xref: /freebsd/sys/dev/cxgbe/iw_cxgbe/t4.h (revision 3968a8759027b9bb225b439e47f077b3f5b1171f)
1 /*-
2  * SPDX-License-Identifier: BSD-2-Clause
3  *
4  * Copyright (c) 2009-2013 Chelsio, Inc. All rights reserved.
5  *
6  * This software is available to you under a choice of one of two
7  * licenses.  You may choose to be licensed under the terms of the GNU
8  * General Public License (GPL) Version 2, available from the file
9  * COPYING in the main directory of this source tree, or the
10  * OpenIB.org BSD license below:
11  *
12  *     Redistribution and use in source and binary forms, with or
13  *     without modification, are permitted provided that the following
14  *     conditions are met:
15  *
16  *      - Redistributions of source code must retain the above
17  *        copyright notice, this list of conditions and the following
18  *        disclaimer.
19  *      - Redistributions in binary form must reproduce the above
20  *        copyright notice, this list of conditions and the following
21  *        disclaimer in the documentation and/or other materials
22  *        provided with the distribution.
23  *
24  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
25  * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
26  * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
27  * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
28  * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
29  * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
30  * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
31  * SOFTWARE.
32  */
33 #ifndef __T4_H__
34 #define __T4_H__
35 
36 #include "common/t4_regs_values.h"
37 #include "common/t4_regs.h"
38 /*
39  * Fixme: Adding missing defines
40  */
41 #define SGE_PF_KDOORBELL 0x0
42 #define  QID_MASK    0xffff8000U
43 #define  QID_SHIFT   15
44 #define  QID(x)      ((x) << QID_SHIFT)
45 #define  DBPRIO      0x00004000U
46 #define  PIDX_MASK   0x00003fffU
47 #define  PIDX_SHIFT  0
48 #define  PIDX(x)     ((x) << PIDX_SHIFT)
49 
50 #define SGE_PF_GTS 0x4
51 #define  INGRESSQID_MASK   0xffff0000U
52 #define  INGRESSQID_SHIFT  16
53 #define  INGRESSQID(x)     ((x) << INGRESSQID_SHIFT)
54 #define  TIMERREG_MASK     0x0000e000U
55 #define  TIMERREG_SHIFT    13
56 #define  TIMERREG(x)       ((x) << TIMERREG_SHIFT)
57 #define  SEINTARM_MASK     0x00001000U
58 #define  SEINTARM_SHIFT    12
59 #define  SEINTARM(x)       ((x) << SEINTARM_SHIFT)
60 #define  CIDXINC_MASK      0x00000fffU
61 #define  CIDXINC_SHIFT     0
62 #define  CIDXINC(x)        ((x) << CIDXINC_SHIFT)
63 
64 #define T4_MAX_NUM_PD 65536
65 #define T4_MAX_MR_SIZE (~0ULL)
66 #define T4_PAGESIZE_MASK 0xffffffff000 /* 4KB-8TB */
67 #define T4_FW_MAJ 0
68 #define A_PCIE_MA_SYNC 0x30b4
69 
70 struct t4_status_page {
71 	__be32 rsvd1;	/* flit 0 - hw owns */
72 	__be16 rsvd2;
73 	__be16 qid;
74 	__be16 cidx;
75 	__be16 pidx;
76 	u8 qp_err;	/* flit 1 - sw owns */
77 	u8 db_off;
78 	u8 pad;
79 	u16 host_wq_pidx;
80 	u16 host_cidx;
81 	u16 host_pidx;
82 };
83 
84 #define T4_EQ_ENTRY_SIZE 64
85 
86 #define T4_SQ_NUM_SLOTS 5
87 #define T4_SQ_NUM_BYTES (T4_EQ_ENTRY_SIZE * T4_SQ_NUM_SLOTS)
88 #define T4_MAX_SEND_SGE ((T4_SQ_NUM_BYTES - sizeof(struct fw_ri_send_wr) - \
89 			sizeof(struct fw_ri_isgl)) / sizeof(struct fw_ri_sge))
90 #define T4_MAX_SEND_INLINE ((T4_SQ_NUM_BYTES - sizeof(struct fw_ri_send_wr) - \
91 			sizeof(struct fw_ri_immd)))
92 #define T4_MAX_WRITE_INLINE ((T4_SQ_NUM_BYTES - \
93 			sizeof(struct fw_ri_rdma_write_wr) - \
94 			sizeof(struct fw_ri_immd)))
95 #define T4_MAX_WRITE_SGE ((T4_SQ_NUM_BYTES - \
96 			sizeof(struct fw_ri_rdma_write_wr) - \
97 			sizeof(struct fw_ri_isgl)) / sizeof(struct fw_ri_sge))
98 #define T4_MAX_FR_IMMD ((T4_SQ_NUM_BYTES - sizeof(struct fw_ri_fr_nsmr_wr) - \
99 			sizeof(struct fw_ri_immd)) & ~31UL)
100 #define T4_MAX_FR_IMMD_DEPTH (T4_MAX_FR_IMMD / sizeof(u64))
101 #define T4_MAX_FR_DSGL 1024
102 #define T4_MAX_FR_DSGL_DEPTH (T4_MAX_FR_DSGL / sizeof(u64))
103 #define T4_MAX_FR_FW_DSGL 4096
104 #define T4_MAX_FR_FW_DSGL_DEPTH (T4_MAX_FR_FW_DSGL / sizeof(u64))
105 
106 #define T4_RQ_NUM_SLOTS 2
107 #define T4_RQ_NUM_BYTES (T4_EQ_ENTRY_SIZE * T4_RQ_NUM_SLOTS)
108 #define T4_MAX_RECV_SGE 4
109 
110 #define T4_WRITE_CMPL_MAX_SGL 4
111 
112 union t4_wr {
113 	struct fw_ri_res_wr res;
114 	struct fw_ri_wr ri;
115 	struct fw_ri_rdma_write_wr write;
116 	struct fw_ri_send_wr send;
117 	struct fw_ri_rdma_read_wr read;
118 	struct fw_ri_bind_mw_wr bind;
119 	struct fw_ri_fr_nsmr_wr fr;
120 	struct fw_ri_fr_nsmr_tpte_wr fr_tpte;
121 	struct fw_ri_inv_lstag_wr inv;
122 	struct fw_ri_rdma_write_cmpl_wr write_cmpl;
123 	struct t4_status_page status;
124 	__be64 flits[T4_EQ_ENTRY_SIZE / sizeof(__be64) * T4_SQ_NUM_SLOTS];
125 };
126 
127 union t4_recv_wr {
128 	struct fw_ri_recv_wr recv;
129 	struct t4_status_page status;
130 	__be64 flits[T4_EQ_ENTRY_SIZE / sizeof(__be64) * T4_RQ_NUM_SLOTS];
131 };
132 
init_wr_hdr(union t4_wr * wqe,u16 wrid,enum fw_wr_opcodes opcode,u8 flags,u8 len16)133 static inline void init_wr_hdr(union t4_wr *wqe, u16 wrid,
134 			       enum fw_wr_opcodes opcode, u8 flags, u8 len16)
135 {
136 	wqe->send.opcode = (u8)opcode;
137 	wqe->send.flags = flags;
138 	wqe->send.wrid = wrid;
139 	wqe->send.r1[0] = 0;
140 	wqe->send.r1[1] = 0;
141 	wqe->send.r1[2] = 0;
142 	wqe->send.len16 = len16;
143 }
144 
145 /* CQE/AE status codes */
146 #define T4_ERR_SUCCESS                     0x0
147 #define T4_ERR_STAG                        0x1	/* STAG invalid: either the */
148 						/* STAG is offlimt, being 0, */
149 						/* or STAG_key mismatch */
150 #define T4_ERR_PDID                        0x2	/* PDID mismatch */
151 #define T4_ERR_QPID                        0x3	/* QPID mismatch */
152 #define T4_ERR_ACCESS                      0x4	/* Invalid access right */
153 #define T4_ERR_WRAP                        0x5	/* Wrap error */
154 #define T4_ERR_BOUND                       0x6	/* base and bounds voilation */
155 #define T4_ERR_INVALIDATE_SHARED_MR        0x7	/* attempt to invalidate a  */
156 						/* shared memory region */
157 #define T4_ERR_INVALIDATE_MR_WITH_MW_BOUND 0x8	/* attempt to invalidate a  */
158 						/* shared memory region */
159 #define T4_ERR_ECC                         0x9	/* ECC error detected */
160 #define T4_ERR_ECC_PSTAG                   0xA	/* ECC error detected when  */
161 						/* reading PSTAG for a MW  */
162 						/* Invalidate */
163 #define T4_ERR_PBL_ADDR_BOUND              0xB	/* pbl addr out of bounds:  */
164 						/* software error */
165 #define T4_ERR_SWFLUSH			   0xC	/* SW FLUSHED */
166 #define T4_ERR_CRC                         0x10 /* CRC error */
167 #define T4_ERR_MARKER                      0x11 /* Marker error */
168 #define T4_ERR_PDU_LEN_ERR                 0x12 /* invalid PDU length */
169 #define T4_ERR_OUT_OF_RQE                  0x13 /* out of RQE */
170 #define T4_ERR_DDP_VERSION                 0x14 /* wrong DDP version */
171 #define T4_ERR_RDMA_VERSION                0x15 /* wrong RDMA version */
172 #define T4_ERR_OPCODE                      0x16 /* invalid rdma opcode */
173 #define T4_ERR_DDP_QUEUE_NUM               0x17 /* invalid ddp queue number */
174 #define T4_ERR_MSN                         0x18 /* MSN error */
175 #define T4_ERR_TBIT                        0x19 /* tag bit not set correctly */
176 #define T4_ERR_MO                          0x1A /* MO not 0 for TERMINATE  */
177 						/* or READ_REQ */
178 #define T4_ERR_MSN_GAP                     0x1B
179 #define T4_ERR_MSN_RANGE                   0x1C
180 #define T4_ERR_IRD_OVERFLOW                0x1D
181 #define T4_ERR_RQE_ADDR_BOUND              0x1E /* RQE addr out of bounds:  */
182 						/* software error */
183 #define T4_ERR_INTERNAL_ERR                0x1F /* internal error (opcode  */
184 						/* mismatch) */
185 /*
186  * CQE defs
187  */
188 
189 /*
190  * 64B CQE entries.
191  */
192 struct t4_cqe {
193 	struct rss_header rss;
194 	__be32 header;
195 	__be32 len;
196 	union {
197 		struct {
198 			__be32 stag;
199 			__be32 msn;
200 		} rcqe;
201 		struct {
202 			u32 stag;
203 			u16 nada2;
204 			u16 cidx;
205 		} scqe;
206 		struct {
207 			__be32 wrid_hi;
208 			__be32 wrid_low;
209 		} gen;
210 		u64 drain_cookie;
211 		struct {
212 			__be32 mo;
213 			__be32 msn;
214 			__u64 imm_data;
215 		} imm_data_rcqe;
216 	} u;
217 	__be64 reserved[3];
218 	__be64 bits_type_ts;
219 };
220 
221 /* macros for flit 0 of the cqe */
222 
223 #define S_CQE_QPID        12
224 #define M_CQE_QPID        0xFFFFF
225 #define G_CQE_QPID(x)     ((((x) >> S_CQE_QPID)) & M_CQE_QPID)
226 #define V_CQE_QPID(x)	  ((x)<<S_CQE_QPID)
227 
228 #define S_CQE_SWCQE       11
229 #define M_CQE_SWCQE       0x1
230 #define G_CQE_SWCQE(x)    ((((x) >> S_CQE_SWCQE)) & M_CQE_SWCQE)
231 #define V_CQE_SWCQE(x)	  ((x)<<S_CQE_SWCQE)
232 
233 #define S_CQE_DRAIN       10
234 #define M_CQE_DRAIN       0x1
235 #define G_CQE_DRAIN(x)    ((((x) >> S_CQE_DRAIN)) & M_CQE_DRAIN)
236 #define V_CQE_DRAIN(x)	  ((x)<<S_CQE_DRAIN)
237 
238 #define S_CQE_STATUS      5
239 #define M_CQE_STATUS      0x1F
240 #define G_CQE_STATUS(x)   ((((x) >> S_CQE_STATUS)) & M_CQE_STATUS)
241 #define V_CQE_STATUS(x)   ((x)<<S_CQE_STATUS)
242 
243 #define S_CQE_TYPE        4
244 #define M_CQE_TYPE        0x1
245 #define G_CQE_TYPE(x)     ((((x) >> S_CQE_TYPE)) & M_CQE_TYPE)
246 #define V_CQE_TYPE(x)     ((x)<<S_CQE_TYPE)
247 
248 #define S_CQE_OPCODE      0
249 #define M_CQE_OPCODE      0xF
250 #define G_CQE_OPCODE(x)   ((((x) >> S_CQE_OPCODE)) & M_CQE_OPCODE)
251 #define V_CQE_OPCODE(x)   ((x)<<S_CQE_OPCODE)
252 
253 #define SW_CQE(x)         (G_CQE_SWCQE(be32_to_cpu((x)->header)))
254 #define DRAIN_CQE(x)      (G_CQE_DRAIN(be32_to_cpu((x)->header)))
255 #define CQE_QPID(x)       (G_CQE_QPID(be32_to_cpu((x)->header)))
256 #define CQE_TYPE(x)       (G_CQE_TYPE(be32_to_cpu((x)->header)))
257 #define SQ_TYPE(x)	  (CQE_TYPE((x)))
258 #define RQ_TYPE(x)	  (!CQE_TYPE((x)))
259 #define CQE_STATUS(x)     (G_CQE_STATUS(be32_to_cpu((x)->header)))
260 #define CQE_OPCODE(x)     (G_CQE_OPCODE(be32_to_cpu((x)->header)))
261 
262 #define CQE_SEND_OPCODE(x)(\
263 	(G_CQE_OPCODE(be32_to_cpu((x)->header)) == FW_RI_SEND) || \
264 	(G_CQE_OPCODE(be32_to_cpu((x)->header)) == FW_RI_SEND_WITH_SE) || \
265 	(G_CQE_OPCODE(be32_to_cpu((x)->header)) == FW_RI_SEND_WITH_INV) || \
266 	(G_CQE_OPCODE(be32_to_cpu((x)->header)) == FW_RI_SEND_WITH_SE_INV))
267 
268 #define CQE_LEN(x)        (be32_to_cpu((x)->len))
269 
270 /* used for RQ completion processing */
271 #define CQE_WRID_STAG(x)  (be32_to_cpu((x)->u.rcqe.stag))
272 #define CQE_WRID_MSN(x)   (be32_to_cpu((x)->u.rcqe.msn))
273 #define CQE_IMM_DATA(x)   ((x)->u.imm_data_rcqe.imm_data)
274 
275 /* used for SQ completion processing */
276 #define CQE_WRID_SQ_IDX(x)	((x)->u.scqe.cidx)
277 #define CQE_WRID_FR_STAG(x)     (be32_to_cpu((x)->u.scqe.stag))
278 
279 /* generic accessor macros */
280 #define CQE_WRID_HI(x)		((x)->u.gen.wrid_hi)
281 #define CQE_WRID_LOW(x)		((x)->u.gen.wrid_low)
282 #define CQE_DRAIN_COOKIE(x)	(x)->u.drain_cookie;
283 
284 /* macros for flit 3 of the cqe */
285 #define S_CQE_GENBIT	63
286 #define M_CQE_GENBIT	0x1
287 #define G_CQE_GENBIT(x)	(((x) >> S_CQE_GENBIT) & M_CQE_GENBIT)
288 #define V_CQE_GENBIT(x) ((x)<<S_CQE_GENBIT)
289 
290 #define S_CQE_OVFBIT	62
291 #define M_CQE_OVFBIT	0x1
292 #define G_CQE_OVFBIT(x)	((((x) >> S_CQE_OVFBIT)) & M_CQE_OVFBIT)
293 
294 #define S_CQE_IQTYPE	60
295 #define M_CQE_IQTYPE	0x3
296 #define G_CQE_IQTYPE(x)	((((x) >> S_CQE_IQTYPE)) & M_CQE_IQTYPE)
297 
298 #define M_CQE_TS	0x0fffffffffffffffULL
299 #define G_CQE_TS(x)	((x) & M_CQE_TS)
300 
301 #define CQE_OVFBIT(x)	((unsigned)G_CQE_OVFBIT(be64_to_cpu((x)->bits_type_ts)))
302 #define CQE_GENBIT(x)	((unsigned)G_CQE_GENBIT(be64_to_cpu((x)->bits_type_ts)))
303 #define CQE_TS(x)	(G_CQE_TS(be64_to_cpu((x)->bits_type_ts)))
304 
305 struct t4_swsqe {
306 	u64			wr_id;
307 	struct t4_cqe		cqe;
308 	int			read_len;
309 	int			opcode;
310 	int			complete;
311 	int			signaled;
312 	u16			idx;
313 	int                     flushed;
314 	ktime_t                 host_time;
315 	u64                     sge_ts;
316 };
317 
t4_pgprot_wc(pgprot_t prot)318 static inline pgprot_t t4_pgprot_wc(pgprot_t prot)
319 {
320 #if defined(__i386__) || defined(__x86_64__) || defined(CONFIG_PPC64)
321 	return pgprot_writecombine(prot);
322 #else
323 	return pgprot_noncached(prot);
324 #endif
325 }
326 
327 enum {
328 	T4_SQ_ONCHIP = (1<<0),
329 };
330 
331 struct t4_sq {
332 	union t4_wr *queue;
333 	bus_addr_t dma_addr;
334 	DEFINE_DMA_UNMAP_ADDR(mapping);
335 	unsigned long phys_addr;
336 	struct t4_swsqe *sw_sq;
337 	struct t4_swsqe *oldest_read;
338 	void __iomem *bar2_va;
339 	u64 bar2_pa;
340 	size_t memsize;
341 	u32 bar2_qid;
342 	u32 qid;
343 	u16 in_use;
344 	u16 size;
345 	u16 cidx;
346 	u16 pidx;
347 	u16 wq_pidx;
348 	u16 wq_pidx_inc;
349 	u16 flags;
350 	short flush_cidx;
351 };
352 
353 struct t4_swrqe {
354 	u64 wr_id;
355 };
356 
357 struct t4_rq {
358 	union  t4_recv_wr *queue;
359 	bus_addr_t dma_addr;
360 	DEFINE_DMA_UNMAP_ADDR(mapping);
361 	unsigned long phys_addr;
362 	struct t4_swrqe *sw_rq;
363 	void __iomem *bar2_va;
364 	u64 bar2_pa;
365 	size_t memsize;
366 	u32 bar2_qid;
367 	u32 qid;
368 	u32 msn;
369 	u32 rqt_hwaddr;
370 	u16 rqt_size;
371 	u16 in_use;
372 	u16 size;
373 	u16 cidx;
374 	u16 pidx;
375 	u16 wq_pidx;
376 	u16 wq_pidx_inc;
377 };
378 
379 struct t4_wq {
380 	struct t4_sq sq;
381 	struct t4_rq rq;
382 	struct c4iw_rdev *rdev;
383 	int flushed;
384 };
385 
t4_rqes_posted(struct t4_wq * wq)386 static inline int t4_rqes_posted(struct t4_wq *wq)
387 {
388 	return wq->rq.in_use;
389 }
390 
t4_rq_empty(struct t4_wq * wq)391 static inline int t4_rq_empty(struct t4_wq *wq)
392 {
393 	return wq->rq.in_use == 0;
394 }
395 
t4_rq_full(struct t4_wq * wq)396 static inline int t4_rq_full(struct t4_wq *wq)
397 {
398 	return wq->rq.in_use == (wq->rq.size - 1);
399 }
400 
t4_rq_avail(struct t4_wq * wq)401 static inline u32 t4_rq_avail(struct t4_wq *wq)
402 {
403 	return wq->rq.size - 1 - wq->rq.in_use;
404 }
405 
t4_rq_produce(struct t4_wq * wq,u8 len16)406 static inline void t4_rq_produce(struct t4_wq *wq, u8 len16)
407 {
408 	wq->rq.in_use++;
409 	if (++wq->rq.pidx == wq->rq.size)
410 		wq->rq.pidx = 0;
411 	wq->rq.wq_pidx += DIV_ROUND_UP(len16*16, T4_EQ_ENTRY_SIZE);
412 	if (wq->rq.wq_pidx >= wq->rq.size * T4_RQ_NUM_SLOTS)
413 		wq->rq.wq_pidx %= wq->rq.size * T4_RQ_NUM_SLOTS;
414 }
415 
t4_rq_consume(struct t4_wq * wq)416 static inline void t4_rq_consume(struct t4_wq *wq)
417 {
418 	wq->rq.in_use--;
419 	wq->rq.msn++;
420 	if (++wq->rq.cidx == wq->rq.size)
421 		wq->rq.cidx = 0;
422 }
423 
t4_rq_host_wq_pidx(struct t4_wq * wq)424 static inline u16 t4_rq_host_wq_pidx(struct t4_wq *wq)
425 {
426 	return wq->rq.queue[wq->rq.size].status.host_wq_pidx;
427 }
428 
t4_rq_wq_size(struct t4_wq * wq)429 static inline u16 t4_rq_wq_size(struct t4_wq *wq)
430 {
431 	return wq->rq.size * T4_RQ_NUM_SLOTS;
432 }
433 
t4_sq_onchip(struct t4_sq * sq)434 static inline int t4_sq_onchip(struct t4_sq *sq)
435 {
436 	return sq->flags & T4_SQ_ONCHIP;
437 }
438 
t4_sq_empty(struct t4_wq * wq)439 static inline int t4_sq_empty(struct t4_wq *wq)
440 {
441 	return wq->sq.in_use == 0;
442 }
443 
t4_sq_full(struct t4_wq * wq)444 static inline int t4_sq_full(struct t4_wq *wq)
445 {
446 	return wq->sq.in_use == (wq->sq.size - 1);
447 }
448 
t4_sq_avail(struct t4_wq * wq)449 static inline u32 t4_sq_avail(struct t4_wq *wq)
450 {
451 	return wq->sq.size - 1 - wq->sq.in_use;
452 }
453 
t4_sq_produce(struct t4_wq * wq,u8 len16)454 static inline void t4_sq_produce(struct t4_wq *wq, u8 len16)
455 {
456 	wq->sq.in_use++;
457 	if (++wq->sq.pidx == wq->sq.size)
458 		wq->sq.pidx = 0;
459 	wq->sq.wq_pidx += DIV_ROUND_UP(len16*16, T4_EQ_ENTRY_SIZE);
460 	if (wq->sq.wq_pidx >= wq->sq.size * T4_SQ_NUM_SLOTS)
461 		wq->sq.wq_pidx %= wq->sq.size * T4_SQ_NUM_SLOTS;
462 }
463 
t4_sq_consume(struct t4_wq * wq)464 static inline void t4_sq_consume(struct t4_wq *wq)
465 {
466 	BUG_ON(wq->sq.in_use < 1);
467 	if (wq->sq.cidx == wq->sq.flush_cidx)
468 		wq->sq.flush_cidx = -1;
469 	wq->sq.in_use--;
470 	if (++wq->sq.cidx == wq->sq.size)
471 		wq->sq.cidx = 0;
472 }
473 
t4_sq_host_wq_pidx(struct t4_wq * wq)474 static inline u16 t4_sq_host_wq_pidx(struct t4_wq *wq)
475 {
476 	return wq->sq.queue[wq->sq.size].status.host_wq_pidx;
477 }
478 
t4_sq_wq_size(struct t4_wq * wq)479 static inline u16 t4_sq_wq_size(struct t4_wq *wq)
480 {
481 		return wq->sq.size * T4_SQ_NUM_SLOTS;
482 }
483 
484 /* This function copies 64 byte coalesced work request to memory
485  * mapped BAR2 space. For coalesced WRs, the SGE fetches data
486  * from the FIFO instead of from Host.
487  */
pio_copy(u64 __iomem * dst,u64 * src)488 static inline void pio_copy(u64 __iomem *dst, u64 *src)
489 {
490 	int count = 8;
491 
492 	while (count) {
493 		__raw_writeq(*src, dst);
494 		src++;
495 		dst++;
496 		count--;
497 	}
498 }
499 
500 static inline void
t4_ring_sq_db(struct t4_wq * wq,u16 inc,union t4_wr * wqe,u8 wc)501 t4_ring_sq_db(struct t4_wq *wq, u16 inc, union t4_wr *wqe, u8 wc)
502 {
503 
504 	/* Flush host queue memory writes. */
505 	wmb();
506 	if (wc && inc == 1 && wq->sq.bar2_qid == 0 && wqe) {
507 		CTR2(KTR_IW_CXGBE, "%s: WC wq->sq.pidx = %d",
508 				__func__, wq->sq.pidx);
509 		pio_copy((u64 __iomem *)
510 				((u64)wq->sq.bar2_va + SGE_UDB_WCDOORBELL),
511 				(u64 *)wqe);
512 	} else {
513 		CTR2(KTR_IW_CXGBE, "%s: DB wq->sq.pidx = %d",
514 				__func__, wq->sq.pidx);
515 		__raw_writel(V_PIDX_T5(inc) | V_QID(wq->sq.bar2_qid),
516 			     (char __iomem *)wq->sq.bar2_va + SGE_UDB_KDOORBELL);
517 	}
518 
519 	/* Flush user doorbell area writes. */
520 	wmb();
521 	return;
522 }
523 
524 static inline void
t4_ring_rq_db(struct t4_wq * wq,u16 inc,union t4_recv_wr * wqe,u8 wc)525 t4_ring_rq_db(struct t4_wq *wq, u16 inc, union t4_recv_wr *wqe, u8 wc)
526 {
527 
528 	/* Flush host queue memory writes. */
529 	wmb();
530 	if (wc && inc == 1 && wq->rq.bar2_qid == 0 && wqe) {
531 		CTR2(KTR_IW_CXGBE, "%s: WC wq->rq.pidx = %d",
532 				__func__, wq->rq.pidx);
533 		pio_copy((u64 __iomem *)((u64)wq->rq.bar2_va +
534 					SGE_UDB_WCDOORBELL), (u64 *)wqe);
535 	} else {
536 		CTR2(KTR_IW_CXGBE, "%s: DB wq->rq.pidx = %d",
537 				__func__, wq->rq.pidx);
538 		__raw_writel(V_PIDX_T5(inc) | V_QID(wq->rq.bar2_qid),
539 			     (char __iomem *)wq->rq.bar2_va + SGE_UDB_KDOORBELL);
540 	}
541 
542 	/* Flush user doorbell area writes. */
543 	wmb();
544 	return;
545 }
546 
t4_wq_in_error(struct t4_wq * wq)547 static inline int t4_wq_in_error(struct t4_wq *wq)
548 {
549 	return wq->rq.queue[wq->rq.size].status.qp_err;
550 }
551 
t4_set_wq_in_error(struct t4_wq * wq)552 static inline void t4_set_wq_in_error(struct t4_wq *wq)
553 {
554 	wq->rq.queue[wq->rq.size].status.qp_err = 1;
555 }
556 
557 enum t4_cq_flags {
558 	CQ_ARMED	= 1,
559 };
560 
561 struct t4_cq {
562 	struct t4_cqe *queue;
563 	bus_addr_t dma_addr;
564 	DEFINE_DMA_UNMAP_ADDR(mapping);
565 	struct t4_cqe *sw_queue;
566 	void __iomem *bar2_va;
567 	u64 bar2_pa;
568 	u32 bar2_qid;
569 	struct c4iw_rdev *rdev;
570 	size_t memsize;
571 	__be64 bits_type_ts;
572 	u32 cqid;
573 	u32 qid_mask;
574 	int vector;
575 	u16 size; /* including status page */
576 	u16 cidx;
577 	u16 sw_pidx;
578 	u16 sw_cidx;
579 	u16 sw_in_use;
580 	u16 cidx_inc;
581 	u8 gen;
582 	u8 error;
583 	unsigned long flags;
584 };
585 
write_gts(struct t4_cq * cq,u32 val)586 static inline void write_gts(struct t4_cq *cq, u32 val)
587 {
588 	writel(val | V_INGRESSQID(cq->bar2_qid),
589 		       (void __iomem *)((u64)cq->bar2_va + SGE_UDB_GTS));
590 }
591 
t4_clear_cq_armed(struct t4_cq * cq)592 static inline int t4_clear_cq_armed(struct t4_cq *cq)
593 {
594 	return test_and_clear_bit(CQ_ARMED, &cq->flags);
595 }
596 
t4_arm_cq(struct t4_cq * cq,int se)597 static inline int t4_arm_cq(struct t4_cq *cq, int se)
598 {
599 	u32 val;
600 
601 	set_bit(CQ_ARMED, &cq->flags);
602 	while (cq->cidx_inc > CIDXINC_MASK) {
603 		val = SEINTARM(0) | CIDXINC(CIDXINC_MASK) | TIMERREG(7);
604 		writel(val | V_INGRESSQID(cq->bar2_qid),
605 		       (void __iomem *)((u64)cq->bar2_va + SGE_UDB_GTS));
606 		cq->cidx_inc -= CIDXINC_MASK;
607 	}
608 	val = SEINTARM(se) | CIDXINC(cq->cidx_inc) | TIMERREG(6);
609 	writel(val | V_INGRESSQID(cq->bar2_qid),
610 		       (void __iomem *)((u64)cq->bar2_va + SGE_UDB_GTS));
611 	cq->cidx_inc = 0;
612 	return 0;
613 }
614 
t4_swcq_produce(struct t4_cq * cq)615 static inline void t4_swcq_produce(struct t4_cq *cq)
616 {
617 	cq->sw_in_use++;
618 	if (cq->sw_in_use == cq->size) {
619 		CTR2(KTR_IW_CXGBE, "%s cxgb4 sw cq overflow cqid %u",
620 			 __func__, cq->cqid);
621 		cq->error = 1;
622 		BUG_ON(1);
623 	}
624 	if (++cq->sw_pidx == cq->size)
625 		cq->sw_pidx = 0;
626 }
627 
t4_swcq_consume(struct t4_cq * cq)628 static inline void t4_swcq_consume(struct t4_cq *cq)
629 {
630 	BUG_ON(cq->sw_in_use < 1);
631 	cq->sw_in_use--;
632 	if (++cq->sw_cidx == cq->size)
633 		cq->sw_cidx = 0;
634 }
635 
t4_hwcq_consume(struct t4_cq * cq)636 static inline void t4_hwcq_consume(struct t4_cq *cq)
637 {
638 	cq->bits_type_ts = cq->queue[cq->cidx].bits_type_ts;
639 	if (++cq->cidx_inc == (cq->size >> 4) || cq->cidx_inc == M_CIDXINC) {
640 		u32 val;
641 
642 		val = SEINTARM(0) | CIDXINC(cq->cidx_inc) | TIMERREG(7);
643 		write_gts(cq, val);
644 		cq->cidx_inc = 0;
645 	}
646 	if (++cq->cidx == cq->size) {
647 		cq->cidx = 0;
648 		cq->gen ^= 1;
649 	}
650 }
651 
t4_valid_cqe(struct t4_cq * cq,struct t4_cqe * cqe)652 static inline int t4_valid_cqe(struct t4_cq *cq, struct t4_cqe *cqe)
653 {
654 	return (CQE_GENBIT(cqe) == cq->gen);
655 }
656 
t4_cq_notempty(struct t4_cq * cq)657 static inline int t4_cq_notempty(struct t4_cq *cq)
658 {
659 	return cq->sw_in_use || t4_valid_cqe(cq, &cq->queue[cq->cidx]);
660 }
661 
t4_next_hw_cqe(struct t4_cq * cq,struct t4_cqe ** cqe)662 static inline int t4_next_hw_cqe(struct t4_cq *cq, struct t4_cqe **cqe)
663 {
664 	int ret;
665 	u16 prev_cidx;
666 
667 	if (cq->cidx == 0)
668 		prev_cidx = cq->size - 1;
669 	else
670 		prev_cidx = cq->cidx - 1;
671 
672 	if (cq->queue[prev_cidx].bits_type_ts != cq->bits_type_ts) {
673 		ret = -EOVERFLOW;
674 		cq->error = 1;
675 		printk(KERN_ERR MOD "cq overflow cqid %u\n", cq->cqid);
676 		BUG_ON(1);
677 	} else if (t4_valid_cqe(cq, &cq->queue[cq->cidx])) {
678 
679 		/* Ensure CQE is flushed to memory */
680 		rmb();
681 		*cqe = &cq->queue[cq->cidx];
682 		ret = 0;
683 	} else
684 		ret = -ENODATA;
685 	return ret;
686 }
687 
t4_next_sw_cqe(struct t4_cq * cq)688 static inline struct t4_cqe *t4_next_sw_cqe(struct t4_cq *cq)
689 {
690 	if (cq->sw_in_use == cq->size) {
691 		CTR2(KTR_IW_CXGBE, "%s cxgb4 sw cq overflow cqid %u",
692 			 __func__, cq->cqid);
693 		cq->error = 1;
694 		BUG_ON(1);
695 		return NULL;
696 	}
697 	if (cq->sw_in_use)
698 		return &cq->sw_queue[cq->sw_cidx];
699 	return NULL;
700 }
701 
t4_next_cqe(struct t4_cq * cq,struct t4_cqe ** cqe)702 static inline int t4_next_cqe(struct t4_cq *cq, struct t4_cqe **cqe)
703 {
704 	int ret = 0;
705 
706 	if (cq->error)
707 		ret = -ENODATA;
708 	else if (cq->sw_in_use)
709 		*cqe = &cq->sw_queue[cq->sw_cidx];
710 	else
711 		ret = t4_next_hw_cqe(cq, cqe);
712 	return ret;
713 }
714 
t4_cq_in_error(struct t4_cq * cq)715 static inline int t4_cq_in_error(struct t4_cq *cq)
716 {
717 	return ((struct t4_status_page *)&cq->queue[cq->size])->qp_err;
718 }
719 
t4_set_cq_in_error(struct t4_cq * cq)720 static inline void t4_set_cq_in_error(struct t4_cq *cq)
721 {
722 	((struct t4_status_page *)&cq->queue[cq->size])->qp_err = 1;
723 }
724 struct t4_dev_status_page {
725 	u8 db_off;
726 	u8 wc_supported;
727 	u8 write_cmpl_supported;
728 	u8 pad2;
729 	u32 fid_base;
730 	u64 qp_start;
731 	u64 qp_size;
732 	u64 cq_start;
733 	u64 cq_size;
734 };
735 #endif
736