mirror of
https://github.com/DragonOS-Community/DragonOS.git
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将分配簇的功能单独独立成一个函数
This commit is contained in:
parent
9bf52cf2ab
commit
c4f90f4883
@ -18,7 +18,7 @@ LD_LIST := head.o
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OBJ_LIST := head.o
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kernel_subdirs := common driver process debug
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kernel_subdirs := common driver process debug filesystem
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@ -78,14 +78,6 @@ cpu.o: common/cpu.c
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softirq.o: exception/softirq.c
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gcc $(CFLAGS) -c exception/softirq.c -o exception/softirq.o
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fat32.o: filesystem/fat32/fat32.c
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gcc $(CFLAGS) -c filesystem/fat32/fat32.c -o filesystem/fat32/fat32.o
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MBR.o: filesystem/MBR.c
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gcc $(CFLAGS) -c filesystem/MBR.c -o filesystem/MBR.o
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VFS.o: filesystem/VFS/VFS.c
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gcc $(CFLAGS) -c filesystem/VFS/VFS.c -o filesystem/VFS/VFS.o
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# IPI的代码
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ifeq ($(ARCH), __x86_64__)
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@ -164,7 +156,7 @@ all: kernel
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echo "Done."
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kernel: head.o entry.o main.o printk.o trap.o mm.o slab.o irq.o pic.o sched.o syscall.o multiboot2.o cpu.o acpi.o ps2_keyboard.o ps2_mouse.o ata.o pci.o ahci.o smp.o apu_boot.o rtc.o HPET.o softirq.o timer.o fat32.o MBR.o VFS.o $(OBJ_LIST)
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kernel: head.o entry.o main.o printk.o trap.o mm.o slab.o irq.o pic.o sched.o syscall.o multiboot2.o cpu.o acpi.o ps2_keyboard.o ps2_mouse.o ata.o pci.o ahci.o smp.o apu_boot.o rtc.o HPET.o softirq.o timer.o $(OBJ_LIST)
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@list='$(kernel_subdirs)'; for subdir in $$list; do \
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echo "make all in $$subdir";\
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20
kernel/filesystem/Makefile
Normal file
20
kernel/filesystem/Makefile
Normal file
@ -0,0 +1,20 @@
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CFLAGS += -I .
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all: fat32.o MBR.o VFS.o fat_ent.o
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fat32.o: fat32/fat32.c
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gcc $(CFLAGS) -c fat32/fat32.c -o fat32/fat32.o
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MBR.o: MBR.c
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gcc $(CFLAGS) -c MBR.c -o MBR.o
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VFS.o: VFS/VFS.c
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gcc $(CFLAGS) -c VFS/VFS.c -o VFS/VFS.o
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fat_ent.o: fat32/fat_ent.c
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gcc $(CFLAGS) -c fat32/fat_ent.c -o fat32/fat_ent.o
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clean:
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echo "Done."
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@ -107,7 +107,13 @@ struct vfs_super_block_operations_t
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*/
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struct vfs_inode_operations_t
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{
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long (*create)(struct vfs_index_node_t *inode, struct vfs_dir_entry_t *dEntry, int mode);
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/**
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* @brief 创建新的文件
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* @param inode 要被创建的文件的inode结构体
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* @param parent_dEntry 父目录的dentry
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* @param mode 创建模式
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*/
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long (*create)(struct vfs_index_node_t *inode, struct vfs_dir_entry_t *parent_dEntry, int mode);
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/**
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* @brief 在文件系统中查找指定的目录项
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* @param parent_inode 父目录项(在这个目录下查找)
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@ -6,6 +6,7 @@
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#include <mm/slab.h>
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#include <common/errno.h>
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#include <common/stdio.h>
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#include "fat_ent.h"
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struct vfs_super_block_operations_t fat32_sb_ops;
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struct vfs_dir_entry_operations_t fat32_dEntry_ops;
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@ -54,58 +55,6 @@ static uint8_t fat32_ChkSum(uint8_t *name)
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}
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return chksum;
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}
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/**
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* @brief 读取指定簇的FAT表项
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*
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* @param fsbi fat32超级块私有信息结构体
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* @param cluster 指定簇
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* @return uint32_t 下一个簇的簇号
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*/
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uint32_t fat32_read_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster)
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{
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// 计算每个扇区内含有的FAT表项数
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// FAT每项4bytes
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uint32_t fat_ent_per_sec = (fsbi->bytes_per_sec >> 2); // 该值应为2的n次幂
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uint32_t buf[256];
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memset(buf, 0, fsbi->bytes_per_sec);
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// 读取一个sector的数据,
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ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
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(uint64_t)&buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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// 返回下一个fat表项的值(也就是下一个cluster)
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return buf[cluster & (fat_ent_per_sec - 1)] & 0x0fffffff;
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}
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/**
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* @brief 写入指定簇的FAT表项
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*
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* @param fsbi fat32超级块私有信息结构体
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* @param cluster 指定簇
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* @param value 要写入该fat表项的值
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* @return uint32_t errcode
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*/
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uint32_t fat32_write_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster, uint32_t value)
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{
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// 计算每个扇区内含有的FAT表项数
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// FAT每项4bytes
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uint32_t fat_ent_per_sec = (fsbi->bytes_per_sec >> 2); // 该值应为2的n次幂
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uint32_t *buf = kmalloc(fsbi->bytes_per_sec, 0);
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memset(buf, 0, fsbi->bytes_per_sec);
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ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
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(uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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buf[cluster & (fat_ent_per_sec - 1)] = (buf[cluster & (fat_ent_per_sec - 1)] & 0xf0000000) | (value & 0x0fffffff);
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// 向FAT1和FAT2写入数据
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ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
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(uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, fsbi->FAT2_base_sector + (cluster / fat_ent_per_sec), 1,
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(uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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kfree(buf);
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return 0;
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}
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/**
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* @brief 在父目录中寻找指定的目录项
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@ -671,32 +620,32 @@ long fat32_read(struct vfs_file_t *file_ptr, char *buf, int64_t count, long *pos
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* @param fsbi fat32超级块信息结构体
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* @return uint64_t 空闲簇号(找不到则返回0)
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*/
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uint64_t fat32_find_available_cluster(fat32_sb_info_t *fsbi)
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{
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uint64_t sec_per_fat = fsbi->sec_per_FAT;
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// uint64_t fat32_find_available_cluster(fat32_sb_info_t *fsbi)
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// {
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// uint64_t sec_per_fat = fsbi->sec_per_FAT;
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// 申请1扇区的缓冲区
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uint32_t *buf = (uint32_t *)kmalloc(fsbi->bytes_per_sec, 0);
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int ent_per_sec = (fsbi->bytes_per_sec >> 2);
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for (int i = 0; i < sec_per_fat; ++i)
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{
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memset(buf, 0, fsbi->bytes_per_sec);
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// // 申请1扇区的缓冲区
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// uint32_t *buf = (uint32_t *)kmalloc(fsbi->bytes_per_sec, 0);
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// int ent_per_sec = (fsbi->bytes_per_sec >> 2);
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// for (int i = 0; i < sec_per_fat; ++i)
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// {
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// memset(buf, 0, fsbi->bytes_per_sec);
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ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + i, 1, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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// 依次检查簇是否空闲
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for (int j = 0; j < ent_per_sec; ++j)
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{
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// 找到空闲簇
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if ((buf[j] & 0x0fffffff) == 0)
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{
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kfree(buf);
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return i * ent_per_sec + j;
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}
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}
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}
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kfree(buf);
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return 0;
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}
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// ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + i, 1, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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// // 依次检查簇是否空闲
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// for (int j = 0; j < ent_per_sec; ++j)
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// {
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// // 找到空闲簇
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// if ((buf[j] & 0x0fffffff) == 0)
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// {
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// kfree(buf);
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// return i * ent_per_sec + j;
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// }
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// }
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// }
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// kfree(buf);
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// return 0;
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// }
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/**
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* @brief 向fat32文件系统写入数据
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@ -712,7 +661,7 @@ long fat32_write(struct vfs_file_t *file_ptr, char *buf, int64_t count, long *po
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fat32_sb_info_t *fsbi = (fat32_sb_info_t *)(file_ptr->dEntry->dir_inode->sb->private_sb_info);
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// First cluster num of the file
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uint64_t cluster = finode->first_clus;
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uint32_t cluster = finode->first_clus;
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int64_t flags = 0;
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// kdebug("fsbi->bytes_per_clus=%d fsbi->sec_per_clus=%d finode->first_clus=%d *position=%d", fsbi->bytes_per_clus, fsbi->sec_per_clus, finode->first_clus, *position);
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@ -724,9 +673,13 @@ long fat32_write(struct vfs_file_t *file_ptr, char *buf, int64_t count, long *po
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if (!cluster) // 起始簇号为0,说明是空文件
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{
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// 找一个可用的簇
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cluster = fat32_find_available_cluster(fsbi);
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flags = 1;
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// // 找一个可用的簇
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// cluster = fat32_find_available_cluster(fsbi);
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// flags = 1;
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// 分配空闲簇
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if (fat32_alloc_clusters(file_ptr->dEntry->dir_inode, &cluster, 1) != 0)
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return -ENOSPC;
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}
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else
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{
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@ -739,14 +692,14 @@ long fat32_write(struct vfs_file_t *file_ptr, char *buf, int64_t count, long *po
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if (!cluster)
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return -ENOSPC;
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if (flags) // 空文件
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{
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// kdebug("empty file");
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finode->first_clus = cluster;
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// 写入目录项
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file_ptr->dEntry->dir_inode->sb->sb_ops->write_inode(file_ptr->dEntry->dir_inode);
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fat32_write_FAT_entry(fsbi, cluster, 0x0ffffff8); // 写入fat表项
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}
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// if (flags) // 空文件
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// {
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// // kdebug("empty file");
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// finode->first_clus = cluster;
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// // 写入目录项
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// file_ptr->dEntry->dir_inode->sb->sb_ops->write_inode(file_ptr->dEntry->dir_inode);
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// fat32_write_FAT_entry(fsbi, cluster, 0x0ffffff8); // 写入fat表项
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// }
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int64_t bytes_remain = count;
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@ -809,15 +762,13 @@ long fat32_write(struct vfs_file_t *file_ptr, char *buf, int64_t count, long *po
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break;
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if (next_clus >= 0x0ffffff8) // 已经到达了最后一个簇,需要分配新簇
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{
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next_clus = fat32_find_available_cluster(fsbi);
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if (!next_clus) // 没有空闲簇
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if(fat32_alloc_clusters(file_ptr->dEntry->dir_inode, &next_clus, 1) != 0)
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{
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// 没有空闲簇
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kfree(tmp_buffer);
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return -ENOSPC;
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}
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// 将簇加入到文件末尾
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fat32_write_FAT_entry(fsbi, cluster, next_clus);
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fat32_write_FAT_entry(fsbi, next_clus, 0x0ffffff8);
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cluster = next_clus; // 切换当前簇
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flags = 1; // 标记当前簇是新分配的簇
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}
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@ -896,99 +847,20 @@ struct vfs_file_operations_t fat32_file_ops =
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.readdir = fat32_readdir,
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};
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// todo: create
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long fat32_create(struct vfs_index_node_t *inode, struct vfs_dir_entry_t *dentry, int mode)
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{
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}
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/**
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* @brief 在父亲inode的目录项簇中,寻找连续num个空的目录项
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*
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* @param parent_inode 父inode
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* @param num 请求的目录项数量
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* @param mode 操作模式
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* @param res_sector 返回信息:缓冲区对应的扇区号
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* @param res_cluster 返回信息:缓冲区对应的簇号
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* @param res_data_buf_base 返回信息:缓冲区的内存基地址(记得要释放缓冲区内存)
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* @return struct fat32_Directory_t* 符合要求的entry的指针(指向地址高处的空目录项,也就是说,有连续num个≤这个指针的空目录项)
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* @brief 创建新的文件
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* @param inode 要被创建的文件的inode结构体
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* @param parent_dEntry 父目录的dentry
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* @param mode 创建模式
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*/
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struct fat32_Directory_t *fat32_find_empty_dentry(struct vfs_index_node_t *parent_inode, uint32_t num, uint32_t mode, uint32_t *res_sector, uint64_t *res_cluster, uint64_t *res_data_buf_base)
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long fat32_create(struct vfs_index_node_t *inode, struct vfs_dir_entry_t *parent_dEntry, int mode)
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{
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kdebug("find empty_dentry");
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struct fat32_inode_info_t *finode = (struct fat32_inode_info_t *)parent_inode->private_inode_info;
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fat32_sb_info_t *fsbi = (fat32_sb_info_t *)parent_inode->sb->private_sb_info;
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uint8_t *buf = kmalloc(fsbi->bytes_per_clus, 0);
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memset(buf, 0, fsbi->bytes_per_clus);
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// 计算父目录项的起始簇号
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uint32_t cluster = finode->first_clus;
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struct fat32_Directory_t *tmp_dEntry = NULL;
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// 指向最终的有用的dentry的指针
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struct fat32_Directory_t *result_dEntry = NULL;
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while (true)
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{
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// 计算父目录项的起始LBA扇区号
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uint64_t sector = fsbi->first_data_sector + (cluster - 2) * fsbi->sec_per_clus;
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// 读取父目录项的起始簇数据
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ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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tmp_dEntry = (struct fat32_Directory_t *)buf;
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// 计数连续的空目录项
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uint32_t count_continuity = 0;
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// 查找连续num个空闲目录项
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for (int i = 0; (i < fsbi->bytes_per_clus) && count_continuity < num; i += 32, ++tmp_dEntry)
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{
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if (!(tmp_dEntry->DIR_Name[0] == 0xe5 || tmp_dEntry->DIR_Name[0] == 0x00))
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{
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count_continuity = 0;
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continue;
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}
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if (count_continuity == 0)
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result_dEntry = tmp_dEntry;
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++count_continuity;
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}
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// 成功查找到符合要求的目录项
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if (count_continuity == num)
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{
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result_dEntry += (num - 1);
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*res_sector = sector;
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*res_data_buf_base = (uint64_t)buf;
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*res_cluster = cluster;
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return result_dEntry;
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}
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// 当前簇没有发现符合条件的空闲目录项,寻找下一个簇
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uint old_cluster = cluster;
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cluster = fat32_read_FAT_entry(fsbi, cluster);
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if (cluster >= 0x0ffffff7) // 寻找完父目录的所有簇,都没有找到符合要求的空目录项
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{
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// 新增一个簇
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cluster = fat32_find_available_cluster(fsbi);
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kdebug("try to allocate a new cluster to parent dentry, cluster=%d, old_cluster=%d", cluster, old_cluster);
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if (cluster == 0)
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{
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kerror("Cannot allocate a new cluster!");
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while (1)
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pause();
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}
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fat32_write_FAT_entry(fsbi, old_cluster, cluster);
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fat32_write_FAT_entry(fsbi, cluster, 0x0ffffff8);
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// 将这个新的簇清空
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sector = fsbi->first_data_sector + (cluster - 2) * fsbi->sec_per_clus;
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void *tmp_buf = kmalloc(fsbi->bytes_per_clus, 0);
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memset(tmp_buf, 0, fsbi->bytes_per_clus);
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ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)tmp_buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
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kfree(tmp_buf);
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}
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}
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// 文件系统超级块信息
|
||||
fat32_sb_info_t *fsbi = (fat32_sb_info_t *)parent_dEntry->dir_inode->sb->private_sb_info;
|
||||
// 父目录项的inode的私有信息
|
||||
struct fat32_inode_info_t *parent_inode_info = (struct fat32_inode_info_t *)parent_dEntry->dir_inode->private_inode_info;
|
||||
}
|
||||
|
||||
/**
|
||||
* @brief 创建文件夹
|
||||
* @param inode 父目录的inode
|
||||
@ -997,8 +869,7 @@ struct fat32_Directory_t *fat32_find_empty_dentry(struct vfs_index_node_t *paren
|
||||
*/
|
||||
int64_t fat32_mkdir(struct vfs_index_node_t *parent_inode, struct vfs_dir_entry_t *dEntry, int mode)
|
||||
{
|
||||
|
||||
// 先检查是否有重名的目录项,然后分配一个簇
|
||||
int64_t retval = 0;
|
||||
|
||||
// 文件系统超级块信息
|
||||
fat32_sb_info_t *fsbi = (fat32_sb_info_t *)parent_inode->sb->private_sb_info;
|
||||
@ -1010,6 +881,7 @@ int64_t fat32_mkdir(struct vfs_index_node_t *parent_inode, struct vfs_dir_entry_
|
||||
|
||||
// 计算总共需要多少个目录项
|
||||
uint32_t cnt_longname = (dEntry->name_length + 25) / 26;
|
||||
// 默认都是创建长目录项来存储
|
||||
if (cnt_longname == 0)
|
||||
cnt_longname = 1;
|
||||
|
||||
@ -1022,9 +894,17 @@ int64_t fat32_mkdir(struct vfs_index_node_t *parent_inode, struct vfs_dir_entry_
|
||||
struct fat32_Directory_t *empty_fat32_dentry = fat32_find_empty_dentry(parent_inode, cnt_longname + 1, 0, &tmp_dentry_sector, &tmp_parent_dentry_clus, &tmp_dentry_clus_buf_addr);
|
||||
kdebug("found empty dentry");
|
||||
// ====== 为新的文件夹分配一个簇 =======
|
||||
uint32_t new_dir_clus = fat32_find_available_cluster(fsbi);
|
||||
kdebug("new_dir_clus=%d", new_dir_clus);
|
||||
fat32_write_FAT_entry(fsbi, new_dir_clus, 0x0ffffff8);
|
||||
// uint32_t new_dir_clus = fat32_find_available_cluster(fsbi);
|
||||
// kdebug("new_dir_clus=%d", new_dir_clus);
|
||||
// fat32_write_FAT_entry(fsbi, new_dir_clus, 0x0ffffff8);
|
||||
|
||||
// ====== 为新的文件夹分配一个簇 =======
|
||||
uint32_t new_dir_clus;
|
||||
if (fat32_alloc_clusters(parent_inode, &new_dir_clus, 1) != 0)
|
||||
{
|
||||
retval = -ENOSPC;
|
||||
goto fail;
|
||||
}
|
||||
|
||||
// ====== 填写短目录项
|
||||
memset(empty_fat32_dentry, 0, sizeof(struct fat32_Directory_t));
|
||||
@ -1106,7 +986,7 @@ int64_t fat32_mkdir(struct vfs_index_node_t *parent_inode, struct vfs_dir_entry_
|
||||
new_dir_dentries->DIR_Name[0] = '.';
|
||||
for (int i = 1; i < 11; ++i)
|
||||
new_dir_dentries->DIR_Name[i] = 0x20;
|
||||
|
||||
|
||||
new_dir_dentries->DIR_FstClusHI = empty_fat32_dentry->DIR_FstClusHI;
|
||||
new_dir_dentries->DIR_FstClusLO = empty_fat32_dentry->DIR_FstClusLO;
|
||||
|
||||
@ -1157,6 +1037,10 @@ int64_t fat32_mkdir(struct vfs_index_node_t *parent_inode, struct vfs_dir_entry_
|
||||
kfree((void *)tmp_dentry_clus_buf_addr);
|
||||
|
||||
return 0;
|
||||
fail:;
|
||||
// 释放在find empty dentry中动态申请的缓冲区
|
||||
kfree((void *)tmp_dentry_clus_buf_addr);
|
||||
return retval;
|
||||
}
|
||||
|
||||
// todo: rmdir
|
||||
|
@ -155,7 +155,7 @@ typedef struct fat32_partition_info_t fat32_sb_info_t;
|
||||
|
||||
struct fat32_inode_info_t
|
||||
{
|
||||
uint64_t first_clus; // 文件的起始簇号
|
||||
uint32_t first_clus; // 文件的起始簇号
|
||||
uint64_t dEntry_location_clus; // fat entry的起始簇号 dEntry struct in cluster (0 is root, 1 is invalid)
|
||||
uint64_t dEntry_location_clus_offset; // fat entry在起始簇中的偏移量(是第几个entry) dEntry struct offset in cluster
|
||||
|
||||
|
253
kernel/filesystem/fat32/fat_ent.c
Normal file
253
kernel/filesystem/fat32/fat_ent.c
Normal file
@ -0,0 +1,253 @@
|
||||
#include "fat_ent.h"
|
||||
#include <driver/disk/ahci/ahci.h>
|
||||
#include <common/errno.h>
|
||||
#include <mm/slab.h>
|
||||
|
||||
/**
|
||||
* @brief 请求分配指定数量的簇
|
||||
*
|
||||
* @param inode 要分配簇的inode
|
||||
* @param clusters 返回的被分配的簇的簇号结构体
|
||||
* @param num_clusters 要分配的簇的数量
|
||||
* @return int 错误码
|
||||
*/
|
||||
int fat32_alloc_clusters(struct vfs_index_node_t *inode, uint32_t *clusters, int32_t num_clusters)
|
||||
{
|
||||
int retval = 0;
|
||||
|
||||
fat32_sb_info_t *fsbi = (fat32_sb_info_t *)inode->sb->private_sb_info;
|
||||
struct fat32_inode_info_t *finode = (struct fat32_inode_info_t *)inode->private_inode_info;
|
||||
|
||||
uint64_t sec_per_fat = fsbi->sec_per_FAT;
|
||||
|
||||
// todo: 对alloc的过程加锁
|
||||
|
||||
// 申请1扇区的缓冲区
|
||||
uint32_t *buf = (uint32_t *)kmalloc(fsbi->bytes_per_sec, 0);
|
||||
int ent_per_sec = (fsbi->bytes_per_sec >> 2);
|
||||
int clus_idx = 0;
|
||||
for (int i = 0; i < sec_per_fat; ++i)
|
||||
{
|
||||
if (clus_idx >= num_clusters)
|
||||
goto done;
|
||||
memset(buf, 0, fsbi->bytes_per_sec);
|
||||
|
||||
ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + i, 1, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
|
||||
// 依次检查簇是否空闲
|
||||
for (int j = 0; j < ent_per_sec; ++j)
|
||||
{
|
||||
if (clus_idx >= num_clusters)
|
||||
goto done;
|
||||
// 找到空闲簇
|
||||
if ((buf[j] & 0x0fffffff) == 0)
|
||||
{
|
||||
clusters[clus_idx] = i * ent_per_sec + j;
|
||||
++clus_idx;
|
||||
}
|
||||
}
|
||||
}
|
||||
// 空间不足
|
||||
retval = -ENOSPC;
|
||||
|
||||
done:;
|
||||
kfree(buf);
|
||||
if (retval == 0) // 成功
|
||||
{
|
||||
int cluster, idx;
|
||||
if (finode->first_clus == 0)
|
||||
{
|
||||
// 空文件
|
||||
finode->first_clus = clusters[0];
|
||||
cluster = finode->first_clus;
|
||||
// 写入inode到磁盘
|
||||
inode->sb->sb_ops->write_inode(inode);
|
||||
idx = 1;
|
||||
}
|
||||
else
|
||||
{
|
||||
// todo: 跳转到文件当前的最后一个簇
|
||||
idx = 0;
|
||||
int tmp_clus = finode->first_clus;
|
||||
while (true)
|
||||
{
|
||||
tmp_clus = fat32_read_FAT_entry(fsbi, cluster);
|
||||
if (tmp_clus < 0x0ffffff7)
|
||||
cluster = tmp_clus;
|
||||
else
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
// 写入fat表
|
||||
for (int i = idx; i < num_clusters; ++i)
|
||||
{
|
||||
fat32_write_FAT_entry(fsbi, cluster, clusters[i]);
|
||||
cluster = clusters[i];
|
||||
}
|
||||
fat32_write_FAT_entry(fsbi, cluster, 0x0ffffff8);
|
||||
|
||||
return 0;
|
||||
}
|
||||
else // 出现错误
|
||||
{
|
||||
if (clus_idx < num_clusters)
|
||||
fat32_free_clusters(inode, clusters[0]);
|
||||
return retval;
|
||||
}
|
||||
|
||||
return 0;
|
||||
}
|
||||
|
||||
/**
|
||||
* @brief 释放从属于inode的,从cluster开始的所有簇
|
||||
*
|
||||
* @param inode 指定的文件的inode
|
||||
* @param cluster 指定簇
|
||||
* @return int 错误码
|
||||
*/
|
||||
int fat32_free_clusters(struct vfs_index_node_t *inode, int32_t cluster)
|
||||
{
|
||||
// todo: 释放簇
|
||||
return 0;
|
||||
}
|
||||
|
||||
/**
|
||||
* @brief 读取指定簇的FAT表项
|
||||
*
|
||||
* @param fsbi fat32超级块私有信息结构体
|
||||
* @param cluster 指定簇
|
||||
* @return uint32_t 下一个簇的簇号
|
||||
*/
|
||||
uint32_t fat32_read_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster)
|
||||
{
|
||||
// 计算每个扇区内含有的FAT表项数
|
||||
// FAT每项4bytes
|
||||
uint32_t fat_ent_per_sec = (fsbi->bytes_per_sec >> 2); // 该值应为2的n次幂
|
||||
|
||||
uint32_t buf[256];
|
||||
memset(buf, 0, fsbi->bytes_per_sec);
|
||||
|
||||
// 读取一个sector的数据,
|
||||
ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
|
||||
(uint64_t)&buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
|
||||
|
||||
// 返回下一个fat表项的值(也就是下一个cluster)
|
||||
return buf[cluster & (fat_ent_per_sec - 1)] & 0x0fffffff;
|
||||
}
|
||||
|
||||
/**
|
||||
* @brief 写入指定簇的FAT表项
|
||||
*
|
||||
* @param fsbi fat32超级块私有信息结构体
|
||||
* @param cluster 指定簇
|
||||
* @param value 要写入该fat表项的值
|
||||
* @return uint32_t errcode
|
||||
*/
|
||||
uint32_t fat32_write_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster, uint32_t value)
|
||||
{
|
||||
// 计算每个扇区内含有的FAT表项数
|
||||
// FAT每项4bytes
|
||||
uint32_t fat_ent_per_sec = (fsbi->bytes_per_sec >> 2); // 该值应为2的n次幂
|
||||
uint32_t *buf = kmalloc(fsbi->bytes_per_sec, 0);
|
||||
memset(buf, 0, fsbi->bytes_per_sec);
|
||||
|
||||
ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
|
||||
(uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
|
||||
|
||||
buf[cluster & (fat_ent_per_sec - 1)] = (buf[cluster & (fat_ent_per_sec - 1)] & 0xf0000000) | (value & 0x0fffffff);
|
||||
// 向FAT1和FAT2写入数据
|
||||
ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
|
||||
(uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
|
||||
ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, fsbi->FAT2_base_sector + (cluster / fat_ent_per_sec), 1,
|
||||
(uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
|
||||
kfree(buf);
|
||||
return 0;
|
||||
}
|
||||
|
||||
|
||||
/**
|
||||
* @brief 在父亲inode的目录项簇中,寻找连续num个空的目录项
|
||||
*
|
||||
* @param parent_inode 父inode
|
||||
* @param num 请求的目录项数量
|
||||
* @param mode 操作模式
|
||||
* @param res_sector 返回信息:缓冲区对应的扇区号
|
||||
* @param res_cluster 返回信息:缓冲区对应的簇号
|
||||
* @param res_data_buf_base 返回信息:缓冲区的内存基地址(记得要释放缓冲区内存!!!!)
|
||||
* @return struct fat32_Directory_t* 符合要求的entry的指针(指向地址高处的空目录项,也就是说,有连续num个≤这个指针的空目录项)
|
||||
*/
|
||||
struct fat32_Directory_t *fat32_find_empty_dentry(struct vfs_index_node_t *parent_inode, uint32_t num, uint32_t mode, uint32_t *res_sector, uint64_t *res_cluster, uint64_t *res_data_buf_base)
|
||||
{
|
||||
kdebug("find empty_dentry");
|
||||
struct fat32_inode_info_t *finode = (struct fat32_inode_info_t *)parent_inode->private_inode_info;
|
||||
fat32_sb_info_t *fsbi = (fat32_sb_info_t *)parent_inode->sb->private_sb_info;
|
||||
|
||||
uint8_t *buf = kmalloc(fsbi->bytes_per_clus, 0);
|
||||
memset(buf, 0, fsbi->bytes_per_clus);
|
||||
|
||||
// 计算父目录项的起始簇号
|
||||
uint32_t cluster = finode->first_clus;
|
||||
|
||||
struct fat32_Directory_t *tmp_dEntry = NULL;
|
||||
// 指向最终的有用的dentry的指针
|
||||
struct fat32_Directory_t *result_dEntry = NULL;
|
||||
|
||||
while (true)
|
||||
{
|
||||
// 计算父目录项的起始LBA扇区号
|
||||
uint64_t sector = fsbi->first_data_sector + (cluster - 2) * fsbi->sec_per_clus;
|
||||
|
||||
// 读取父目录项的起始簇数据
|
||||
ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
|
||||
tmp_dEntry = (struct fat32_Directory_t *)buf;
|
||||
// 计数连续的空目录项
|
||||
uint32_t count_continuity = 0;
|
||||
|
||||
// 查找连续num个空闲目录项
|
||||
for (int i = 0; (i < fsbi->bytes_per_clus) && count_continuity < num; i += 32, ++tmp_dEntry)
|
||||
{
|
||||
if (!(tmp_dEntry->DIR_Name[0] == 0xe5 || tmp_dEntry->DIR_Name[0] == 0x00))
|
||||
{
|
||||
count_continuity = 0;
|
||||
continue;
|
||||
}
|
||||
|
||||
if (count_continuity == 0)
|
||||
result_dEntry = tmp_dEntry;
|
||||
++count_continuity;
|
||||
}
|
||||
|
||||
// 成功查找到符合要求的目录项
|
||||
if (count_continuity == num)
|
||||
{
|
||||
result_dEntry += (num - 1);
|
||||
*res_sector = sector;
|
||||
*res_data_buf_base = (uint64_t)buf;
|
||||
*res_cluster = cluster;
|
||||
return result_dEntry;
|
||||
}
|
||||
|
||||
// 当前簇没有发现符合条件的空闲目录项,寻找下一个簇
|
||||
uint64_t old_cluster = cluster;
|
||||
cluster = fat32_read_FAT_entry(fsbi, cluster);
|
||||
if (cluster >= 0x0ffffff7) // 寻找完父目录的所有簇,都没有找到符合要求的空目录项
|
||||
{
|
||||
|
||||
// 新增一个簇
|
||||
|
||||
if (fat32_alloc_clusters(parent_inode, &cluster, 1) != 0)
|
||||
{
|
||||
kerror("Cannot allocate a new cluster!");
|
||||
while (1)
|
||||
pause();
|
||||
}
|
||||
|
||||
// 将这个新的簇清空
|
||||
sector = fsbi->first_data_sector + (cluster - 2) * fsbi->sec_per_clus;
|
||||
void *tmp_buf = kmalloc(fsbi->bytes_per_clus, 0);
|
||||
memset(tmp_buf, 0, fsbi->bytes_per_clus);
|
||||
ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)tmp_buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
|
||||
kfree(tmp_buf);
|
||||
}
|
||||
}
|
||||
}
|
55
kernel/filesystem/fat32/fat_ent.h
Normal file
55
kernel/filesystem/fat32/fat_ent.h
Normal file
@ -0,0 +1,55 @@
|
||||
#pragma once
|
||||
|
||||
#include "fat32.h"
|
||||
#include <filesystem/VFS/VFS.h>
|
||||
|
||||
/**
|
||||
* @brief 请求分配指定数量的簇
|
||||
*
|
||||
* @param inode 要分配簇的inode
|
||||
* @param clusters 返回的被分配的簇的簇号结构体
|
||||
* @param num_clusters 要分配的簇的数量
|
||||
* @return int 错误码
|
||||
*/
|
||||
int fat32_alloc_clusters(struct vfs_index_node_t *inode, uint32_t *clusters, int32_t num_clusters);
|
||||
|
||||
/**
|
||||
* @brief 释放从属于inode的,从cluster开始的所有簇
|
||||
*
|
||||
* @param inode 指定的文件的inode
|
||||
* @param cluster 指定簇
|
||||
* @return int 错误码
|
||||
*/
|
||||
int fat32_free_clusters(struct vfs_index_node_t * inode, int32_t cluster);
|
||||
|
||||
/**
|
||||
* @brief 读取指定簇的FAT表项
|
||||
*
|
||||
* @param fsbi fat32超级块私有信息结构体
|
||||
* @param cluster 指定簇
|
||||
* @return uint32_t 下一个簇的簇号
|
||||
*/
|
||||
uint32_t fat32_read_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster);
|
||||
|
||||
/**
|
||||
* @brief 写入指定簇的FAT表项
|
||||
*
|
||||
* @param fsbi fat32超级块私有信息结构体
|
||||
* @param cluster 指定簇
|
||||
* @param value 要写入该fat表项的值
|
||||
* @return uint32_t errcode
|
||||
*/
|
||||
uint32_t fat32_write_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster, uint32_t value);
|
||||
|
||||
/**
|
||||
* @brief 在父亲inode的目录项簇中,寻找连续num个空的目录项
|
||||
*
|
||||
* @param parent_inode 父inode
|
||||
* @param num 请求的目录项数量
|
||||
* @param mode 操作模式
|
||||
* @param res_sector 返回信息:缓冲区对应的扇区号
|
||||
* @param res_cluster 返回信息:缓冲区对应的簇号
|
||||
* @param res_data_buf_base 返回信息:缓冲区的内存基地址(记得要释放缓冲区内存!!!!)
|
||||
* @return struct fat32_Directory_t* 符合要求的entry的指针(指向地址高处的空目录项,也就是说,有连续num个≤这个指针的空目录项)
|
||||
*/
|
||||
struct fat32_Directory_t *fat32_find_empty_dentry(struct vfs_index_node_t *parent_inode, uint32_t num, uint32_t mode, uint32_t *res_sector, uint64_t *res_cluster, uint64_t *res_data_buf_base);
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Reference in New Issue
Block a user