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@@ -2,28 +2,237 @@
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#include "../common/printk.h"
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ul Total_Memory = 0;
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+ul total_2M_pages = 0;
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+
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void mm_init()
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{
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+ printk("[ INFO ] Initializing memory management unit...\n");
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// 实模式下获取到的信息的起始地址,转换为ARDS指针
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struct ARDS *ards_ptr = (struct ARDS *)0xffff800000007e00;
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for (int i = 0; i < 32; ++i)
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{
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- printk("Addr = %#10lx,%8lx\tLength = %#10lx,%8lx\tType = %#10lx\n",
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- ards_ptr->BaseAddrH, ards_ptr->BaseAddrL, ards_ptr->LengthH, ards_ptr->LengthL, ards_ptr->type);
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+ //printk("Addr = %#18lx\tLength = %#18lx\tType = %#10lx\n",
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+ // ards_ptr->BaseAddr, ards_ptr->Length, ards_ptr->type);
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//可用的内存
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if (ards_ptr->type == 1)
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- {
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- Total_Memory += ards_ptr->LengthL;
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- Total_Memory += ((ul)(ards_ptr->LengthH)) << 32;
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- }
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+ Total_Memory += ards_ptr->Length;
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+
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+ // 保存信息到mms
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+ memory_management_struct.e820[i].BaseAddr = ards_ptr->BaseAddr;
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+ memory_management_struct.e820[i].Length = ards_ptr->Length;
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+ memory_management_struct.e820[i].type = ards_ptr->type;
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+ memory_management_struct.len_e820 = i;
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++ards_ptr;
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// 脏数据
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- if (ards_ptr->type > 4)
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+ if (ards_ptr->type > 4 || ards_ptr->Length == 0 || ards_ptr->type < 1)
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break;
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}
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- printk_color(ORANGE, BLACK, "Total amount of RAM DragonOS can use: %ld bytes\n", Total_Memory);
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+ printk("[ INFO ] Total amounts of RAM : %ld bytes\n", Total_Memory);
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+
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+ // 计算有效内存页数
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+
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+ for (int i = 0; i < memory_management_struct.len_e820; ++i)
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+ {
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+ if (memory_management_struct.e820[i].type != 1)
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+ continue;
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+
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+ // 将内存段的起始物理地址按照2M进行对齐
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+ ul addr_start = PAGE_2M_ALIGN(memory_management_struct.e820[i].BaseAddr);
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+ // 将内存段的终止物理地址的低2M区域清空,以实现对齐
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+ ul addr_end = ((memory_management_struct.e820[i].BaseAddr + memory_management_struct.e820[i].Length) & PAGE_2M_MASK);
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+
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+ // 内存段不可用
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+ if (addr_end <= addr_start)
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+ continue;
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+
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+ total_2M_pages += ((addr_end - addr_start) >> PAGE_2M_SHIFT);
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+ }
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+ printk("[ INFO ] Total amounts of 2M pages : %ld.\n", total_2M_pages);
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+
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+ // 设置内核程序不同部分的起止地址
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+ memory_management_struct.kernel_code_start = (ul)&_text;
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+ memory_management_struct.kernel_code_end = (ul)&_etext;
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+ memory_management_struct.kernel_data_end = (ul)&_edata;
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+ memory_management_struct.kernel_end = (ul)&_end;
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+
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+ // 物理地址空间的最大地址(包含了物理内存、内存空洞、ROM等)
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+ ul max_addr = memory_management_struct.e820[memory_management_struct.len_e820].BaseAddr + memory_management_struct.e820[memory_management_struct.len_e820].Length;
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+ // 初始化mms的bitmap
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+ // bmp的指针指向截止位置的4k对齐的上边界(防止修改了别的数据)
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+ memory_management_struct.bmp = (unsigned long *)((memory_management_struct.kernel_end + PAGE_4K_SIZE - 1) & PAGE_4K_MASK);
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+ memory_management_struct.bits_size = max_addr >> PAGE_2M_SHIFT; // 物理地址空间的最大页面数
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+ memory_management_struct.bmp_len = ((unsigned long)((max_addr >> PAGE_2M_SHIFT) + sizeof(unsigned long) * 8 - 1) / 8) & (~(sizeof(unsigned long) - 1)); // bmp由多少个unsigned long变量组成
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+
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+
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+ // 初始化bitmap, 先将整个bmp空间全部置位。稍后再将可用物理内存页复位。
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+ memset(memory_management_struct.bmp, 0xff, memory_management_struct.bmp_len);
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+
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+ // 初始化内存页结构
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+ // 将页结构映射于bmp之后
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+
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+ memory_management_struct.pages_struct = (struct Page *)(((unsigned long)memory_management_struct.bmp + memory_management_struct.bmp_len + PAGE_4K_SIZE - 1) & PAGE_4K_MASK);
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+
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+ memory_management_struct.count_pages = max_addr >> PAGE_2M_SHIFT;
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+ memory_management_struct.pages_struct_len = ((max_addr >> PAGE_2M_SHIFT) * sizeof(struct Page) + sizeof(long) - 1) & (~(sizeof(long) - 1));
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+ // 将pages_struct全部清空,以备后续初始化
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+ memset(memory_management_struct.pages_struct, 0x00, memory_management_struct.pages_struct_len); //init pages memory
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+
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+ // 初始化内存区域
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+ memory_management_struct.zones_struct = (struct Zone *)(((ul)memory_management_struct.pages_struct + memory_management_struct.pages_struct_len + PAGE_4K_SIZE - 1) & PAGE_4K_MASK);
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+ // 由于暂时无法计算zone结构体的数量,因此先将其设为0
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+ memory_management_struct.count_zones = 0;
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+ // zones-struct 成员变量暂时按照5个来计算
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+ memory_management_struct.zones_struct_len = (5 * sizeof(struct Zone) + sizeof(ul) - 1) & (~(sizeof(ul) - 1));
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+ memset(memory_management_struct.zones_struct, 0x00, memory_management_struct.zones_struct_len);
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+
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+ // ==== 遍历e820数组,完成成员变量初始化工作 ===
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+
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+ for (int i = 0; i < memory_management_struct.len_e820; ++i)
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+ {
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+ if (memory_management_struct.e820[i].type != 1) // 不是操作系统可以使用的物理内存
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+ continue;
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+ ul addr_start = PAGE_2M_ALIGN(memory_management_struct.e820[i].BaseAddr);
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+ ul addr_end = (memory_management_struct.e820[i].BaseAddr + memory_management_struct.e820[i].Length) & PAGE_2M_MASK;
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+
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+ if (addr_end <= addr_start)
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+ continue;
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+
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+ // zone init
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+ struct Zone *z = memory_management_struct.zones_struct + memory_management_struct.count_zones;
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+ ++memory_management_struct.count_zones;
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+
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+ z->zone_addr_start = addr_start;
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+ z->zone_addr_end = addr_end;
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+ z->zone_length = addr_end - addr_start;
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+
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+ z->count_pages_using = 0;
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+ z->count_pages_free = (addr_end - addr_start) >> PAGE_2M_SHIFT;
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+ z->total_pages_link = 0;
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+
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+ z->attr = 0;
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+ z->gmd_struct = &memory_management_struct;
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+
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+ z->count_pages = (addr_end - addr_start) >> PAGE_2M_SHIFT;
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+ z->pages_group = (struct Page *)(memory_management_struct.pages_struct + (addr_start >> PAGE_2M_SHIFT));
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+
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+ // 初始化页
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+ struct Page *p = z->pages_group;
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+
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+ for (int j = 0; j < z->count_pages; ++j, ++p)
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+ {
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+ p->zone = z;
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+ p->addr_phys = addr_start + PAGE_2M_SIZE * j;
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+ p->attr = 0;
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+
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+ p->ref_counts = 0;
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+ p->age = 0;
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+
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+ // 将bmp中对应的位 复位
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+ *(memory_management_struct.bmp + ((p->addr_phys >> PAGE_2M_SHIFT) >> 6)) ^= (1UL << ((p->addr_phys >> PAGE_2M_SHIFT) % 64));
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+ }
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+ }
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+
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+ // 初始化0~2MB的物理页
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+ // 由于这个区间的内存由多个内存段组成,因此不会被以上代码初始化,需要我们手动配置page[0]。
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+
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+ memory_management_struct.pages_struct->zone = memory_management_struct.zones_struct;
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+ memory_management_struct.pages_struct->addr_phys = 0UL;
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+ memory_management_struct.pages_struct->attr = 0;
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+ memory_management_struct.pages_struct->ref_counts = 0;
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+ memory_management_struct.pages_struct->age = 0;
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+
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+ // 计算zone结构体的总长度(按照64位对齐)
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+ memory_management_struct.zones_struct_len = (memory_management_struct.count_zones * sizeof(struct Zone) + sizeof(ul) - 1) & (~(sizeof(ul) - 1));
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+
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+ printk_color(ORANGE, BLACK, "bmp:%#18lx, bmp_len:%#18lx, bits_size:%#18lx\n", memory_management_struct.bmp, memory_management_struct.bmp_len, memory_management_struct.bits_size);
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+
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+ printk_color(ORANGE, BLACK, "pages_struct:%#18lx, count_pages:%#18lx, pages_struct_len:%#18lx\n", memory_management_struct.pages_struct, memory_management_struct.count_pages, memory_management_struct.pages_struct_len);
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+
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+ printk_color(ORANGE, BLACK, "zones_struct:%#18lx, count_zones:%#18lx, zones_struct_len:%#18lx\n", memory_management_struct.zones_struct, memory_management_struct.count_zones, memory_management_struct.zones_struct_len);
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+
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+ ZONE_DMA_INDEX = 0; //need rewrite in the future
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+ ZONE_NORMAL_INDEX = 0; //need rewrite in the future
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+
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+ for (int i = 0; i < memory_management_struct.count_zones; ++i) //need rewrite in the future
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+ {
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+ struct Zone *z = memory_management_struct.zones_struct + i;
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+ printk_color(ORANGE, BLACK, "zone_addr_start:%#18lx, zone_addr_end:%#18lx, zone_length:%#18lx, pages_group:%#18lx, count_pages:%#18lx\n",
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+ z->zone_addr_start, z->zone_addr_end, z->zone_length, z->pages_group, z->count_pages);
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+
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+ // 1GB以上的内存空间不做映射
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+ if (z->zone_addr_start == 0x100000000)
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+ ZONE_UNMAPED_INDEX = i;
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+ }
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+ // 设置内存页管理结构的地址,预留了一段空间,防止内存越界。
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+ memory_management_struct.end_of_struct = (ul)((ul)memory_management_struct.zones_struct + memory_management_struct.zones_struct_len + sizeof(long) * 32) & (~(sizeof(long) - 1));
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+
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+ printk_color(ORANGE, BLACK, "code_start:%#18lx, code_end:%#18lx, data_end:%#18lx, kernel_end:%#18lx, end_of_struct:%#18lx\n",
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+ memory_management_struct.kernel_code_start, memory_management_struct.kernel_code_end, memory_management_struct.kernel_data_end, memory_management_struct.kernel_end, memory_management_struct.end_of_struct);
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+
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+ // 初始化内存管理单元结构所占的物理页的结构体
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+
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+ ul mms_max_page = (virt_2_phys(memory_management_struct.end_of_struct) >> PAGE_2M_SHIFT); // 内存管理单元所占据的序号最大的物理页
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+
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+ for (ul j = 0; j <= mms_max_page; ++j)
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+ {
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+ page_init(memory_management_struct.pages_struct+j, PAGE_PGT_MAPPED|PAGE_KERNEL|PAGE_KERNEL_INIT|PAGE_ACTIVE);
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+ }
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+
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+ ul* cr3 = get_CR3();
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+
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+ printk_color(INDIGO, BLACK, "cr3:\t%#018lx\n", cr3);
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+ printk_color(INDIGO, BLACK, "*cr3:\t%#018lx\n", *(phys_2_virt(cr3))&(~0xff));
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+ printk_color(INDIGO, BLACK, "**cr3:\t%#018lx\n", *phys_2_virt(*(phys_2_virt(cr3))&(~0xff))&(~0xff));
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+
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+ // 消除一致性页表映射,将页目录(PML4E)的前10项清空
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+ for(int i=0;i<10;++i)
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+ *(phys_2_virt(cr3)+i) = 0UL;
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+
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+ flush_tlb();
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+
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+ printk("[ INFO ] Memory management unit initialized.\n");
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+
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+}
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+
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+/**
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+ * @brief 初始化内存页
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+ *
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+ * @param page 内存页结构体
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+ * @param flags 标志位
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+ * 对于新页面: 初始化struct page
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+ * 对于当前页面属性/flags中含有引用属性或共享属性时,则只增加struct page和struct zone的被引用计数。否则就只是添加页表属性,并置位bmp的相应位。
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+ * @return unsigned long
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+ */
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+unsigned long page_init(struct Page *page, ul flags)
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+{
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+ // 全新的页面
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+ if (!page->attr)
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+ {
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+ // 将bmp对应的标志位置位
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+ *(memory_management_struct.bmp + ((page->addr_phys >> PAGE_2M_SHIFT) >> 6)) |= (1UL << ((page->addr_phys >> PAGE_2M_SHIFT) % 64));
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+
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+ page->attr = flags;
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+ ++(page->ref_counts);
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+ ++(page->zone->count_pages_using);
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+ --(page->zone->count_pages_free);
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+ ++(page->zone->total_pages_link);
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+ }
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+ // 不是全新的页面,而是含有引用属性/共享属性
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+ else if ((page->attr & PAGE_REFERENCED) || (page->attr & PAGE_K_SHARE_TO_U) || (flags & PAGE_REFERENCED) || (flags & PAGE_K_SHARE_TO_U))
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+ {
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+ page->attr |= flags;
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+ ++(page->ref_counts);
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+ ++(page->zone->total_pages_link);
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+ }
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+ else
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+ {
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+ // 将bmp对应的标志位置位
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+ *(memory_management_struct.bmp + ((page->addr_phys >> PAGE_2M_SHIFT) >> 6)) |= (1UL << ((page->addr_phys >> PAGE_2M_SHIFT) % 64));
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+ page->attr |= flags;
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+ }
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+ return 0;
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}
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