#include <linux/module.h>
#include <linux/slab.h>
#include <linux/fs.h>
#include <linux/kernel.h>
#include <linux/blkdev.h>
#include <linux/pagemap.h>
#include <linux/msdos_partition.h>
#include <asm/unaligned.h>
#include <scsi/scsicam.h>
unsigned char *scsi_bios_ptable(struct block_device *dev)
{
struct address_space *mapping = bdev_whole(dev)->bd_inode->i_mapping;
unsigned char *res = NULL;
struct folio *folio;
folio = read_mapping_folio(mapping, 0, NULL);
if (IS_ERR(folio))
return NULL;
res = kmemdup(folio_address(folio) + 0x1be, 66, GFP_KERNEL);
folio_put(folio);
return res;
}
EXPORT_SYMBOL(scsi_bios_ptable);
bool scsi_partsize(struct block_device *bdev, sector_t capacity, int geom[3])
{
int cyl, ext_cyl, end_head, end_cyl, end_sector;
unsigned int logical_end, physical_end, ext_physical_end;
struct msdos_partition *p, *largest = NULL;
void *buf;
int ret = false;
buf = scsi_bios_ptable(bdev);
if (!buf)
return false;
if (*(unsigned short *) (buf + 64) == 0xAA55) {
int largest_cyl = -1, i;
for (i = 0, p = buf; i < 4; i++, p++) {
if (!p->sys_ind)
continue;
#ifdef DEBUG
printk("scsicam_bios_param : partition %d has system \n",
i);
#endif
cyl = p->cyl + ((p->sector & 0xc0) << 2);
if (cyl > largest_cyl) {
largest_cyl = cyl;
largest = p;
}
}
}
if (largest) {
end_cyl = largest->end_cyl + ((largest->end_sector & 0xc0) << 2);
end_head = largest->end_head;
end_sector = largest->end_sector & 0x3f;
if (end_head + 1 == 0 || end_sector == 0)
goto out_free_buf;
#ifdef DEBUG
printk("scsicam_bios_param : end at h = %d, c = %d, s = %d\n",
end_head, end_cyl, end_sector);
#endif
physical_end = end_cyl * (end_head + 1) * end_sector +
end_head * end_sector + end_sector;
logical_end = get_unaligned_le32(&largest->start_sect)
+ get_unaligned_le32(&largest->nr_sects);
ext_cyl = (logical_end - (end_head * end_sector + end_sector))
/ (end_head + 1) / end_sector;
ext_physical_end = ext_cyl * (end_head + 1) * end_sector +
end_head * end_sector + end_sector;
#ifdef DEBUG
printk("scsicam_bios_param : logical_end=%d physical_end=%d ext_physical_end=%d ext_cyl=%d\n"
,logical_end, physical_end, ext_physical_end, ext_cyl);
#endif
if (logical_end == physical_end ||
(end_cyl == 1023 && ext_physical_end == logical_end)) {
geom[0] = end_head + 1;
geom[1] = end_sector;
geom[2] = (unsigned long)capacity /
((end_head + 1) * end_sector);
ret = true;
goto out_free_buf;
}
#ifdef DEBUG
printk("scsicam_bios_param : logical (%u) != physical (%u)\n",
logical_end, physical_end);
#endif
}
out_free_buf:
kfree(buf);
return ret;
}
EXPORT_SYMBOL(scsi_partsize);
static int setsize(unsigned long capacity, unsigned int *cyls, unsigned int *hds,
unsigned int *secs)
{
unsigned int rv = 0;
unsigned long heads, sectors, cylinders, temp;
cylinders = 1024L;
sectors = 62L;
temp = cylinders * sectors;
heads = capacity / temp;
if (capacity % temp) {
heads++;
temp = cylinders * heads;
sectors = capacity / temp;
if (capacity % temp) {
sectors++;
temp = heads * sectors;
cylinders = capacity / temp;
}
}
if (cylinders == 0)
rv = (unsigned) -1;
*cyls = (unsigned int) cylinders;
*secs = (unsigned int) sectors;
*hds = (unsigned int) heads;
return (rv);
}
int scsicam_bios_param(struct block_device *bdev, sector_t capacity, int *ip)
{
u64 capacity64 = capacity;
int ret = 0;
if (scsi_partsize(bdev, capacity, ip))
return 0;
if (capacity64 < (1ULL << 32)) {
ret = setsize((unsigned long)capacity, (unsigned int *)ip + 2,
(unsigned int *)ip + 0, (unsigned int *)ip + 1);
}
if (ret || ip[0] > 255 || ip[1] > 63) {
if ((capacity >> 11) > 65534) {
ip[0] = 255;
ip[1] = 63;
} else {
ip[0] = 64;
ip[1] = 32;
}
if (capacity > 65535*63*255)
ip[2] = 65535;
else
ip[2] = (unsigned long)capacity / (ip[0] * ip[1]);
}
return 0;
}
EXPORT_SYMBOL