new_page;
|
|
|
+ } else {
|
|
|
+ page->attr.read = (read == 1);
|
|
|
+ page->attr.write = (write == 1);
|
|
|
+ page->attr.system = (priv == 1);
|
|
|
+ page->attr.cow = 0;
|
|
|
+ // TODO: move *next out of struct page
|
|
|
+ page->next = NULL;
|
|
|
+
|
|
|
+ if (p_page_end != NULL)
|
|
|
+ p_page_end->next = page;
|
|
|
+ else
|
|
|
+ mm_area->pgs = page;
|
|
|
+ }
|
|
|
+ _map_raw_page_to_addr(
|
|
|
+ mm_area,
|
|
|
+ page->phys_page_id,
|
|
|
+ (write && !cow),
|
|
|
+ priv);
|
|
|
+
|
|
|
+ ++mm_area->len;
|
|
|
+ ++*page->ref_count;
|
|
|
+ return GB_OK;
|
|
|
+}
|
|
|
|
|
|
- _tss.esp0 = (uint32_t)kernel_esp;
|
|
|
- _tss.ss0 = kernel_ss;
|
|
|
+// map a page identically
|
|
|
+// this function is only meant to be used in the initialization process
|
|
|
+// it checks the pde's P bit so you need to make sure it's already set
|
|
|
+// to avoid dead loops
|
|
|
+static inline void _init_map_page_identically(page_t page)
|
|
|
+{
|
|
|
+ page_directory_entry* pde = KERNEL_PAGE_DIRECTORY_ADDR + page_to_pd_i(page);
|
|
|
+ // page table not exist
|
|
|
+ if (!pde->in.p) {
|
|
|
+ // allocate a page for the page table
|
|
|
+ // set the P bit of the pde in advance
|
|
|
+ pde->in.p = 1;
|
|
|
+ pde->in.rw = 1;
|
|
|
+ pde->in.us = 0;
|
|
|
+ pde->in.pt_page = alloc_raw_page();
|
|
|
+ _init_map_page_identically(pde->in.pt_page);
|
|
|
+
|
|
|
+ make_page_table((page_table_entry*)p_ptr_to_v_ptr(page_to_phys_addr(pde->in.pt_page)));
|
|
|
+ }
|
|
|
|
|
|
- // +1 for enabling interrupt
|
|
|
- asm_load_gdt(((6 * sizeof(segment_descriptor) - 1) << 16) + 1, (uint32_t)gdt);
|
|
|
- asm_load_tr((6 - 1) * 8);
|
|
|
+ // map the page in the page table
|
|
|
+ page_table_entry* pt = (page_table_entry*)p_ptr_to_v_ptr(page_to_phys_addr(pde->in.pt_page));
|
|
|
+ pt += page_to_pt_i(page);
|
|
|
+ pt->v = 0x00000003;
|
|
|
+ pt->in.page = page;
|
|
|
+}
|
|
|
+
|
|
|
+static inline void init_paging_map_low_mem_identically(void)
|
|
|
+{
|
|
|
+ for (phys_ptr_t addr = 0x01000000; addr < 0x30000000; addr += 0x1000) {
|
|
|
+ // check if the address is valid and not mapped
|
|
|
+ if (bm_test(mem_bitmap, phys_addr_to_page(addr)))
|
|
|
+ continue;
|
|
|
+ _init_map_page_identically(phys_addr_to_page(addr));
|
|
|
+ }
|
|
|
+}
|
|
|
+
|
|
|
+static struct page empty_page;
|
|
|
+static struct page heap_first_page;
|
|
|
+static size_t heap_first_page_ref_count;
|
|
|
+
|
|
|
+void init_mem(void)
|
|
|
+{
|
|
|
+ init_mem_layout();
|
|
|
+
|
|
|
+ // map the 16MiB-768MiB identically
|
|
|
+ init_paging_map_low_mem_identically();
|
|
|
+
|
|
|
+ kernel_mm_head = &kernel_mm;
|
|
|
+
|
|
|
+ kernel_mm.attr.read = 1;
|
|
|
+ kernel_mm.attr.write = 1;
|
|
|
+ kernel_mm.attr.system = 1;
|
|
|
+ kernel_mm.len = 0;
|
|
|
+ kernel_mm.next = NULL;
|
|
|
+ kernel_mm.pd = KERNEL_PAGE_DIRECTORY_ADDR;
|
|
|
+ kernel_mm.pgs = NULL;
|
|
|
+ kernel_mm.start = (linr_ptr_t)KERNEL_HEAP_START;
|
|
|
+
|
|
|
+ heap_first_page.attr.cow = 0;
|
|
|
+ heap_first_page.attr.read = 1;
|
|
|
+ heap_first_page.attr.write = 1;
|
|
|
+ heap_first_page.attr.system = 1;
|
|
|
+ heap_first_page.next = NULL;
|
|
|
+ heap_first_page.phys_page_id = alloc_raw_page();
|
|
|
+ heap_first_page.ref_count = &heap_first_page_ref_count;
|
|
|
+
|
|
|
+ *heap_first_page.ref_count = 0;
|
|
|
+
|
|
|
+ k_map(kernel_mm_head, &heap_first_page, 1, 1, 1, 0);
|
|
|
+
|
|
|
+ init_heap();
|
|
|
+
|
|
|
+ // create empty_page struct
|
|
|
+ empty_page.attr.cow = 0;
|
|
|
+ empty_page.attr.read = 1;
|
|
|
+ empty_page.attr.write = 0;
|
|
|
+ empty_page.attr.system = 0;
|
|
|
+ empty_page.next = NULL;
|
|
|
+ empty_page.phys_page_id = phys_addr_to_page(EMPTY_PAGE_ADDR);
|
|
|
+ empty_page.ref_count = (size_t*)k_malloc(sizeof(size_t));
|
|
|
+ *empty_page.ref_count = 1;
|
|
|
+
|
|
|
+ // TODO: improve the algorithm SO FREAKING SLOW
|
|
|
+ // while (kernel_mm_head->len < 256 * 1024 * 1024 / PAGE_SIZE) {
|
|
|
+ while (kernel_mm_head->len < 16 * 1024 * 1024 / PAGE_SIZE) {
|
|
|
+ k_map(
|
|
|
+ kernel_mm_head, &empty_page,
|
|
|
+ 1, 1, 1, 1);
|
|
|
+ }
|
|
|
}
|
|
|
|
|
|
void create_segment_descriptor(
|
|
|
- segment_descriptor* sd,
|
|
|
- uint32_t base,
|
|
|
- uint32_t limit,
|
|
|
- uint32_t flags,
|
|
|
- uint32_t access)
|
|
|
+ segment_descriptor* sd,
|
|
|
+ uint32_t base,
|
|
|
+ uint32_t limit,
|
|
|
+ uint32_t flags,
|
|
|
+ uint32_t access)
|
|
|
{
|
|
|
- sd->base_low = base & 0x0000ffff;
|
|
|
- sd->base_mid = ((base & 0x00ff0000) >> 16);
|
|
|
- sd->base_high = ((base & 0xff000000) >> 24);
|
|
|
- sd->limit_low = limit & 0x0000ffff;
|
|
|
+ sd->base_low = base & 0x0000ffff;
|
|
|
+ sd->base_mid = ((base & 0x00ff0000) >> 16);
|
|
|
+ sd->base_high = ((base & 0xff000000) >> 24);
|
|
|
+ sd->limit_low = limit & 0x0000ffff;
|
|
|
sd->limit_high = ((limit & 0x000f0000) >> 16);
|
|
|
- sd->access = access;
|
|
|
- sd->flags = flags;
|
|
|
+ sd->access = access;
|
|
|
+ sd->flags = flags;
|
|
|
}
|