#include <linux/types.h>
#include <linux/bits.h>
#include <linux/bitfield.h>
#include <linux/refcount.h>
#include <linux/scatterlist.h>
#include <linux/dma-direction.h>
#include "gsi.h"
#include "gsi_private.h"
#include "gsi_trans.h"
#include "ipa_gsi.h"
#include "ipa_data.h"
#include "ipa_cmd.h"
enum gsi_tre_type {
GSI_RE_XFER = 0x2,
GSI_RE_IMMD_CMD = 0x3,
};
struct gsi_tre {
__le64 addr;
__le16 len_opcode;
__le16 reserved;
__le32 flags;
};
#define TRE_FLAGS_CHAIN_FMASK GENMASK(0, 0)
#define TRE_FLAGS_IEOT_FMASK GENMASK(9, 9)
#define TRE_FLAGS_BEI_FMASK GENMASK(10, 10)
#define TRE_FLAGS_TYPE_FMASK GENMASK(23, 16)
int gsi_trans_pool_init(struct gsi_trans_pool *pool, size_t size, u32 count,
u32 max_alloc)
{
size_t alloc_size;
void *virt;
if (!size)
return -EINVAL;
if (count < max_alloc)
return -EINVAL;
if (!max_alloc)
return -EINVAL;
alloc_size = size_mul(count + max_alloc - 1, size);
alloc_size = kmalloc_size_roundup(alloc_size);
virt = kzalloc(alloc_size, GFP_KERNEL);
if (!virt)
return -ENOMEM;
pool->base = virt;
pool->count = alloc_size / size;
pool->free = 0;
pool->max_alloc = max_alloc;
pool->size = size;
pool->addr = 0;
return 0;
}
void gsi_trans_pool_exit(struct gsi_trans_pool *pool)
{
kfree(pool->base);
memset(pool, 0, sizeof(*pool));
}
int gsi_trans_pool_init_dma(struct device *dev, struct gsi_trans_pool *pool,
size_t size, u32 count, u32 max_alloc)
{
size_t total_size;
dma_addr_t addr;
void *virt;
if (!size)
return -EINVAL;
if (count < max_alloc)
return -EINVAL;
if (!max_alloc)
return -EINVAL;
size = __roundup_pow_of_two(size);
total_size = (count + max_alloc - 1) * size;
total_size = PAGE_SIZE << get_order(total_size);
virt = dma_alloc_coherent(dev, total_size, &addr, GFP_KERNEL);
if (!virt)
return -ENOMEM;
pool->base = virt;
pool->count = total_size / size;
pool->free = 0;
pool->size = size;
pool->max_alloc = max_alloc;
pool->addr = addr;
return 0;
}
void gsi_trans_pool_exit_dma(struct device *dev, struct gsi_trans_pool *pool)
{
size_t total_size = pool->count * pool->size;
dma_free_coherent(dev, total_size, pool->base, pool->addr);
memset(pool, 0, sizeof(*pool));
}
static u32 gsi_trans_pool_alloc_common(struct gsi_trans_pool *pool, u32 count)
{
u32 offset;
WARN_ON(!count);
WARN_ON(count > pool->max_alloc);
if (count > pool->count - pool->free)
pool->free = 0;
offset = pool->free * pool->size;
pool->free += count;
memset(pool->base + offset, 0, count * pool->size);
return offset;
}
void *gsi_trans_pool_alloc(struct gsi_trans_pool *pool, u32 count)
{
return pool->base + gsi_trans_pool_alloc_common(pool, count);
}
void *gsi_trans_pool_alloc_dma(struct gsi_trans_pool *pool, dma_addr_t *addr)
{
u32 offset = gsi_trans_pool_alloc_common(pool, 1);
*addr = pool->addr + offset;
return pool->base + offset;
}
static void gsi_trans_map(struct gsi_trans *trans, u32 index)
{
struct gsi_channel *channel = &trans->gsi->channel[trans->channel_id];
index += trans->used_count - 1;
channel->trans_info.map[index % channel->tre_ring.count] = trans;
}
struct gsi_trans *
gsi_channel_trans_mapped(struct gsi_channel *channel, u32 index)
{
return channel->trans_info.map[index % channel->tre_ring.count];
}
struct gsi_trans *gsi_channel_trans_complete(struct gsi_channel *channel)
{
struct gsi_trans_info *trans_info = &channel->trans_info;
u16 trans_id = trans_info->completed_id;
if (trans_id == trans_info->pending_id) {
gsi_channel_update(channel);
if (trans_id == trans_info->pending_id)
return NULL;
}
return &trans_info->trans[trans_id %= channel->tre_count];
}
static void gsi_trans_move_committed(struct gsi_trans *trans)
{
struct gsi_channel *channel = &trans->gsi->channel[trans->channel_id];
struct gsi_trans_info *trans_info = &channel->trans_info;
trans_info->allocated_id++;
}
static void gsi_trans_move_pending(struct gsi_trans *trans)
{
struct gsi_channel *channel = &trans->gsi->channel[trans->channel_id];
struct gsi_trans_info *trans_info = &channel->trans_info;
u16 trans_index = trans - &trans_info->trans[0];
u16 delta;
delta = trans_index - trans_info->committed_id + 1;
trans_info->committed_id += delta % channel->tre_count;
}
void gsi_trans_move_complete(struct gsi_trans *trans)
{
struct gsi_channel *channel = &trans->gsi->channel[trans->channel_id];
struct gsi_trans_info *trans_info = &channel->trans_info;
u16 trans_index = trans - trans_info->trans;
u16 delta;
delta = trans_index - trans_info->pending_id + 1;
delta %= channel->tre_count;
trans_info->pending_id += delta;
}
void gsi_trans_move_polled(struct gsi_trans *trans)
{
struct gsi_channel *channel = &trans->gsi->channel[trans->channel_id];
struct gsi_trans_info *trans_info = &channel->trans_info;
trans_info->completed_id++;
}
static bool
gsi_trans_tre_reserve(struct gsi_trans_info *trans_info, u32 tre_count)
{
int avail = atomic_read(&trans_info->tre_avail);
int new;
do {
new = avail - (int)tre_count;
if (unlikely(new < 0))
return false;
} while (!atomic_try_cmpxchg(&trans_info->tre_avail, &avail, new));
return true;
}
static void
gsi_trans_tre_release(struct gsi_trans_info *trans_info, u32 tre_count)
{
atomic_add(tre_count, &trans_info->tre_avail);
}
bool gsi_channel_trans_idle(struct gsi *gsi, u32 channel_id)
{
u32 tre_max = gsi_channel_tre_max(gsi, channel_id);
struct gsi_trans_info *trans_info;
trans_info = &gsi->channel[channel_id].trans_info;
return atomic_read(&trans_info->tre_avail) == tre_max;
}
struct gsi_trans *gsi_channel_trans_alloc(struct gsi *gsi, u32 channel_id,
u32 tre_count,
enum dma_data_direction direction)
{
struct gsi_channel *channel = &gsi->channel[channel_id];
struct gsi_trans_info *trans_info;
struct gsi_trans *trans;
u16 trans_index;
if (WARN_ON(tre_count > channel->trans_tre_max))
return NULL;
trans_info = &channel->trans_info;
if (!gsi_trans_tre_reserve(trans_info, tre_count))
return NULL;
trans_index = trans_info->free_id % channel->tre_count;
trans = &trans_info->trans[trans_index];
memset(trans, 0, sizeof(*trans));
trans->gsi = gsi;
trans->channel_id = channel_id;
trans->rsvd_count = tre_count;
init_completion(&trans->completion);
trans->sgl = gsi_trans_pool_alloc(&trans_info->sg_pool, tre_count);
sg_init_marker(trans->sgl, tre_count);
trans->direction = direction;
refcount_set(&trans->refcount, 1);
trans_info->free_id++;
return trans;
}
void gsi_trans_free(struct gsi_trans *trans)
{
struct gsi_trans_info *trans_info;
if (!refcount_dec_and_test(&trans->refcount))
return;
trans_info = &trans->gsi->channel[trans->channel_id].trans_info;
if (!trans->used_count) {
trans_info->allocated_id++;
trans_info->committed_id++;
trans_info->pending_id++;
trans_info->completed_id++;
} else {
ipa_gsi_trans_release(trans);
}
trans_info->polled_id++;
gsi_trans_tre_release(trans_info, trans->rsvd_count);
}
void gsi_trans_cmd_add(struct gsi_trans *trans, void *buf, u32 size,
dma_addr_t addr, enum ipa_cmd_opcode opcode)
{
u32 which = trans->used_count++;
struct scatterlist *sg;
WARN_ON(which >= trans->rsvd_count);
sg = &trans->sgl[which];
sg_assign_page(sg, NULL);
sg_dma_address(sg) = addr;
sg_dma_len(sg) = size;
trans->cmd_opcode[which] = opcode;
}
int gsi_trans_page_add(struct gsi_trans *trans, struct page *page, u32 size,
u32 offset)
{
struct scatterlist *sg = &trans->sgl[0];
int ret;
if (WARN_ON(trans->rsvd_count != 1))
return -EINVAL;
if (WARN_ON(trans->used_count))
return -EINVAL;
sg_set_page(sg, page, size, offset);
ret = dma_map_sg(trans->gsi->dev, sg, 1, trans->direction);
if (!ret)
return -ENOMEM;
trans->used_count++;
return 0;
}
int gsi_trans_skb_add(struct gsi_trans *trans, struct sk_buff *skb)
{
struct scatterlist *sg = &trans->sgl[0];
u32 used_count;
int ret;
if (WARN_ON(trans->rsvd_count != 1))
return -EINVAL;
if (WARN_ON(trans->used_count))
return -EINVAL;
ret = skb_to_sgvec(skb, sg, 0, skb->len);
if (ret < 0)
return ret;
used_count = ret;
ret = dma_map_sg(trans->gsi->dev, sg, used_count, trans->direction);
if (!ret)
return -ENOMEM;
trans->used_count += used_count;
return 0;
}
static __le16 gsi_tre_len_opcode(enum ipa_cmd_opcode opcode, u32 len)
{
return opcode == IPA_CMD_NONE ? cpu_to_le16((u16)len)
: cpu_to_le16((u16)opcode);
}
static __le32 gsi_tre_flags(bool last_tre, bool bei, enum ipa_cmd_opcode opcode)
{
enum gsi_tre_type tre_type;
u32 tre_flags;
tre_type = opcode == IPA_CMD_NONE ? GSI_RE_XFER : GSI_RE_IMMD_CMD;
tre_flags = u32_encode_bits(tre_type, TRE_FLAGS_TYPE_FMASK);
if (last_tre) {
tre_flags |= TRE_FLAGS_IEOT_FMASK;
if (bei)
tre_flags |= TRE_FLAGS_BEI_FMASK;
} else {
tre_flags |= TRE_FLAGS_CHAIN_FMASK;
}
return cpu_to_le32(tre_flags);
}
static void gsi_trans_tre_fill(struct gsi_tre *dest_tre, dma_addr_t addr,
u32 len, bool last_tre, bool bei,
enum ipa_cmd_opcode opcode)
{
struct gsi_tre tre;
tre.addr = cpu_to_le64(addr);
tre.len_opcode = gsi_tre_len_opcode(opcode, len);
tre.reserved = 0;
tre.flags = gsi_tre_flags(last_tre, bei, opcode);
*dest_tre = tre;
}
static void __gsi_trans_commit(struct gsi_trans *trans, bool ring_db)
{
struct gsi_channel *channel = &trans->gsi->channel[trans->channel_id];
struct gsi_ring *tre_ring = &channel->tre_ring;
enum ipa_cmd_opcode opcode = IPA_CMD_NONE;
bool bei = channel->toward_ipa;
struct gsi_tre *dest_tre;
struct scatterlist *sg;
u32 byte_count = 0;
u8 *cmd_opcode;
u32 avail;
u32 i;
WARN_ON(!trans->used_count);
cmd_opcode = channel->command ? &trans->cmd_opcode[0] : NULL;
avail = tre_ring->count - tre_ring->index % tre_ring->count;
dest_tre = gsi_ring_virt(tre_ring, tre_ring->index);
for_each_sg(trans->sgl, sg, trans->used_count, i) {
bool last_tre = i == trans->used_count - 1;
dma_addr_t addr = sg_dma_address(sg);
u32 len = sg_dma_len(sg);
byte_count += len;
if (!avail--)
dest_tre = gsi_ring_virt(tre_ring, 0);
if (cmd_opcode)
opcode = *cmd_opcode++;
gsi_trans_tre_fill(dest_tre, addr, len, last_tre, bei, opcode);
dest_tre++;
}
gsi_trans_map(trans, tre_ring->index);
tre_ring->index += trans->used_count;
trans->len = byte_count;
if (channel->toward_ipa)
gsi_trans_tx_committed(trans);
gsi_trans_move_committed(trans);
if (ring_db || !atomic_read(&channel->trans_info.tre_avail)) {
if (channel->toward_ipa)
gsi_trans_tx_queued(trans);
gsi_trans_move_pending(trans);
gsi_channel_doorbell(channel);
}
}
void gsi_trans_commit(struct gsi_trans *trans, bool ring_db)
{
if (trans->used_count)
__gsi_trans_commit(trans, ring_db);
else
gsi_trans_free(trans);
}
void gsi_trans_commit_wait(struct gsi_trans *trans)
{
if (!trans->used_count)
goto out_trans_free;
refcount_inc(&trans->refcount);
__gsi_trans_commit(trans, true);
wait_for_completion(&trans->completion);
out_trans_free:
gsi_trans_free(trans);
}
void gsi_trans_complete(struct gsi_trans *trans)
{
if (trans->direction != DMA_NONE)
dma_unmap_sg(trans->gsi->dev, trans->sgl, trans->used_count,
trans->direction);
ipa_gsi_trans_complete(trans);
complete(&trans->completion);
gsi_trans_free(trans);
}
void gsi_channel_trans_cancel_pending(struct gsi_channel *channel)
{
struct gsi_trans_info *trans_info = &channel->trans_info;
u16 trans_id = trans_info->pending_id;
if (trans_id == trans_info->committed_id)
return;
do {
struct gsi_trans *trans;
trans = &trans_info->trans[trans_id % channel->tre_count];
trans->cancelled = true;
} while (++trans_id != trans_info->committed_id);
trans_info->pending_id = trans_info->committed_id;
napi_schedule(&channel->napi);
}
int gsi_trans_read_byte(struct gsi *gsi, u32 channel_id, dma_addr_t addr)
{
struct gsi_channel *channel = &gsi->channel[channel_id];
struct gsi_ring *tre_ring = &channel->tre_ring;
struct gsi_trans_info *trans_info;
struct gsi_tre *dest_tre;
trans_info = &channel->trans_info;
if (!gsi_trans_tre_reserve(trans_info, 1))
return -EBUSY;
dest_tre = gsi_ring_virt(tre_ring, tre_ring->index);
gsi_trans_tre_fill(dest_tre, addr, 1, true, false, IPA_CMD_NONE);
tre_ring->index++;
gsi_channel_doorbell(channel);
return 0;
}
void gsi_trans_read_byte_done(struct gsi *gsi, u32 channel_id)
{
struct gsi_channel *channel = &gsi->channel[channel_id];
gsi_trans_tre_release(&channel->trans_info, 1);
}
int gsi_channel_trans_init(struct gsi *gsi, u32 channel_id)
{
struct gsi_channel *channel = &gsi->channel[channel_id];
u32 tre_count = channel->tre_count;
struct gsi_trans_info *trans_info;
u32 tre_max;
int ret;
BUILD_BUG_ON(sizeof(struct gsi_tre) != GSI_RING_ELEMENT_SIZE);
trans_info = &channel->trans_info;
tre_max = gsi_channel_tre_max(channel->gsi, channel_id);
atomic_set(&trans_info->tre_avail, tre_max);
trans_info->trans = kcalloc(tre_count, sizeof(*trans_info->trans),
GFP_KERNEL);
if (!trans_info->trans)
return -ENOMEM;
trans_info->free_id = 0;
trans_info->allocated_id = 0;
trans_info->committed_id = 0;
trans_info->pending_id = 0;
trans_info->completed_id = 0;
trans_info->polled_id = 0;
trans_info->map = kcalloc(tre_count, sizeof(*trans_info->map),
GFP_KERNEL);
if (!trans_info->map) {
ret = -ENOMEM;
goto err_trans_free;
}
ret = gsi_trans_pool_init(&trans_info->sg_pool,
sizeof(struct scatterlist),
tre_max, channel->trans_tre_max);
if (ret)
goto err_map_free;
return 0;
err_map_free:
kfree(trans_info->map);
err_trans_free:
kfree(trans_info->trans);
dev_err(gsi->dev, "error %d initializing channel %u transactions\n",
ret, channel_id);
return ret;
}
void gsi_channel_trans_exit(struct gsi_channel *channel)
{
struct gsi_trans_info *trans_info = &channel->trans_info;
gsi_trans_pool_exit(&trans_info->sg_pool);
kfree(trans_info->trans);
kfree(trans_info->map);
}