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a17ae4c3 1// SPDX-License-Identifier: GPL-2.0
8c069ff4
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2/*
3 * Performance event support for the System z CPU-measurement Sampling Facility
4 *
5 * Copyright IBM Corp. 2013
6 * Author(s): Hendrik Brueckner <brueckner@linux.vnet.ibm.com>
8c069ff4
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7 */
8#define KMSG_COMPONENT "cpum_sf"
9#define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
10
11#include <linux/kernel.h>
12#include <linux/kernel_stat.h>
13#include <linux/perf_event.h>
14#include <linux/percpu.h>
544e8dd7 15#include <linux/pid.h>
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16#include <linux/notifier.h>
17#include <linux/export.h>
7e75fc3f 18#include <linux/slab.h>
69f239ed
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19#include <linux/mm.h>
20#include <linux/moduleparam.h>
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21#include <asm/cpu_mf.h>
22#include <asm/irq.h>
23#include <asm/debug.h>
24#include <asm/timex.h>
25
26/* Minimum number of sample-data-block-tables:
27 * At least one table is required for the sampling buffer structure.
28 * A single table contains up to 511 pointers to sample-data-blocks.
29 */
69f239ed 30#define CPUM_SF_MIN_SDBT 1
8c069ff4 31
69f239ed 32/* Number of sample-data-blocks per sample-data-block-table (SDBT):
7e75fc3f
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33 * A table contains SDB pointers (8 bytes) and one table-link entry
34 * that points to the origin of the next SDBT.
8c069ff4 35 */
69f239ed 36#define CPUM_SF_SDB_PER_TABLE ((PAGE_SIZE - 8) / 8)
8c069ff4 37
69f239ed
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38/* Maximum page offset for an SDBT table-link entry:
39 * If this page offset is reached, a table-link entry to the next SDBT
40 * must be added.
41 */
42#define CPUM_SF_SDBT_TL_OFFSET (CPUM_SF_SDB_PER_TABLE * 8)
43static inline int require_table_link(const void *sdbt)
44{
45 return ((unsigned long) sdbt & ~PAGE_MASK) == CPUM_SF_SDBT_TL_OFFSET;
46}
47
48/* Minimum and maximum sampling buffer sizes:
49 *
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50 * This number represents the maximum size of the sampling buffer taking
51 * the number of sample-data-block-tables into account. Note that these
52 * numbers apply to the basic-sampling function only.
53 * The maximum number of SDBs is increased by CPUM_SF_SDB_DIAG_FACTOR if
54 * the diagnostic-sampling function is active.
8c069ff4 55 *
69f239ed
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56 * Sampling buffer size Buffer characteristics
57 * ---------------------------------------------------
58 * 64KB == 16 pages (4KB per page)
59 * 1 page for SDB-tables
60 * 15 pages for SDBs
61 *
62 * 32MB == 8192 pages (4KB per page)
63 * 16 pages for SDB-tables
64 * 8176 pages for SDBs
8c069ff4 65 */
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66static unsigned long __read_mostly CPUM_SF_MIN_SDB = 15;
67static unsigned long __read_mostly CPUM_SF_MAX_SDB = 8176;
7e75fc3f 68static unsigned long __read_mostly CPUM_SF_SDB_DIAG_FACTOR = 1;
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69
70struct sf_buffer {
69f239ed 71 unsigned long *sdbt; /* Sample-data-block-table origin */
8c069ff4 72 /* buffer characteristics (required for buffer increments) */
69f239ed
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73 unsigned long num_sdb; /* Number of sample-data-blocks */
74 unsigned long num_sdbt; /* Number of sample-data-block-tables */
75 unsigned long *tail; /* last sample-data-block-table */
8c069ff4
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76};
77
ca5955cd
PH
78struct aux_buffer {
79 struct sf_buffer sfb;
80 unsigned long head; /* index of SDB of buffer head */
81 unsigned long alert_mark; /* index of SDB of alert request position */
82 unsigned long empty_mark; /* mark of SDB not marked full */
83 unsigned long *sdb_index; /* SDB address for fast lookup */
84 unsigned long *sdbt_index; /* SDBT address for fast lookup */
85};
86
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87struct cpu_hw_sf {
88 /* CPU-measurement sampling information block */
89 struct hws_qsi_info_block qsi;
69f239ed 90 /* CPU-measurement sampling control block */
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91 struct hws_lsctl_request_block lsctl;
92 struct sf_buffer sfb; /* Sampling buffer */
93 unsigned int flags; /* Status flags */
94 struct perf_event *event; /* Scheduled perf event */
ca5955cd 95 struct perf_output_handle handle; /* AUX buffer output handle */
8c069ff4
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96};
97static DEFINE_PER_CPU(struct cpu_hw_sf, cpu_hw_sf);
98
99/* Debug feature */
100static debug_info_t *sfdbg;
101
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102/*
103 * sf_disable() - Switch off sampling facility
104 */
105static int sf_disable(void)
106{
107 struct hws_lsctl_request_block sreq;
108
109 memset(&sreq, 0, sizeof(sreq));
110 return lsctl(&sreq);
111}
112
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113/*
114 * sf_buffer_available() - Check for an allocated sampling buffer
115 */
116static int sf_buffer_available(struct cpu_hw_sf *cpuhw)
117{
69f239ed 118 return !!cpuhw->sfb.sdbt;
8c069ff4
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119}
120
121/*
122 * deallocate sampling facility buffer
123 */
124static void free_sampling_buffer(struct sf_buffer *sfb)
125{
69f239ed 126 unsigned long *sdbt, *curr;
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127
128 if (!sfb->sdbt)
129 return;
130
131 sdbt = sfb->sdbt;
69f239ed 132 curr = sdbt;
8c069ff4 133
69f239ed 134 /* Free the SDBT after all SDBs are processed... */
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135 while (1) {
136 if (!*curr || !sdbt)
137 break;
138
69f239ed 139 /* Process table-link entries */
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140 if (is_link_entry(curr)) {
141 curr = get_next_sdbt(curr);
142 if (sdbt)
69f239ed 143 free_page((unsigned long) sdbt);
8c069ff4 144
69f239ed
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145 /* If the origin is reached, sampling buffer is freed */
146 if (curr == sfb->sdbt)
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147 break;
148 else
69f239ed 149 sdbt = curr;
8c069ff4 150 } else {
69f239ed 151 /* Process SDB pointer */
8c069ff4
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152 if (*curr) {
153 free_page(*curr);
154 curr++;
155 }
156 }
157 }
158
159 debug_sprintf_event(sfdbg, 5,
69f239ed 160 "free_sampling_buffer: freed sdbt=%p\n", sfb->sdbt);
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161 memset(sfb, 0, sizeof(*sfb));
162}
163
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164static int alloc_sample_data_block(unsigned long *sdbt, gfp_t gfp_flags)
165{
166 unsigned long sdb, *trailer;
167
168 /* Allocate and initialize sample-data-block */
169 sdb = get_zeroed_page(gfp_flags);
170 if (!sdb)
171 return -ENOMEM;
172 trailer = trailer_entry_ptr(sdb);
173 *trailer = SDB_TE_ALERT_REQ_MASK;
174
175 /* Link SDB into the sample-data-block-table */
176 *sdbt = sdb;
177
178 return 0;
179}
180
181/*
182 * realloc_sampling_buffer() - extend sampler memory
183 *
184 * Allocates new sample-data-blocks and adds them to the specified sampling
185 * buffer memory.
186 *
187 * Important: This modifies the sampling buffer and must be called when the
188 * sampling facility is disabled.
189 *
190 * Returns zero on success, non-zero otherwise.
191 */
192static int realloc_sampling_buffer(struct sf_buffer *sfb,
193 unsigned long num_sdb, gfp_t gfp_flags)
194{
195 int i, rc;
196 unsigned long *new, *tail;
197
198 if (!sfb->sdbt || !sfb->tail)
199 return -EINVAL;
200
201 if (!is_link_entry(sfb->tail))
202 return -EINVAL;
203
204 /* Append to the existing sampling buffer, overwriting the table-link
205 * register.
206 * The tail variables always points to the "tail" (last and table-link)
207 * entry in an SDB-table.
208 */
209 tail = sfb->tail;
210
211 /* Do a sanity check whether the table-link entry points to
212 * the sampling buffer origin.
213 */
214 if (sfb->sdbt != get_next_sdbt(tail)) {
215 debug_sprintf_event(sfdbg, 3, "realloc_sampling_buffer: "
216 "sampling buffer is not linked: origin=%p"
217 "tail=%p\n",
218 (void *) sfb->sdbt, (void *) tail);
219 return -EINVAL;
220 }
221
222 /* Allocate remaining SDBs */
223 rc = 0;
224 for (i = 0; i < num_sdb; i++) {
225 /* Allocate a new SDB-table if it is full. */
226 if (require_table_link(tail)) {
227 new = (unsigned long *) get_zeroed_page(gfp_flags);
228 if (!new) {
229 rc = -ENOMEM;
230 break;
231 }
232 sfb->num_sdbt++;
233 /* Link current page to tail of chain */
234 *tail = (unsigned long)(void *) new + 1;
235 tail = new;
236 }
237
238 /* Allocate a new sample-data-block.
239 * If there is not enough memory, stop the realloc process
240 * and simply use what was allocated. If this is a temporary
241 * issue, a new realloc call (if required) might succeed.
242 */
243 rc = alloc_sample_data_block(tail, gfp_flags);
244 if (rc)
245 break;
246 sfb->num_sdb++;
247 tail++;
248 }
249
250 /* Link sampling buffer to its origin */
251 *tail = (unsigned long) sfb->sdbt + 1;
252 sfb->tail = tail;
253
254 debug_sprintf_event(sfdbg, 4, "realloc_sampling_buffer: new buffer"
255 " settings: sdbt=%lu sdb=%lu\n",
256 sfb->num_sdbt, sfb->num_sdb);
257 return rc;
258}
259
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260/*
261 * allocate_sampling_buffer() - allocate sampler memory
262 *
263 * Allocates and initializes a sampling buffer structure using the
264 * specified number of sample-data-blocks (SDB). For each allocation,
265 * a 4K page is used. The number of sample-data-block-tables (SDBT)
266 * are calculated from SDBs.
267 * Also set the ALERT_REQ mask in each SDBs trailer.
268 *
269 * Returns zero on success, non-zero otherwise.
270 */
271static int alloc_sampling_buffer(struct sf_buffer *sfb, unsigned long num_sdb)
272{
69f239ed 273 int rc;
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274
275 if (sfb->sdbt)
276 return -EINVAL;
69f239ed
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277
278 /* Allocate the sample-data-block-table origin */
279 sfb->sdbt = (unsigned long *) get_zeroed_page(GFP_KERNEL);
280 if (!sfb->sdbt)
281 return -ENOMEM;
8c069ff4 282 sfb->num_sdb = 0;
69f239ed 283 sfb->num_sdbt = 1;
8c069ff4 284
69f239ed
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285 /* Link the table origin to point to itself to prepare for
286 * realloc_sampling_buffer() invocation.
287 */
288 sfb->tail = sfb->sdbt;
289 *sfb->tail = (unsigned long)(void *) sfb->sdbt + 1;
8c069ff4 290
69f239ed
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291 /* Allocate requested number of sample-data-blocks */
292 rc = realloc_sampling_buffer(sfb, num_sdb, GFP_KERNEL);
293 if (rc) {
294 free_sampling_buffer(sfb);
295 debug_sprintf_event(sfdbg, 4, "alloc_sampling_buffer: "
296 "realloc_sampling_buffer failed with rc=%i\n", rc);
297 } else
298 debug_sprintf_event(sfdbg, 4,
299 "alloc_sampling_buffer: tear=%p dear=%p\n",
300 sfb->sdbt, (void *) *sfb->sdbt);
301 return rc;
302}
8c069ff4 303
69f239ed
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304static void sfb_set_limits(unsigned long min, unsigned long max)
305{
7e75fc3f
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306 struct hws_qsi_info_block si;
307
69f239ed
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308 CPUM_SF_MIN_SDB = min;
309 CPUM_SF_MAX_SDB = max;
7e75fc3f
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310
311 memset(&si, 0, sizeof(si));
312 if (!qsi(&si))
313 CPUM_SF_SDB_DIAG_FACTOR = DIV_ROUND_UP(si.dsdes, si.bsdes);
314}
315
316static unsigned long sfb_max_limit(struct hw_perf_event *hwc)
317{
318 return SAMPL_DIAG_MODE(hwc) ? CPUM_SF_MAX_SDB * CPUM_SF_SDB_DIAG_FACTOR
319 : CPUM_SF_MAX_SDB;
69f239ed 320}
8c069ff4 321
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322static unsigned long sfb_pending_allocs(struct sf_buffer *sfb,
323 struct hw_perf_event *hwc)
324{
325 if (!sfb->sdbt)
326 return SFB_ALLOC_REG(hwc);
327 if (SFB_ALLOC_REG(hwc) > sfb->num_sdb)
328 return SFB_ALLOC_REG(hwc) - sfb->num_sdb;
329 return 0;
330}
8c069ff4 331
69f239ed
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332static int sfb_has_pending_allocs(struct sf_buffer *sfb,
333 struct hw_perf_event *hwc)
334{
335 return sfb_pending_allocs(sfb, hwc) > 0;
336}
8c069ff4 337
69f239ed
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338static void sfb_account_allocs(unsigned long num, struct hw_perf_event *hwc)
339{
7e75fc3f
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340 /* Limit the number of SDBs to not exceed the maximum */
341 num = min_t(unsigned long, num, sfb_max_limit(hwc) - SFB_ALLOC_REG(hwc));
69f239ed
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342 if (num)
343 SFB_ALLOC_REG(hwc) += num;
8c069ff4
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344}
345
69f239ed
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346static void sfb_init_allocs(unsigned long num, struct hw_perf_event *hwc)
347{
348 SFB_ALLOC_REG(hwc) = 0;
349 sfb_account_allocs(num, hwc);
350}
351
7e75fc3f
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352static void deallocate_buffers(struct cpu_hw_sf *cpuhw)
353{
354 if (cpuhw->sfb.sdbt)
355 free_sampling_buffer(&cpuhw->sfb);
356}
357
358static int allocate_buffers(struct cpu_hw_sf *cpuhw, struct hw_perf_event *hwc)
8c069ff4 359{
7e75fc3f 360 unsigned long n_sdb, freq, factor;
3d43b981 361 size_t sample_size;
8c069ff4
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362
363 /* Calculate sampling buffers using 4K pages
364 *
7e75fc3f
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365 * 1. Determine the sample data size which depends on the used
366 * sampling functions, for example, basic-sampling or
367 * basic-sampling with diagnostic-sampling.
368 *
369 * 2. Use the sampling frequency as input. The sampling buffer is
370 * designed for almost one second. This can be adjusted through
371 * the "factor" variable.
8c069ff4 372 * In any case, alloc_sampling_buffer() sets the Alert Request
7e75fc3f 373 * Control indicator to trigger a measurement-alert to harvest
8c069ff4
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374 * sample-data-blocks (sdb).
375 *
7e75fc3f 376 * 3. Compute the number of sample-data-blocks and ensure a minimum
8c069ff4 377 * of CPUM_SF_MIN_SDB. Also ensure the upper limit does not
7e75fc3f
HB
378 * exceed a "calculated" maximum. The symbolic maximum is
379 * designed for basic-sampling only and needs to be increased if
380 * diagnostic-sampling is active.
381 * See also the remarks for these symbolic constants.
8c069ff4 382 *
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383 * 4. Compute the number of sample-data-block-tables (SDBT) and
384 * ensure a minimum of CPUM_SF_MIN_SDBT (one table can manage up
385 * to 511 SDBs).
8c069ff4 386 */
3d43b981 387 sample_size = sizeof(struct hws_basic_entry);
8c069ff4
HB
388 freq = sample_rate_to_freq(&cpuhw->qsi, SAMPL_RATE(hwc));
389 factor = 1;
7e75fc3f 390 n_sdb = DIV_ROUND_UP(freq, factor * ((PAGE_SIZE-64) / sample_size));
8c069ff4
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391 if (n_sdb < CPUM_SF_MIN_SDB)
392 n_sdb = CPUM_SF_MIN_SDB;
393
69f239ed
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394 /* If there is already a sampling buffer allocated, it is very likely
395 * that the sampling facility is enabled too. If the event to be
396 * initialized requires a greater sampling buffer, the allocation must
397 * be postponed. Changing the sampling buffer requires the sampling
398 * facility to be in the disabled state. So, account the number of
399 * required SDBs and let cpumsf_pmu_enable() resize the buffer just
400 * before the event is started.
8c069ff4 401 */
69f239ed 402 sfb_init_allocs(n_sdb, hwc);
8c069ff4
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403 if (sf_buffer_available(cpuhw))
404 return 0;
405
406 debug_sprintf_event(sfdbg, 3,
7e75fc3f
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407 "allocate_buffers: rate=%lu f=%lu sdb=%lu/%lu"
408 " sample_size=%lu cpuhw=%p\n",
409 SAMPL_RATE(hwc), freq, n_sdb, sfb_max_limit(hwc),
410 sample_size, cpuhw);
8c069ff4
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411
412 return alloc_sampling_buffer(&cpuhw->sfb,
69f239ed 413 sfb_pending_allocs(&cpuhw->sfb, hwc));
8c069ff4
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414}
415
69f239ed
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416static unsigned long min_percent(unsigned int percent, unsigned long base,
417 unsigned long min)
418{
419 return min_t(unsigned long, min, DIV_ROUND_UP(percent * base, 100));
420}
8c069ff4 421
69f239ed
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422static unsigned long compute_sfb_extent(unsigned long ratio, unsigned long base)
423{
424 /* Use a percentage-based approach to extend the sampling facility
425 * buffer. Accept up to 5% sample data loss.
426 * Vary the extents between 1% to 5% of the current number of
427 * sample-data-blocks.
428 */
429 if (ratio <= 5)
430 return 0;
431 if (ratio <= 25)
432 return min_percent(1, base, 1);
433 if (ratio <= 50)
434 return min_percent(1, base, 1);
435 if (ratio <= 75)
436 return min_percent(2, base, 2);
437 if (ratio <= 100)
438 return min_percent(3, base, 3);
439 if (ratio <= 250)
440 return min_percent(4, base, 4);
441
442 return min_percent(5, base, 8);
443}
8c069ff4 444
69f239ed
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445static void sfb_account_overflows(struct cpu_hw_sf *cpuhw,
446 struct hw_perf_event *hwc)
447{
448 unsigned long ratio, num;
449
450 if (!OVERFLOW_REG(hwc))
451 return;
452
453 /* The sample_overflow contains the average number of sample data
454 * that has been lost because sample-data-blocks were full.
455 *
456 * Calculate the total number of sample data entries that has been
457 * discarded. Then calculate the ratio of lost samples to total samples
458 * per second in percent.
459 */
460 ratio = DIV_ROUND_UP(100 * OVERFLOW_REG(hwc) * cpuhw->sfb.num_sdb,
461 sample_rate_to_freq(&cpuhw->qsi, SAMPL_RATE(hwc)));
462
463 /* Compute number of sample-data-blocks */
464 num = compute_sfb_extent(ratio, cpuhw->sfb.num_sdb);
465 if (num)
466 sfb_account_allocs(num, hwc);
467
468 debug_sprintf_event(sfdbg, 5, "sfb: overflow: overflow=%llu ratio=%lu"
469 " num=%lu\n", OVERFLOW_REG(hwc), ratio, num);
470 OVERFLOW_REG(hwc) = 0;
471}
472
473/* extend_sampling_buffer() - Extend sampling buffer
474 * @sfb: Sampling buffer structure (for local CPU)
475 * @hwc: Perf event hardware structure
476 *
477 * Use this function to extend the sampling buffer based on the overflow counter
478 * and postponed allocation extents stored in the specified Perf event hardware.
479 *
480 * Important: This function disables the sampling facility in order to safely
481 * change the sampling buffer structure. Do not call this function
482 * when the PMU is active.
8c069ff4 483 */
69f239ed
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484static void extend_sampling_buffer(struct sf_buffer *sfb,
485 struct hw_perf_event *hwc)
8c069ff4 486{
69f239ed
HB
487 unsigned long num, num_old;
488 int rc;
8c069ff4 489
69f239ed
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490 num = sfb_pending_allocs(sfb, hwc);
491 if (!num)
492 return;
493 num_old = sfb->num_sdb;
494
495 /* Disable the sampling facility to reset any states and also
496 * clear pending measurement alerts.
497 */
498 sf_disable();
499
500 /* Extend the sampling buffer.
501 * This memory allocation typically happens in an atomic context when
502 * called by perf. Because this is a reallocation, it is fine if the
503 * new SDB-request cannot be satisfied immediately.
504 */
505 rc = realloc_sampling_buffer(sfb, num, GFP_ATOMIC);
506 if (rc)
507 debug_sprintf_event(sfdbg, 5, "sfb: extend: realloc "
508 "failed with rc=%i\n", rc);
509
510 if (sfb_has_pending_allocs(sfb, hwc))
511 debug_sprintf_event(sfdbg, 5, "sfb: extend: "
512 "req=%lu alloc=%lu remaining=%lu\n",
513 num, sfb->num_sdb - num_old,
514 sfb_pending_allocs(sfb, hwc));
8c069ff4
HB
515}
516
517
69f239ed
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518/* Number of perf events counting hardware events */
519static atomic_t num_events;
520/* Used to avoid races in calling reserve/release_cpumf_hardware */
521static DEFINE_MUTEX(pmc_reserve_mutex);
522
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523#define PMC_INIT 0
524#define PMC_RELEASE 1
e28bb79d 525#define PMC_FAILURE 2
8c069ff4
HB
526static void setup_pmc_cpu(void *flags)
527{
528 int err;
eb7e7d76 529 struct cpu_hw_sf *cpusf = this_cpu_ptr(&cpu_hw_sf);
8c069ff4 530
8c069ff4
HB
531 err = 0;
532 switch (*((int *) flags)) {
533 case PMC_INIT:
534 memset(cpusf, 0, sizeof(*cpusf));
535 err = qsi(&cpusf->qsi);
536 if (err)
537 break;
538 cpusf->flags |= PMU_F_RESERVED;
539 err = sf_disable();
540 if (err)
541 pr_err("Switching off the sampling facility failed "
542 "with rc=%i\n", err);
543 debug_sprintf_event(sfdbg, 5,
544 "setup_pmc_cpu: initialized: cpuhw=%p\n", cpusf);
545 break;
546 case PMC_RELEASE:
547 cpusf->flags &= ~PMU_F_RESERVED;
548 err = sf_disable();
549 if (err) {
550 pr_err("Switching off the sampling facility failed "
551 "with rc=%i\n", err);
7e75fc3f
HB
552 } else
553 deallocate_buffers(cpusf);
8c069ff4
HB
554 debug_sprintf_event(sfdbg, 5,
555 "setup_pmc_cpu: released: cpuhw=%p\n", cpusf);
556 break;
557 }
e28bb79d
HB
558 if (err)
559 *((int *) flags) |= PMC_FAILURE;
8c069ff4
HB
560}
561
562static void release_pmc_hardware(void)
563{
564 int flags = PMC_RELEASE;
565
566 irq_subclass_unregister(IRQ_SUBCLASS_MEASUREMENT_ALERT);
567 on_each_cpu(setup_pmc_cpu, &flags, 1);
568}
569
570static int reserve_pmc_hardware(void)
571{
572 int flags = PMC_INIT;
573
574 on_each_cpu(setup_pmc_cpu, &flags, 1);
e28bb79d
HB
575 if (flags & PMC_FAILURE) {
576 release_pmc_hardware();
577 return -ENODEV;
578 }
8c069ff4
HB
579 irq_subclass_register(IRQ_SUBCLASS_MEASUREMENT_ALERT);
580
581 return 0;
582}
583
584static void hw_perf_event_destroy(struct perf_event *event)
585{
586 /* Release PMC if this is the last perf event */
587 if (!atomic_add_unless(&num_events, -1, 1)) {
588 mutex_lock(&pmc_reserve_mutex);
589 if (atomic_dec_return(&num_events) == 0)
590 release_pmc_hardware();
591 mutex_unlock(&pmc_reserve_mutex);
592 }
593}
594
595static void hw_init_period(struct hw_perf_event *hwc, u64 period)
596{
597 hwc->sample_period = period;
598 hwc->last_period = hwc->sample_period;
599 local64_set(&hwc->period_left, hwc->sample_period);
600}
601
602static void hw_reset_registers(struct hw_perf_event *hwc,
69f239ed 603 unsigned long *sdbt_origin)
8c069ff4 604{
69f239ed
HB
605 /* (Re)set to first sample-data-block-table */
606 TEAR_REG(hwc) = (unsigned long) sdbt_origin;
8c069ff4
HB
607}
608
609static unsigned long hw_limit_rate(const struct hws_qsi_info_block *si,
610 unsigned long rate)
611{
69f239ed
HB
612 return clamp_t(unsigned long, rate,
613 si->min_sampl_rate, si->max_sampl_rate);
8c069ff4
HB
614}
615
544e8dd7
HB
616static u32 cpumsf_pid_type(struct perf_event *event,
617 u32 pid, enum pid_type type)
618{
619 struct task_struct *tsk;
620
621 /* Idle process */
622 if (!pid)
623 goto out;
624
625 tsk = find_task_by_pid_ns(pid, &init_pid_ns);
626 pid = -1;
627 if (tsk) {
628 /*
629 * Only top level events contain the pid namespace in which
630 * they are created.
631 */
632 if (event->parent)
633 event = event->parent;
634 pid = __task_pid_nr_ns(tsk, type, event->ns);
635 /*
636 * See also 1d953111b648
637 * "perf/core: Don't report zero PIDs for exiting tasks".
638 */
639 if (!pid && !pid_alive(tsk))
640 pid = -1;
641 }
642out:
643 return pid;
644}
645
646static void cpumsf_output_event_pid(struct perf_event *event,
647 struct perf_sample_data *data,
648 struct pt_regs *regs)
649{
650 u32 pid;
651 struct perf_event_header header;
652 struct perf_output_handle handle;
653
654 /*
655 * Obtain the PID from the basic-sampling data entry and
656 * correct the data->tid_entry.pid value.
657 */
658 pid = data->tid_entry.pid;
659
660 /* Protect callchain buffers, tasks */
661 rcu_read_lock();
662
663 perf_prepare_sample(&header, data, event, regs);
664 if (perf_output_begin(&handle, event, header.size))
665 goto out;
666
667 /* Update the process ID (see also kernel/events/core.c) */
668 data->tid_entry.pid = cpumsf_pid_type(event, pid, __PIDTYPE_TGID);
669 data->tid_entry.tid = cpumsf_pid_type(event, pid, PIDTYPE_PID);
670
671 perf_output_sample(&handle, &header, data, event);
672 perf_output_end(&handle);
673out:
674 rcu_read_unlock();
675}
676
8c069ff4
HB
677static int __hw_perf_event_init(struct perf_event *event)
678{
679 struct cpu_hw_sf *cpuhw;
680 struct hws_qsi_info_block si;
681 struct perf_event_attr *attr = &event->attr;
682 struct hw_perf_event *hwc = &event->hw;
683 unsigned long rate;
684 int cpu, err;
685
686 /* Reserve CPU-measurement sampling facility */
687 err = 0;
688 if (!atomic_inc_not_zero(&num_events)) {
689 mutex_lock(&pmc_reserve_mutex);
690 if (atomic_read(&num_events) == 0 && reserve_pmc_hardware())
691 err = -EBUSY;
692 else
693 atomic_inc(&num_events);
694 mutex_unlock(&pmc_reserve_mutex);
695 }
696 event->destroy = hw_perf_event_destroy;
697
698 if (err)
699 goto out;
700
701 /* Access per-CPU sampling information (query sampling info) */
702 /*
703 * The event->cpu value can be -1 to count on every CPU, for example,
704 * when attaching to a task. If this is specified, use the query
705 * sampling info from the current CPU, otherwise use event->cpu to
706 * retrieve the per-CPU information.
707 * Later, cpuhw indicates whether to allocate sampling buffers for a
708 * particular CPU (cpuhw!=NULL) or each online CPU (cpuw==NULL).
709 */
710 memset(&si, 0, sizeof(si));
711 cpuhw = NULL;
712 if (event->cpu == -1)
713 qsi(&si);
714 else {
715 /* Event is pinned to a particular CPU, retrieve the per-CPU
716 * sampling structure for accessing the CPU-specific QSI.
717 */
718 cpuhw = &per_cpu(cpu_hw_sf, event->cpu);
719 si = cpuhw->qsi;
720 }
721
722 /* Check sampling facility authorization and, if not authorized,
723 * fall back to other PMUs. It is safe to check any CPU because
724 * the authorization is identical for all configured CPUs.
725 */
726 if (!si.as) {
727 err = -ENOENT;
728 goto out;
729 }
730
7e75fc3f
HB
731 /* Always enable basic sampling */
732 SAMPL_FLAGS(hwc) = PERF_CPUM_SF_BASIC_MODE;
733
734 /* Check if diagnostic sampling is requested. Deny if the required
735 * sampling authorization is missing.
736 */
737 if (attr->config == PERF_EVENT_CPUM_SF_DIAG) {
738 if (!si.ad) {
739 err = -EPERM;
740 goto out;
741 }
742 SAMPL_FLAGS(hwc) |= PERF_CPUM_SF_DIAG_MODE;
743 }
744
d7528862
HB
745 /* Check and set other sampling flags */
746 if (attr->config1 & PERF_CPUM_SF_FULL_BLOCKS)
747 SAMPL_FLAGS(hwc) |= PERF_CPUM_SF_FULL_BLOCKS;
748
8c069ff4
HB
749 /* The sampling information (si) contains information about the
750 * min/max sampling intervals and the CPU speed. So calculate the
751 * correct sampling interval and avoid the whole period adjust
752 * feedback loop.
753 */
754 rate = 0;
755 if (attr->freq) {
756 rate = freq_to_sample_rate(&si, attr->sample_freq);
757 rate = hw_limit_rate(&si, rate);
758 attr->freq = 0;
759 attr->sample_period = rate;
760 } else {
761 /* The min/max sampling rates specifies the valid range
762 * of sample periods. If the specified sample period is
763 * out of range, limit the period to the range boundary.
764 */
765 rate = hw_limit_rate(&si, hwc->sample_period);
766
767 /* The perf core maintains a maximum sample rate that is
768 * configurable through the sysctl interface. Ensure the
769 * sampling rate does not exceed this value. This also helps
770 * to avoid throttling when pushing samples with
771 * perf_event_overflow().
772 */
773 if (sample_rate_to_freq(&si, rate) >
774 sysctl_perf_event_sample_rate) {
775 err = -EINVAL;
776 debug_sprintf_event(sfdbg, 1, "Sampling rate exceeds maximum perf sample rate\n");
777 goto out;
778 }
779 }
780 SAMPL_RATE(hwc) = rate;
781 hw_init_period(hwc, SAMPL_RATE(hwc));
782
69f239ed
HB
783 /* Initialize sample data overflow accounting */
784 hwc->extra_reg.reg = REG_OVERFLOW;
785 OVERFLOW_REG(hwc) = 0;
786
cbf6948f
PH
787 /* Use AUX buffer. No need to allocate it by ourself */
788 if (attr->config == PERF_EVENT_CPUM_SF_DIAG)
789 return 0;
790
8c069ff4
HB
791 /* Allocate the per-CPU sampling buffer using the CPU information
792 * from the event. If the event is not pinned to a particular
793 * CPU (event->cpu == -1; or cpuhw == NULL), allocate sampling
794 * buffers for each online CPU.
795 */
796 if (cpuhw)
797 /* Event is pinned to a particular CPU */
7e75fc3f 798 err = allocate_buffers(cpuhw, hwc);
8c069ff4
HB
799 else {
800 /* Event is not pinned, allocate sampling buffer on
801 * each online CPU
802 */
803 for_each_online_cpu(cpu) {
804 cpuhw = &per_cpu(cpu_hw_sf, cpu);
7e75fc3f 805 err = allocate_buffers(cpuhw, hwc);
8c069ff4
HB
806 if (err)
807 break;
808 }
809 }
544e8dd7
HB
810
811 /* If PID/TID sampling is active, replace the default overflow
812 * handler to extract and resolve the PIDs from the basic-sampling
813 * data entries.
814 */
815 if (event->attr.sample_type & PERF_SAMPLE_TID)
816 if (is_default_overflow_handler(event))
817 event->overflow_handler = cpumsf_output_event_pid;
8c069ff4
HB
818out:
819 return err;
820}
821
822static int cpumsf_pmu_event_init(struct perf_event *event)
823{
824 int err;
825
55baa2f8
HB
826 /* No support for taken branch sampling */
827 if (has_branch_stack(event))
828 return -EOPNOTSUPP;
829
830 switch (event->attr.type) {
831 case PERF_TYPE_RAW:
7e75fc3f
HB
832 if ((event->attr.config != PERF_EVENT_CPUM_SF) &&
833 (event->attr.config != PERF_EVENT_CPUM_SF_DIAG))
55baa2f8
HB
834 return -ENOENT;
835 break;
836 case PERF_TYPE_HARDWARE:
837 /* Support sampling of CPU cycles in addition to the
838 * counter facility. However, the counter facility
839 * is more precise and, hence, restrict this PMU to
840 * sampling events only.
841 */
842 if (event->attr.config != PERF_COUNT_HW_CPU_CYCLES)
843 return -ENOENT;
844 if (!is_sampling_event(event))
845 return -ENOENT;
846 break;
847 default:
8c069ff4 848 return -ENOENT;
55baa2f8 849 }
8c069ff4 850
dd127b3b 851 /* Check online status of the CPU to which the event is pinned */
19220999 852 if (event->cpu >= 0 && !cpu_online(event->cpu))
fc3100d6 853 return -ENODEV;
8c069ff4 854
dd127b3b
HB
855 /* Force reset of idle/hv excludes regardless of what the
856 * user requested.
857 */
858 if (event->attr.exclude_hv)
859 event->attr.exclude_hv = 0;
860 if (event->attr.exclude_idle)
861 event->attr.exclude_idle = 0;
862
8c069ff4
HB
863 err = __hw_perf_event_init(event);
864 if (unlikely(err))
865 if (event->destroy)
866 event->destroy(event);
867 return err;
868}
869
870static void cpumsf_pmu_enable(struct pmu *pmu)
871{
eb7e7d76 872 struct cpu_hw_sf *cpuhw = this_cpu_ptr(&cpu_hw_sf);
69f239ed 873 struct hw_perf_event *hwc;
8c069ff4
HB
874 int err;
875
876 if (cpuhw->flags & PMU_F_ENABLED)
877 return;
878
879 if (cpuhw->flags & PMU_F_ERR_MASK)
880 return;
881
69f239ed
HB
882 /* Check whether to extent the sampling buffer.
883 *
884 * Two conditions trigger an increase of the sampling buffer for a
885 * perf event:
886 * 1. Postponed buffer allocations from the event initialization.
887 * 2. Sampling overflows that contribute to pending allocations.
888 *
889 * Note that the extend_sampling_buffer() function disables the sampling
890 * facility, but it can be fully re-enabled using sampling controls that
891 * have been saved in cpumsf_pmu_disable().
892 */
893 if (cpuhw->event) {
894 hwc = &cpuhw->event->hw;
cbf6948f
PH
895 if (!(SAMPL_DIAG_MODE(hwc))) {
896 /*
897 * Account number of overflow-designated
898 * buffer extents
899 */
900 sfb_account_overflows(cpuhw, hwc);
901 if (sfb_has_pending_allocs(&cpuhw->sfb, hwc))
902 extend_sampling_buffer(&cpuhw->sfb, hwc);
903 }
69f239ed
HB
904 }
905
906 /* (Re)enable the PMU and sampling facility */
8c069ff4
HB
907 cpuhw->flags |= PMU_F_ENABLED;
908 barrier();
909
910 err = lsctl(&cpuhw->lsctl);
911 if (err) {
912 cpuhw->flags &= ~PMU_F_ENABLED;
913 pr_err("Loading sampling controls failed: op=%i err=%i\n",
914 1, err);
915 return;
916 }
917
d4c7e649
HB
918 /* Load current program parameter */
919 lpp(&S390_lowcore.lpp);
920
7e75fc3f
HB
921 debug_sprintf_event(sfdbg, 6, "pmu_enable: es=%i cs=%i ed=%i cd=%i "
922 "tear=%p dear=%p\n", cpuhw->lsctl.es, cpuhw->lsctl.cs,
923 cpuhw->lsctl.ed, cpuhw->lsctl.cd,
8c069ff4
HB
924 (void *) cpuhw->lsctl.tear, (void *) cpuhw->lsctl.dear);
925}
926
927static void cpumsf_pmu_disable(struct pmu *pmu)
928{
eb7e7d76 929 struct cpu_hw_sf *cpuhw = this_cpu_ptr(&cpu_hw_sf);
8c069ff4
HB
930 struct hws_lsctl_request_block inactive;
931 struct hws_qsi_info_block si;
932 int err;
933
934 if (!(cpuhw->flags & PMU_F_ENABLED))
935 return;
936
937 if (cpuhw->flags & PMU_F_ERR_MASK)
938 return;
939
940 /* Switch off sampling activation control */
941 inactive = cpuhw->lsctl;
942 inactive.cs = 0;
7e75fc3f 943 inactive.cd = 0;
8c069ff4
HB
944
945 err = lsctl(&inactive);
946 if (err) {
947 pr_err("Loading sampling controls failed: op=%i err=%i\n",
948 2, err);
949 return;
950 }
951
952 /* Save state of TEAR and DEAR register contents */
953 if (!qsi(&si)) {
954 /* TEAR/DEAR values are valid only if the sampling facility is
955 * enabled. Note that cpumsf_pmu_disable() might be called even
956 * for a disabled sampling facility because cpumsf_pmu_enable()
957 * controls the enable/disable state.
958 */
959 if (si.es) {
960 cpuhw->lsctl.tear = si.tear;
961 cpuhw->lsctl.dear = si.dear;
962 }
963 } else
964 debug_sprintf_event(sfdbg, 3, "cpumsf_pmu_disable: "
965 "qsi() failed with err=%i\n", err);
966
967 cpuhw->flags &= ~PMU_F_ENABLED;
968}
969
dd127b3b
HB
970/* perf_exclude_event() - Filter event
971 * @event: The perf event
972 * @regs: pt_regs structure
973 * @sde_regs: Sample-data-entry (sde) regs structure
974 *
975 * Filter perf events according to their exclude specification.
976 *
977 * Return non-zero if the event shall be excluded.
978 */
979static int perf_exclude_event(struct perf_event *event, struct pt_regs *regs,
980 struct perf_sf_sde_regs *sde_regs)
981{
982 if (event->attr.exclude_user && user_mode(regs))
983 return 1;
984 if (event->attr.exclude_kernel && !user_mode(regs))
985 return 1;
986 if (event->attr.exclude_guest && sde_regs->in_guest)
987 return 1;
988 if (event->attr.exclude_host && !sde_regs->in_guest)
989 return 1;
990 return 0;
991}
992
8c069ff4
HB
993/* perf_push_sample() - Push samples to perf
994 * @event: The perf event
995 * @sample: Hardware sample data
996 *
997 * Use the hardware sample data to create perf event sample. The sample
998 * is the pushed to the event subsystem and the function checks for
999 * possible event overflows. If an event overflow occurs, the PMU is
1000 * stopped.
1001 *
1002 * Return non-zero if an event overflow occurred.
1003 */
3d43b981
PH
1004static int perf_push_sample(struct perf_event *event,
1005 struct hws_basic_entry *basic)
8c069ff4
HB
1006{
1007 int overflow;
1008 struct pt_regs regs;
443e802b 1009 struct perf_sf_sde_regs *sde_regs;
8c069ff4
HB
1010 struct perf_sample_data data;
1011
7e75fc3f 1012 /* Setup perf sample */
8c069ff4
HB
1013 perf_sample_data_init(&data, 0, event->hw.last_period);
1014
443e802b
HB
1015 /* Setup pt_regs to look like an CPU-measurement external interrupt
1016 * using the Program Request Alert code. The regs.int_parm_long
1017 * field which is unused contains additional sample-data-entry related
1018 * indicators.
1019 */
8c069ff4 1020 memset(&regs, 0, sizeof(regs));
443e802b
HB
1021 regs.int_code = 0x1407;
1022 regs.int_parm = CPU_MF_INT_SF_PRA;
1023 sde_regs = (struct perf_sf_sde_regs *) &regs.int_parm_long;
1024
3d43b981
PH
1025 psw_bits(regs.psw).ia = basic->ia;
1026 psw_bits(regs.psw).dat = basic->T;
1027 psw_bits(regs.psw).wait = basic->W;
1028 psw_bits(regs.psw).pstate = basic->P;
1029 psw_bits(regs.psw).as = basic->AS;
8c069ff4 1030
e22cf8ca 1031 /*
c19805f8
CB
1032 * Use the hardware provided configuration level to decide if the
1033 * sample belongs to a guest or host. If that is not available,
1034 * fall back to the following heuristics:
1035 * A non-zero guest program parameter always indicates a guest
1036 * sample. Some early samples or samples from guests without
b1685ab9 1037 * lpp usage would be misaccounted to the host. We use the asn
c19805f8 1038 * value as an addon heuristic to detect most of these guest samples.
df26c2e8
MS
1039 * If the value differs from 0xffff (the host value), we assume to
1040 * be a KVM guest.
443e802b 1041 */
3d43b981 1042 switch (basic->CL) {
c19805f8
CB
1043 case 1: /* logical partition */
1044 sde_regs->in_guest = 0;
1045 break;
1046 case 2: /* virtual machine */
443e802b 1047 sde_regs->in_guest = 1;
c19805f8
CB
1048 break;
1049 default: /* old machine, use heuristics */
3d43b981 1050 if (basic->gpp || basic->prim_asn != 0xffff)
c19805f8
CB
1051 sde_regs->in_guest = 1;
1052 break;
1053 }
443e802b 1054
544e8dd7
HB
1055 /*
1056 * Store the PID value from the sample-data-entry to be
1057 * processed and resolved by cpumsf_output_event_pid().
1058 */
1059 data.tid_entry.pid = basic->hpp & LPP_PID_MASK;
1060
8c069ff4 1061 overflow = 0;
dd127b3b
HB
1062 if (perf_exclude_event(event, &regs, sde_regs))
1063 goto out;
8c069ff4
HB
1064 if (perf_event_overflow(event, &data, &regs)) {
1065 overflow = 1;
1066 event->pmu->stop(event, 0);
8c069ff4
HB
1067 }
1068 perf_event_update_userpage(event);
dd127b3b 1069out:
8c069ff4
HB
1070 return overflow;
1071}
1072
1073static void perf_event_count_update(struct perf_event *event, u64 count)
1074{
1075 local64_add(count, &event->count);
1076}
1077
3d43b981
PH
1078static void debug_sample_entry(struct hws_basic_entry *sample,
1079 struct hws_trailer_entry *te)
7e75fc3f
HB
1080{
1081 debug_sprintf_event(sfdbg, 4, "hw_collect_samples: Found unknown "
3d43b981
PH
1082 "sampling data entry: te->f=%i basic.def=%04x (%p)\n",
1083 te->f, sample->def, sample);
7e75fc3f
HB
1084}
1085
8c069ff4
HB
1086/* hw_collect_samples() - Walk through a sample-data-block and collect samples
1087 * @event: The perf event
1088 * @sdbt: Sample-data-block table
1089 * @overflow: Event overflow counter
1090 *
7e75fc3f
HB
1091 * Walks through a sample-data-block and collects sampling data entries that are
1092 * then pushed to the perf event subsystem. Depending on the sampling function,
1093 * there can be either basic-sampling or combined-sampling data entries. A
1094 * combined-sampling data entry consists of a basic- and a diagnostic-sampling
1095 * data entry. The sampling function is determined by the flags in the perf
1096 * event hardware structure. The function always works with a combined-sampling
1097 * data entry but ignores the the diagnostic portion if it is not available.
1098 *
1099 * Note that the implementation focuses on basic-sampling data entries and, if
1100 * such an entry is not valid, the entire combined-sampling data entry is
1101 * ignored.
1102 *
1103 * The overflow variables counts the number of samples that has been discarded
1104 * due to a perf event overflow.
8c069ff4
HB
1105 */
1106static void hw_collect_samples(struct perf_event *event, unsigned long *sdbt,
1107 unsigned long long *overflow)
1108{
7e75fc3f 1109 struct hws_trailer_entry *te;
3d43b981 1110 struct hws_basic_entry *sample;
8c069ff4 1111
7e75fc3f 1112 te = (struct hws_trailer_entry *) trailer_entry_ptr(*sdbt);
3d43b981 1113 sample = (struct hws_basic_entry *) *sdbt;
7e75fc3f 1114 while ((unsigned long *) sample < (unsigned long *) te) {
8c069ff4 1115 /* Check for an empty sample */
3d43b981 1116 if (!sample->def)
8c069ff4
HB
1117 break;
1118
1119 /* Update perf event period */
1120 perf_event_count_update(event, SAMPL_RATE(&event->hw));
1121
3d43b981
PH
1122 /* Check whether sample is valid */
1123 if (sample->def == 0x0001) {
8c069ff4
HB
1124 /* If an event overflow occurred, the PMU is stopped to
1125 * throttle event delivery. Remaining sample data is
1126 * discarded.
1127 */
7e75fc3f 1128 if (!*overflow) {
3d43b981
PH
1129 /* Check whether sample is consistent */
1130 if (sample->I == 0 && sample->W == 0) {
7e75fc3f 1131 /* Deliver sample data to perf */
3d43b981
PH
1132 *overflow = perf_push_sample(event,
1133 sample);
7e75fc3f
HB
1134 }
1135 } else
8c069ff4
HB
1136 /* Count discarded samples */
1137 *overflow += 1;
7e75fc3f 1138 } else {
3d43b981 1139 debug_sample_entry(sample, te);
7e75fc3f
HB
1140 /* Sample slot is not yet written or other record.
1141 *
1142 * This condition can occur if the buffer was reused
1143 * from a combined basic- and diagnostic-sampling.
1144 * If only basic-sampling is then active, entries are
1145 * written into the larger diagnostic entries.
1146 * This is typically the case for sample-data-blocks
1147 * that are not full. Stop processing if the first
1148 * invalid format was detected.
1149 */
1150 if (!te->f)
1151 break;
1152 }
8c069ff4
HB
1153
1154 /* Reset sample slot and advance to next sample */
3d43b981
PH
1155 sample->def = 0;
1156 sample++;
8c069ff4
HB
1157 }
1158}
1159
1160/* hw_perf_event_update() - Process sampling buffer
1161 * @event: The perf event
1162 * @flush_all: Flag to also flush partially filled sample-data-blocks
1163 *
1164 * Processes the sampling buffer and create perf event samples.
1165 * The sampling buffer position are retrieved and saved in the TEAR_REG
1166 * register of the specified perf event.
1167 *
1168 * Only full sample-data-blocks are processed. Specify the flash_all flag
d7528862
HB
1169 * to also walk through partially filled sample-data-blocks. It is ignored
1170 * if PERF_CPUM_SF_FULL_BLOCKS is set. The PERF_CPUM_SF_FULL_BLOCKS flag
1171 * enforces the processing of full sample-data-blocks only (trailer entries
1172 * with the block-full-indicator bit set).
8c069ff4
HB
1173 */
1174static void hw_perf_event_update(struct perf_event *event, int flush_all)
1175{
1176 struct hw_perf_event *hwc = &event->hw;
1177 struct hws_trailer_entry *te;
1178 unsigned long *sdbt;
fcc77f50 1179 unsigned long long event_overflow, sampl_overflow, num_sdb, te_flags;
8c069ff4
HB
1180 int done;
1181
cbf6948f
PH
1182 /*
1183 * AUX buffer is used when in diagnostic sampling mode.
1184 * No perf events/samples are created.
1185 */
1186 if (SAMPL_DIAG_MODE(&event->hw))
1187 return;
1188
d7528862
HB
1189 if (flush_all && SDB_FULL_BLOCKS(hwc))
1190 flush_all = 0;
1191
8c069ff4 1192 sdbt = (unsigned long *) TEAR_REG(hwc);
69f239ed 1193 done = event_overflow = sampl_overflow = num_sdb = 0;
8c069ff4
HB
1194 while (!done) {
1195 /* Get the trailer entry of the sample-data-block */
1196 te = (struct hws_trailer_entry *) trailer_entry_ptr(*sdbt);
1197
1198 /* Leave loop if no more work to do (block full indicator) */
1199 if (!te->f) {
1200 done = 1;
1201 if (!flush_all)
1202 break;
1203 }
1204
69f239ed
HB
1205 /* Check the sample overflow count */
1206 if (te->overflow)
1207 /* Account sample overflows and, if a particular limit
1208 * is reached, extend the sampling buffer.
1209 * For details, see sfb_account_overflows().
8c069ff4 1210 */
69f239ed 1211 sampl_overflow += te->overflow;
8c069ff4
HB
1212
1213 /* Timestamps are valid for full sample-data-blocks only */
1214 debug_sprintf_event(sfdbg, 6, "hw_perf_event_update: sdbt=%p "
1215 "overflow=%llu timestamp=0x%llx\n",
1216 sdbt, te->overflow,
443d4beb 1217 (te->f) ? trailer_timestamp(te) : 0ULL);
8c069ff4
HB
1218
1219 /* Collect all samples from a single sample-data-block and
1220 * flag if an (perf) event overflow happened. If so, the PMU
1221 * is stopped and remaining samples will be discarded.
1222 */
1223 hw_collect_samples(event, sdbt, &event_overflow);
69f239ed 1224 num_sdb++;
8c069ff4 1225
fcc77f50
HB
1226 /* Reset trailer (using compare-double-and-swap) */
1227 do {
1228 te_flags = te->flags & ~SDB_TE_BUFFER_FULL_MASK;
1229 te_flags |= SDB_TE_ALERT_REQ_MASK;
1230 } while (!cmpxchg_double(&te->flags, &te->overflow,
1231 te->flags, te->overflow,
1232 te_flags, 0ULL));
8c069ff4
HB
1233
1234 /* Advance to next sample-data-block */
1235 sdbt++;
1236 if (is_link_entry(sdbt))
1237 sdbt = get_next_sdbt(sdbt);
1238
1239 /* Update event hardware registers */
1240 TEAR_REG(hwc) = (unsigned long) sdbt;
1241
1242 /* Stop processing sample-data if all samples of the current
1243 * sample-data-block were flushed even if it was not full.
1244 */
1245 if (flush_all && done)
1246 break;
1247
1248 /* If an event overflow happened, discard samples by
1249 * processing any remaining sample-data-blocks.
1250 */
1251 if (event_overflow)
1252 flush_all = 1;
1253 }
1254
69f239ed
HB
1255 /* Account sample overflows in the event hardware structure */
1256 if (sampl_overflow)
1257 OVERFLOW_REG(hwc) = DIV_ROUND_UP(OVERFLOW_REG(hwc) +
1258 sampl_overflow, 1 + num_sdb);
8c069ff4
HB
1259 if (sampl_overflow || event_overflow)
1260 debug_sprintf_event(sfdbg, 4, "hw_perf_event_update: "
1261 "overflow stats: sample=%llu event=%llu\n",
1262 sampl_overflow, event_overflow);
1263}
1264
ca5955cd
PH
1265#define AUX_SDB_INDEX(aux, i) ((i) % aux->sfb.num_sdb)
1266#define AUX_SDB_NUM(aux, start, end) (end >= start ? end - start + 1 : 0)
1267#define AUX_SDB_NUM_ALERT(aux) AUX_SDB_NUM(aux, aux->head, aux->alert_mark)
1268#define AUX_SDB_NUM_EMPTY(aux) AUX_SDB_NUM(aux, aux->head, aux->empty_mark)
1269
1270/*
1271 * Get trailer entry by index of SDB.
1272 */
1273static struct hws_trailer_entry *aux_sdb_trailer(struct aux_buffer *aux,
1274 unsigned long index)
1275{
1276 unsigned long sdb;
1277
1278 index = AUX_SDB_INDEX(aux, index);
1279 sdb = aux->sdb_index[index];
1280 return (struct hws_trailer_entry *)trailer_entry_ptr(sdb);
1281}
1282
1283/*
1284 * Finish sampling on the cpu. Called by cpumsf_pmu_del() with pmu
1285 * disabled. Collect the full SDBs in AUX buffer which have not reached
1286 * the point of alert indicator. And ignore the SDBs which are not
1287 * full.
1288 *
1289 * 1. Scan SDBs to see how much data is there and consume them.
1290 * 2. Remove alert indicator in the buffer.
1291 */
1292static void aux_output_end(struct perf_output_handle *handle)
1293{
1294 unsigned long i, range_scan, idx;
1295 struct aux_buffer *aux;
1296 struct hws_trailer_entry *te;
1297
1298 aux = perf_get_aux(handle);
1299 if (!aux)
1300 return;
1301
1302 range_scan = AUX_SDB_NUM_ALERT(aux);
1303 for (i = 0, idx = aux->head; i < range_scan; i++, idx++) {
1304 te = aux_sdb_trailer(aux, idx);
1305 if (!(te->flags & SDB_TE_BUFFER_FULL_MASK))
1306 break;
1307 }
1308 /* i is num of SDBs which are full */
1309 perf_aux_output_end(handle, i << PAGE_SHIFT);
1310
1311 /* Remove alert indicators in the buffer */
1312 te = aux_sdb_trailer(aux, aux->alert_mark);
1313 te->flags &= ~SDB_TE_ALERT_REQ_MASK;
1314
1315 debug_sprintf_event(sfdbg, 6, "aux_output_end: collect %lx SDBs\n", i);
1316}
1317
1318/*
1319 * Start sampling on the CPU. Called by cpumsf_pmu_add() when an event
1320 * is first added to the CPU or rescheduled again to the CPU. It is called
1321 * with pmu disabled.
1322 *
1323 * 1. Reset the trailer of SDBs to get ready for new data.
1324 * 2. Tell the hardware where to put the data by reset the SDBs buffer
1325 * head(tear/dear).
1326 */
1327static int aux_output_begin(struct perf_output_handle *handle,
1328 struct aux_buffer *aux,
1329 struct cpu_hw_sf *cpuhw)
1330{
1331 unsigned long range;
1332 unsigned long i, range_scan, idx;
1333 unsigned long head, base, offset;
1334 struct hws_trailer_entry *te;
1335
1336 if (WARN_ON_ONCE(handle->head & ~PAGE_MASK))
1337 return -EINVAL;
1338
1339 aux->head = handle->head >> PAGE_SHIFT;
1340 range = (handle->size + 1) >> PAGE_SHIFT;
1341 if (range <= 1)
1342 return -ENOMEM;
1343
1344 /*
1345 * SDBs between aux->head and aux->empty_mark are already ready
1346 * for new data. range_scan is num of SDBs not within them.
1347 */
1348 if (range > AUX_SDB_NUM_EMPTY(aux)) {
1349 range_scan = range - AUX_SDB_NUM_EMPTY(aux);
1350 idx = aux->empty_mark + 1;
1351 for (i = 0; i < range_scan; i++, idx++) {
1352 te = aux_sdb_trailer(aux, idx);
1353 te->flags = te->flags & ~SDB_TE_BUFFER_FULL_MASK;
1354 te->flags = te->flags & ~SDB_TE_ALERT_REQ_MASK;
1355 te->overflow = 0;
1356 }
1357 /* Save the position of empty SDBs */
1358 aux->empty_mark = aux->head + range - 1;
1359 }
1360
1361 /* Set alert indicator */
1362 aux->alert_mark = aux->head + range/2 - 1;
1363 te = aux_sdb_trailer(aux, aux->alert_mark);
1364 te->flags = te->flags | SDB_TE_ALERT_REQ_MASK;
1365
1366 /* Reset hardware buffer head */
1367 head = AUX_SDB_INDEX(aux, aux->head);
1368 base = aux->sdbt_index[head / CPUM_SF_SDB_PER_TABLE];
1369 offset = head % CPUM_SF_SDB_PER_TABLE;
1370 cpuhw->lsctl.tear = base + offset * sizeof(unsigned long);
1371 cpuhw->lsctl.dear = aux->sdb_index[head];
1372
1373 debug_sprintf_event(sfdbg, 6, "aux_output_begin: "
1374 "head->alert_mark->empty_mark (num_alert, range)"
1375 "[%lx -> %lx -> %lx] (%lx, %lx) "
1376 "tear index %lx, tear %lx dear %lx\n",
1377 aux->head, aux->alert_mark, aux->empty_mark,
1378 AUX_SDB_NUM_ALERT(aux), range,
1379 head / CPUM_SF_SDB_PER_TABLE,
1380 cpuhw->lsctl.tear,
1381 cpuhw->lsctl.dear);
1382
1383 return 0;
1384}
1385
1386/*
1387 * Set alert indicator on SDB at index @alert_index while sampler is running.
1388 *
1389 * Return true if successfully.
1390 * Return false if full indicator is already set by hardware sampler.
1391 */
1392static bool aux_set_alert(struct aux_buffer *aux, unsigned long alert_index,
1393 unsigned long long *overflow)
1394{
1395 unsigned long long orig_overflow, orig_flags, new_flags;
1396 struct hws_trailer_entry *te;
1397
1398 te = aux_sdb_trailer(aux, alert_index);
1399 do {
1400 orig_flags = te->flags;
1401 orig_overflow = te->overflow;
1402 *overflow = orig_overflow;
1403 if (orig_flags & SDB_TE_BUFFER_FULL_MASK) {
1404 /*
1405 * SDB is already set by hardware.
1406 * Abort and try to set somewhere
1407 * behind.
1408 */
1409 return false;
1410 }
1411 new_flags = orig_flags | SDB_TE_ALERT_REQ_MASK;
1412 } while (!cmpxchg_double(&te->flags, &te->overflow,
1413 orig_flags, orig_overflow,
1414 new_flags, 0ULL));
1415 return true;
1416}
1417
1418/*
1419 * aux_reset_buffer() - Scan and setup SDBs for new samples
1420 * @aux: The AUX buffer to set
1421 * @range: The range of SDBs to scan started from aux->head
1422 * @overflow: Set to overflow count
1423 *
1424 * Set alert indicator on the SDB at index of aux->alert_mark. If this SDB is
1425 * marked as empty, check if it is already set full by the hardware sampler.
1426 * If yes, that means new data is already there before we can set an alert
1427 * indicator. Caller should try to set alert indicator to some position behind.
1428 *
1429 * Scan the SDBs in AUX buffer from behind aux->empty_mark. They are used
1430 * previously and have already been consumed by user space. Reset these SDBs
1431 * (clear full indicator and alert indicator) for new data.
1432 * If aux->alert_mark fall in this area, just set it. Overflow count is
1433 * recorded while scanning.
1434 *
1435 * SDBs between aux->head and aux->empty_mark are already reset at last time.
1436 * and ready for new samples. So scanning on this area could be skipped.
1437 *
1438 * Return true if alert indicator is set successfully and false if not.
1439 */
1440static bool aux_reset_buffer(struct aux_buffer *aux, unsigned long range,
1441 unsigned long long *overflow)
1442{
1443 unsigned long long orig_overflow, orig_flags, new_flags;
1444 unsigned long i, range_scan, idx;
1445 struct hws_trailer_entry *te;
1446
1447 if (range <= AUX_SDB_NUM_EMPTY(aux))
1448 /*
1449 * No need to scan. All SDBs in range are marked as empty.
1450 * Just set alert indicator. Should check race with hardware
1451 * sampler.
1452 */
1453 return aux_set_alert(aux, aux->alert_mark, overflow);
1454
1455 if (aux->alert_mark <= aux->empty_mark)
1456 /*
1457 * Set alert indicator on empty SDB. Should check race
1458 * with hardware sampler.
1459 */
1460 if (!aux_set_alert(aux, aux->alert_mark, overflow))
1461 return false;
1462
1463 /*
1464 * Scan the SDBs to clear full and alert indicator used previously.
1465 * Start scanning from one SDB behind empty_mark. If the new alert
1466 * indicator fall into this range, set it.
1467 */
1468 range_scan = range - AUX_SDB_NUM_EMPTY(aux);
1469 idx = aux->empty_mark + 1;
1470 for (i = 0; i < range_scan; i++, idx++) {
1471 te = aux_sdb_trailer(aux, idx);
1472 do {
1473 orig_flags = te->flags;
1474 orig_overflow = te->overflow;
1475 new_flags = orig_flags & ~SDB_TE_BUFFER_FULL_MASK;
1476 if (idx == aux->alert_mark)
1477 new_flags |= SDB_TE_ALERT_REQ_MASK;
1478 else
1479 new_flags &= ~SDB_TE_ALERT_REQ_MASK;
1480 } while (!cmpxchg_double(&te->flags, &te->overflow,
1481 orig_flags, orig_overflow,
1482 new_flags, 0ULL));
1483 *overflow += orig_overflow;
1484 }
1485
1486 /* Update empty_mark to new position */
1487 aux->empty_mark = aux->head + range - 1;
1488
1489 return true;
1490}
1491
1492/*
1493 * Measurement alert handler for diagnostic mode sampling.
1494 */
1495static void hw_collect_aux(struct cpu_hw_sf *cpuhw)
1496{
1497 struct aux_buffer *aux;
1498 int done = 0;
1499 unsigned long range = 0, size;
1500 unsigned long long overflow = 0;
1501 struct perf_output_handle *handle = &cpuhw->handle;
1502 unsigned long num_sdb;
1503
1504 aux = perf_get_aux(handle);
1505 if (WARN_ON_ONCE(!aux))
1506 return;
1507
1508 /* Inform user space new data arrived */
1509 size = AUX_SDB_NUM_ALERT(aux) << PAGE_SHIFT;
1510 perf_aux_output_end(handle, size);
1511 num_sdb = aux->sfb.num_sdb;
1512
1513 while (!done) {
1514 /* Get an output handle */
1515 aux = perf_aux_output_begin(handle, cpuhw->event);
1516 if (handle->size == 0) {
1517 pr_err("The AUX buffer with %lu pages for the "
1518 "diagnostic-sampling mode is full\n",
1519 num_sdb);
1520 debug_sprintf_event(sfdbg, 1, "AUX buffer used up\n");
1521 break;
1522 }
1523 if (WARN_ON_ONCE(!aux))
1524 return;
1525
1526 /* Update head and alert_mark to new position */
1527 aux->head = handle->head >> PAGE_SHIFT;
1528 range = (handle->size + 1) >> PAGE_SHIFT;
1529 if (range == 1)
1530 aux->alert_mark = aux->head;
1531 else
1532 aux->alert_mark = aux->head + range/2 - 1;
1533
1534 if (aux_reset_buffer(aux, range, &overflow)) {
1535 if (!overflow) {
1536 done = 1;
1537 break;
1538 }
1539 size = range << PAGE_SHIFT;
1540 perf_aux_output_end(&cpuhw->handle, size);
1541 pr_err("Sample data caused the AUX buffer with %lu "
1542 "pages to overflow\n", num_sdb);
1543 debug_sprintf_event(sfdbg, 1, "head %lx range %lx "
1544 "overflow %llx\n",
1545 aux->head, range, overflow);
1546 } else {
1547 size = AUX_SDB_NUM_ALERT(aux) << PAGE_SHIFT;
1548 perf_aux_output_end(&cpuhw->handle, size);
1549 debug_sprintf_event(sfdbg, 6, "head %lx alert %lx "
1550 "already full, try another\n",
1551 aux->head, aux->alert_mark);
1552 }
1553 }
1554
1555 if (done)
1556 debug_sprintf_event(sfdbg, 6, "aux_reset_buffer: "
1557 "[%lx -> %lx -> %lx] (%lx, %lx)\n",
1558 aux->head, aux->alert_mark, aux->empty_mark,
1559 AUX_SDB_NUM_ALERT(aux), range);
1560}
1561
1562/*
1563 * Callback when freeing AUX buffers.
1564 */
1565static void aux_buffer_free(void *data)
1566{
1567 struct aux_buffer *aux = data;
1568 unsigned long i, num_sdbt;
1569
1570 if (!aux)
1571 return;
1572
1573 /* Free SDBT. SDB is freed by the caller */
1574 num_sdbt = aux->sfb.num_sdbt;
1575 for (i = 0; i < num_sdbt; i++)
1576 free_page(aux->sdbt_index[i]);
1577
1578 kfree(aux->sdbt_index);
1579 kfree(aux->sdb_index);
1580 kfree(aux);
1581
1582 debug_sprintf_event(sfdbg, 4, "aux_buffer_free: free "
1583 "%lu SDBTs\n", num_sdbt);
1584}
1585
1586/*
1587 * aux_buffer_setup() - Setup AUX buffer for diagnostic mode sampling
1588 * @cpu: On which to allocate, -1 means current
1589 * @pages: Array of pointers to buffer pages passed from perf core
1590 * @nr_pages: Total pages
1591 * @snapshot: Flag for snapshot mode
1592 *
1593 * This is the callback when setup an event using AUX buffer. Perf tool can
1594 * trigger this by an additional mmap() call on the event. Unlike the buffer
1595 * for basic samples, AUX buffer belongs to the event. It is scheduled with
1596 * the task among online cpus when it is a per-thread event.
1597 *
1598 * Return the private AUX buffer structure if success or NULL if fails.
1599 */
1600static void *aux_buffer_setup(int cpu, void **pages, int nr_pages,
1601 bool snapshot)
1602{
1603 struct sf_buffer *sfb;
1604 struct aux_buffer *aux;
1605 unsigned long *new, *tail;
1606 int i, n_sdbt;
1607
1608 if (!nr_pages || !pages)
1609 return NULL;
1610
1611 if (nr_pages > CPUM_SF_MAX_SDB * CPUM_SF_SDB_DIAG_FACTOR) {
1612 pr_err("AUX buffer size (%i pages) is larger than the "
1613 "maximum sampling buffer limit\n",
1614 nr_pages);
1615 return NULL;
1616 } else if (nr_pages < CPUM_SF_MIN_SDB * CPUM_SF_SDB_DIAG_FACTOR) {
1617 pr_err("AUX buffer size (%i pages) is less than the "
1618 "minimum sampling buffer limit\n",
1619 nr_pages);
1620 return NULL;
1621 }
1622
1623 /* Allocate aux_buffer struct for the event */
1624 aux = kmalloc(sizeof(struct aux_buffer), GFP_KERNEL);
1625 if (!aux)
1626 goto no_aux;
1627 sfb = &aux->sfb;
1628
1629 /* Allocate sdbt_index for fast reference */
1630 n_sdbt = (nr_pages + CPUM_SF_SDB_PER_TABLE - 1) / CPUM_SF_SDB_PER_TABLE;
1631 aux->sdbt_index = kmalloc_array(n_sdbt, sizeof(void *), GFP_KERNEL);
1632 if (!aux->sdbt_index)
1633 goto no_sdbt_index;
1634
1635 /* Allocate sdb_index for fast reference */
1636 aux->sdb_index = kmalloc_array(nr_pages, sizeof(void *), GFP_KERNEL);
1637 if (!aux->sdb_index)
1638 goto no_sdb_index;
1639
1640 /* Allocate the first SDBT */
1641 sfb->num_sdbt = 0;
1642 sfb->sdbt = (unsigned long *) get_zeroed_page(GFP_KERNEL);
1643 if (!sfb->sdbt)
1644 goto no_sdbt;
1645 aux->sdbt_index[sfb->num_sdbt++] = (unsigned long)sfb->sdbt;
1646 tail = sfb->tail = sfb->sdbt;
1647
1648 /*
1649 * Link the provided pages of AUX buffer to SDBT.
1650 * Allocate SDBT if needed.
1651 */
1652 for (i = 0; i < nr_pages; i++, tail++) {
1653 if (require_table_link(tail)) {
1654 new = (unsigned long *) get_zeroed_page(GFP_KERNEL);
1655 if (!new)
1656 goto no_sdbt;
1657 aux->sdbt_index[sfb->num_sdbt++] = (unsigned long)new;
1658 /* Link current page to tail of chain */
1659 *tail = (unsigned long)(void *) new + 1;
1660 tail = new;
1661 }
1662 /* Tail is the entry in a SDBT */
1663 *tail = (unsigned long)pages[i];
1664 aux->sdb_index[i] = (unsigned long)pages[i];
1665 }
1666 sfb->num_sdb = nr_pages;
1667
1668 /* Link the last entry in the SDBT to the first SDBT */
1669 *tail = (unsigned long) sfb->sdbt + 1;
1670 sfb->tail = tail;
1671
1672 /*
1673 * Initial all SDBs are zeroed. Mark it as empty.
1674 * So there is no need to clear the full indicator
1675 * when this event is first added.
1676 */
1677 aux->empty_mark = sfb->num_sdb - 1;
1678
1679 debug_sprintf_event(sfdbg, 4, "aux_buffer_setup: setup %lu SDBTs"
1680 " and %lu SDBs\n",
1681 sfb->num_sdbt, sfb->num_sdb);
1682
1683 return aux;
1684
1685no_sdbt:
1686 /* SDBs (AUX buffer pages) are freed by caller */
1687 for (i = 0; i < sfb->num_sdbt; i++)
1688 free_page(aux->sdbt_index[i]);
1689 kfree(aux->sdb_index);
1690no_sdb_index:
1691 kfree(aux->sdbt_index);
1692no_sdbt_index:
1693 kfree(aux);
1694no_aux:
1695 return NULL;
1696}
1697
8c069ff4
HB
1698static void cpumsf_pmu_read(struct perf_event *event)
1699{
1700 /* Nothing to do ... updates are interrupt-driven */
1701}
1702
1703/* Activate sampling control.
1704 * Next call of pmu_enable() starts sampling.
1705 */
1706static void cpumsf_pmu_start(struct perf_event *event, int flags)
1707{
eb7e7d76 1708 struct cpu_hw_sf *cpuhw = this_cpu_ptr(&cpu_hw_sf);
8c069ff4
HB
1709
1710 if (WARN_ON_ONCE(!(event->hw.state & PERF_HES_STOPPED)))
1711 return;
1712
1713 if (flags & PERF_EF_RELOAD)
1714 WARN_ON_ONCE(!(event->hw.state & PERF_HES_UPTODATE));
1715
1716 perf_pmu_disable(event->pmu);
1717 event->hw.state = 0;
1718 cpuhw->lsctl.cs = 1;
7e75fc3f
HB
1719 if (SAMPL_DIAG_MODE(&event->hw))
1720 cpuhw->lsctl.cd = 1;
8c069ff4
HB
1721 perf_pmu_enable(event->pmu);
1722}
1723
1724/* Deactivate sampling control.
1725 * Next call of pmu_enable() stops sampling.
1726 */
1727static void cpumsf_pmu_stop(struct perf_event *event, int flags)
1728{
eb7e7d76 1729 struct cpu_hw_sf *cpuhw = this_cpu_ptr(&cpu_hw_sf);
8c069ff4
HB
1730
1731 if (event->hw.state & PERF_HES_STOPPED)
1732 return;
1733
1734 perf_pmu_disable(event->pmu);
1735 cpuhw->lsctl.cs = 0;
7e75fc3f 1736 cpuhw->lsctl.cd = 0;
8c069ff4
HB
1737 event->hw.state |= PERF_HES_STOPPED;
1738
1739 if ((flags & PERF_EF_UPDATE) && !(event->hw.state & PERF_HES_UPTODATE)) {
1740 hw_perf_event_update(event, 1);
1741 event->hw.state |= PERF_HES_UPTODATE;
1742 }
1743 perf_pmu_enable(event->pmu);
1744}
1745
1746static int cpumsf_pmu_add(struct perf_event *event, int flags)
1747{
eb7e7d76 1748 struct cpu_hw_sf *cpuhw = this_cpu_ptr(&cpu_hw_sf);
cbf6948f 1749 struct aux_buffer *aux;
8c069ff4
HB
1750 int err;
1751
1752 if (cpuhw->flags & PMU_F_IN_USE)
1753 return -EAGAIN;
1754
cbf6948f 1755 if (!SAMPL_DIAG_MODE(&event->hw) && !cpuhw->sfb.sdbt)
8c069ff4
HB
1756 return -EINVAL;
1757
1758 err = 0;
1759 perf_pmu_disable(event->pmu);
1760
1761 event->hw.state = PERF_HES_UPTODATE | PERF_HES_STOPPED;
1762
1763 /* Set up sampling controls. Always program the sampling register
1764 * using the SDB-table start. Reset TEAR_REG event hardware register
1765 * that is used by hw_perf_event_update() to store the sampling buffer
1766 * position after samples have been flushed.
1767 */
1768 cpuhw->lsctl.s = 0;
1769 cpuhw->lsctl.h = 1;
8c069ff4 1770 cpuhw->lsctl.interval = SAMPL_RATE(&event->hw);
cbf6948f
PH
1771 if (!SAMPL_DIAG_MODE(&event->hw)) {
1772 cpuhw->lsctl.tear = (unsigned long) cpuhw->sfb.sdbt;
1773 cpuhw->lsctl.dear = *(unsigned long *) cpuhw->sfb.sdbt;
1774 hw_reset_registers(&event->hw, cpuhw->sfb.sdbt);
1775 }
8c069ff4
HB
1776
1777 /* Ensure sampling functions are in the disabled state. If disabled,
1778 * switch on sampling enable control. */
7e75fc3f 1779 if (WARN_ON_ONCE(cpuhw->lsctl.es == 1 || cpuhw->lsctl.ed == 1)) {
8c069ff4
HB
1780 err = -EAGAIN;
1781 goto out;
1782 }
cbf6948f
PH
1783 if (SAMPL_DIAG_MODE(&event->hw)) {
1784 aux = perf_aux_output_begin(&cpuhw->handle, event);
1785 if (!aux) {
1786 err = -EINVAL;
1787 goto out;
1788 }
1789 err = aux_output_begin(&cpuhw->handle, aux, cpuhw);
1790 if (err)
1791 goto out;
7e75fc3f 1792 cpuhw->lsctl.ed = 1;
cbf6948f
PH
1793 }
1794 cpuhw->lsctl.es = 1;
8c069ff4
HB
1795
1796 /* Set in_use flag and store event */
8c069ff4
HB
1797 cpuhw->event = event;
1798 cpuhw->flags |= PMU_F_IN_USE;
1799
1800 if (flags & PERF_EF_START)
1801 cpumsf_pmu_start(event, PERF_EF_RELOAD);
1802out:
1803 perf_event_update_userpage(event);
1804 perf_pmu_enable(event->pmu);
1805 return err;
1806}
1807
1808static void cpumsf_pmu_del(struct perf_event *event, int flags)
1809{
eb7e7d76 1810 struct cpu_hw_sf *cpuhw = this_cpu_ptr(&cpu_hw_sf);
8c069ff4
HB
1811
1812 perf_pmu_disable(event->pmu);
1813 cpumsf_pmu_stop(event, PERF_EF_UPDATE);
1814
1815 cpuhw->lsctl.es = 0;
7e75fc3f 1816 cpuhw->lsctl.ed = 0;
8c069ff4
HB
1817 cpuhw->flags &= ~PMU_F_IN_USE;
1818 cpuhw->event = NULL;
1819
cbf6948f
PH
1820 if (SAMPL_DIAG_MODE(&event->hw))
1821 aux_output_end(&cpuhw->handle);
8c069ff4
HB
1822 perf_event_update_userpage(event);
1823 perf_pmu_enable(event->pmu);
1824}
1825
8c069ff4 1826CPUMF_EVENT_ATTR(SF, SF_CYCLES_BASIC, PERF_EVENT_CPUM_SF);
7e75fc3f 1827CPUMF_EVENT_ATTR(SF, SF_CYCLES_BASIC_DIAG, PERF_EVENT_CPUM_SF_DIAG);
8c069ff4
HB
1828
1829static struct attribute *cpumsf_pmu_events_attr[] = {
1830 CPUMF_EVENT_PTR(SF, SF_CYCLES_BASIC),
0a648150 1831 NULL,
8c069ff4
HB
1832 NULL,
1833};
1834
1835PMU_FORMAT_ATTR(event, "config:0-63");
1836
1837static struct attribute *cpumsf_pmu_format_attr[] = {
1838 &format_attr_event.attr,
1839 NULL,
1840};
1841
1842static struct attribute_group cpumsf_pmu_events_group = {
1843 .name = "events",
1844 .attrs = cpumsf_pmu_events_attr,
1845};
1846static struct attribute_group cpumsf_pmu_format_group = {
1847 .name = "format",
1848 .attrs = cpumsf_pmu_format_attr,
1849};
1850static const struct attribute_group *cpumsf_pmu_attr_groups[] = {
1851 &cpumsf_pmu_events_group,
1852 &cpumsf_pmu_format_group,
1853 NULL,
1854};
1855
1856static struct pmu cpumf_sampling = {
1857 .pmu_enable = cpumsf_pmu_enable,
1858 .pmu_disable = cpumsf_pmu_disable,
1859
1860 .event_init = cpumsf_pmu_event_init,
1861 .add = cpumsf_pmu_add,
1862 .del = cpumsf_pmu_del,
1863
1864 .start = cpumsf_pmu_start,
1865 .stop = cpumsf_pmu_stop,
1866 .read = cpumsf_pmu_read,
1867
8c069ff4 1868 .attr_groups = cpumsf_pmu_attr_groups,
ca5955cd
PH
1869
1870 .setup_aux = aux_buffer_setup,
1871 .free_aux = aux_buffer_free,
8c069ff4
HB
1872};
1873
1874static void cpumf_measurement_alert(struct ext_code ext_code,
1875 unsigned int alert, unsigned long unused)
1876{
1877 struct cpu_hw_sf *cpuhw;
1878
1879 if (!(alert & CPU_MF_INT_SF_MASK))
1880 return;
1881 inc_irq_stat(IRQEXT_CMS);
eb7e7d76 1882 cpuhw = this_cpu_ptr(&cpu_hw_sf);
8c069ff4
HB
1883
1884 /* Measurement alerts are shared and might happen when the PMU
1885 * is not reserved. Ignore these alerts in this case. */
1886 if (!(cpuhw->flags & PMU_F_RESERVED))
1887 return;
1888
1889 /* The processing below must take care of multiple alert events that
1890 * might be indicated concurrently. */
1891
1892 /* Program alert request */
1893 if (alert & CPU_MF_INT_SF_PRA) {
1894 if (cpuhw->flags & PMU_F_IN_USE)
cbf6948f
PH
1895 if (SAMPL_DIAG_MODE(&cpuhw->event->hw))
1896 hw_collect_aux(cpuhw);
1897 else
1898 hw_perf_event_update(cpuhw->event, 0);
8c069ff4
HB
1899 else
1900 WARN_ON_ONCE(!(cpuhw->flags & PMU_F_IN_USE));
1901 }
1902
1903 /* Report measurement alerts only for non-PRA codes */
1904 if (alert != CPU_MF_INT_SF_PRA)
1905 debug_sprintf_event(sfdbg, 6, "measurement alert: 0x%x\n", alert);
1906
1907 /* Sampling authorization change request */
1908 if (alert & CPU_MF_INT_SF_SACA)
1909 qsi(&cpuhw->qsi);
1910
1911 /* Loss of sample data due to high-priority machine activities */
1912 if (alert & CPU_MF_INT_SF_LSDA) {
1913 pr_err("Sample data was lost\n");
1914 cpuhw->flags |= PMU_F_ERR_LSDA;
1915 sf_disable();
1916 }
1917
1918 /* Invalid sampling buffer entry */
1919 if (alert & (CPU_MF_INT_SF_IAE|CPU_MF_INT_SF_ISE)) {
1920 pr_err("A sampling buffer entry is incorrect (alert=0x%x)\n",
1921 alert);
1922 cpuhw->flags |= PMU_F_ERR_IBE;
1923 sf_disable();
1924 }
1925}
e3d617fe 1926static int cpusf_pmu_setup(unsigned int cpu, int flags)
8c069ff4 1927{
8c069ff4
HB
1928 /* Ignore the notification if no events are scheduled on the PMU.
1929 * This might be racy...
1930 */
1931 if (!atomic_read(&num_events))
e3d617fe 1932 return 0;
8c069ff4 1933
e3d617fe
SAS
1934 local_irq_disable();
1935 setup_pmc_cpu(&flags);
1936 local_irq_enable();
1937 return 0;
1938}
1939
1940static int s390_pmu_sf_online_cpu(unsigned int cpu)
1941{
1942 return cpusf_pmu_setup(cpu, PMC_INIT);
1943}
1944
1945static int s390_pmu_sf_offline_cpu(unsigned int cpu)
1946{
1947 return cpusf_pmu_setup(cpu, PMC_RELEASE);
8c069ff4
HB
1948}
1949
69f239ed
HB
1950static int param_get_sfb_size(char *buffer, const struct kernel_param *kp)
1951{
1952 if (!cpum_sf_avail())
1953 return -ENODEV;
1954 return sprintf(buffer, "%lu,%lu", CPUM_SF_MIN_SDB, CPUM_SF_MAX_SDB);
1955}
1956
1957static int param_set_sfb_size(const char *val, const struct kernel_param *kp)
1958{
1959 int rc;
1960 unsigned long min, max;
1961
1962 if (!cpum_sf_avail())
1963 return -ENODEV;
1964 if (!val || !strlen(val))
1965 return -EINVAL;
1966
1967 /* Valid parameter values: "min,max" or "max" */
1968 min = CPUM_SF_MIN_SDB;
1969 max = CPUM_SF_MAX_SDB;
1970 if (strchr(val, ','))
1971 rc = (sscanf(val, "%lu,%lu", &min, &max) == 2) ? 0 : -EINVAL;
1972 else
1973 rc = kstrtoul(val, 10, &max);
1974
1975 if (min < 2 || min >= max || max > get_num_physpages())
1976 rc = -EINVAL;
1977 if (rc)
1978 return rc;
1979
1980 sfb_set_limits(min, max);
7e75fc3f
HB
1981 pr_info("The sampling buffer limits have changed to: "
1982 "min=%lu max=%lu (diag=x%lu)\n",
1983 CPUM_SF_MIN_SDB, CPUM_SF_MAX_SDB, CPUM_SF_SDB_DIAG_FACTOR);
69f239ed
HB
1984 return 0;
1985}
1986
1987#define param_check_sfb_size(name, p) __param_check(name, p, void)
9c27847d 1988static const struct kernel_param_ops param_ops_sfb_size = {
69f239ed
HB
1989 .set = param_set_sfb_size,
1990 .get = param_get_sfb_size,
1991};
1992
7e75fc3f
HB
1993#define RS_INIT_FAILURE_QSI 0x0001
1994#define RS_INIT_FAILURE_BSDES 0x0002
1995#define RS_INIT_FAILURE_ALRT 0x0003
1996#define RS_INIT_FAILURE_PERF 0x0004
1997static void __init pr_cpumsf_err(unsigned int reason)
1998{
1999 pr_err("Sampling facility support for perf is not available: "
2000 "reason=%04x\n", reason);
2001}
2002
8c069ff4
HB
2003static int __init init_cpum_sampling_pmu(void)
2004{
7e75fc3f 2005 struct hws_qsi_info_block si;
8c069ff4
HB
2006 int err;
2007
2008 if (!cpum_sf_avail())
2009 return -ENODEV;
2010
7e75fc3f
HB
2011 memset(&si, 0, sizeof(si));
2012 if (qsi(&si)) {
2013 pr_cpumsf_err(RS_INIT_FAILURE_QSI);
2014 return -ENODEV;
2015 }
2016
9232c3c7
HB
2017 if (!si.as && !si.ad)
2018 return -ENODEV;
2019
7e75fc3f
HB
2020 if (si.bsdes != sizeof(struct hws_basic_entry)) {
2021 pr_cpumsf_err(RS_INIT_FAILURE_BSDES);
2022 return -EINVAL;
2023 }
2024
0a648150 2025 if (si.ad) {
7e75fc3f 2026 sfb_set_limits(CPUM_SF_MIN_SDB, CPUM_SF_MAX_SDB);
0a648150
HB
2027 cpumsf_pmu_events_attr[1] =
2028 CPUMF_EVENT_PTR(SF, SF_CYCLES_BASIC_DIAG);
2029 }
7e75fc3f 2030
8c069ff4
HB
2031 sfdbg = debug_register(KMSG_COMPONENT, 2, 1, 80);
2032 if (!sfdbg)
2033 pr_err("Registering for s390dbf failed\n");
2034 debug_register_view(sfdbg, &debug_sprintf_view);
2035
1dad093b
TH
2036 err = register_external_irq(EXT_IRQ_MEASURE_ALERT,
2037 cpumf_measurement_alert);
8c069ff4 2038 if (err) {
7e75fc3f 2039 pr_cpumsf_err(RS_INIT_FAILURE_ALRT);
8c069ff4
HB
2040 goto out;
2041 }
2042
2043 err = perf_pmu_register(&cpumf_sampling, "cpum_sf", PERF_TYPE_RAW);
2044 if (err) {
7e75fc3f 2045 pr_cpumsf_err(RS_INIT_FAILURE_PERF);
1dad093b
TH
2046 unregister_external_irq(EXT_IRQ_MEASURE_ALERT,
2047 cpumf_measurement_alert);
8c069ff4
HB
2048 goto out;
2049 }
e3d617fe 2050
73c1b41e 2051 cpuhp_setup_state(CPUHP_AP_PERF_S390_SF_ONLINE, "perf/s390/sf:online",
e3d617fe 2052 s390_pmu_sf_online_cpu, s390_pmu_sf_offline_cpu);
8c069ff4
HB
2053out:
2054 return err;
2055}
2056arch_initcall(init_cpum_sampling_pmu);
69f239ed 2057core_param(cpum_sfb_size, CPUM_SF_MAX_SDB, sfb_size, 0640);