Files
drivers/sd/blockdevice.go
T
2024-01-15 23:23:08 -03:00

214 lines
5.8 KiB
Go

package sd
import (
"errors"
"io"
"math/bits"
)
var (
errNegativeOffset = errors.New("sd: negative offset")
)
// Compile time guarantee of interface implementation.
var _ Card = (*SPICard)(nil)
var _ io.ReaderAt = (*BlockDevice)(nil)
var _ io.WriterAt = (*BlockDevice)(nil)
type Card interface {
// WriteBlocks writes the given data to the card, starting at the given block index.
// The data must be a multiple of the block size.
WriteBlocks(data []byte, startBlockIdx int64) error
// ReadBlocks reads the given number of blocks from the card, starting at the given block index.
// The dst buffer must be a multiple of the block size.
ReadBlocks(dst []byte, startBlockIdx int64) error
// EraseSectors erases sectors starting at startSectorIdx to startSectorIdx+numSectors.
EraseSectors(startSectorIdx, numSectors int64) error
}
// NewBlockDevice creates a new BlockDevice from a Card.
func NewBlockDevice(card Card, blockSize int, numBlocks, eraseBlockSizeInBytes int64) (*BlockDevice, error) {
if card == nil || blockSize <= 0 || eraseBlockSizeInBytes <= 0 || numBlocks <= 0 {
return nil, errors.New("invalid argument(s)")
}
blk, err := makeBlockIndexer(blockSize)
if err != nil {
return nil, err
}
bd := &BlockDevice{
card: card,
blockbuf: make([]byte, blockSize),
blk: blk,
numblocks: int64(numBlocks),
eraseBlockSize: eraseBlockSizeInBytes,
}
return bd, nil
}
// BlockDevice implements tinyfs.BlockDevice interface for an [sd.Card] type.
type BlockDevice struct {
card Card
blockbuf []byte
blk blkIdxer
numblocks int64
eraseBlockSize int64
}
// ReadAt implements [io.ReadAt] interface for an SD card.
func (bd *BlockDevice) ReadAt(p []byte, off int64) (n int, err error) {
if off < 0 {
return 0, errNegativeOffset
}
blockSize := len(bd.blockbuf)
blockIdx := bd.blk.idx(off)
blockOff := bd.blk.off(off)
if blockOff != 0 {
// Non-aligned first block case.
println("read", len(bd.blockbuf), "bytes from block", blockIdx)
if err := bd.card.ReadBlocks(bd.blockbuf, blockIdx); err != nil {
return n, err
}
n += copy(p, bd.blockbuf[blockOff:])
p = p[n:]
blockIdx++
}
remaining := len(p) - n
if remaining >= blockSize {
// 1 or more full blocks case.
endOffset := remaining - int(bd.blk.off(int64(remaining)))
err = bd.card.ReadBlocks(p[:endOffset], blockIdx)
if err != nil {
return n, err
}
p = p[endOffset:]
n += endOffset
blockIdx += int64(endOffset / blockSize)
}
if len(p) > 0 {
// Non-aligned last block case.
if err := bd.card.ReadBlocks(bd.blockbuf, blockIdx); err != nil {
return n, err
}
n += copy(p, bd.blockbuf)
}
return n, nil
}
// WriteAt implements [io.WriterAt] interface for an SD card.
func (bd *BlockDevice) WriteAt(p []byte, off int64) (n int, err error) {
if off < 0 {
return 0, errNegativeOffset
}
blockSize := len(bd.blockbuf)
blockIdx := bd.blk.idx(off)
blockOff := bd.blk.off(off)
if blockOff != 0 {
// Non-aligned first block case.
if err := bd.card.ReadBlocks(bd.blockbuf, blockIdx); err != nil {
return n, err
}
n += copy(bd.blockbuf[blockOff:], p)
if err := bd.card.WriteBlocks(bd.blockbuf, blockIdx); err != nil {
return n, err
}
p = p[n:]
blockIdx++
}
remaining := len(p) - n
if remaining >= blockSize {
// 1 or more full blocks case.
endOffset := remaining - int(bd.blk.off(int64(remaining)))
err = bd.card.WriteBlocks(p[:endOffset], blockIdx)
if err != nil {
return n, err
}
p = p[endOffset:]
n += endOffset
blockIdx += int64(endOffset / blockSize)
}
if len(p) > 0 {
// Non-aligned last block case.
if err := bd.card.ReadBlocks(bd.blockbuf, blockIdx); err != nil {
return n, err
}
n += copy(bd.blockbuf, p)
if err := bd.card.WriteBlocks(bd.blockbuf, blockIdx); err != nil {
return n, err
}
}
return n, nil
}
// Size returns the number of bytes in this block device.
func (bd *BlockDevice) Size() int64 {
return int64(len(bd.blockbuf)) * bd.numblocks
}
// EraseBlocks erases the given number of blocks. An implementation may
// transparently coalesce ranges of blocks into larger bundles if the chip
// supports this. The start and len parameters are in block numbers, use
// EraseBlockSize to map addresses to blocks.
func (bd *BlockDevice) EraseBlocks(startEraseBlockIdx, len int64) error {
return bd.card.EraseSectors(startEraseBlockIdx, len)
}
// EraseBlockSize returns the smallest erasable area on this particular chip
// in bytes. This is used for the block size in EraseBlocks.
// It must be a power of two, and may be as small as 1. A typical size is 4096.
func (bd *BlockDevice) EraseBlockSize() int64 {
return bd.eraseBlockSize
}
// blkIdxer is a helper for calculating block indexes and offsets.
type blkIdxer struct {
blockshift int64
blockmask int64
}
func makeBlockIndexer(blockSize int) (blkIdxer, error) {
if blockSize <= 0 {
return blkIdxer{}, errNoblocks
}
tz := bits.TrailingZeros(uint(blockSize))
if blockSize>>tz != 1 {
return blkIdxer{}, errors.New("blockSize must be a power of 2")
}
blk := blkIdxer{
blockshift: int64(tz),
blockmask: (1 << tz) - 1,
}
return blk, nil
}
// size returns the size of a block in bytes.
func (blk *blkIdxer) size() int64 {
return 1 << blk.blockshift
}
// off gets the offset of the byte at byteIdx from the start of its block.
//
//go:inline
func (blk *blkIdxer) off(byteIdx int64) int64 {
return blk._moduloBlockSize(byteIdx)
}
// idx gets the block index that contains the byte at byteIdx.
//
//go:inline
func (blk *blkIdxer) idx(byteIdx int64) int64 {
return blk._divideBlockSize(byteIdx)
}
// modulo and divide are defined in terms of bit operations for speed since
// blockSize is a power of 2.
//go:inline
func (blk *blkIdxer) _moduloBlockSize(n int64) int64 { return n & blk.blockmask }
//go:inline
func (blk *blkIdxer) _divideBlockSize(n int64) int64 { return n >> blk.blockshift }