ce.c 32.7 KB
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/*
 * Copyright (c) 2005-2011 Atheros Communications Inc.
 * Copyright (c) 2011-2013 Qualcomm Atheros, Inc.
 *
 * Permission to use, copy, modify, and/or distribute this software for any
 * purpose with or without fee is hereby granted, provided that the above
 * copyright notice and this permission notice appear in all copies.
 *
 * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
 * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
 * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
 * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
 * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
 * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
 */

#include "hif.h"
#include "pci.h"
#include "ce.h"
#include "debug.h"

/*
 * Support for Copy Engine hardware, which is mainly used for
 * communication between Host and Target over a PCIe interconnect.
 */

/*
 * A single CopyEngine (CE) comprises two "rings":
 *   a source ring
 *   a destination ring
 *
 * Each ring consists of a number of descriptors which specify
 * an address, length, and meta-data.
 *
 * Typically, one side of the PCIe interconnect (Host or Target)
 * controls one ring and the other side controls the other ring.
 * The source side chooses when to initiate a transfer and it
 * chooses what to send (buffer address, length). The destination
 * side keeps a supply of "anonymous receive buffers" available and
 * it handles incoming data as it arrives (when the destination
 * recieves an interrupt).
 *
 * The sender may send a simple buffer (address/length) or it may
 * send a small list of buffers.  When a small list is sent, hardware
 * "gathers" these and they end up in a single destination buffer
 * with a single interrupt.
 *
 * There are several "contexts" managed by this layer -- more, it
 * may seem -- than should be needed. These are provided mainly for
 * maximum flexibility and especially to facilitate a simpler HIF
 * implementation. There are per-CopyEngine recv, send, and watermark
 * contexts. These are supplied by the caller when a recv, send,
 * or watermark handler is established and they are echoed back to
 * the caller when the respective callbacks are invoked. There is
 * also a per-transfer context supplied by the caller when a buffer
 * (or sendlist) is sent and when a buffer is enqueued for recv.
 * These per-transfer contexts are echoed back to the caller when
 * the buffer is sent/received.
 */

static inline void ath10k_ce_dest_ring_write_index_set(struct ath10k *ar,
						       u32 ce_ctrl_addr,
						       unsigned int n)
{
	ath10k_pci_write32(ar, ce_ctrl_addr + DST_WR_INDEX_ADDRESS, n);
}

static inline u32 ath10k_ce_dest_ring_write_index_get(struct ath10k *ar,
						      u32 ce_ctrl_addr)
{
	return ath10k_pci_read32(ar, ce_ctrl_addr + DST_WR_INDEX_ADDRESS);
}

static inline void ath10k_ce_src_ring_write_index_set(struct ath10k *ar,
						      u32 ce_ctrl_addr,
						      unsigned int n)
{
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	ath10k_pci_write32(ar, ce_ctrl_addr + SR_WR_INDEX_ADDRESS, n);
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}

static inline u32 ath10k_ce_src_ring_write_index_get(struct ath10k *ar,
						     u32 ce_ctrl_addr)
{
	return ath10k_pci_read32(ar, ce_ctrl_addr + SR_WR_INDEX_ADDRESS);
}

static inline u32 ath10k_ce_src_ring_read_index_get(struct ath10k *ar,
						    u32 ce_ctrl_addr)
{
	return ath10k_pci_read32(ar, ce_ctrl_addr + CURRENT_SRRI_ADDRESS);
}

static inline void ath10k_ce_src_ring_base_addr_set(struct ath10k *ar,
						    u32 ce_ctrl_addr,
						    unsigned int addr)
{
	ath10k_pci_write32(ar, ce_ctrl_addr + SR_BA_ADDRESS, addr);
}

static inline void ath10k_ce_src_ring_size_set(struct ath10k *ar,
					       u32 ce_ctrl_addr,
					       unsigned int n)
{
	ath10k_pci_write32(ar, ce_ctrl_addr + SR_SIZE_ADDRESS, n);
}

static inline void ath10k_ce_src_ring_dmax_set(struct ath10k *ar,
					       u32 ce_ctrl_addr,
					       unsigned int n)
{
	u32 ctrl1_addr = ath10k_pci_read32((ar),
					   (ce_ctrl_addr) + CE_CTRL1_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + CE_CTRL1_ADDRESS,
			   (ctrl1_addr &  ~CE_CTRL1_DMAX_LENGTH_MASK) |
			   CE_CTRL1_DMAX_LENGTH_SET(n));
}

static inline void ath10k_ce_src_ring_byte_swap_set(struct ath10k *ar,
						    u32 ce_ctrl_addr,
						    unsigned int n)
{
	u32 ctrl1_addr = ath10k_pci_read32(ar, ce_ctrl_addr + CE_CTRL1_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + CE_CTRL1_ADDRESS,
			   (ctrl1_addr & ~CE_CTRL1_SRC_RING_BYTE_SWAP_EN_MASK) |
			   CE_CTRL1_SRC_RING_BYTE_SWAP_EN_SET(n));
}

static inline void ath10k_ce_dest_ring_byte_swap_set(struct ath10k *ar,
						     u32 ce_ctrl_addr,
						     unsigned int n)
{
	u32 ctrl1_addr = ath10k_pci_read32(ar, ce_ctrl_addr + CE_CTRL1_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + CE_CTRL1_ADDRESS,
			   (ctrl1_addr & ~CE_CTRL1_DST_RING_BYTE_SWAP_EN_MASK) |
			   CE_CTRL1_DST_RING_BYTE_SWAP_EN_SET(n));
}

static inline u32 ath10k_ce_dest_ring_read_index_get(struct ath10k *ar,
						     u32 ce_ctrl_addr)
{
	return ath10k_pci_read32(ar, ce_ctrl_addr + CURRENT_DRRI_ADDRESS);
}

static inline void ath10k_ce_dest_ring_base_addr_set(struct ath10k *ar,
						     u32 ce_ctrl_addr,
						     u32 addr)
{
	ath10k_pci_write32(ar, ce_ctrl_addr + DR_BA_ADDRESS, addr);
}

static inline void ath10k_ce_dest_ring_size_set(struct ath10k *ar,
						u32 ce_ctrl_addr,
						unsigned int n)
{
	ath10k_pci_write32(ar, ce_ctrl_addr + DR_SIZE_ADDRESS, n);
}

static inline void ath10k_ce_src_ring_highmark_set(struct ath10k *ar,
						   u32 ce_ctrl_addr,
						   unsigned int n)
{
	u32 addr = ath10k_pci_read32(ar, ce_ctrl_addr + SRC_WATERMARK_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + SRC_WATERMARK_ADDRESS,
			   (addr & ~SRC_WATERMARK_HIGH_MASK) |
			   SRC_WATERMARK_HIGH_SET(n));
}

static inline void ath10k_ce_src_ring_lowmark_set(struct ath10k *ar,
						  u32 ce_ctrl_addr,
						  unsigned int n)
{
	u32 addr = ath10k_pci_read32(ar, ce_ctrl_addr + SRC_WATERMARK_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + SRC_WATERMARK_ADDRESS,
			   (addr & ~SRC_WATERMARK_LOW_MASK) |
			   SRC_WATERMARK_LOW_SET(n));
}

static inline void ath10k_ce_dest_ring_highmark_set(struct ath10k *ar,
						    u32 ce_ctrl_addr,
						    unsigned int n)
{
	u32 addr = ath10k_pci_read32(ar, ce_ctrl_addr + DST_WATERMARK_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + DST_WATERMARK_ADDRESS,
			   (addr & ~DST_WATERMARK_HIGH_MASK) |
			   DST_WATERMARK_HIGH_SET(n));
}

static inline void ath10k_ce_dest_ring_lowmark_set(struct ath10k *ar,
						   u32 ce_ctrl_addr,
						   unsigned int n)
{
	u32 addr = ath10k_pci_read32(ar, ce_ctrl_addr + DST_WATERMARK_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + DST_WATERMARK_ADDRESS,
			   (addr & ~DST_WATERMARK_LOW_MASK) |
			   DST_WATERMARK_LOW_SET(n));
}

static inline void ath10k_ce_copy_complete_inter_enable(struct ath10k *ar,
							u32 ce_ctrl_addr)
{
	u32 host_ie_addr = ath10k_pci_read32(ar,
					     ce_ctrl_addr + HOST_IE_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + HOST_IE_ADDRESS,
			   host_ie_addr | HOST_IE_COPY_COMPLETE_MASK);
}

static inline void ath10k_ce_copy_complete_intr_disable(struct ath10k *ar,
							u32 ce_ctrl_addr)
{
	u32 host_ie_addr = ath10k_pci_read32(ar,
					     ce_ctrl_addr + HOST_IE_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + HOST_IE_ADDRESS,
			   host_ie_addr & ~HOST_IE_COPY_COMPLETE_MASK);
}

static inline void ath10k_ce_watermark_intr_disable(struct ath10k *ar,
						    u32 ce_ctrl_addr)
{
	u32 host_ie_addr = ath10k_pci_read32(ar,
					     ce_ctrl_addr + HOST_IE_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + HOST_IE_ADDRESS,
			   host_ie_addr & ~CE_WATERMARK_MASK);
}

static inline void ath10k_ce_error_intr_enable(struct ath10k *ar,
					       u32 ce_ctrl_addr)
{
	u32 misc_ie_addr = ath10k_pci_read32(ar,
					     ce_ctrl_addr + MISC_IE_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + MISC_IE_ADDRESS,
			   misc_ie_addr | CE_ERROR_MASK);
}

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static inline void ath10k_ce_error_intr_disable(struct ath10k *ar,
						u32 ce_ctrl_addr)
{
	u32 misc_ie_addr = ath10k_pci_read32(ar,
					     ce_ctrl_addr + MISC_IE_ADDRESS);

	ath10k_pci_write32(ar, ce_ctrl_addr + MISC_IE_ADDRESS,
			   misc_ie_addr & ~CE_ERROR_MASK);
}

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static inline void ath10k_ce_engine_int_status_clear(struct ath10k *ar,
						     u32 ce_ctrl_addr,
						     unsigned int mask)
{
	ath10k_pci_write32(ar, ce_ctrl_addr + HOST_IS_ADDRESS, mask);
}

/*
 * Guts of ath10k_ce_send, used by both ath10k_ce_send and
 * ath10k_ce_sendlist_send.
 * The caller takes responsibility for any needed locking.
 */
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int ath10k_ce_send_nolock(struct ath10k_ce_pipe *ce_state,
			  void *per_transfer_context,
			  u32 buffer,
			  unsigned int nbytes,
			  unsigned int transfer_id,
			  unsigned int flags)
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{
	struct ath10k *ar = ce_state->ar;
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	struct ath10k_ce_ring *src_ring = ce_state->src_ring;
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	struct ce_desc *desc, sdesc;
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	unsigned int nentries_mask = src_ring->nentries_mask;
	unsigned int sw_index = src_ring->sw_index;
	unsigned int write_index = src_ring->write_index;
	u32 ctrl_addr = ce_state->ctrl_addr;
	u32 desc_flags = 0;
	int ret = 0;

	if (nbytes > ce_state->src_sz_max)
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		ath10k_warn(ar, "%s: send more we can (nbytes: %d, max: %d)\n",
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			    __func__, nbytes, ce_state->src_sz_max);

	if (unlikely(CE_RING_DELTA(nentries_mask,
				   write_index, sw_index - 1) <= 0)) {
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		ret = -ENOSR;
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		goto exit;
	}

	desc = CE_SRC_RING_TO_DESC(src_ring->base_addr_owner_space,
				   write_index);

	desc_flags |= SM(transfer_id, CE_DESC_FLAGS_META_DATA);

	if (flags & CE_SEND_FLAG_GATHER)
		desc_flags |= CE_DESC_FLAGS_GATHER;
	if (flags & CE_SEND_FLAG_BYTE_SWAP)
		desc_flags |= CE_DESC_FLAGS_BYTE_SWAP;

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	sdesc.addr   = __cpu_to_le32(buffer);
	sdesc.nbytes = __cpu_to_le16(nbytes);
	sdesc.flags  = __cpu_to_le16(desc_flags);
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	*desc = sdesc;
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	src_ring->per_transfer_context[write_index] = per_transfer_context;

	/* Update Source Ring Write Index */
	write_index = CE_RING_IDX_INCR(nentries_mask, write_index);

	/* WORKAROUND */
	if (!(flags & CE_SEND_FLAG_GATHER))
		ath10k_ce_src_ring_write_index_set(ar, ctrl_addr, write_index);

	src_ring->write_index = write_index;
exit:
	return ret;
}

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void __ath10k_ce_send_revert(struct ath10k_ce_pipe *pipe)
{
	struct ath10k *ar = pipe->ar;
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	struct ath10k_ce_ring *src_ring = pipe->src_ring;
	u32 ctrl_addr = pipe->ctrl_addr;

	lockdep_assert_held(&ar_pci->ce_lock);

	/*
	 * This function must be called only if there is an incomplete
	 * scatter-gather transfer (before index register is updated)
	 * that needs to be cleaned up.
	 */
	if (WARN_ON_ONCE(src_ring->write_index == src_ring->sw_index))
		return;

	if (WARN_ON_ONCE(src_ring->write_index ==
			 ath10k_ce_src_ring_write_index_get(ar, ctrl_addr)))
		return;

	src_ring->write_index--;
	src_ring->write_index &= src_ring->nentries_mask;

	src_ring->per_transfer_context[src_ring->write_index] = NULL;
}

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int ath10k_ce_send(struct ath10k_ce_pipe *ce_state,
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		   void *per_transfer_context,
		   u32 buffer,
		   unsigned int nbytes,
		   unsigned int transfer_id,
		   unsigned int flags)
{
	struct ath10k *ar = ce_state->ar;
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	int ret;

	spin_lock_bh(&ar_pci->ce_lock);
	ret = ath10k_ce_send_nolock(ce_state, per_transfer_context,
				    buffer, nbytes, transfer_id, flags);
	spin_unlock_bh(&ar_pci->ce_lock);

	return ret;
}

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int ath10k_ce_num_free_src_entries(struct ath10k_ce_pipe *pipe)
{
	struct ath10k *ar = pipe->ar;
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	int delta;

	spin_lock_bh(&ar_pci->ce_lock);
	delta = CE_RING_DELTA(pipe->src_ring->nentries_mask,
			      pipe->src_ring->write_index,
			      pipe->src_ring->sw_index - 1);
	spin_unlock_bh(&ar_pci->ce_lock);

	return delta;
}

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int __ath10k_ce_rx_num_free_bufs(struct ath10k_ce_pipe *pipe)
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{
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	struct ath10k *ar = pipe->ar;
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	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
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	struct ath10k_ce_ring *dest_ring = pipe->dest_ring;
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	unsigned int nentries_mask = dest_ring->nentries_mask;
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	unsigned int write_index = dest_ring->write_index;
	unsigned int sw_index = dest_ring->sw_index;

	lockdep_assert_held(&ar_pci->ce_lock);

	return CE_RING_DELTA(nentries_mask, write_index, sw_index - 1);
}

int __ath10k_ce_rx_post_buf(struct ath10k_ce_pipe *pipe, void *ctx, u32 paddr)
{
	struct ath10k *ar = pipe->ar;
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	struct ath10k_ce_ring *dest_ring = pipe->dest_ring;
	unsigned int nentries_mask = dest_ring->nentries_mask;
	unsigned int write_index = dest_ring->write_index;
	unsigned int sw_index = dest_ring->sw_index;
	struct ce_desc *base = dest_ring->base_addr_owner_space;
	struct ce_desc *desc = CE_DEST_RING_TO_DESC(base, write_index);
	u32 ctrl_addr = pipe->ctrl_addr;

	lockdep_assert_held(&ar_pci->ce_lock);

	if (CE_RING_DELTA(nentries_mask, write_index, sw_index - 1) == 0)
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		return -ENOSPC;
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	desc->addr = __cpu_to_le32(paddr);
	desc->nbytes = 0;

	dest_ring->per_transfer_context[write_index] = ctx;
	write_index = CE_RING_IDX_INCR(nentries_mask, write_index);
	ath10k_ce_dest_ring_write_index_set(ar, ctrl_addr, write_index);
	dest_ring->write_index = write_index;

	return 0;
}

int ath10k_ce_rx_post_buf(struct ath10k_ce_pipe *pipe, void *ctx, u32 paddr)
{
	struct ath10k *ar = pipe->ar;
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
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	int ret;

	spin_lock_bh(&ar_pci->ce_lock);
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	ret = __ath10k_ce_rx_post_buf(pipe, ctx, paddr);
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	spin_unlock_bh(&ar_pci->ce_lock);
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	return ret;
}

/*
 * Guts of ath10k_ce_completed_recv_next.
 * The caller takes responsibility for any necessary locking.
 */
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int ath10k_ce_completed_recv_next_nolock(struct ath10k_ce_pipe *ce_state,
					 void **per_transfer_contextp,
					 u32 *bufferp,
					 unsigned int *nbytesp,
					 unsigned int *transfer_idp,
					 unsigned int *flagsp)
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{
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	struct ath10k_ce_ring *dest_ring = ce_state->dest_ring;
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	unsigned int nentries_mask = dest_ring->nentries_mask;
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	struct ath10k *ar = ce_state->ar;
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	unsigned int sw_index = dest_ring->sw_index;

	struct ce_desc *base = dest_ring->base_addr_owner_space;
	struct ce_desc *desc = CE_DEST_RING_TO_DESC(base, sw_index);
	struct ce_desc sdesc;
	u16 nbytes;

	/* Copy in one go for performance reasons */
	sdesc = *desc;

	nbytes = __le16_to_cpu(sdesc.nbytes);
	if (nbytes == 0) {
		/*
		 * This closes a relatively unusual race where the Host
		 * sees the updated DRRI before the update to the
		 * corresponding descriptor has completed. We treat this
		 * as a descriptor that is not yet done.
		 */
		return -EIO;
	}

	desc->nbytes = 0;

	/* Return data from completed destination descriptor */
	*bufferp = __le32_to_cpu(sdesc.addr);
	*nbytesp = nbytes;
	*transfer_idp = MS(__le16_to_cpu(sdesc.flags), CE_DESC_FLAGS_META_DATA);

	if (__le16_to_cpu(sdesc.flags) & CE_DESC_FLAGS_BYTE_SWAP)
		*flagsp = CE_RECV_FLAG_SWAPPED;
	else
		*flagsp = 0;

	if (per_transfer_contextp)
		*per_transfer_contextp =
			dest_ring->per_transfer_context[sw_index];

	/* sanity */
	dest_ring->per_transfer_context[sw_index] = NULL;

	/* Update sw_index */
	sw_index = CE_RING_IDX_INCR(nentries_mask, sw_index);
	dest_ring->sw_index = sw_index;

	return 0;
}

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int ath10k_ce_completed_recv_next(struct ath10k_ce_pipe *ce_state,
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				  void **per_transfer_contextp,
				  u32 *bufferp,
				  unsigned int *nbytesp,
				  unsigned int *transfer_idp,
				  unsigned int *flagsp)
{
	struct ath10k *ar = ce_state->ar;
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	int ret;

	spin_lock_bh(&ar_pci->ce_lock);
	ret = ath10k_ce_completed_recv_next_nolock(ce_state,
						   per_transfer_contextp,
						   bufferp, nbytesp,
						   transfer_idp, flagsp);
	spin_unlock_bh(&ar_pci->ce_lock);

	return ret;
}

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int ath10k_ce_revoke_recv_next(struct ath10k_ce_pipe *ce_state,
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			       void **per_transfer_contextp,
			       u32 *bufferp)
{
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	struct ath10k_ce_ring *dest_ring;
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	unsigned int nentries_mask;
	unsigned int sw_index;
	unsigned int write_index;
	int ret;
	struct ath10k *ar;
	struct ath10k_pci *ar_pci;

	dest_ring = ce_state->dest_ring;

	if (!dest_ring)
		return -EIO;

	ar = ce_state->ar;
	ar_pci = ath10k_pci_priv(ar);

	spin_lock_bh(&ar_pci->ce_lock);

	nentries_mask = dest_ring->nentries_mask;
	sw_index = dest_ring->sw_index;
	write_index = dest_ring->write_index;
	if (write_index != sw_index) {
		struct ce_desc *base = dest_ring->base_addr_owner_space;
		struct ce_desc *desc = CE_DEST_RING_TO_DESC(base, sw_index);

		/* Return data from completed destination descriptor */
		*bufferp = __le32_to_cpu(desc->addr);

		if (per_transfer_contextp)
			*per_transfer_contextp =
				dest_ring->per_transfer_context[sw_index];

		/* sanity */
		dest_ring->per_transfer_context[sw_index] = NULL;
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		desc->nbytes = 0;
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		/* Update sw_index */
		sw_index = CE_RING_IDX_INCR(nentries_mask, sw_index);
		dest_ring->sw_index = sw_index;
		ret = 0;
	} else {
		ret = -EIO;
	}

	spin_unlock_bh(&ar_pci->ce_lock);

	return ret;
}

/*
 * Guts of ath10k_ce_completed_send_next.
 * The caller takes responsibility for any necessary locking.
 */
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int ath10k_ce_completed_send_next_nolock(struct ath10k_ce_pipe *ce_state,
					 void **per_transfer_contextp,
					 u32 *bufferp,
					 unsigned int *nbytesp,
					 unsigned int *transfer_idp)
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{
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	struct ath10k_ce_ring *src_ring = ce_state->src_ring;
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	u32 ctrl_addr = ce_state->ctrl_addr;
	struct ath10k *ar = ce_state->ar;
	unsigned int nentries_mask = src_ring->nentries_mask;
	unsigned int sw_index = src_ring->sw_index;
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	struct ce_desc *sdesc, *sbase;
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	unsigned int read_index;

	if (src_ring->hw_index == sw_index) {
		/*
		 * The SW completion index has caught up with the cached
		 * version of the HW completion index.
		 * Update the cached HW completion index to see whether
		 * the SW has really caught up to the HW, or if the cached
		 * value of the HW index has become stale.
		 */
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		read_index = ath10k_ce_src_ring_read_index_get(ar, ctrl_addr);
		if (read_index == 0xffffffff)
			return -ENODEV;

		read_index &= nentries_mask;
		src_ring->hw_index = read_index;
609
	}
610

611 612
	read_index = src_ring->hw_index;

613
	if (read_index == sw_index)
614
		return -EIO;
615

616
	sbase = src_ring->base_addr_owner_space;
617
	sdesc = CE_SRC_RING_TO_DESC(sbase, sw_index);
618

619 620 621 622 623
	/* Return data from completed source descriptor */
	*bufferp = __le32_to_cpu(sdesc->addr);
	*nbytesp = __le16_to_cpu(sdesc->nbytes);
	*transfer_idp = MS(__le16_to_cpu(sdesc->flags),
			   CE_DESC_FLAGS_META_DATA);
624

625 626 627
	if (per_transfer_contextp)
		*per_transfer_contextp =
			src_ring->per_transfer_context[sw_index];
628

629 630
	/* sanity */
	src_ring->per_transfer_context[sw_index] = NULL;
631

632 633 634 635 636
	/* Update sw_index */
	sw_index = CE_RING_IDX_INCR(nentries_mask, sw_index);
	src_ring->sw_index = sw_index;

	return 0;
637 638 639
}

/* NB: Modeled after ath10k_ce_completed_send_next */
640
int ath10k_ce_cancel_send_next(struct ath10k_ce_pipe *ce_state,
641 642 643 644 645
			       void **per_transfer_contextp,
			       u32 *bufferp,
			       unsigned int *nbytesp,
			       unsigned int *transfer_idp)
{
646
	struct ath10k_ce_ring *src_ring;
647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697
	unsigned int nentries_mask;
	unsigned int sw_index;
	unsigned int write_index;
	int ret;
	struct ath10k *ar;
	struct ath10k_pci *ar_pci;

	src_ring = ce_state->src_ring;

	if (!src_ring)
		return -EIO;

	ar = ce_state->ar;
	ar_pci = ath10k_pci_priv(ar);

	spin_lock_bh(&ar_pci->ce_lock);

	nentries_mask = src_ring->nentries_mask;
	sw_index = src_ring->sw_index;
	write_index = src_ring->write_index;

	if (write_index != sw_index) {
		struct ce_desc *base = src_ring->base_addr_owner_space;
		struct ce_desc *desc = CE_SRC_RING_TO_DESC(base, sw_index);

		/* Return data from completed source descriptor */
		*bufferp = __le32_to_cpu(desc->addr);
		*nbytesp = __le16_to_cpu(desc->nbytes);
		*transfer_idp = MS(__le16_to_cpu(desc->flags),
						CE_DESC_FLAGS_META_DATA);

		if (per_transfer_contextp)
			*per_transfer_contextp =
				src_ring->per_transfer_context[sw_index];

		/* sanity */
		src_ring->per_transfer_context[sw_index] = NULL;

		/* Update sw_index */
		sw_index = CE_RING_IDX_INCR(nentries_mask, sw_index);
		src_ring->sw_index = sw_index;
		ret = 0;
	} else {
		ret = -EIO;
	}

	spin_unlock_bh(&ar_pci->ce_lock);

	return ret;
}

698
int ath10k_ce_completed_send_next(struct ath10k_ce_pipe *ce_state,
699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726
				  void **per_transfer_contextp,
				  u32 *bufferp,
				  unsigned int *nbytesp,
				  unsigned int *transfer_idp)
{
	struct ath10k *ar = ce_state->ar;
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	int ret;

	spin_lock_bh(&ar_pci->ce_lock);
	ret = ath10k_ce_completed_send_next_nolock(ce_state,
						   per_transfer_contextp,
						   bufferp, nbytesp,
						   transfer_idp);
	spin_unlock_bh(&ar_pci->ce_lock);

	return ret;
}

/*
 * Guts of interrupt handler for per-engine interrupts on a particular CE.
 *
 * Invokes registered callbacks for recv_complete,
 * send_complete, and watermarks.
 */
void ath10k_ce_per_engine_service(struct ath10k *ar, unsigned int ce_id)
{
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
727
	struct ath10k_ce_pipe *ce_state = &ar_pci->ce_states[ce_id];
728 729 730 731 732 733 734 735
	u32 ctrl_addr = ce_state->ctrl_addr;

	spin_lock_bh(&ar_pci->ce_lock);

	/* Clear the copy-complete interrupts that will be handled here. */
	ath10k_ce_engine_int_status_clear(ar, ctrl_addr,
					  HOST_IS_COPY_COMPLETE_MASK);

736
	spin_unlock_bh(&ar_pci->ce_lock);
737

738 739 740 741 742 743 744
	if (ce_state->recv_cb)
		ce_state->recv_cb(ce_state);

	if (ce_state->send_cb)
		ce_state->send_cb(ce_state);

	spin_lock_bh(&ar_pci->ce_lock);
745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762

	/*
	 * Misc CE interrupts are not being handled, but still need
	 * to be cleared.
	 */
	ath10k_ce_engine_int_status_clear(ar, ctrl_addr, CE_WATERMARK_MASK);

	spin_unlock_bh(&ar_pci->ce_lock);
}

/*
 * Handler for per-engine interrupts on ALL active CEs.
 * This is used in cases where the system is sharing a
 * single interrput for all CEs
 */

void ath10k_ce_per_engine_service_any(struct ath10k *ar)
{
763
	int ce_id;
764 765 766 767
	u32 intr_summary;

	intr_summary = CE_INTERRUPT_SUMMARY(ar);

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	for (ce_id = 0; intr_summary && (ce_id < CE_COUNT); ce_id++) {
769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785
		if (intr_summary & (1 << ce_id))
			intr_summary &= ~(1 << ce_id);
		else
			/* no intr pending on this CE */
			continue;

		ath10k_ce_per_engine_service(ar, ce_id);
	}
}

/*
 * Adjust interrupts for the copy complete handler.
 * If it's needed for either send or recv, then unmask
 * this interrupt; otherwise, mask it.
 *
 * Called with ce_lock held.
 */
786
static void ath10k_ce_per_engine_handler_adjust(struct ath10k_ce_pipe *ce_state)
787 788 789
{
	u32 ctrl_addr = ce_state->ctrl_addr;
	struct ath10k *ar = ce_state->ar;
790
	bool disable_copy_compl_intr = ce_state->attr_flags & CE_ATTR_DIS_INTR;
791 792 793 794 795 796 797 798 799 800

	if ((!disable_copy_compl_intr) &&
	    (ce_state->send_cb || ce_state->recv_cb))
		ath10k_ce_copy_complete_inter_enable(ar, ctrl_addr);
	else
		ath10k_ce_copy_complete_intr_disable(ar, ctrl_addr);

	ath10k_ce_watermark_intr_disable(ar, ctrl_addr);
}

801
int ath10k_ce_disable_interrupts(struct ath10k *ar)
802
{
803
	int ce_id;
804

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	for (ce_id = 0; ce_id < CE_COUNT; ce_id++) {
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		u32 ctrl_addr = ath10k_ce_base_address(ar, ce_id);
807 808

		ath10k_ce_copy_complete_intr_disable(ar, ctrl_addr);
809 810
		ath10k_ce_error_intr_disable(ar, ctrl_addr);
		ath10k_ce_watermark_intr_disable(ar, ctrl_addr);
811
	}
812 813

	return 0;
814 815
}

816
void ath10k_ce_enable_interrupts(struct ath10k *ar)
817 818
{
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
819
	int ce_id;
820

821 822 823 824
	/* Skip the last copy engine, CE7 the diagnostic window, as that
	 * uses polling and isn't initialized for interrupts.
	 */
	for (ce_id = 0; ce_id < CE_COUNT - 1; ce_id++)
825
		ath10k_ce_per_engine_handler_adjust(&ar_pci->ce_states[ce_id]);
826 827 828 829 830 831
}

static int ath10k_ce_init_src_ring(struct ath10k *ar,
				   unsigned int ce_id,
				   const struct ce_attr *attr)
{
832 833 834
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	struct ath10k_ce_pipe *ce_state = &ar_pci->ce_states[ce_id];
	struct ath10k_ce_ring *src_ring = ce_state->src_ring;
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	u32 nentries, ctrl_addr = ath10k_ce_base_address(ar, ce_id);
836

837
	nentries = roundup_pow_of_two(attr->src_nentries);
838

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839 840 841
	memset(src_ring->base_addr_owner_space, 0,
	       nentries * sizeof(struct ce_desc));

842
	src_ring->sw_index = ath10k_ce_src_ring_read_index_get(ar, ctrl_addr);
843
	src_ring->sw_index &= src_ring->nentries_mask;
844 845 846 847
	src_ring->hw_index = src_ring->sw_index;

	src_ring->write_index =
		ath10k_ce_src_ring_write_index_get(ar, ctrl_addr);
848
	src_ring->write_index &= src_ring->nentries_mask;
849

850 851 852 853 854 855 856 857
	ath10k_ce_src_ring_base_addr_set(ar, ctrl_addr,
					 src_ring->base_addr_ce_space);
	ath10k_ce_src_ring_size_set(ar, ctrl_addr, nentries);
	ath10k_ce_src_ring_dmax_set(ar, ctrl_addr, attr->src_sz_max);
	ath10k_ce_src_ring_byte_swap_set(ar, ctrl_addr, 0);
	ath10k_ce_src_ring_lowmark_set(ar, ctrl_addr, 0);
	ath10k_ce_src_ring_highmark_set(ar, ctrl_addr, nentries);

858
	ath10k_dbg(ar, ATH10K_DBG_BOOT,
859 860 861 862 863 864 865 866 867 868 869 870 871
		   "boot init ce src ring id %d entries %d base_addr %p\n",
		   ce_id, nentries, src_ring->base_addr_owner_space);

	return 0;
}

static int ath10k_ce_init_dest_ring(struct ath10k *ar,
				    unsigned int ce_id,
				    const struct ce_attr *attr)
{
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	struct ath10k_ce_pipe *ce_state = &ar_pci->ce_states[ce_id];
	struct ath10k_ce_ring *dest_ring = ce_state->dest_ring;
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	u32 nentries, ctrl_addr = ath10k_ce_base_address(ar, ce_id);
873 874 875

	nentries = roundup_pow_of_two(attr->dest_nentries);

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876 877 878
	memset(dest_ring->base_addr_owner_space, 0,
	       nentries * sizeof(struct ce_desc));

879 880 881 882 883 884 885 886 887 888 889 890 891
	dest_ring->sw_index = ath10k_ce_dest_ring_read_index_get(ar, ctrl_addr);
	dest_ring->sw_index &= dest_ring->nentries_mask;
	dest_ring->write_index =
		ath10k_ce_dest_ring_write_index_get(ar, ctrl_addr);
	dest_ring->write_index &= dest_ring->nentries_mask;

	ath10k_ce_dest_ring_base_addr_set(ar, ctrl_addr,
					  dest_ring->base_addr_ce_space);
	ath10k_ce_dest_ring_size_set(ar, ctrl_addr, nentries);
	ath10k_ce_dest_ring_byte_swap_set(ar, ctrl_addr, 0);
	ath10k_ce_dest_ring_lowmark_set(ar, ctrl_addr, 0);
	ath10k_ce_dest_ring_highmark_set(ar, ctrl_addr, nentries);

892
	ath10k_dbg(ar, ATH10K_DBG_BOOT,
893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917
		   "boot ce dest ring id %d entries %d base_addr %p\n",
		   ce_id, nentries, dest_ring->base_addr_owner_space);

	return 0;
}

static struct ath10k_ce_ring *
ath10k_ce_alloc_src_ring(struct ath10k *ar, unsigned int ce_id,
			 const struct ce_attr *attr)
{
	struct ath10k_ce_ring *src_ring;
	u32 nentries = attr->src_nentries;
	dma_addr_t base_addr;

	nentries = roundup_pow_of_two(nentries);

	src_ring = kzalloc(sizeof(*src_ring) +
			   (nentries *
			    sizeof(*src_ring->per_transfer_context)),
			   GFP_KERNEL);
	if (src_ring == NULL)
		return ERR_PTR(-ENOMEM);

	src_ring->nentries = nentries;
	src_ring->nentries_mask = nentries - 1;
918 919 920 921 922 923

	/*
	 * Legacy platforms that do not support cache
	 * coherent DMA are unsupported
	 */
	src_ring->base_addr_owner_space_unaligned =
924 925 926 927
		dma_alloc_coherent(ar->dev,
				   (nentries * sizeof(struct ce_desc) +
				    CE_DESC_RING_ALIGN),
				   &base_addr, GFP_KERNEL);
928
	if (!src_ring->base_addr_owner_space_unaligned) {
929 930
		kfree(src_ring);
		return ERR_PTR(-ENOMEM);
931 932
	}

933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948
	src_ring->base_addr_ce_space_unaligned = base_addr;

	src_ring->base_addr_owner_space = PTR_ALIGN(
			src_ring->base_addr_owner_space_unaligned,
			CE_DESC_RING_ALIGN);
	src_ring->base_addr_ce_space = ALIGN(
			src_ring->base_addr_ce_space_unaligned,
			CE_DESC_RING_ALIGN);

	/*
	 * Also allocate a shadow src ring in regular
	 * mem to use for faster access.
	 */
	src_ring->shadow_base_unaligned =
		kmalloc((nentries * sizeof(struct ce_desc) +
			 CE_DESC_RING_ALIGN), GFP_KERNEL);
949
	if (!src_ring->shadow_base_unaligned) {
950 951 952 953 954
		dma_free_coherent(ar->dev,
				  (nentries * sizeof(struct ce_desc) +
				   CE_DESC_RING_ALIGN),
				  src_ring->base_addr_owner_space,
				  src_ring->base_addr_ce_space);
955 956
		kfree(src_ring);
		return ERR_PTR(-ENOMEM);
957
	}
958 959 960 961 962

	src_ring->shadow_base = PTR_ALIGN(
			src_ring->shadow_base_unaligned,
			CE_DESC_RING_ALIGN);

963
	return src_ring;
964 965
}

966 967 968
static struct ath10k_ce_ring *
ath10k_ce_alloc_dest_ring(struct ath10k *ar, unsigned int ce_id,
			  const struct ce_attr *attr)
969
{
970
	struct ath10k_ce_ring *dest_ring;
971
	u32 nentries;
972 973
	dma_addr_t base_addr;

974
	nentries = roundup_pow_of_two(attr->dest_nentries);
975

976 977 978 979 980 981
	dest_ring = kzalloc(sizeof(*dest_ring) +
			    (nentries *
			     sizeof(*dest_ring->per_transfer_context)),
			    GFP_KERNEL);
	if (dest_ring == NULL)
		return ERR_PTR(-ENOMEM);
982 983 984 985 986 987 988 989 990

	dest_ring->nentries = nentries;
	dest_ring->nentries_mask = nentries - 1;

	/*
	 * Legacy platforms that do not support cache
	 * coherent DMA are unsupported
	 */
	dest_ring->base_addr_owner_space_unaligned =
991 992 993 994
		dma_alloc_coherent(ar->dev,
				   (nentries * sizeof(struct ce_desc) +
				    CE_DESC_RING_ALIGN),
				   &base_addr, GFP_KERNEL);
995
	if (!dest_ring->base_addr_owner_space_unaligned) {
996 997
		kfree(dest_ring);
		return ERR_PTR(-ENOMEM);
998 999
	}

1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015
	dest_ring->base_addr_ce_space_unaligned = base_addr;

	/*
	 * Correctly initialize memory to 0 to prevent garbage
	 * data crashing system when download firmware
	 */
	memset(dest_ring->base_addr_owner_space_unaligned, 0,
	       nentries * sizeof(struct ce_desc) + CE_DESC_RING_ALIGN);

	dest_ring->base_addr_owner_space = PTR_ALIGN(
			dest_ring->base_addr_owner_space_unaligned,
			CE_DESC_RING_ALIGN);
	dest_ring->base_addr_ce_space = ALIGN(
			dest_ring->base_addr_ce_space_unaligned,
			CE_DESC_RING_ALIGN);

1016
	return dest_ring;
1017 1018 1019 1020 1021 1022 1023 1024 1025
}

/*
 * Initialize a Copy Engine based on caller-supplied attributes.
 * This may be called once to initialize both source and destination
 * rings or it may be called twice for separate source and destination
 * initialization. It may be that only one side or the other is
 * initialized by software/firmware.
 */
1026
int ath10k_ce_init_pipe(struct ath10k *ar, unsigned int ce_id,
1027
			const struct ce_attr *attr)
1028
{
1029
	int ret;
1030 1031

	if (attr->src_nentries) {
1032
		ret = ath10k_ce_init_src_ring(ar, ce_id, attr);
1033
		if (ret) {
1034
			ath10k_err(ar, "Failed to initialize CE src ring for ID: %d (%d)\n",
1035
				   ce_id, ret);
1036
			return ret;
1037 1038 1039 1040
		}
	}

	if (attr->dest_nentries) {
1041
		ret = ath10k_ce_init_dest_ring(ar, ce_id, attr);
1042
		if (ret) {
1043
			ath10k_err(ar, "Failed to initialize CE dest ring for ID: %d (%d)\n",
1044
				   ce_id, ret);
1045
			return ret;
1046 1047 1048
		}
	}

1049
	return 0;
1050 1051
}

1052
static void ath10k_ce_deinit_src_ring(struct ath10k *ar, unsigned int ce_id)
1053
{
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	u32 ctrl_addr = ath10k_ce_base_address(ar, ce_id);
1055 1056 1057 1058 1059 1060 1061 1062 1063

	ath10k_ce_src_ring_base_addr_set(ar, ctrl_addr, 0);
	ath10k_ce_src_ring_size_set(ar, ctrl_addr, 0);
	ath10k_ce_src_ring_dmax_set(ar, ctrl_addr, 0);
	ath10k_ce_src_ring_highmark_set(ar, ctrl_addr, 0);
}

static void ath10k_ce_deinit_dest_ring(struct ath10k *ar, unsigned int ce_id)
{
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	u32 ctrl_addr = ath10k_ce_base_address(ar, ce_id);
1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077

	ath10k_ce_dest_ring_base_addr_set(ar, ctrl_addr, 0);
	ath10k_ce_dest_ring_size_set(ar, ctrl_addr, 0);
	ath10k_ce_dest_ring_highmark_set(ar, ctrl_addr, 0);
}

void ath10k_ce_deinit_pipe(struct ath10k *ar, unsigned int ce_id)
{
	ath10k_ce_deinit_src_ring(ar, ce_id);
	ath10k_ce_deinit_dest_ring(ar, ce_id);
}

int ath10k_ce_alloc_pipe(struct ath10k *ar, int ce_id,
1078
			 const struct ce_attr *attr)
1079 1080 1081 1082 1083
{
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	struct ath10k_ce_pipe *ce_state = &ar_pci->ce_states[ce_id];
	int ret;

1084 1085 1086 1087 1088 1089 1090 1091 1092 1093
	/*
	 * Make sure there's enough CE ringbuffer entries for HTT TX to avoid
	 * additional TX locking checks.
	 *
	 * For the lack of a better place do the check here.
	 */
	BUILD_BUG_ON(2*TARGET_NUM_MSDU_DESC >
		     (CE_HTT_H2T_MSG_SRC_NENTRIES - 1));
	BUILD_BUG_ON(2*TARGET_10X_NUM_MSDU_DESC >
		     (CE_HTT_H2T_MSG_SRC_NENTRIES - 1));
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	BUILD_BUG_ON(2*TARGET_TLV_NUM_MSDU_DESC >
		     (CE_HTT_H2T_MSG_SRC_NENTRIES - 1));
1096 1097 1098

	ce_state->ar = ar;
	ce_state->id = ce_id;
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	ce_state->ctrl_addr = ath10k_ce_base_address(ar, ce_id);
1100 1101 1102 1103
	ce_state->attr_flags = attr->flags;
	ce_state->src_sz_max = attr->src_sz_max;

	if (attr->src_nentries)
1104
		ce_state->send_cb = attr->send_cb;
1105 1106

	if (attr->dest_nentries)
1107
		ce_state->recv_cb = attr->recv_cb;
1108

1109 1110 1111 1112
	if (attr->src_nentries) {
		ce_state->src_ring = ath10k_ce_alloc_src_ring(ar, ce_id, attr);
		if (IS_ERR(ce_state->src_ring)) {
			ret = PTR_ERR(ce_state->src_ring);
1113
			ath10k_err(ar, "failed to allocate copy engine source ring %d: %d\n",
1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124
				   ce_id, ret);
			ce_state->src_ring = NULL;
			return ret;
		}
	}

	if (attr->dest_nentries) {
		ce_state->dest_ring = ath10k_ce_alloc_dest_ring(ar, ce_id,
								attr);
		if (IS_ERR(ce_state->dest_ring)) {
			ret = PTR_ERR(ce_state->dest_ring);
1125
			ath10k_err(ar, "failed to allocate copy engine destination ring %d: %d\n",
1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138
				   ce_id, ret);
			ce_state->dest_ring = NULL;
			return ret;
		}
	}

	return 0;
}

void ath10k_ce_free_pipe(struct ath10k *ar, int ce_id)
{
	struct ath10k_pci *ar_pci = ath10k_pci_priv(ar);
	struct ath10k_ce_pipe *ce_state = &ar_pci->ce_states[ce_id];
1139 1140 1141

	if (ce_state->src_ring) {
		kfree(ce_state->src_ring->shadow_base_unaligned);
1142 1143 1144 1145 1146 1147
		dma_free_coherent(ar->dev,
				  (ce_state->src_ring->nentries *
				   sizeof(struct ce_desc) +
				   CE_DESC_RING_ALIGN),
				  ce_state->src_ring->base_addr_owner_space,
				  ce_state->src_ring->base_addr_ce_space);
1148 1149 1150 1151
		kfree(ce_state->src_ring);
	}

	if (ce_state->dest_ring) {
1152 1153 1154 1155 1156 1157
		dma_free_coherent(ar->dev,
				  (ce_state->dest_ring->nentries *
				   sizeof(struct ce_desc) +
				   CE_DESC_RING_ALIGN),
				  ce_state->dest_ring->base_addr_owner_space,
				  ce_state->dest_ring->base_addr_ce_space);
1158 1159
		kfree(ce_state->dest_ring);
	}
1160 1161 1162

	ce_state->src_ring = NULL;
	ce_state->dest_ring = NULL;
1163
}