xref: /linux/drivers/sbus/char/oradax.c (revision bf4afc53b77aeaa48b5409da5c8da6bb4eff7f43)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * Copyright (c) 2017, Oracle and/or its affiliates. All rights reserved.
4  */
5 
6 /*
7  * Oracle Data Analytics Accelerator (DAX)
8  *
9  * DAX is a coprocessor which resides on the SPARC M7 (DAX1) and M8
10  * (DAX2) processor chips, and has direct access to the CPU's L3
11  * caches as well as physical memory. It can perform several
12  * operations on data streams with various input and output formats.
13  * The driver provides a transport mechanism only and has limited
14  * knowledge of the various opcodes and data formats. A user space
15  * library provides high level services and translates these into low
16  * level commands which are then passed into the driver and
17  * subsequently the hypervisor and the coprocessor.  The library is
18  * the recommended way for applications to use the coprocessor, and
19  * the driver interface is not intended for general use.
20  *
21  * See Documentation/arch/sparc/oradax/oracle-dax.rst for more details.
22  */
23 
24 #include <linux/uaccess.h>
25 #include <linux/module.h>
26 #include <linux/delay.h>
27 #include <linux/cdev.h>
28 #include <linux/slab.h>
29 #include <linux/mm.h>
30 
31 #include <asm/hypervisor.h>
32 #include <asm/mdesc.h>
33 #include <asm/oradax.h>
34 
35 MODULE_LICENSE("GPL");
36 MODULE_DESCRIPTION("Driver for Oracle Data Analytics Accelerator");
37 
38 #define	DAX_DBG_FLG_BASIC	0x01
39 #define	DAX_DBG_FLG_STAT	0x02
40 #define	DAX_DBG_FLG_INFO	0x04
41 #define	DAX_DBG_FLG_ALL		0xff
42 
43 #define	dax_err(fmt, ...)      pr_err("%s: " fmt "\n", __func__, ##__VA_ARGS__)
44 #define	dax_info(fmt, ...)     pr_info("%s: " fmt "\n", __func__, ##__VA_ARGS__)
45 
46 #define	dax_dbg(fmt, ...)	do {					\
47 					if (dax_debug & DAX_DBG_FLG_BASIC)\
48 						dax_info(fmt, ##__VA_ARGS__); \
49 				} while (0)
50 #define	dax_stat_dbg(fmt, ...)	do {					\
51 					if (dax_debug & DAX_DBG_FLG_STAT) \
52 						dax_info(fmt, ##__VA_ARGS__); \
53 				} while (0)
54 #define	dax_info_dbg(fmt, ...)	do { \
55 					if (dax_debug & DAX_DBG_FLG_INFO) \
56 						dax_info(fmt, ##__VA_ARGS__); \
57 				} while (0)
58 
59 #define	DAX1_MINOR		1
60 #define	DAX1_MAJOR		1
61 #define	DAX2_MINOR		0
62 #define	DAX2_MAJOR		2
63 
64 #define	DAX1_STR    "ORCL,sun4v-dax"
65 #define	DAX2_STR    "ORCL,sun4v-dax2"
66 
67 #define	DAX_CA_ELEMS		(DAX_MMAP_LEN / sizeof(struct dax_cca))
68 
69 #define	DAX_CCB_USEC		100
70 #define	DAX_CCB_RETRIES		10000
71 
72 /* stream types */
73 enum {
74 	OUT,
75 	PRI,
76 	SEC,
77 	TBL,
78 	NUM_STREAM_TYPES
79 };
80 
81 /* completion status */
82 #define	CCA_STAT_NOT_COMPLETED	0
83 #define	CCA_STAT_COMPLETED	1
84 #define	CCA_STAT_FAILED		2
85 #define	CCA_STAT_KILLED		3
86 #define	CCA_STAT_NOT_RUN	4
87 #define	CCA_STAT_PIPE_OUT	5
88 #define	CCA_STAT_PIPE_SRC	6
89 #define	CCA_STAT_PIPE_DST	7
90 
91 /* completion err */
92 #define	CCA_ERR_SUCCESS		0x0	/* no error */
93 #define	CCA_ERR_OVERFLOW	0x1	/* buffer overflow */
94 #define	CCA_ERR_DECODE		0x2	/* CCB decode error */
95 #define	CCA_ERR_PAGE_OVERFLOW	0x3	/* page overflow */
96 #define	CCA_ERR_KILLED		0x7	/* command was killed */
97 #define	CCA_ERR_TIMEOUT		0x8	/* Timeout */
98 #define	CCA_ERR_ADI		0x9	/* ADI error */
99 #define	CCA_ERR_DATA_FMT	0xA	/* data format error */
100 #define	CCA_ERR_OTHER_NO_RETRY	0xE	/* Other error, do not retry */
101 #define	CCA_ERR_OTHER_RETRY	0xF	/* Other error, retry */
102 #define	CCA_ERR_PARTIAL_SYMBOL	0x80	/* QP partial symbol warning */
103 
104 /* CCB address types */
105 #define	DAX_ADDR_TYPE_NONE	0
106 #define	DAX_ADDR_TYPE_VA_ALT	1	/* secondary context */
107 #define	DAX_ADDR_TYPE_RA	2	/* real address */
108 #define	DAX_ADDR_TYPE_VA	3	/* virtual address */
109 
110 /* dax_header_t opcode */
111 #define	DAX_OP_SYNC_NOP		0x0
112 #define	DAX_OP_EXTRACT		0x1
113 #define	DAX_OP_SCAN_VALUE	0x2
114 #define	DAX_OP_SCAN_RANGE	0x3
115 #define	DAX_OP_TRANSLATE	0x4
116 #define	DAX_OP_SELECT		0x5
117 #define	DAX_OP_INVERT		0x10	/* OR with translate, scan opcodes */
118 
119 struct dax_header {
120 	u32 ccb_version:4;	/* 31:28 CCB Version */
121 				/* 27:24 Sync Flags */
122 	u32 pipe:1;		/* Pipeline */
123 	u32 longccb:1;		/* Longccb. Set for scan with lu2, lu3, lu4. */
124 	u32 cond:1;		/* Conditional */
125 	u32 serial:1;		/* Serial */
126 	u32 opcode:8;		/* 23:16 Opcode */
127 				/* 15:0 Address Type. */
128 	u32 reserved:3;		/* 15:13 reserved */
129 	u32 table_addr_type:2;	/* 12:11 Huffman Table Address Type */
130 	u32 out_addr_type:3;	/* 10:8 Destination Address Type */
131 	u32 sec_addr_type:3;	/* 7:5 Secondary Source Address Type */
132 	u32 pri_addr_type:3;	/* 4:2 Primary Source Address Type */
133 	u32 cca_addr_type:2;	/* 1:0 Completion Address Type */
134 };
135 
136 struct dax_control {
137 	u32 pri_fmt:4;		/* 31:28 Primary Input Format */
138 	u32 pri_elem_size:5;	/* 27:23 Primary Input Element Size(less1) */
139 	u32 pri_offset:3;	/* 22:20 Primary Input Starting Offset */
140 	u32 sec_encoding:1;	/* 19    Secondary Input Encoding */
141 				/*	 (must be 0 for Select) */
142 	u32 sec_offset:3;	/* 18:16 Secondary Input Starting Offset */
143 	u32 sec_elem_size:2;	/* 15:14 Secondary Input Element Size */
144 				/*	 (must be 0 for Select) */
145 	u32 out_fmt:2;		/* 13:12 Output Format */
146 	u32 out_elem_size:2;	/* 11:10 Output Element Size */
147 	u32 misc:10;		/* 9:0 Opcode specific info */
148 };
149 
150 struct dax_data_access {
151 	u64 flow_ctrl:2;	/* 63:62 Flow Control Type */
152 	u64 pipe_target:2;	/* 61:60 Pipeline Target */
153 	u64 out_buf_size:20;	/* 59:40 Output Buffer Size */
154 				/*	 (cachelines less 1) */
155 	u64 unused1:8;		/* 39:32 Reserved, Set to 0 */
156 	u64 out_alloc:5;	/* 31:27 Output Allocation */
157 	u64 unused2:1;		/* 26	 Reserved */
158 	u64 pri_len_fmt:2;	/* 25:24 Input Length Format */
159 	u64 pri_len:24;		/* 23:0  Input Element/Byte/Bit Count */
160 				/*	 (less 1) */
161 };
162 
163 struct dax_ccb {
164 	struct dax_header hdr;	/* CCB Header */
165 	struct dax_control ctrl;/* Control Word */
166 	void *ca;		/* Completion Address */
167 	void *pri;		/* Primary Input Address */
168 	struct dax_data_access dac; /* Data Access Control */
169 	void *sec;		/* Secondary Input Address */
170 	u64 dword5;		/* depends on opcode */
171 	void *out;		/* Output Address */
172 	void *tbl;		/* Table Address or bitmap */
173 };
174 
175 struct dax_cca {
176 	u8	status;		/* user may mwait on this address */
177 	u8	err;		/* user visible error notification */
178 	u8	rsvd[2];	/* reserved */
179 	u32	n_remaining;	/* for QP partial symbol warning */
180 	u32	output_sz;	/* output in bytes */
181 	u32	rsvd2;		/* reserved */
182 	u64	run_cycles;	/* run time in OCND2 cycles */
183 	u64	run_stats;	/* nothing reported in version 1.0 */
184 	u32	n_processed;	/* number input elements */
185 	u32	rsvd3[5];	/* reserved */
186 	u64	retval;		/* command return value */
187 	u64	rsvd4[8];	/* reserved */
188 };
189 
190 /* per thread CCB context */
191 struct dax_ctx {
192 	struct dax_ccb		*ccb_buf;
193 	u64			ccb_buf_ra;	/* cached RA of ccb_buf  */
194 	struct dax_cca		*ca_buf;
195 	u64			ca_buf_ra;	/* cached RA of ca_buf   */
196 	struct page		*pages[DAX_CA_ELEMS][NUM_STREAM_TYPES];
197 						/* array of locked pages */
198 	struct task_struct	*owner;		/* thread that owns ctx  */
199 	struct task_struct	*client;	/* requesting thread     */
200 	union ccb_result	result;
201 	u32			ccb_count;
202 	u32			fail_count;
203 };
204 
205 /* driver public entry points */
206 static int dax_open(struct inode *inode, struct file *file);
207 static ssize_t dax_read(struct file *filp, char __user *buf,
208 			size_t count, loff_t *ppos);
209 static ssize_t dax_write(struct file *filp, const char __user *buf,
210 			 size_t count, loff_t *ppos);
211 static int dax_devmap(struct file *f, struct vm_area_struct *vma);
212 static int dax_close(struct inode *i, struct file *f);
213 
214 static const struct file_operations dax_fops = {
215 	.owner	=	THIS_MODULE,
216 	.open	=	dax_open,
217 	.read	=	dax_read,
218 	.write	=	dax_write,
219 	.mmap	=	dax_devmap,
220 	.release =	dax_close,
221 };
222 
223 static int dax_ccb_exec(struct dax_ctx *ctx, const char __user *buf,
224 			size_t count, loff_t *ppos);
225 static int dax_ccb_info(u64 ca, struct ccb_info_result *info);
226 static int dax_ccb_kill(u64 ca, u16 *kill_res);
227 
228 static struct cdev c_dev;
229 static dev_t first;
230 static const struct class cl = {
231 	.name = DAX_NAME,
232 };
233 
234 static int max_ccb_version;
235 static int dax_debug;
236 module_param(dax_debug, int, 0644);
237 MODULE_PARM_DESC(dax_debug, "Debug flags");
238 
dax_attach(void)239 static int __init dax_attach(void)
240 {
241 	unsigned long dummy, hv_rv, major, minor, minor_requested, max_ccbs;
242 	struct mdesc_handle *hp = mdesc_grab();
243 	char *prop, *dax_name;
244 	bool found = false;
245 	int len, ret = 0;
246 	u64 pn;
247 
248 	if (hp == NULL) {
249 		dax_err("Unable to grab mdesc");
250 		return -ENODEV;
251 	}
252 
253 	mdesc_for_each_node_by_name(hp, pn, "virtual-device") {
254 		prop = (char *)mdesc_get_property(hp, pn, "name", &len);
255 		if (prop == NULL)
256 			continue;
257 		if (strncmp(prop, "dax", strlen("dax")))
258 			continue;
259 		dax_dbg("Found node 0x%llx = %s", pn, prop);
260 
261 		prop = (char *)mdesc_get_property(hp, pn, "compatible", &len);
262 		if (prop == NULL)
263 			continue;
264 		dax_dbg("Found node 0x%llx = %s", pn, prop);
265 		found = true;
266 		break;
267 	}
268 
269 	if (!found) {
270 		dax_err("No DAX device found");
271 		ret = -ENODEV;
272 		goto done;
273 	}
274 
275 	if (strncmp(prop, DAX2_STR, strlen(DAX2_STR)) == 0) {
276 		dax_name = DAX_NAME "2";
277 		major = DAX2_MAJOR;
278 		minor_requested = DAX2_MINOR;
279 		max_ccb_version = 1;
280 		dax_dbg("MD indicates DAX2 coprocessor");
281 	} else if (strncmp(prop, DAX1_STR, strlen(DAX1_STR)) == 0) {
282 		dax_name = DAX_NAME "1";
283 		major = DAX1_MAJOR;
284 		minor_requested = DAX1_MINOR;
285 		max_ccb_version = 0;
286 		dax_dbg("MD indicates DAX1 coprocessor");
287 	} else {
288 		dax_err("Unknown dax type: %s", prop);
289 		ret = -ENODEV;
290 		goto done;
291 	}
292 
293 	minor = minor_requested;
294 	dax_dbg("Registering DAX HV api with major %ld minor %ld", major,
295 		minor);
296 	if (sun4v_hvapi_register(HV_GRP_DAX, major, &minor)) {
297 		dax_err("hvapi_register failed");
298 		ret = -ENODEV;
299 		goto done;
300 	} else {
301 		dax_dbg("Max minor supported by HV = %ld (major %ld)", minor,
302 			major);
303 		minor = min(minor, minor_requested);
304 		dax_dbg("registered DAX major %ld minor %ld", major, minor);
305 	}
306 
307 	/* submit a zero length ccb array to query coprocessor queue size */
308 	hv_rv = sun4v_ccb_submit(0, 0, HV_CCB_QUERY_CMD, 0, &max_ccbs, &dummy);
309 	if (hv_rv != 0) {
310 		dax_err("get_hwqueue_size failed with status=%ld and max_ccbs=%ld",
311 			hv_rv, max_ccbs);
312 		ret = -ENODEV;
313 		goto done;
314 	}
315 
316 	if (max_ccbs != DAX_MAX_CCBS) {
317 		dax_err("HV reports unsupported max_ccbs=%ld", max_ccbs);
318 		ret = -ENODEV;
319 		goto done;
320 	}
321 
322 	if (alloc_chrdev_region(&first, 0, 1, DAX_NAME) < 0) {
323 		dax_err("alloc_chrdev_region failed");
324 		ret = -ENXIO;
325 		goto done;
326 	}
327 
328 	ret = class_register(&cl);
329 	if (ret)
330 		goto class_error;
331 
332 	if (device_create(&cl, NULL, first, NULL, dax_name) == NULL) {
333 		dax_err("device_create failed");
334 		ret = -ENXIO;
335 		goto device_error;
336 	}
337 
338 	cdev_init(&c_dev, &dax_fops);
339 	if (cdev_add(&c_dev, first, 1) == -1) {
340 		dax_err("cdev_add failed");
341 		ret = -ENXIO;
342 		goto cdev_error;
343 	}
344 
345 	pr_info("Attached DAX module\n");
346 	goto done;
347 
348 cdev_error:
349 	device_destroy(&cl, first);
350 device_error:
351 	class_unregister(&cl);
352 class_error:
353 	unregister_chrdev_region(first, 1);
354 done:
355 	mdesc_release(hp);
356 	return ret;
357 }
358 module_init(dax_attach);
359 
dax_detach(void)360 static void __exit dax_detach(void)
361 {
362 	pr_info("Cleaning up DAX module\n");
363 	cdev_del(&c_dev);
364 	device_destroy(&cl, first);
365 	class_unregister(&cl);
366 	unregister_chrdev_region(first, 1);
367 }
368 module_exit(dax_detach);
369 
370 /* map completion area */
dax_devmap(struct file * f,struct vm_area_struct * vma)371 static int dax_devmap(struct file *f, struct vm_area_struct *vma)
372 {
373 	struct dax_ctx *ctx = (struct dax_ctx *)f->private_data;
374 	size_t len = vma->vm_end - vma->vm_start;
375 
376 	dax_dbg("len=0x%lx, flags=0x%lx", len, vma->vm_flags);
377 
378 	if (ctx->owner != current) {
379 		dax_dbg("devmap called from wrong thread");
380 		return -EINVAL;
381 	}
382 
383 	if (len != DAX_MMAP_LEN) {
384 		dax_dbg("len(%lu) != DAX_MMAP_LEN(%d)", len, DAX_MMAP_LEN);
385 		return -EINVAL;
386 	}
387 
388 	/* completion area is mapped read-only for user */
389 	if (vma->vm_flags & VM_WRITE)
390 		return -EPERM;
391 	vm_flags_clear(vma, VM_MAYWRITE);
392 
393 	if (remap_pfn_range(vma, vma->vm_start, ctx->ca_buf_ra >> PAGE_SHIFT,
394 			    len, vma->vm_page_prot))
395 		return -EAGAIN;
396 
397 	dax_dbg("mmapped completion area at uva 0x%lx", vma->vm_start);
398 	return 0;
399 }
400 
401 /* Unlock user pages. Called during dequeue or device close */
dax_unlock_pages(struct dax_ctx * ctx,int ccb_index,int nelem)402 static void dax_unlock_pages(struct dax_ctx *ctx, int ccb_index, int nelem)
403 {
404 	int i, j;
405 
406 	for (i = ccb_index; i < ccb_index + nelem; i++) {
407 		for (j = 0; j < NUM_STREAM_TYPES; j++) {
408 			struct page *p = ctx->pages[i][j];
409 
410 			if (p) {
411 				dax_dbg("freeing page %p", p);
412 				unpin_user_pages_dirty_lock(&p, 1, j == OUT);
413 				ctx->pages[i][j] = NULL;
414 			}
415 		}
416 	}
417 }
418 
dax_lock_page(void * va,struct page ** p)419 static int dax_lock_page(void *va, struct page **p)
420 {
421 	int ret;
422 
423 	dax_dbg("uva %p", va);
424 
425 	ret = pin_user_pages_fast((unsigned long)va, 1, FOLL_WRITE, p);
426 	if (ret == 1) {
427 		dax_dbg("locked page %p, for VA %p", *p, va);
428 		return 0;
429 	}
430 
431 	dax_dbg("pin_user_pages failed, va=%p, ret=%d", va, ret);
432 	return -1;
433 }
434 
dax_lock_pages(struct dax_ctx * ctx,int idx,int nelem,u64 * err_va)435 static int dax_lock_pages(struct dax_ctx *ctx, int idx,
436 			  int nelem, u64 *err_va)
437 {
438 	int i;
439 
440 	for (i = 0; i < nelem; i++) {
441 		struct dax_ccb *ccbp = &ctx->ccb_buf[i];
442 
443 		/*
444 		 * For each address in the CCB whose type is virtual,
445 		 * lock the page and change the type to virtual alternate
446 		 * context. On error, return the offending address in
447 		 * err_va.
448 		 */
449 		if (ccbp->hdr.out_addr_type == DAX_ADDR_TYPE_VA) {
450 			dax_dbg("output");
451 			if (dax_lock_page(ccbp->out,
452 					  &ctx->pages[i + idx][OUT]) != 0) {
453 				*err_va = (u64)ccbp->out;
454 				goto error;
455 			}
456 			ccbp->hdr.out_addr_type = DAX_ADDR_TYPE_VA_ALT;
457 		}
458 
459 		if (ccbp->hdr.pri_addr_type == DAX_ADDR_TYPE_VA) {
460 			dax_dbg("input");
461 			if (dax_lock_page(ccbp->pri,
462 					  &ctx->pages[i + idx][PRI]) != 0) {
463 				*err_va = (u64)ccbp->pri;
464 				goto error;
465 			}
466 			ccbp->hdr.pri_addr_type = DAX_ADDR_TYPE_VA_ALT;
467 		}
468 
469 		if (ccbp->hdr.sec_addr_type == DAX_ADDR_TYPE_VA) {
470 			dax_dbg("sec input");
471 			if (dax_lock_page(ccbp->sec,
472 					  &ctx->pages[i + idx][SEC]) != 0) {
473 				*err_va = (u64)ccbp->sec;
474 				goto error;
475 			}
476 			ccbp->hdr.sec_addr_type = DAX_ADDR_TYPE_VA_ALT;
477 		}
478 
479 		if (ccbp->hdr.table_addr_type == DAX_ADDR_TYPE_VA) {
480 			dax_dbg("tbl");
481 			if (dax_lock_page(ccbp->tbl,
482 					  &ctx->pages[i + idx][TBL]) != 0) {
483 				*err_va = (u64)ccbp->tbl;
484 				goto error;
485 			}
486 			ccbp->hdr.table_addr_type = DAX_ADDR_TYPE_VA_ALT;
487 		}
488 
489 		/* skip over 2nd 64 bytes of long CCB */
490 		if (ccbp->hdr.longccb)
491 			i++;
492 	}
493 	return DAX_SUBMIT_OK;
494 
495 error:
496 	dax_unlock_pages(ctx, idx, nelem);
497 	return DAX_SUBMIT_ERR_NOACCESS;
498 }
499 
dax_ccb_wait(struct dax_ctx * ctx,int idx)500 static void dax_ccb_wait(struct dax_ctx *ctx, int idx)
501 {
502 	int ret, nretries;
503 	u16 kill_res;
504 
505 	dax_dbg("idx=%d", idx);
506 
507 	for (nretries = 0; nretries < DAX_CCB_RETRIES; nretries++) {
508 		if (ctx->ca_buf[idx].status == CCA_STAT_NOT_COMPLETED)
509 			udelay(DAX_CCB_USEC);
510 		else
511 			return;
512 	}
513 	dax_dbg("ctx (%p): CCB[%d] timed out, wait usec=%d, retries=%d. Killing ccb",
514 		(void *)ctx, idx, DAX_CCB_USEC, DAX_CCB_RETRIES);
515 
516 	ret = dax_ccb_kill(ctx->ca_buf_ra + idx * sizeof(struct dax_cca),
517 			   &kill_res);
518 	dax_dbg("Kill CCB[%d] %s", idx, ret ? "failed" : "succeeded");
519 }
520 
dax_close(struct inode * ino,struct file * f)521 static int dax_close(struct inode *ino, struct file *f)
522 {
523 	struct dax_ctx *ctx = (struct dax_ctx *)f->private_data;
524 	int i;
525 
526 	f->private_data = NULL;
527 
528 	for (i = 0; i < DAX_CA_ELEMS; i++) {
529 		if (ctx->ca_buf[i].status == CCA_STAT_NOT_COMPLETED) {
530 			dax_dbg("CCB[%d] not completed", i);
531 			dax_ccb_wait(ctx, i);
532 		}
533 		dax_unlock_pages(ctx, i, 1);
534 	}
535 
536 	kfree(ctx->ccb_buf);
537 	kfree(ctx->ca_buf);
538 	dax_stat_dbg("CCBs: %d good, %d bad", ctx->ccb_count, ctx->fail_count);
539 	kfree(ctx);
540 
541 	return 0;
542 }
543 
dax_read(struct file * f,char __user * buf,size_t count,loff_t * ppos)544 static ssize_t dax_read(struct file *f, char __user *buf,
545 			size_t count, loff_t *ppos)
546 {
547 	struct dax_ctx *ctx = f->private_data;
548 
549 	if (ctx->client != current)
550 		return -EUSERS;
551 
552 	ctx->client = NULL;
553 
554 	if (count != sizeof(union ccb_result))
555 		return -EINVAL;
556 	if (copy_to_user(buf, &ctx->result, sizeof(union ccb_result)))
557 		return -EFAULT;
558 	return count;
559 }
560 
dax_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)561 static ssize_t dax_write(struct file *f, const char __user *buf,
562 			 size_t count, loff_t *ppos)
563 {
564 	struct dax_ctx *ctx = f->private_data;
565 	struct dax_command hdr;
566 	unsigned long ca;
567 	int i, idx, ret;
568 
569 	if (ctx->client != NULL)
570 		return -EINVAL;
571 
572 	if (count == 0 || count > DAX_MAX_CCBS * sizeof(struct dax_ccb))
573 		return -EINVAL;
574 
575 	if (count % sizeof(struct dax_ccb) == 0)
576 		return dax_ccb_exec(ctx, buf, count, ppos); /* CCB EXEC */
577 
578 	if (count != sizeof(struct dax_command))
579 		return -EINVAL;
580 
581 	/* immediate command */
582 	if (ctx->owner != current)
583 		return -EUSERS;
584 
585 	if (copy_from_user(&hdr, buf, sizeof(hdr)))
586 		return -EFAULT;
587 
588 	ca = ctx->ca_buf_ra + hdr.ca_offset;
589 
590 	switch (hdr.command) {
591 	case CCB_KILL:
592 		if (hdr.ca_offset >= DAX_MMAP_LEN) {
593 			dax_dbg("invalid ca_offset (%d) >= ca_buflen (%d)",
594 				hdr.ca_offset, DAX_MMAP_LEN);
595 			return -EINVAL;
596 		}
597 
598 		ret = dax_ccb_kill(ca, &ctx->result.kill.action);
599 		if (ret != 0) {
600 			dax_dbg("dax_ccb_kill failed (ret=%d)", ret);
601 			return ret;
602 		}
603 
604 		dax_info_dbg("killed (ca_offset %d)", hdr.ca_offset);
605 		idx = hdr.ca_offset / sizeof(struct dax_cca);
606 		ctx->ca_buf[idx].status = CCA_STAT_KILLED;
607 		ctx->ca_buf[idx].err = CCA_ERR_KILLED;
608 		ctx->client = current;
609 		return count;
610 
611 	case CCB_INFO:
612 		if (hdr.ca_offset >= DAX_MMAP_LEN) {
613 			dax_dbg("invalid ca_offset (%d) >= ca_buflen (%d)",
614 				hdr.ca_offset, DAX_MMAP_LEN);
615 			return -EINVAL;
616 		}
617 
618 		ret = dax_ccb_info(ca, &ctx->result.info);
619 		if (ret != 0) {
620 			dax_dbg("dax_ccb_info failed (ret=%d)", ret);
621 			return ret;
622 		}
623 
624 		dax_info_dbg("info succeeded on ca_offset %d", hdr.ca_offset);
625 		ctx->client = current;
626 		return count;
627 
628 	case CCB_DEQUEUE:
629 		for (i = 0; i < DAX_CA_ELEMS; i++) {
630 			if (ctx->ca_buf[i].status !=
631 			    CCA_STAT_NOT_COMPLETED)
632 				dax_unlock_pages(ctx, i, 1);
633 		}
634 		return count;
635 
636 	default:
637 		return -EINVAL;
638 	}
639 }
640 
dax_open(struct inode * inode,struct file * f)641 static int dax_open(struct inode *inode, struct file *f)
642 {
643 	struct dax_ctx *ctx = NULL;
644 	int i;
645 
646 	ctx = kzalloc_obj(*ctx);
647 	if (ctx == NULL)
648 		goto done;
649 
650 	ctx->ccb_buf = kzalloc_objs(struct dax_ccb, DAX_MAX_CCBS);
651 	if (ctx->ccb_buf == NULL)
652 		goto done;
653 
654 	ctx->ccb_buf_ra = virt_to_phys(ctx->ccb_buf);
655 	dax_dbg("ctx->ccb_buf=0x%p, ccb_buf_ra=0x%llx",
656 		(void *)ctx->ccb_buf, ctx->ccb_buf_ra);
657 
658 	/* allocate CCB completion area buffer */
659 	ctx->ca_buf = kzalloc(DAX_MMAP_LEN, GFP_KERNEL);
660 	if (ctx->ca_buf == NULL)
661 		goto alloc_error;
662 	for (i = 0; i < DAX_CA_ELEMS; i++)
663 		ctx->ca_buf[i].status = CCA_STAT_COMPLETED;
664 
665 	ctx->ca_buf_ra = virt_to_phys(ctx->ca_buf);
666 	dax_dbg("ctx=0x%p, ctx->ca_buf=0x%p, ca_buf_ra=0x%llx",
667 		(void *)ctx, (void *)ctx->ca_buf, ctx->ca_buf_ra);
668 
669 	ctx->owner = current;
670 	f->private_data = ctx;
671 	return 0;
672 
673 alloc_error:
674 	kfree(ctx->ccb_buf);
675 done:
676 	kfree(ctx);
677 	return -ENOMEM;
678 }
679 
dax_hv_errno(unsigned long hv_ret,int * ret)680 static char *dax_hv_errno(unsigned long hv_ret, int *ret)
681 {
682 	switch (hv_ret) {
683 	case HV_EBADALIGN:
684 		*ret = -EFAULT;
685 		return "HV_EBADALIGN";
686 	case HV_ENORADDR:
687 		*ret = -EFAULT;
688 		return "HV_ENORADDR";
689 	case HV_EINVAL:
690 		*ret = -EINVAL;
691 		return "HV_EINVAL";
692 	case HV_EWOULDBLOCK:
693 		*ret = -EAGAIN;
694 		return "HV_EWOULDBLOCK";
695 	case HV_ENOACCESS:
696 		*ret = -EPERM;
697 		return "HV_ENOACCESS";
698 	default:
699 		break;
700 	}
701 
702 	*ret = -EIO;
703 	return "UNKNOWN";
704 }
705 
dax_ccb_kill(u64 ca,u16 * kill_res)706 static int dax_ccb_kill(u64 ca, u16 *kill_res)
707 {
708 	unsigned long hv_ret;
709 	int count, ret = 0;
710 	char *err_str;
711 
712 	for (count = 0; count < DAX_CCB_RETRIES; count++) {
713 		dax_dbg("attempting kill on ca_ra 0x%llx", ca);
714 		hv_ret = sun4v_ccb_kill(ca, kill_res);
715 
716 		if (hv_ret == HV_EOK) {
717 			dax_info_dbg("HV_EOK (ca_ra 0x%llx): %d", ca,
718 				     *kill_res);
719 		} else {
720 			err_str = dax_hv_errno(hv_ret, &ret);
721 			dax_dbg("%s (ca_ra 0x%llx)", err_str, ca);
722 		}
723 
724 		if (ret != -EAGAIN)
725 			return ret;
726 		dax_info_dbg("ccb_kill count = %d", count);
727 		udelay(DAX_CCB_USEC);
728 	}
729 
730 	return -EAGAIN;
731 }
732 
dax_ccb_info(u64 ca,struct ccb_info_result * info)733 static int dax_ccb_info(u64 ca, struct ccb_info_result *info)
734 {
735 	unsigned long hv_ret;
736 	char *err_str;
737 	int ret = 0;
738 
739 	dax_dbg("attempting info on ca_ra 0x%llx", ca);
740 	hv_ret = sun4v_ccb_info(ca, info);
741 
742 	if (hv_ret == HV_EOK) {
743 		dax_info_dbg("HV_EOK (ca_ra 0x%llx): %d", ca, info->state);
744 		if (info->state == DAX_CCB_ENQUEUED) {
745 			dax_info_dbg("dax_unit %d, queue_num %d, queue_pos %d",
746 				     info->inst_num, info->q_num, info->q_pos);
747 		}
748 	} else {
749 		err_str = dax_hv_errno(hv_ret, &ret);
750 		dax_dbg("%s (ca_ra 0x%llx)", err_str, ca);
751 	}
752 
753 	return ret;
754 }
755 
dax_prt_ccbs(struct dax_ccb * ccb,int nelem)756 static void dax_prt_ccbs(struct dax_ccb *ccb, int nelem)
757 {
758 	int i, j;
759 	u64 *ccbp;
760 
761 	dax_dbg("ccb buffer:");
762 	for (i = 0; i < nelem; i++) {
763 		ccbp = (u64 *)&ccb[i];
764 		dax_dbg(" %sccb[%d]", ccb[i].hdr.longccb ? "long " : "",  i);
765 		for (j = 0; j < 8; j++)
766 			dax_dbg("\tccb[%d].dwords[%d]=0x%llx",
767 				i, j, *(ccbp + j));
768 	}
769 }
770 
771 /*
772  * Validates user CCB content.  Also sets completion address and address types
773  * for all addresses contained in CCB.
774  */
dax_preprocess_usr_ccbs(struct dax_ctx * ctx,int idx,int nelem)775 static int dax_preprocess_usr_ccbs(struct dax_ctx *ctx, int idx, int nelem)
776 {
777 	int i;
778 
779 	/*
780 	 * The user is not allowed to specify real address types in
781 	 * the CCB header.  This must be enforced by the kernel before
782 	 * submitting the CCBs to HV.  The only allowed values for all
783 	 * address fields are VA or IMM
784 	 */
785 	for (i = 0; i < nelem; i++) {
786 		struct dax_ccb *ccbp = &ctx->ccb_buf[i];
787 		unsigned long ca_offset;
788 
789 		if (ccbp->hdr.ccb_version > max_ccb_version)
790 			return DAX_SUBMIT_ERR_CCB_INVAL;
791 
792 		switch (ccbp->hdr.opcode) {
793 		case DAX_OP_SYNC_NOP:
794 		case DAX_OP_EXTRACT:
795 		case DAX_OP_SCAN_VALUE:
796 		case DAX_OP_SCAN_RANGE:
797 		case DAX_OP_TRANSLATE:
798 		case DAX_OP_SCAN_VALUE | DAX_OP_INVERT:
799 		case DAX_OP_SCAN_RANGE | DAX_OP_INVERT:
800 		case DAX_OP_TRANSLATE | DAX_OP_INVERT:
801 		case DAX_OP_SELECT:
802 			break;
803 		default:
804 			return DAX_SUBMIT_ERR_CCB_INVAL;
805 		}
806 
807 		if (ccbp->hdr.out_addr_type != DAX_ADDR_TYPE_VA &&
808 		    ccbp->hdr.out_addr_type != DAX_ADDR_TYPE_NONE) {
809 			dax_dbg("invalid out_addr_type in user CCB[%d]", i);
810 			return DAX_SUBMIT_ERR_CCB_INVAL;
811 		}
812 
813 		if (ccbp->hdr.pri_addr_type != DAX_ADDR_TYPE_VA &&
814 		    ccbp->hdr.pri_addr_type != DAX_ADDR_TYPE_NONE) {
815 			dax_dbg("invalid pri_addr_type in user CCB[%d]", i);
816 			return DAX_SUBMIT_ERR_CCB_INVAL;
817 		}
818 
819 		if (ccbp->hdr.sec_addr_type != DAX_ADDR_TYPE_VA &&
820 		    ccbp->hdr.sec_addr_type != DAX_ADDR_TYPE_NONE) {
821 			dax_dbg("invalid sec_addr_type in user CCB[%d]", i);
822 			return DAX_SUBMIT_ERR_CCB_INVAL;
823 		}
824 
825 		if (ccbp->hdr.table_addr_type != DAX_ADDR_TYPE_VA &&
826 		    ccbp->hdr.table_addr_type != DAX_ADDR_TYPE_NONE) {
827 			dax_dbg("invalid table_addr_type in user CCB[%d]", i);
828 			return DAX_SUBMIT_ERR_CCB_INVAL;
829 		}
830 
831 		/* set completion (real) address and address type */
832 		ccbp->hdr.cca_addr_type = DAX_ADDR_TYPE_RA;
833 		ca_offset = (idx + i) * sizeof(struct dax_cca);
834 		ccbp->ca = (void *)ctx->ca_buf_ra + ca_offset;
835 		memset(&ctx->ca_buf[idx + i], 0, sizeof(struct dax_cca));
836 
837 		dax_dbg("ccb[%d]=%p, ca_offset=0x%lx, compl RA=0x%llx",
838 			i, ccbp, ca_offset, ctx->ca_buf_ra + ca_offset);
839 
840 		/* skip over 2nd 64 bytes of long CCB */
841 		if (ccbp->hdr.longccb)
842 			i++;
843 	}
844 
845 	return DAX_SUBMIT_OK;
846 }
847 
dax_ccb_exec(struct dax_ctx * ctx,const char __user * buf,size_t count,loff_t * ppos)848 static int dax_ccb_exec(struct dax_ctx *ctx, const char __user *buf,
849 			size_t count, loff_t *ppos)
850 {
851 	unsigned long accepted_len, hv_rv;
852 	int i, idx, nccbs, naccepted;
853 
854 	ctx->client = current;
855 	idx = *ppos;
856 	nccbs = count / sizeof(struct dax_ccb);
857 
858 	if (ctx->owner != current) {
859 		dax_dbg("wrong thread");
860 		ctx->result.exec.status = DAX_SUBMIT_ERR_THR_INIT;
861 		return 0;
862 	}
863 	dax_dbg("args: ccb_buf_len=%ld, idx=%d", count, idx);
864 
865 	/* for given index and length, verify ca_buf range exists */
866 	if (idx < 0 || idx > (DAX_CA_ELEMS - nccbs)) {
867 		ctx->result.exec.status = DAX_SUBMIT_ERR_NO_CA_AVAIL;
868 		return 0;
869 	}
870 
871 	/*
872 	 * Copy CCBs into kernel buffer to prevent modification by the
873 	 * user in between validation and submission.
874 	 */
875 	if (copy_from_user(ctx->ccb_buf, buf, count)) {
876 		dax_dbg("copyin of user CCB buffer failed");
877 		ctx->result.exec.status = DAX_SUBMIT_ERR_CCB_ARR_MMU_MISS;
878 		return 0;
879 	}
880 
881 	/* check to see if ca_buf[idx] .. ca_buf[idx + nccbs] are available */
882 	for (i = idx; i < idx + nccbs; i++) {
883 		if (ctx->ca_buf[i].status == CCA_STAT_NOT_COMPLETED) {
884 			dax_dbg("CA range not available, dequeue needed");
885 			ctx->result.exec.status = DAX_SUBMIT_ERR_NO_CA_AVAIL;
886 			return 0;
887 		}
888 	}
889 	dax_unlock_pages(ctx, idx, nccbs);
890 
891 	ctx->result.exec.status = dax_preprocess_usr_ccbs(ctx, idx, nccbs);
892 	if (ctx->result.exec.status != DAX_SUBMIT_OK)
893 		return 0;
894 
895 	ctx->result.exec.status = dax_lock_pages(ctx, idx, nccbs,
896 						 &ctx->result.exec.status_data);
897 	if (ctx->result.exec.status != DAX_SUBMIT_OK)
898 		return 0;
899 
900 	if (dax_debug & DAX_DBG_FLG_BASIC)
901 		dax_prt_ccbs(ctx->ccb_buf, nccbs);
902 
903 	hv_rv = sun4v_ccb_submit(ctx->ccb_buf_ra, count,
904 				 HV_CCB_QUERY_CMD | HV_CCB_VA_SECONDARY, 0,
905 				 &accepted_len, &ctx->result.exec.status_data);
906 
907 	switch (hv_rv) {
908 	case HV_EOK:
909 		/*
910 		 * Hcall succeeded with no errors but the accepted
911 		 * length may be less than the requested length.  The
912 		 * only way the driver can resubmit the remainder is
913 		 * to wait for completion of the submitted CCBs since
914 		 * there is no way to guarantee the ordering semantics
915 		 * required by the client applications.  Therefore we
916 		 * let the user library deal with resubmissions.
917 		 */
918 		ctx->result.exec.status = DAX_SUBMIT_OK;
919 		break;
920 	case HV_EWOULDBLOCK:
921 		/*
922 		 * This is a transient HV API error. The user library
923 		 * can retry.
924 		 */
925 		dax_dbg("hcall returned HV_EWOULDBLOCK");
926 		ctx->result.exec.status = DAX_SUBMIT_ERR_WOULDBLOCK;
927 		break;
928 	case HV_ENOMAP:
929 		/*
930 		 * HV was unable to translate a VA. The VA it could
931 		 * not translate is returned in the status_data param.
932 		 */
933 		dax_dbg("hcall returned HV_ENOMAP");
934 		ctx->result.exec.status = DAX_SUBMIT_ERR_NOMAP;
935 		break;
936 	case HV_EINVAL:
937 		/*
938 		 * This is the result of an invalid user CCB as HV is
939 		 * validating some of the user CCB fields.  Pass this
940 		 * error back to the user. There is no supporting info
941 		 * to isolate the invalid field.
942 		 */
943 		dax_dbg("hcall returned HV_EINVAL");
944 		ctx->result.exec.status = DAX_SUBMIT_ERR_CCB_INVAL;
945 		break;
946 	case HV_ENOACCESS:
947 		/*
948 		 * HV found a VA that did not have the appropriate
949 		 * permissions (such as the w bit). The VA in question
950 		 * is returned in status_data param.
951 		 */
952 		dax_dbg("hcall returned HV_ENOACCESS");
953 		ctx->result.exec.status = DAX_SUBMIT_ERR_NOACCESS;
954 		break;
955 	case HV_EUNAVAILABLE:
956 		/*
957 		 * The requested CCB operation could not be performed
958 		 * at this time. Return the specific unavailable code
959 		 * in the status_data field.
960 		 */
961 		dax_dbg("hcall returned HV_EUNAVAILABLE");
962 		ctx->result.exec.status = DAX_SUBMIT_ERR_UNAVAIL;
963 		break;
964 	default:
965 		ctx->result.exec.status = DAX_SUBMIT_ERR_INTERNAL;
966 		dax_dbg("unknown hcall return value (%ld)", hv_rv);
967 		break;
968 	}
969 
970 	/* unlock pages associated with the unaccepted CCBs */
971 	naccepted = accepted_len / sizeof(struct dax_ccb);
972 	dax_unlock_pages(ctx, idx + naccepted, nccbs - naccepted);
973 
974 	/* mark unaccepted CCBs as not completed */
975 	for (i = idx + naccepted; i < idx + nccbs; i++)
976 		ctx->ca_buf[i].status = CCA_STAT_COMPLETED;
977 
978 	ctx->ccb_count += naccepted;
979 	ctx->fail_count += nccbs - naccepted;
980 
981 	dax_dbg("hcall rv=%ld, accepted_len=%ld, status_data=0x%llx, ret status=%d",
982 		hv_rv, accepted_len, ctx->result.exec.status_data,
983 		ctx->result.exec.status);
984 
985 	if (count == accepted_len)
986 		ctx->client = NULL; /* no read needed to complete protocol */
987 	return accepted_len;
988 }
989