1ba6c22ceSWarner Losh /*- 2ba6c22ceSWarner Losh * CAM IO Scheduler Interface 3ba6c22ceSWarner Losh * 4f24882ecSPedro F. Giffuni * SPDX-License-Identifier: BSD-2-Clause-FreeBSD 5f24882ecSPedro F. Giffuni * 6ba6c22ceSWarner Losh * Copyright (c) 2015 Netflix, Inc. 7ba6c22ceSWarner Losh * 8ba6c22ceSWarner Losh * Redistribution and use in source and binary forms, with or without 9ba6c22ceSWarner Losh * modification, are permitted provided that the following conditions 10ba6c22ceSWarner Losh * are met: 11ba6c22ceSWarner Losh * 1. Redistributions of source code must retain the above copyright 12ba6c22ceSWarner Losh * notice, this list of conditions, and the following disclaimer, 13ba6c22ceSWarner Losh * without modification, immediately at the beginning of the file. 14ba6c22ceSWarner Losh * 2. The name of the author may not be used to endorse or promote products 15ba6c22ceSWarner Losh * derived from this software without specific prior written permission. 16ba6c22ceSWarner Losh * 17ba6c22ceSWarner Losh * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 18ba6c22ceSWarner Losh * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 19ba6c22ceSWarner Losh * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 20ba6c22ceSWarner Losh * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR 21ba6c22ceSWarner Losh * ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 22ba6c22ceSWarner Losh * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 23ba6c22ceSWarner Losh * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 24ba6c22ceSWarner Losh * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 25ba6c22ceSWarner Losh * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 26ba6c22ceSWarner Losh * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 27ba6c22ceSWarner Losh * SUCH DAMAGE. 28ba6c22ceSWarner Losh * 29ba6c22ceSWarner Losh * $FreeBSD$ 30ba6c22ceSWarner Losh */ 31ba6c22ceSWarner Losh 32ba6c22ceSWarner Losh #include "opt_cam.h" 33ba6c22ceSWarner Losh #include "opt_ddb.h" 34ba6c22ceSWarner Losh 35ba6c22ceSWarner Losh #include <sys/cdefs.h> 36ba6c22ceSWarner Losh __FBSDID("$FreeBSD$"); 37ba6c22ceSWarner Losh 38ba6c22ceSWarner Losh #include <sys/param.h> 39ba6c22ceSWarner Losh 40ba6c22ceSWarner Losh #include <sys/systm.h> 41ba6c22ceSWarner Losh #include <sys/kernel.h> 42ba6c22ceSWarner Losh #include <sys/bio.h> 43ba6c22ceSWarner Losh #include <sys/lock.h> 44ba6c22ceSWarner Losh #include <sys/malloc.h> 45ba6c22ceSWarner Losh #include <sys/mutex.h> 46cf3ec151SWarner Losh #include <sys/sbuf.h> 47ba6c22ceSWarner Losh #include <sys/sysctl.h> 48ba6c22ceSWarner Losh 49ba6c22ceSWarner Losh #include <cam/cam.h> 50ba6c22ceSWarner Losh #include <cam/cam_ccb.h> 51ba6c22ceSWarner Losh #include <cam/cam_periph.h> 52ba6c22ceSWarner Losh #include <cam/cam_xpt_periph.h> 53cf3ec151SWarner Losh #include <cam/cam_xpt_internal.h> 54ba6c22ceSWarner Losh #include <cam/cam_iosched.h> 55ba6c22ceSWarner Losh 56ba6c22ceSWarner Losh #include <ddb/ddb.h> 57ba6c22ceSWarner Losh 58ba6c22ceSWarner Losh static MALLOC_DEFINE(M_CAMSCHED, "CAM I/O Scheduler", 59ba6c22ceSWarner Losh "CAM I/O Scheduler buffers"); 60ba6c22ceSWarner Losh 6122832069SWarner Losh static SYSCTL_NODE(_kern_cam, OID_AUTO, iosched, CTLFLAG_RD | CTLFLAG_MPSAFE, 0, 6222832069SWarner Losh "CAM I/O Scheduler parameters"); 6322832069SWarner Losh 64ba6c22ceSWarner Losh /* 65ba6c22ceSWarner Losh * Default I/O scheduler for FreeBSD. This implementation is just a thin-vineer 66ba6c22ceSWarner Losh * over the bioq_* interface, with notions of separate calls for normal I/O and 67ba6c22ceSWarner Losh * for trims. 68035ec48eSWarner Losh * 69035ec48eSWarner Losh * When CAM_IOSCHED_DYNAMIC is defined, the scheduler is enhanced to dynamically 70035ec48eSWarner Losh * steer the rate of one type of traffic to help other types of traffic (eg 71035ec48eSWarner Losh * limit writes when read latency deteriorates on SSDs). 72ba6c22ceSWarner Losh */ 73ba6c22ceSWarner Losh 74df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 75ba6c22ceSWarner Losh 7622832069SWarner Losh static bool do_dynamic_iosched = true; 7722832069SWarner Losh SYSCTL_BOOL(_kern_cam_iosched, OID_AUTO, dynamic, CTLFLAG_RD | CTLFLAG_TUN, 78035ec48eSWarner Losh &do_dynamic_iosched, 1, 79035ec48eSWarner Losh "Enable Dynamic I/O scheduler optimizations."); 80ba6c22ceSWarner Losh 81cf3ec151SWarner Losh /* 82cf3ec151SWarner Losh * For an EMA, with an alpha of alpha, we know 83cf3ec151SWarner Losh * alpha = 2 / (N + 1) 84cf3ec151SWarner Losh * or 85cf3ec151SWarner Losh * N = 1 + (2 / alpha) 86cf3ec151SWarner Losh * where N is the number of samples that 86% of the current 87cf3ec151SWarner Losh * EMA is derived from. 88cf3ec151SWarner Losh * 89cf3ec151SWarner Losh * So we invent[*] alpha_bits: 90cf3ec151SWarner Losh * alpha_bits = -log_2(alpha) 91cf3ec151SWarner Losh * alpha = 2^-alpha_bits 92cf3ec151SWarner Losh * So 93cf3ec151SWarner Losh * N = 1 + 2^(alpha_bits + 1) 94cf3ec151SWarner Losh * 95cf3ec151SWarner Losh * The default 9 gives a 1025 lookback for 86% of the data. 96cf3ec151SWarner Losh * For a brief intro: https://en.wikipedia.org/wiki/Moving_average 97cf3ec151SWarner Losh * 98cf3ec151SWarner Losh * [*] Steal from the load average code and many other places. 9979d80af2SWarner Losh * Note: See computation of EMA and EMVAR for acceptable ranges of alpha. 100cf3ec151SWarner Losh */ 101ba6c22ceSWarner Losh static int alpha_bits = 9; 10222832069SWarner Losh SYSCTL_INT(_kern_cam_iosched, OID_AUTO, alpha_bits, CTLFLAG_RW | CTLFLAG_TUN, 103ba6c22ceSWarner Losh &alpha_bits, 1, 104ba6c22ceSWarner Losh "Bits in EMA's alpha."); 105ba6c22ceSWarner Losh 10622832069SWarner Losh /* 10722832069SWarner Losh * Different parameters for the buckets of latency we keep track of. These are all 10822832069SWarner Losh * published read-only since at present they are compile time constants. 10922832069SWarner Losh * 11022832069SWarner Losh * Bucket base is the upper bounds of the first latency bucket. It's currently 20us. 11122832069SWarner Losh * With 20 buckets (see below), that leads to a geometric progression with a max size 11222832069SWarner Losh * of 5.2s which is safeily larger than 1s to help diagnose extreme outliers better. 11322832069SWarner Losh */ 11422832069SWarner Losh #ifndef BUCKET_BASE 1151d92e81fSWarner Losh #define BUCKET_BASE ((SBT_1S / 50000) + 1) /* 20us */ 11622832069SWarner Losh #endif 11722832069SWarner Losh static sbintime_t bucket_base = BUCKET_BASE; 11822832069SWarner Losh SYSCTL_SBINTIME_USEC(_kern_cam_iosched, OID_AUTO, bucket_base_us, CTLFLAG_RD, 11922832069SWarner Losh &bucket_base, 12022832069SWarner Losh "Size of the smallest latency bucket"); 12122832069SWarner Losh 12222832069SWarner Losh /* 12322832069SWarner Losh * Bucket ratio is the geometric progression for the bucket. For a bucket b_n 12422832069SWarner Losh * the size of bucket b_n+1 is b_n * bucket_ratio / 100. 12522832069SWarner Losh */ 12622832069SWarner Losh static int bucket_ratio = 200; /* Rather hard coded at the moment */ 12722832069SWarner Losh SYSCTL_INT(_kern_cam_iosched, OID_AUTO, bucket_ratio, CTLFLAG_RD, 12822832069SWarner Losh &bucket_ratio, 200, 12922832069SWarner Losh "Latency Bucket Ratio for geometric progression."); 13022832069SWarner Losh 13122832069SWarner Losh /* 13222832069SWarner Losh * Number of total buckets. Starting at BUCKET_BASE, each one is a power of 2. 13322832069SWarner Losh */ 13422832069SWarner Losh #ifndef LAT_BUCKETS 13522832069SWarner Losh #define LAT_BUCKETS 20 /* < 20us < 40us ... < 2^(n-1)*20us >= 2^(n-1)*20us */ 13622832069SWarner Losh #endif 13722832069SWarner Losh static int lat_buckets = LAT_BUCKETS; 13822832069SWarner Losh SYSCTL_INT(_kern_cam_iosched, OID_AUTO, buckets, CTLFLAG_RD, 13922832069SWarner Losh &lat_buckets, LAT_BUCKETS, 14022832069SWarner Losh "Total number of latency buckets published"); 14122832069SWarner Losh 142d592c0dbSWarner Losh /* 143d592c0dbSWarner Losh * Read bias: how many reads do we favor before scheduling a write 144d592c0dbSWarner Losh * when we have a choice. 145d592c0dbSWarner Losh */ 146d592c0dbSWarner Losh static int default_read_bias = 0; 147d592c0dbSWarner Losh SYSCTL_INT(_kern_cam_iosched, OID_AUTO, read_bias, CTLFLAG_RWTUN, 148d592c0dbSWarner Losh &default_read_bias, 0, 149d592c0dbSWarner Losh "Default read bias for new devices."); 150d592c0dbSWarner Losh 151ba6c22ceSWarner Losh struct iop_stats; 152ba6c22ceSWarner Losh struct cam_iosched_softc; 153ba6c22ceSWarner Losh 154ba6c22ceSWarner Losh int iosched_debug = 0; 155ba6c22ceSWarner Losh 156ba6c22ceSWarner Losh typedef enum { 157ba6c22ceSWarner Losh none = 0, /* No limits */ 158ba6c22ceSWarner Losh queue_depth, /* Limit how many ops we queue to SIM */ 159ba6c22ceSWarner Losh iops, /* Limit # of IOPS to the drive */ 160ba6c22ceSWarner Losh bandwidth, /* Limit bandwidth to the drive */ 161ba6c22ceSWarner Losh limiter_max 162ba6c22ceSWarner Losh } io_limiter; 163ba6c22ceSWarner Losh 164ba6c22ceSWarner Losh static const char *cam_iosched_limiter_names[] = 165ba6c22ceSWarner Losh { "none", "queue_depth", "iops", "bandwidth" }; 166ba6c22ceSWarner Losh 167ba6c22ceSWarner Losh /* 168ba6c22ceSWarner Losh * Called to initialize the bits of the iop_stats structure relevant to the 169ba6c22ceSWarner Losh * limiter. Called just after the limiter is set. 170ba6c22ceSWarner Losh */ 171ba6c22ceSWarner Losh typedef int l_init_t(struct iop_stats *); 172ba6c22ceSWarner Losh 173ba6c22ceSWarner Losh /* 174ba6c22ceSWarner Losh * Called every tick. 175ba6c22ceSWarner Losh */ 176ba6c22ceSWarner Losh typedef int l_tick_t(struct iop_stats *); 177ba6c22ceSWarner Losh 178ba6c22ceSWarner Losh /* 179ba6c22ceSWarner Losh * Called to see if the limiter thinks this IOP can be allowed to 1800b4060b0SEd Maste * proceed. If so, the limiter assumes that the IOP proceeded 181ba6c22ceSWarner Losh * and makes any accounting of it that's needed. 182ba6c22ceSWarner Losh */ 183ba6c22ceSWarner Losh typedef int l_iop_t(struct iop_stats *, struct bio *); 184ba6c22ceSWarner Losh 185ba6c22ceSWarner Losh /* 1860b4060b0SEd Maste * Called when an I/O completes so the limiter can update its 187ba6c22ceSWarner Losh * accounting. Pending I/Os may complete in any order (even when 188ba6c22ceSWarner Losh * sent to the hardware at the same time), so the limiter may not 189ba6c22ceSWarner Losh * make any assumptions other than this I/O has completed. If it 190ba6c22ceSWarner Losh * returns 1, then xpt_schedule() needs to be called again. 191ba6c22ceSWarner Losh */ 192ba6c22ceSWarner Losh typedef int l_iodone_t(struct iop_stats *, struct bio *); 193ba6c22ceSWarner Losh 194ba6c22ceSWarner Losh static l_iop_t cam_iosched_qd_iop; 195ba6c22ceSWarner Losh static l_iop_t cam_iosched_qd_caniop; 196ba6c22ceSWarner Losh static l_iodone_t cam_iosched_qd_iodone; 197ba6c22ceSWarner Losh 198ba6c22ceSWarner Losh static l_init_t cam_iosched_iops_init; 199ba6c22ceSWarner Losh static l_tick_t cam_iosched_iops_tick; 200ba6c22ceSWarner Losh static l_iop_t cam_iosched_iops_caniop; 201ba6c22ceSWarner Losh static l_iop_t cam_iosched_iops_iop; 202ba6c22ceSWarner Losh 203ba6c22ceSWarner Losh static l_init_t cam_iosched_bw_init; 204ba6c22ceSWarner Losh static l_tick_t cam_iosched_bw_tick; 205ba6c22ceSWarner Losh static l_iop_t cam_iosched_bw_caniop; 206ba6c22ceSWarner Losh static l_iop_t cam_iosched_bw_iop; 207ba6c22ceSWarner Losh 208b20c0a07SWarner Losh struct limswitch { 209ba6c22ceSWarner Losh l_init_t *l_init; 210ba6c22ceSWarner Losh l_tick_t *l_tick; 211ba6c22ceSWarner Losh l_iop_t *l_iop; 212ba6c22ceSWarner Losh l_iop_t *l_caniop; 213ba6c22ceSWarner Losh l_iodone_t *l_iodone; 214ba6c22ceSWarner Losh } limsw[] = 215ba6c22ceSWarner Losh { 216ba6c22ceSWarner Losh { /* none */ 217ba6c22ceSWarner Losh .l_init = NULL, 218ba6c22ceSWarner Losh .l_tick = NULL, 219ba6c22ceSWarner Losh .l_iop = NULL, 220ba6c22ceSWarner Losh .l_iodone= NULL, 221ba6c22ceSWarner Losh }, 222ba6c22ceSWarner Losh { /* queue_depth */ 223ba6c22ceSWarner Losh .l_init = NULL, 224ba6c22ceSWarner Losh .l_tick = NULL, 225ba6c22ceSWarner Losh .l_caniop = cam_iosched_qd_caniop, 226ba6c22ceSWarner Losh .l_iop = cam_iosched_qd_iop, 227ba6c22ceSWarner Losh .l_iodone= cam_iosched_qd_iodone, 228ba6c22ceSWarner Losh }, 229ba6c22ceSWarner Losh { /* iops */ 230ba6c22ceSWarner Losh .l_init = cam_iosched_iops_init, 231ba6c22ceSWarner Losh .l_tick = cam_iosched_iops_tick, 232ba6c22ceSWarner Losh .l_caniop = cam_iosched_iops_caniop, 233ba6c22ceSWarner Losh .l_iop = cam_iosched_iops_iop, 234ba6c22ceSWarner Losh .l_iodone= NULL, 235ba6c22ceSWarner Losh }, 236ba6c22ceSWarner Losh { /* bandwidth */ 237ba6c22ceSWarner Losh .l_init = cam_iosched_bw_init, 238ba6c22ceSWarner Losh .l_tick = cam_iosched_bw_tick, 239ba6c22ceSWarner Losh .l_caniop = cam_iosched_bw_caniop, 240ba6c22ceSWarner Losh .l_iop = cam_iosched_bw_iop, 241ba6c22ceSWarner Losh .l_iodone= NULL, 242ba6c22ceSWarner Losh }, 243ba6c22ceSWarner Losh }; 244ba6c22ceSWarner Losh 245b20c0a07SWarner Losh struct iop_stats { 246ba6c22ceSWarner Losh /* 247ba6c22ceSWarner Losh * sysctl state for this subnode. 248ba6c22ceSWarner Losh */ 249ba6c22ceSWarner Losh struct sysctl_ctx_list sysctl_ctx; 250ba6c22ceSWarner Losh struct sysctl_oid *sysctl_tree; 251ba6c22ceSWarner Losh 252ba6c22ceSWarner Losh /* 253ba6c22ceSWarner Losh * Information about the current rate limiters, if any 254ba6c22ceSWarner Losh */ 255ba6c22ceSWarner Losh io_limiter limiter; /* How are I/Os being limited */ 256ba6c22ceSWarner Losh int min; /* Low range of limit */ 257ba6c22ceSWarner Losh int max; /* High range of limit */ 258ba6c22ceSWarner Losh int current; /* Current rate limiter */ 259ba6c22ceSWarner Losh int l_value1; /* per-limiter scratch value 1. */ 260ba6c22ceSWarner Losh int l_value2; /* per-limiter scratch value 2. */ 261ba6c22ceSWarner Losh 262ba6c22ceSWarner Losh /* 263ba6c22ceSWarner Losh * Debug information about counts of I/Os that have gone through the 264ba6c22ceSWarner Losh * scheduler. 265ba6c22ceSWarner Losh */ 266ba6c22ceSWarner Losh int pending; /* I/Os pending in the hardware */ 267ba6c22ceSWarner Losh int queued; /* number currently in the queue */ 268ba6c22ceSWarner Losh int total; /* Total for all time -- wraps */ 269ba6c22ceSWarner Losh int in; /* number queued all time -- wraps */ 270ba6c22ceSWarner Losh int out; /* number completed all time -- wraps */ 271c4b72d8bSWarner Losh int errs; /* Number of I/Os completed with error -- wraps */ 272ba6c22ceSWarner Losh 273ba6c22ceSWarner Losh /* 274ba6c22ceSWarner Losh * Statistics on different bits of the process. 275ba6c22ceSWarner Losh */ 276cf3ec151SWarner Losh /* Exp Moving Average, see alpha_bits for more details */ 277ba6c22ceSWarner Losh sbintime_t ema; 27879d80af2SWarner Losh sbintime_t emvar; 279ba6c22ceSWarner Losh sbintime_t sd; /* Last computed sd */ 280ba6c22ceSWarner Losh 281cf3ec151SWarner Losh uint32_t state_flags; 282cf3ec151SWarner Losh #define IOP_RATE_LIMITED 1u 283cf3ec151SWarner Losh 284cf3ec151SWarner Losh uint64_t latencies[LAT_BUCKETS]; 285cf3ec151SWarner Losh 286ba6c22ceSWarner Losh struct cam_iosched_softc *softc; 287ba6c22ceSWarner Losh }; 288ba6c22ceSWarner Losh 289ba6c22ceSWarner Losh typedef enum { 290ba6c22ceSWarner Losh set_max = 0, /* current = max */ 291ba6c22ceSWarner Losh read_latency, /* Steer read latency by throttling writes */ 292ba6c22ceSWarner Losh cl_max /* Keep last */ 293ba6c22ceSWarner Losh } control_type; 294ba6c22ceSWarner Losh 295ba6c22ceSWarner Losh static const char *cam_iosched_control_type_names[] = 296ba6c22ceSWarner Losh { "set_max", "read_latency" }; 297ba6c22ceSWarner Losh 298b20c0a07SWarner Losh struct control_loop { 299ba6c22ceSWarner Losh /* 300ba6c22ceSWarner Losh * sysctl state for this subnode. 301ba6c22ceSWarner Losh */ 302ba6c22ceSWarner Losh struct sysctl_ctx_list sysctl_ctx; 303ba6c22ceSWarner Losh struct sysctl_oid *sysctl_tree; 304ba6c22ceSWarner Losh 305ba6c22ceSWarner Losh sbintime_t next_steer; /* Time of next steer */ 306ba6c22ceSWarner Losh sbintime_t steer_interval; /* How often do we steer? */ 307ba6c22ceSWarner Losh sbintime_t lolat; 308ba6c22ceSWarner Losh sbintime_t hilat; 309ba6c22ceSWarner Losh int alpha; 310ba6c22ceSWarner Losh control_type type; /* What type of control? */ 311ba6c22ceSWarner Losh int last_count; /* Last I/O count */ 312ba6c22ceSWarner Losh 313ba6c22ceSWarner Losh struct cam_iosched_softc *softc; 314ba6c22ceSWarner Losh }; 315ba6c22ceSWarner Losh 316ba6c22ceSWarner Losh #endif 317ba6c22ceSWarner Losh 318b20c0a07SWarner Losh struct cam_iosched_softc { 319ba6c22ceSWarner Losh struct bio_queue_head bio_queue; 320ba6c22ceSWarner Losh struct bio_queue_head trim_queue; 321ba6c22ceSWarner Losh /* scheduler flags < 16, user flags >= 16 */ 322ba6c22ceSWarner Losh uint32_t flags; 323ba6c22ceSWarner Losh int sort_io_queue; 324d900ade5SWarner Losh int trim_goal; /* # of trims to queue before sending */ 325d900ade5SWarner Losh int trim_ticks; /* Max ticks to hold trims */ 326d900ade5SWarner Losh int last_trim_tick; /* Last 'tick' time ld a trim */ 327d900ade5SWarner Losh int queued_trims; /* Number of trims in the queue */ 328df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 329ba6c22ceSWarner Losh int read_bias; /* Read bias setting */ 330ba6c22ceSWarner Losh int current_read_bias; /* Current read bias state */ 331ba6c22ceSWarner Losh int total_ticks; 332cf3ec151SWarner Losh int load; /* EMA of 'load average' of disk / 2^16 */ 333ba6c22ceSWarner Losh 334ba6c22ceSWarner Losh struct bio_queue_head write_queue; 335ba6c22ceSWarner Losh struct iop_stats read_stats, write_stats, trim_stats; 336ba6c22ceSWarner Losh struct sysctl_ctx_list sysctl_ctx; 337ba6c22ceSWarner Losh struct sysctl_oid *sysctl_tree; 338ba6c22ceSWarner Losh 339ba6c22ceSWarner Losh int quanta; /* Number of quanta per second */ 340ba6c22ceSWarner Losh struct callout ticker; /* Callout for our quota system */ 341ba6c22ceSWarner Losh struct cam_periph *periph; /* cam periph associated with this device */ 342ba6c22ceSWarner Losh uint32_t this_frac; /* Fraction of a second (1024ths) for this tick */ 343ba6c22ceSWarner Losh sbintime_t last_time; /* Last time we ticked */ 344ba6c22ceSWarner Losh struct control_loop cl; 345e5436ab5SWarner Losh sbintime_t max_lat; /* when != 0, if iop latency > max_lat, call max_lat_fcn */ 346e5436ab5SWarner Losh cam_iosched_latfcn_t latfcn; 347e5436ab5SWarner Losh void *latarg; 348ba6c22ceSWarner Losh #endif 349ba6c22ceSWarner Losh }; 350ba6c22ceSWarner Losh 351df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 352ba6c22ceSWarner Losh /* 353ba6c22ceSWarner Losh * helper functions to call the limsw functions. 354ba6c22ceSWarner Losh */ 355ba6c22ceSWarner Losh static int 356ba6c22ceSWarner Losh cam_iosched_limiter_init(struct iop_stats *ios) 357ba6c22ceSWarner Losh { 358ba6c22ceSWarner Losh int lim = ios->limiter; 359ba6c22ceSWarner Losh 360ba6c22ceSWarner Losh /* maybe this should be a kassert */ 361ba6c22ceSWarner Losh if (lim < none || lim >= limiter_max) 362ba6c22ceSWarner Losh return EINVAL; 363ba6c22ceSWarner Losh 364ba6c22ceSWarner Losh if (limsw[lim].l_init) 365ba6c22ceSWarner Losh return limsw[lim].l_init(ios); 366ba6c22ceSWarner Losh 367ba6c22ceSWarner Losh return 0; 368ba6c22ceSWarner Losh } 369ba6c22ceSWarner Losh 370ba6c22ceSWarner Losh static int 371ba6c22ceSWarner Losh cam_iosched_limiter_tick(struct iop_stats *ios) 372ba6c22ceSWarner Losh { 373ba6c22ceSWarner Losh int lim = ios->limiter; 374ba6c22ceSWarner Losh 375ba6c22ceSWarner Losh /* maybe this should be a kassert */ 376ba6c22ceSWarner Losh if (lim < none || lim >= limiter_max) 377ba6c22ceSWarner Losh return EINVAL; 378ba6c22ceSWarner Losh 379ba6c22ceSWarner Losh if (limsw[lim].l_tick) 380ba6c22ceSWarner Losh return limsw[lim].l_tick(ios); 381ba6c22ceSWarner Losh 382ba6c22ceSWarner Losh return 0; 383ba6c22ceSWarner Losh } 384ba6c22ceSWarner Losh 385ba6c22ceSWarner Losh static int 386ba6c22ceSWarner Losh cam_iosched_limiter_iop(struct iop_stats *ios, struct bio *bp) 387ba6c22ceSWarner Losh { 388ba6c22ceSWarner Losh int lim = ios->limiter; 389ba6c22ceSWarner Losh 390ba6c22ceSWarner Losh /* maybe this should be a kassert */ 391ba6c22ceSWarner Losh if (lim < none || lim >= limiter_max) 392ba6c22ceSWarner Losh return EINVAL; 393ba6c22ceSWarner Losh 394ba6c22ceSWarner Losh if (limsw[lim].l_iop) 395ba6c22ceSWarner Losh return limsw[lim].l_iop(ios, bp); 396ba6c22ceSWarner Losh 397ba6c22ceSWarner Losh return 0; 398ba6c22ceSWarner Losh } 399ba6c22ceSWarner Losh 400ba6c22ceSWarner Losh static int 401ba6c22ceSWarner Losh cam_iosched_limiter_caniop(struct iop_stats *ios, struct bio *bp) 402ba6c22ceSWarner Losh { 403ba6c22ceSWarner Losh int lim = ios->limiter; 404ba6c22ceSWarner Losh 405ba6c22ceSWarner Losh /* maybe this should be a kassert */ 406ba6c22ceSWarner Losh if (lim < none || lim >= limiter_max) 407ba6c22ceSWarner Losh return EINVAL; 408ba6c22ceSWarner Losh 409ba6c22ceSWarner Losh if (limsw[lim].l_caniop) 410ba6c22ceSWarner Losh return limsw[lim].l_caniop(ios, bp); 411ba6c22ceSWarner Losh 412ba6c22ceSWarner Losh return 0; 413ba6c22ceSWarner Losh } 414ba6c22ceSWarner Losh 415ba6c22ceSWarner Losh static int 416ba6c22ceSWarner Losh cam_iosched_limiter_iodone(struct iop_stats *ios, struct bio *bp) 417ba6c22ceSWarner Losh { 418ba6c22ceSWarner Losh int lim = ios->limiter; 419ba6c22ceSWarner Losh 420ba6c22ceSWarner Losh /* maybe this should be a kassert */ 421ba6c22ceSWarner Losh if (lim < none || lim >= limiter_max) 422ba6c22ceSWarner Losh return 0; 423ba6c22ceSWarner Losh 424ba6c22ceSWarner Losh if (limsw[lim].l_iodone) 425ba6c22ceSWarner Losh return limsw[lim].l_iodone(ios, bp); 426ba6c22ceSWarner Losh 427ba6c22ceSWarner Losh return 0; 428ba6c22ceSWarner Losh } 429ba6c22ceSWarner Losh 430ba6c22ceSWarner Losh /* 431ba6c22ceSWarner Losh * Functions to implement the different kinds of limiters 432ba6c22ceSWarner Losh */ 433ba6c22ceSWarner Losh 434ba6c22ceSWarner Losh static int 435ba6c22ceSWarner Losh cam_iosched_qd_iop(struct iop_stats *ios, struct bio *bp) 436ba6c22ceSWarner Losh { 437ba6c22ceSWarner Losh 438ba6c22ceSWarner Losh if (ios->current <= 0 || ios->pending < ios->current) 439ba6c22ceSWarner Losh return 0; 440ba6c22ceSWarner Losh 441ba6c22ceSWarner Losh return EAGAIN; 442ba6c22ceSWarner Losh } 443ba6c22ceSWarner Losh 444ba6c22ceSWarner Losh static int 445ba6c22ceSWarner Losh cam_iosched_qd_caniop(struct iop_stats *ios, struct bio *bp) 446ba6c22ceSWarner Losh { 447ba6c22ceSWarner Losh 448ba6c22ceSWarner Losh if (ios->current <= 0 || ios->pending < ios->current) 449ba6c22ceSWarner Losh return 0; 450ba6c22ceSWarner Losh 451ba6c22ceSWarner Losh return EAGAIN; 452ba6c22ceSWarner Losh } 453ba6c22ceSWarner Losh 454ba6c22ceSWarner Losh static int 455ba6c22ceSWarner Losh cam_iosched_qd_iodone(struct iop_stats *ios, struct bio *bp) 456ba6c22ceSWarner Losh { 457ba6c22ceSWarner Losh 458ba6c22ceSWarner Losh if (ios->current <= 0 || ios->pending != ios->current) 459ba6c22ceSWarner Losh return 0; 460ba6c22ceSWarner Losh 461ba6c22ceSWarner Losh return 1; 462ba6c22ceSWarner Losh } 463ba6c22ceSWarner Losh 464ba6c22ceSWarner Losh static int 465ba6c22ceSWarner Losh cam_iosched_iops_init(struct iop_stats *ios) 466ba6c22ceSWarner Losh { 467ba6c22ceSWarner Losh 468ba6c22ceSWarner Losh ios->l_value1 = ios->current / ios->softc->quanta; 469ba6c22ceSWarner Losh if (ios->l_value1 <= 0) 470ba6c22ceSWarner Losh ios->l_value1 = 1; 471f777123bSWarner Losh ios->l_value2 = 0; 472ba6c22ceSWarner Losh 473ba6c22ceSWarner Losh return 0; 474ba6c22ceSWarner Losh } 475ba6c22ceSWarner Losh 476ba6c22ceSWarner Losh static int 477ba6c22ceSWarner Losh cam_iosched_iops_tick(struct iop_stats *ios) 478ba6c22ceSWarner Losh { 47978ed811eSWarner Losh int new_ios; 480ba6c22ceSWarner Losh 481f777123bSWarner Losh /* 482f777123bSWarner Losh * Allow at least one IO per tick until all 483f777123bSWarner Losh * the IOs for this interval have been spent. 484f777123bSWarner Losh */ 48578ed811eSWarner Losh new_ios = (int)((ios->current * (uint64_t)ios->softc->this_frac) >> 16); 48678ed811eSWarner Losh if (new_ios < 1 && ios->l_value2 < ios->current) { 48778ed811eSWarner Losh new_ios = 1; 488f777123bSWarner Losh ios->l_value2++; 489f777123bSWarner Losh } 490ba6c22ceSWarner Losh 49178ed811eSWarner Losh /* 49278ed811eSWarner Losh * If this a new accounting interval, discard any "unspent" ios 49378ed811eSWarner Losh * granted in the previous interval. Otherwise add the new ios to 49478ed811eSWarner Losh * the previously granted ones that haven't been spent yet. 49578ed811eSWarner Losh */ 49678ed811eSWarner Losh if ((ios->softc->total_ticks % ios->softc->quanta) == 0) { 49778ed811eSWarner Losh ios->l_value1 = new_ios; 49878ed811eSWarner Losh ios->l_value2 = 1; 49978ed811eSWarner Losh } else { 50078ed811eSWarner Losh ios->l_value1 += new_ios; 50178ed811eSWarner Losh } 50278ed811eSWarner Losh 503ba6c22ceSWarner Losh return 0; 504ba6c22ceSWarner Losh } 505ba6c22ceSWarner Losh 506ba6c22ceSWarner Losh static int 507ba6c22ceSWarner Losh cam_iosched_iops_caniop(struct iop_stats *ios, struct bio *bp) 508ba6c22ceSWarner Losh { 509ba6c22ceSWarner Losh 510ba6c22ceSWarner Losh /* 511ba6c22ceSWarner Losh * So if we have any more IOPs left, allow it, 5126ca2fb66SWarner Losh * otherwise wait. If current iops is 0, treat that 5136ca2fb66SWarner Losh * as unlimited as a failsafe. 514ba6c22ceSWarner Losh */ 5156ca2fb66SWarner Losh if (ios->current > 0 && ios->l_value1 <= 0) 516ba6c22ceSWarner Losh return EAGAIN; 517ba6c22ceSWarner Losh return 0; 518ba6c22ceSWarner Losh } 519ba6c22ceSWarner Losh 520ba6c22ceSWarner Losh static int 521ba6c22ceSWarner Losh cam_iosched_iops_iop(struct iop_stats *ios, struct bio *bp) 522ba6c22ceSWarner Losh { 523ba6c22ceSWarner Losh int rv; 524ba6c22ceSWarner Losh 525ba6c22ceSWarner Losh rv = cam_iosched_limiter_caniop(ios, bp); 526ba6c22ceSWarner Losh if (rv == 0) 527ba6c22ceSWarner Losh ios->l_value1--; 528ba6c22ceSWarner Losh 529ba6c22ceSWarner Losh return rv; 530ba6c22ceSWarner Losh } 531ba6c22ceSWarner Losh 532ba6c22ceSWarner Losh static int 533ba6c22ceSWarner Losh cam_iosched_bw_init(struct iop_stats *ios) 534ba6c22ceSWarner Losh { 535ba6c22ceSWarner Losh 536ba6c22ceSWarner Losh /* ios->current is in kB/s, so scale to bytes */ 537ba6c22ceSWarner Losh ios->l_value1 = ios->current * 1000 / ios->softc->quanta; 538ba6c22ceSWarner Losh 539ba6c22ceSWarner Losh return 0; 540ba6c22ceSWarner Losh } 541ba6c22ceSWarner Losh 542ba6c22ceSWarner Losh static int 543ba6c22ceSWarner Losh cam_iosched_bw_tick(struct iop_stats *ios) 544ba6c22ceSWarner Losh { 545ba6c22ceSWarner Losh int bw; 546ba6c22ceSWarner Losh 547ba6c22ceSWarner Losh /* 548ba6c22ceSWarner Losh * If we're in the hole for available quota from 549ba6c22ceSWarner Losh * the last time, then add the quantum for this. 550ba6c22ceSWarner Losh * If we have any left over from last quantum, 551ba6c22ceSWarner Losh * then too bad, that's lost. Also, ios->current 552ba6c22ceSWarner Losh * is in kB/s, so scale. 553ba6c22ceSWarner Losh * 554ba6c22ceSWarner Losh * We also allow up to 4 quanta of credits to 555ba6c22ceSWarner Losh * accumulate to deal with burstiness. 4 is extremely 556ba6c22ceSWarner Losh * arbitrary. 557ba6c22ceSWarner Losh */ 558ba6c22ceSWarner Losh bw = (int)((ios->current * 1000ull * (uint64_t)ios->softc->this_frac) >> 16); 559ba6c22ceSWarner Losh if (ios->l_value1 < bw * 4) 560ba6c22ceSWarner Losh ios->l_value1 += bw; 561ba6c22ceSWarner Losh 562ba6c22ceSWarner Losh return 0; 563ba6c22ceSWarner Losh } 564ba6c22ceSWarner Losh 565ba6c22ceSWarner Losh static int 566ba6c22ceSWarner Losh cam_iosched_bw_caniop(struct iop_stats *ios, struct bio *bp) 567ba6c22ceSWarner Losh { 568ba6c22ceSWarner Losh /* 569ba6c22ceSWarner Losh * So if we have any more bw quota left, allow it, 5700b4060b0SEd Maste * otherwise wait. Note, we'll go negative and that's 5710b4060b0SEd Maste * OK. We'll just get a little less next quota. 572ba6c22ceSWarner Losh * 573ba6c22ceSWarner Losh * Note on going negative: that allows us to process 574ba6c22ceSWarner Losh * requests in order better, since we won't allow 575ba6c22ceSWarner Losh * shorter reads to get around the long one that we 576ba6c22ceSWarner Losh * don't have the quota to do just yet. It also prevents 577ba6c22ceSWarner Losh * starvation by being a little more permissive about 578ba6c22ceSWarner Losh * what we let through this quantum (to prevent the 579ba6c22ceSWarner Losh * starvation), at the cost of getting a little less 580ba6c22ceSWarner Losh * next quantum. 5816ca2fb66SWarner Losh * 5826ca2fb66SWarner Losh * Also note that if the current limit is <= 0, 5836ca2fb66SWarner Losh * we treat it as unlimited as a failsafe. 584ba6c22ceSWarner Losh */ 5856ca2fb66SWarner Losh if (ios->current > 0 && ios->l_value1 <= 0) 586ba6c22ceSWarner Losh return EAGAIN; 587ba6c22ceSWarner Losh 588ba6c22ceSWarner Losh return 0; 589ba6c22ceSWarner Losh } 590ba6c22ceSWarner Losh 591ba6c22ceSWarner Losh static int 592ba6c22ceSWarner Losh cam_iosched_bw_iop(struct iop_stats *ios, struct bio *bp) 593ba6c22ceSWarner Losh { 594ba6c22ceSWarner Losh int rv; 595ba6c22ceSWarner Losh 596ba6c22ceSWarner Losh rv = cam_iosched_limiter_caniop(ios, bp); 597ba6c22ceSWarner Losh if (rv == 0) 598ba6c22ceSWarner Losh ios->l_value1 -= bp->bio_length; 599ba6c22ceSWarner Losh 600ba6c22ceSWarner Losh return rv; 601ba6c22ceSWarner Losh } 602ba6c22ceSWarner Losh 603ba6c22ceSWarner Losh static void cam_iosched_cl_maybe_steer(struct control_loop *clp); 604ba6c22ceSWarner Losh 605ba6c22ceSWarner Losh static void 606ba6c22ceSWarner Losh cam_iosched_ticker(void *arg) 607ba6c22ceSWarner Losh { 608ba6c22ceSWarner Losh struct cam_iosched_softc *isc = arg; 609ba6c22ceSWarner Losh sbintime_t now, delta; 610cf3ec151SWarner Losh int pending; 611ba6c22ceSWarner Losh 6123028dd8dSWarner Losh callout_reset(&isc->ticker, hz / isc->quanta, cam_iosched_ticker, isc); 613ba6c22ceSWarner Losh 614ba6c22ceSWarner Losh now = sbinuptime(); 615ba6c22ceSWarner Losh delta = now - isc->last_time; 616ba6c22ceSWarner Losh isc->this_frac = (uint32_t)delta >> 16; /* Note: discards seconds -- should be 0 harmless if not */ 617ba6c22ceSWarner Losh isc->last_time = now; 618ba6c22ceSWarner Losh 619ba6c22ceSWarner Losh cam_iosched_cl_maybe_steer(&isc->cl); 620ba6c22ceSWarner Losh 621ba6c22ceSWarner Losh cam_iosched_limiter_tick(&isc->read_stats); 622ba6c22ceSWarner Losh cam_iosched_limiter_tick(&isc->write_stats); 623ba6c22ceSWarner Losh cam_iosched_limiter_tick(&isc->trim_stats); 624ba6c22ceSWarner Losh 625ba6c22ceSWarner Losh cam_iosched_schedule(isc, isc->periph); 626ba6c22ceSWarner Losh 627cf3ec151SWarner Losh /* 628cf3ec151SWarner Losh * isc->load is an EMA of the pending I/Os at each tick. The number of 629cf3ec151SWarner Losh * pending I/Os is the sum of the I/Os queued to the hardware, and those 630cf3ec151SWarner Losh * in the software queue that could be queued to the hardware if there 631cf3ec151SWarner Losh * were slots. 632cf3ec151SWarner Losh * 633cf3ec151SWarner Losh * ios_stats.pending is a count of requests in the SIM right now for 634cf3ec151SWarner Losh * each of these types of I/O. So the total pending count is the sum of 635cf3ec151SWarner Losh * these I/Os and the sum of the queued I/Os still in the software queue 636cf3ec151SWarner Losh * for those operations that aren't being rate limited at the moment. 637cf3ec151SWarner Losh * 638cf3ec151SWarner Losh * The reason for the rate limiting bit is because those I/Os 639cf3ec151SWarner Losh * aren't part of the software queued load (since we could 640cf3ec151SWarner Losh * give them to hardware, but choose not to). 641cf3ec151SWarner Losh * 642cf3ec151SWarner Losh * Note: due to a bug in counting pending TRIM in the device, we 643cf3ec151SWarner Losh * don't include them in this count. We count each BIO_DELETE in 644cf3ec151SWarner Losh * the pending count, but the periph drivers collapse them down 645cf3ec151SWarner Losh * into one TRIM command. That one trim command gets the completion 646cf3ec151SWarner Losh * so the counts get off. 647cf3ec151SWarner Losh */ 648cf3ec151SWarner Losh pending = isc->read_stats.pending + isc->write_stats.pending /* + isc->trim_stats.pending */; 649cf3ec151SWarner Losh pending += !!(isc->read_stats.state_flags & IOP_RATE_LIMITED) * isc->read_stats.queued + 650cf3ec151SWarner Losh !!(isc->write_stats.state_flags & IOP_RATE_LIMITED) * isc->write_stats.queued /* + 651cf3ec151SWarner Losh !!(isc->trim_stats.state_flags & IOP_RATE_LIMITED) * isc->trim_stats.queued */ ; 652cf3ec151SWarner Losh pending <<= 16; 653cf3ec151SWarner Losh pending /= isc->periph->path->device->ccbq.total_openings; 654cf3ec151SWarner Losh 655cf3ec151SWarner Losh isc->load = (pending + (isc->load << 13) - isc->load) >> 13; /* see above: 13 -> 16139 / 200/s = ~81s ~1 minute */ 656cf3ec151SWarner Losh 657ba6c22ceSWarner Losh isc->total_ticks++; 658ba6c22ceSWarner Losh } 659ba6c22ceSWarner Losh 660ba6c22ceSWarner Losh static void 661ba6c22ceSWarner Losh cam_iosched_cl_init(struct control_loop *clp, struct cam_iosched_softc *isc) 662ba6c22ceSWarner Losh { 663ba6c22ceSWarner Losh 664ba6c22ceSWarner Losh clp->next_steer = sbinuptime(); 665ba6c22ceSWarner Losh clp->softc = isc; 666ba6c22ceSWarner Losh clp->steer_interval = SBT_1S * 5; /* Let's start out steering every 5s */ 667ba6c22ceSWarner Losh clp->lolat = 5 * SBT_1MS; 668ba6c22ceSWarner Losh clp->hilat = 15 * SBT_1MS; 669ba6c22ceSWarner Losh clp->alpha = 20; /* Alpha == gain. 20 = .2 */ 670ba6c22ceSWarner Losh clp->type = set_max; 671ba6c22ceSWarner Losh } 672ba6c22ceSWarner Losh 673ba6c22ceSWarner Losh static void 674ba6c22ceSWarner Losh cam_iosched_cl_maybe_steer(struct control_loop *clp) 675ba6c22ceSWarner Losh { 676ba6c22ceSWarner Losh struct cam_iosched_softc *isc; 677ba6c22ceSWarner Losh sbintime_t now, lat; 678ba6c22ceSWarner Losh int old; 679ba6c22ceSWarner Losh 680ba6c22ceSWarner Losh isc = clp->softc; 681ba6c22ceSWarner Losh now = isc->last_time; 682ba6c22ceSWarner Losh if (now < clp->next_steer) 683ba6c22ceSWarner Losh return; 684ba6c22ceSWarner Losh 685ba6c22ceSWarner Losh clp->next_steer = now + clp->steer_interval; 686ba6c22ceSWarner Losh switch (clp->type) { 687ba6c22ceSWarner Losh case set_max: 688ba6c22ceSWarner Losh if (isc->write_stats.current != isc->write_stats.max) 689ba6c22ceSWarner Losh printf("Steering write from %d kBps to %d kBps\n", 690ba6c22ceSWarner Losh isc->write_stats.current, isc->write_stats.max); 691ba6c22ceSWarner Losh isc->read_stats.current = isc->read_stats.max; 692ba6c22ceSWarner Losh isc->write_stats.current = isc->write_stats.max; 693ba6c22ceSWarner Losh isc->trim_stats.current = isc->trim_stats.max; 694ba6c22ceSWarner Losh break; 695ba6c22ceSWarner Losh case read_latency: 696ba6c22ceSWarner Losh old = isc->write_stats.current; 697ba6c22ceSWarner Losh lat = isc->read_stats.ema; 698ba6c22ceSWarner Losh /* 699ba6c22ceSWarner Losh * Simple PLL-like engine. Since we're steering to a range for 700ba6c22ceSWarner Losh * the SP (set point) that makes things a little more 701ba6c22ceSWarner Losh * complicated. In addition, we're not directly controlling our 702ba6c22ceSWarner Losh * PV (process variable), the read latency, but instead are 703ba6c22ceSWarner Losh * manipulating the write bandwidth limit for our MV 704ba6c22ceSWarner Losh * (manipulation variable), analysis of this code gets a bit 705ba6c22ceSWarner Losh * messy. Also, the MV is a very noisy control surface for read 706ba6c22ceSWarner Losh * latency since it is affected by many hidden processes inside 707ba6c22ceSWarner Losh * the device which change how responsive read latency will be 708ba6c22ceSWarner Losh * in reaction to changes in write bandwidth. Unlike the classic 709ba6c22ceSWarner Losh * boiler control PLL. this may result in over-steering while 710ba6c22ceSWarner Losh * the SSD takes its time to react to the new, lower load. This 711ba6c22ceSWarner Losh * is why we use a relatively low alpha of between .1 and .25 to 712ba6c22ceSWarner Losh * compensate for this effect. At .1, it takes ~22 steering 713ba6c22ceSWarner Losh * intervals to back off by a factor of 10. At .2 it only takes 714ba6c22ceSWarner Losh * ~10. At .25 it only takes ~8. However some preliminary data 715ba6c22ceSWarner Losh * from the SSD drives suggests a reasponse time in 10's of 716ba6c22ceSWarner Losh * seconds before latency drops regardless of the new write 7170b4060b0SEd Maste * rate. Careful observation will be required to tune this 718ba6c22ceSWarner Losh * effectively. 719ba6c22ceSWarner Losh * 720ba6c22ceSWarner Losh * Also, when there's no read traffic, we jack up the write 721ba6c22ceSWarner Losh * limit too regardless of the last read latency. 10 is 722ba6c22ceSWarner Losh * somewhat arbitrary. 723ba6c22ceSWarner Losh */ 724ba6c22ceSWarner Losh if (lat < clp->lolat || isc->read_stats.total - clp->last_count < 10) 725ba6c22ceSWarner Losh isc->write_stats.current = isc->write_stats.current * 726ba6c22ceSWarner Losh (100 + clp->alpha) / 100; /* Scale up */ 727ba6c22ceSWarner Losh else if (lat > clp->hilat) 728ba6c22ceSWarner Losh isc->write_stats.current = isc->write_stats.current * 729ba6c22ceSWarner Losh (100 - clp->alpha) / 100; /* Scale down */ 730ba6c22ceSWarner Losh clp->last_count = isc->read_stats.total; 731ba6c22ceSWarner Losh 732ba6c22ceSWarner Losh /* 733ba6c22ceSWarner Losh * Even if we don't steer, per se, enforce the min/max limits as 734ba6c22ceSWarner Losh * those may have changed. 735ba6c22ceSWarner Losh */ 736ba6c22ceSWarner Losh if (isc->write_stats.current < isc->write_stats.min) 737ba6c22ceSWarner Losh isc->write_stats.current = isc->write_stats.min; 738ba6c22ceSWarner Losh if (isc->write_stats.current > isc->write_stats.max) 739ba6c22ceSWarner Losh isc->write_stats.current = isc->write_stats.max; 7402b5c19f1SWarner Losh if (old != isc->write_stats.current && iosched_debug) 741cf3ec151SWarner Losh printf("Steering write from %d kBps to %d kBps due to latency of %jdus\n", 742ba6c22ceSWarner Losh old, isc->write_stats.current, 7432b5c19f1SWarner Losh (uintmax_t)((uint64_t)1000000 * (uint32_t)lat) >> 32); 744ba6c22ceSWarner Losh break; 745ba6c22ceSWarner Losh case cl_max: 746ba6c22ceSWarner Losh break; 747ba6c22ceSWarner Losh } 748ba6c22ceSWarner Losh } 749ba6c22ceSWarner Losh #endif 750ba6c22ceSWarner Losh 751ece56614SWarner Losh /* 752ece56614SWarner Losh * Trim or similar currently pending completion. Should only be set for 753ece56614SWarner Losh * those drivers wishing only one Trim active at a time. 754ece56614SWarner Losh */ 755ece56614SWarner Losh #define CAM_IOSCHED_FLAG_TRIM_ACTIVE (1ul << 0) 75607e5967aSWarner Losh /* Callout active, and needs to be torn down */ 75707e5967aSWarner Losh #define CAM_IOSCHED_FLAG_CALLOUT_ACTIVE (1ul << 1) 75807e5967aSWarner Losh 75907e5967aSWarner Losh /* Periph drivers set these flags to indicate work */ 76007e5967aSWarner Losh #define CAM_IOSCHED_FLAG_WORK_FLAGS ((0xffffu) << 16) 76107e5967aSWarner Losh 762df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 763ba6c22ceSWarner Losh static void 764ba6c22ceSWarner Losh cam_iosched_io_metric_update(struct cam_iosched_softc *isc, 765ba6c22ceSWarner Losh sbintime_t sim_latency, int cmd, size_t size); 7665ede5b8cSWarner Losh #endif 767ba6c22ceSWarner Losh 7682d87718fSWarner Losh static inline bool 769ba6c22ceSWarner Losh cam_iosched_has_flagged_work(struct cam_iosched_softc *isc) 770ba6c22ceSWarner Losh { 771ba6c22ceSWarner Losh return !!(isc->flags & CAM_IOSCHED_FLAG_WORK_FLAGS); 772ba6c22ceSWarner Losh } 773ba6c22ceSWarner Losh 7742d87718fSWarner Losh static inline bool 775ba6c22ceSWarner Losh cam_iosched_has_io(struct cam_iosched_softc *isc) 776ba6c22ceSWarner Losh { 777df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 778035ec48eSWarner Losh if (do_dynamic_iosched) { 779ba6c22ceSWarner Losh struct bio *rbp = bioq_first(&isc->bio_queue); 780ba6c22ceSWarner Losh struct bio *wbp = bioq_first(&isc->write_queue); 7812d87718fSWarner Losh bool can_write = wbp != NULL && 782ba6c22ceSWarner Losh cam_iosched_limiter_caniop(&isc->write_stats, wbp) == 0; 7832d87718fSWarner Losh bool can_read = rbp != NULL && 784ba6c22ceSWarner Losh cam_iosched_limiter_caniop(&isc->read_stats, rbp) == 0; 785ba6c22ceSWarner Losh if (iosched_debug > 2) { 786ba6c22ceSWarner Losh printf("can write %d: pending_writes %d max_writes %d\n", can_write, isc->write_stats.pending, isc->write_stats.max); 787ba6c22ceSWarner Losh printf("can read %d: read_stats.pending %d max_reads %d\n", can_read, isc->read_stats.pending, isc->read_stats.max); 788ba6c22ceSWarner Losh printf("Queued reads %d writes %d\n", isc->read_stats.queued, isc->write_stats.queued); 789ba6c22ceSWarner Losh } 790ba6c22ceSWarner Losh return can_read || can_write; 791ba6c22ceSWarner Losh } 792ba6c22ceSWarner Losh #endif 793ba6c22ceSWarner Losh return bioq_first(&isc->bio_queue) != NULL; 794ba6c22ceSWarner Losh } 795ba6c22ceSWarner Losh 7962d87718fSWarner Losh static inline bool 797ba6c22ceSWarner Losh cam_iosched_has_more_trim(struct cam_iosched_softc *isc) 798ba6c22ceSWarner Losh { 799c6171b44SWarner Losh struct bio *bp; 800c6171b44SWarner Losh 801c6171b44SWarner Losh bp = bioq_first(&isc->trim_queue); 802c6171b44SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 803c6171b44SWarner Losh if (do_dynamic_iosched) { 804c6171b44SWarner Losh /* 805c6171b44SWarner Losh * If we're limiting trims, then defer action on trims 806c6171b44SWarner Losh * for a bit. 807c6171b44SWarner Losh */ 808c6171b44SWarner Losh if (bp == NULL || cam_iosched_limiter_caniop(&isc->trim_stats, bp) != 0) 809c6171b44SWarner Losh return false; 810c6171b44SWarner Losh } 811c6171b44SWarner Losh #endif 812d900ade5SWarner Losh 813d900ade5SWarner Losh /* 814d900ade5SWarner Losh * If we've set a trim_goal, then if we exceed that allow trims 815d900ade5SWarner Losh * to be passed back to the driver. If we've also set a tick timeout 816d900ade5SWarner Losh * allow trims back to the driver. Otherwise, don't allow trims yet. 817d900ade5SWarner Losh */ 818d900ade5SWarner Losh if (isc->trim_goal > 0) { 819d900ade5SWarner Losh if (isc->queued_trims >= isc->trim_goal) 820d900ade5SWarner Losh return true; 821d900ade5SWarner Losh if (isc->queued_trims > 0 && 822d900ade5SWarner Losh isc->trim_ticks > 0 && 823d900ade5SWarner Losh ticks - isc->last_trim_tick > isc->trim_ticks) 824d900ade5SWarner Losh return true; 825d900ade5SWarner Losh return false; 826d900ade5SWarner Losh } 827d900ade5SWarner Losh 828ece56614SWarner Losh /* NB: Should perhaps have a max trim active independent of I/O limiters */ 829ece56614SWarner Losh return !(isc->flags & CAM_IOSCHED_FLAG_TRIM_ACTIVE) && bp != NULL; 830ba6c22ceSWarner Losh } 831ba6c22ceSWarner Losh 832ba6c22ceSWarner Losh #define cam_iosched_sort_queue(isc) ((isc)->sort_io_queue >= 0 ? \ 833ba6c22ceSWarner Losh (isc)->sort_io_queue : cam_sort_io_queues) 834ba6c22ceSWarner Losh 8352d87718fSWarner Losh static inline bool 836ba6c22ceSWarner Losh cam_iosched_has_work(struct cam_iosched_softc *isc) 837ba6c22ceSWarner Losh { 838df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 839ba6c22ceSWarner Losh if (iosched_debug > 2) 840ba6c22ceSWarner Losh printf("has work: %d %d %d\n", cam_iosched_has_io(isc), 841ba6c22ceSWarner Losh cam_iosched_has_more_trim(isc), 842ba6c22ceSWarner Losh cam_iosched_has_flagged_work(isc)); 843ba6c22ceSWarner Losh #endif 844ba6c22ceSWarner Losh 845ba6c22ceSWarner Losh return cam_iosched_has_io(isc) || 846ba6c22ceSWarner Losh cam_iosched_has_more_trim(isc) || 847ba6c22ceSWarner Losh cam_iosched_has_flagged_work(isc); 848ba6c22ceSWarner Losh } 849ba6c22ceSWarner Losh 850df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 851ba6c22ceSWarner Losh static void 852ba6c22ceSWarner Losh cam_iosched_iop_stats_init(struct cam_iosched_softc *isc, struct iop_stats *ios) 853ba6c22ceSWarner Losh { 854ba6c22ceSWarner Losh 855ba6c22ceSWarner Losh ios->limiter = none; 856ba6c22ceSWarner Losh ios->in = 0; 85789d26636SWarner Losh ios->max = ios->current = 300000; 858ba6c22ceSWarner Losh ios->min = 1; 859ba6c22ceSWarner Losh ios->out = 0; 860c4b72d8bSWarner Losh ios->errs = 0; 861ba6c22ceSWarner Losh ios->pending = 0; 862ba6c22ceSWarner Losh ios->queued = 0; 863ba6c22ceSWarner Losh ios->total = 0; 864ba6c22ceSWarner Losh ios->ema = 0; 86579d80af2SWarner Losh ios->emvar = 0; 866ba6c22ceSWarner Losh ios->softc = isc; 86789d26636SWarner Losh cam_iosched_limiter_init(ios); 868ba6c22ceSWarner Losh } 869ba6c22ceSWarner Losh 870ba6c22ceSWarner Losh static int 871ba6c22ceSWarner Losh cam_iosched_limiter_sysctl(SYSCTL_HANDLER_ARGS) 872ba6c22ceSWarner Losh { 873ba6c22ceSWarner Losh char buf[16]; 874ba6c22ceSWarner Losh struct iop_stats *ios; 875ba6c22ceSWarner Losh struct cam_iosched_softc *isc; 876cf3ec151SWarner Losh int value, i, error; 877ba6c22ceSWarner Losh const char *p; 878ba6c22ceSWarner Losh 879ba6c22ceSWarner Losh ios = arg1; 880ba6c22ceSWarner Losh isc = ios->softc; 881ba6c22ceSWarner Losh value = ios->limiter; 882ba6c22ceSWarner Losh if (value < none || value >= limiter_max) 883ba6c22ceSWarner Losh p = "UNKNOWN"; 884ba6c22ceSWarner Losh else 885ba6c22ceSWarner Losh p = cam_iosched_limiter_names[value]; 886ba6c22ceSWarner Losh 887ba6c22ceSWarner Losh strlcpy(buf, p, sizeof(buf)); 888ba6c22ceSWarner Losh error = sysctl_handle_string(oidp, buf, sizeof(buf), req); 889ba6c22ceSWarner Losh if (error != 0 || req->newptr == NULL) 890ba6c22ceSWarner Losh return error; 891ba6c22ceSWarner Losh 892ba6c22ceSWarner Losh cam_periph_lock(isc->periph); 893ba6c22ceSWarner Losh 894ba6c22ceSWarner Losh for (i = none; i < limiter_max; i++) { 895ba6c22ceSWarner Losh if (strcmp(buf, cam_iosched_limiter_names[i]) != 0) 896ba6c22ceSWarner Losh continue; 897ba6c22ceSWarner Losh ios->limiter = i; 898ba6c22ceSWarner Losh error = cam_iosched_limiter_init(ios); 899ba6c22ceSWarner Losh if (error != 0) { 900ba6c22ceSWarner Losh ios->limiter = value; 901ba6c22ceSWarner Losh cam_periph_unlock(isc->periph); 902ba6c22ceSWarner Losh return error; 903ba6c22ceSWarner Losh } 904cf3ec151SWarner Losh /* Note: disk load averate requires ticker to be always running */ 9053028dd8dSWarner Losh callout_reset(&isc->ticker, hz / isc->quanta, cam_iosched_ticker, isc); 906ba6c22ceSWarner Losh isc->flags |= CAM_IOSCHED_FLAG_CALLOUT_ACTIVE; 907ba6c22ceSWarner Losh 908ba6c22ceSWarner Losh cam_periph_unlock(isc->periph); 909ba6c22ceSWarner Losh return 0; 910ba6c22ceSWarner Losh } 911ba6c22ceSWarner Losh 912ba6c22ceSWarner Losh cam_periph_unlock(isc->periph); 913ba6c22ceSWarner Losh return EINVAL; 914ba6c22ceSWarner Losh } 915ba6c22ceSWarner Losh 916ba6c22ceSWarner Losh static int 917ba6c22ceSWarner Losh cam_iosched_control_type_sysctl(SYSCTL_HANDLER_ARGS) 918ba6c22ceSWarner Losh { 919ba6c22ceSWarner Losh char buf[16]; 920ba6c22ceSWarner Losh struct control_loop *clp; 921ba6c22ceSWarner Losh struct cam_iosched_softc *isc; 922ba6c22ceSWarner Losh int value, i, error; 923ba6c22ceSWarner Losh const char *p; 924ba6c22ceSWarner Losh 925ba6c22ceSWarner Losh clp = arg1; 926ba6c22ceSWarner Losh isc = clp->softc; 927ba6c22ceSWarner Losh value = clp->type; 928ba6c22ceSWarner Losh if (value < none || value >= cl_max) 929ba6c22ceSWarner Losh p = "UNKNOWN"; 930ba6c22ceSWarner Losh else 931ba6c22ceSWarner Losh p = cam_iosched_control_type_names[value]; 932ba6c22ceSWarner Losh 933ba6c22ceSWarner Losh strlcpy(buf, p, sizeof(buf)); 934ba6c22ceSWarner Losh error = sysctl_handle_string(oidp, buf, sizeof(buf), req); 935ba6c22ceSWarner Losh if (error != 0 || req->newptr == NULL) 936ba6c22ceSWarner Losh return error; 937ba6c22ceSWarner Losh 938ba6c22ceSWarner Losh for (i = set_max; i < cl_max; i++) { 939ba6c22ceSWarner Losh if (strcmp(buf, cam_iosched_control_type_names[i]) != 0) 940ba6c22ceSWarner Losh continue; 941ba6c22ceSWarner Losh cam_periph_lock(isc->periph); 942ba6c22ceSWarner Losh clp->type = i; 943ba6c22ceSWarner Losh cam_periph_unlock(isc->periph); 944ba6c22ceSWarner Losh return 0; 945ba6c22ceSWarner Losh } 946ba6c22ceSWarner Losh 947ba6c22ceSWarner Losh return EINVAL; 948ba6c22ceSWarner Losh } 949ba6c22ceSWarner Losh 950ba6c22ceSWarner Losh static int 951ba6c22ceSWarner Losh cam_iosched_sbintime_sysctl(SYSCTL_HANDLER_ARGS) 952ba6c22ceSWarner Losh { 953ba6c22ceSWarner Losh char buf[16]; 954ba6c22ceSWarner Losh sbintime_t value; 955ba6c22ceSWarner Losh int error; 956ba6c22ceSWarner Losh uint64_t us; 957ba6c22ceSWarner Losh 958ba6c22ceSWarner Losh value = *(sbintime_t *)arg1; 959ba6c22ceSWarner Losh us = (uint64_t)value / SBT_1US; 960ba6c22ceSWarner Losh snprintf(buf, sizeof(buf), "%ju", (intmax_t)us); 961ba6c22ceSWarner Losh error = sysctl_handle_string(oidp, buf, sizeof(buf), req); 962ba6c22ceSWarner Losh if (error != 0 || req->newptr == NULL) 963ba6c22ceSWarner Losh return error; 964ba6c22ceSWarner Losh us = strtoul(buf, NULL, 10); 965ba6c22ceSWarner Losh if (us == 0) 966ba6c22ceSWarner Losh return EINVAL; 967ba6c22ceSWarner Losh *(sbintime_t *)arg1 = us * SBT_1US; 968ba6c22ceSWarner Losh return 0; 969ba6c22ceSWarner Losh } 970ba6c22ceSWarner Losh 971cf3ec151SWarner Losh static int 972cf3ec151SWarner Losh cam_iosched_sysctl_latencies(SYSCTL_HANDLER_ARGS) 973cf3ec151SWarner Losh { 974cf3ec151SWarner Losh int i, error; 975cf3ec151SWarner Losh struct sbuf sb; 976cf3ec151SWarner Losh uint64_t *latencies; 977cf3ec151SWarner Losh 978cf3ec151SWarner Losh latencies = arg1; 979cf3ec151SWarner Losh sbuf_new_for_sysctl(&sb, NULL, LAT_BUCKETS * 16, req); 980cf3ec151SWarner Losh 981cf3ec151SWarner Losh for (i = 0; i < LAT_BUCKETS - 1; i++) 982cf3ec151SWarner Losh sbuf_printf(&sb, "%jd,", (intmax_t)latencies[i]); 983cf3ec151SWarner Losh sbuf_printf(&sb, "%jd", (intmax_t)latencies[LAT_BUCKETS - 1]); 984cf3ec151SWarner Losh error = sbuf_finish(&sb); 985cf3ec151SWarner Losh sbuf_delete(&sb); 986cf3ec151SWarner Losh 987cf3ec151SWarner Losh return (error); 988cf3ec151SWarner Losh } 989cf3ec151SWarner Losh 9902d22619aSWarner Losh static int 9912d22619aSWarner Losh cam_iosched_quanta_sysctl(SYSCTL_HANDLER_ARGS) 9922d22619aSWarner Losh { 9932d22619aSWarner Losh int *quanta; 9942d22619aSWarner Losh int error, value; 9952d22619aSWarner Losh 9962d22619aSWarner Losh quanta = (unsigned *)arg1; 9972d22619aSWarner Losh value = *quanta; 9982d22619aSWarner Losh 9992d22619aSWarner Losh error = sysctl_handle_int(oidp, (int *)&value, 0, req); 10002d22619aSWarner Losh if ((error != 0) || (req->newptr == NULL)) 10012d22619aSWarner Losh return (error); 10022d22619aSWarner Losh 10032d22619aSWarner Losh if (value < 1 || value > hz) 10042d22619aSWarner Losh return (EINVAL); 10052d22619aSWarner Losh 10062d22619aSWarner Losh *quanta = value; 10072d22619aSWarner Losh 10082d22619aSWarner Losh return (0); 10092d22619aSWarner Losh } 10102d22619aSWarner Losh 1011ba6c22ceSWarner Losh static void 1012ba6c22ceSWarner Losh cam_iosched_iop_stats_sysctl_init(struct cam_iosched_softc *isc, struct iop_stats *ios, char *name) 1013ba6c22ceSWarner Losh { 1014ba6c22ceSWarner Losh struct sysctl_oid_list *n; 1015ba6c22ceSWarner Losh struct sysctl_ctx_list *ctx; 1016ba6c22ceSWarner Losh 1017ba6c22ceSWarner Losh ios->sysctl_tree = SYSCTL_ADD_NODE(&isc->sysctl_ctx, 1018ba6c22ceSWarner Losh SYSCTL_CHILDREN(isc->sysctl_tree), OID_AUTO, name, 10197029da5cSPawel Biernacki CTLFLAG_RD | CTLFLAG_MPSAFE, 0, name); 1020ba6c22ceSWarner Losh n = SYSCTL_CHILDREN(ios->sysctl_tree); 1021ba6c22ceSWarner Losh ctx = &ios->sysctl_ctx; 1022ba6c22ceSWarner Losh 1023ba6c22ceSWarner Losh SYSCTL_ADD_UQUAD(ctx, n, 1024ba6c22ceSWarner Losh OID_AUTO, "ema", CTLFLAG_RD, 1025ba6c22ceSWarner Losh &ios->ema, 1026ba6c22ceSWarner Losh "Fast Exponentially Weighted Moving Average"); 1027ba6c22ceSWarner Losh SYSCTL_ADD_UQUAD(ctx, n, 102879d80af2SWarner Losh OID_AUTO, "emvar", CTLFLAG_RD, 102979d80af2SWarner Losh &ios->emvar, 103079d80af2SWarner Losh "Fast Exponentially Weighted Moving Variance"); 1031ba6c22ceSWarner Losh 1032ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1033ba6c22ceSWarner Losh OID_AUTO, "pending", CTLFLAG_RD, 1034ba6c22ceSWarner Losh &ios->pending, 0, 1035ba6c22ceSWarner Losh "Instantaneous # of pending transactions"); 1036ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1037ba6c22ceSWarner Losh OID_AUTO, "count", CTLFLAG_RD, 1038ba6c22ceSWarner Losh &ios->total, 0, 1039ba6c22ceSWarner Losh "# of transactions submitted to hardware"); 1040ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1041ba6c22ceSWarner Losh OID_AUTO, "queued", CTLFLAG_RD, 1042ba6c22ceSWarner Losh &ios->queued, 0, 1043ba6c22ceSWarner Losh "# of transactions in the queue"); 1044ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1045ba6c22ceSWarner Losh OID_AUTO, "in", CTLFLAG_RD, 1046ba6c22ceSWarner Losh &ios->in, 0, 1047ba6c22ceSWarner Losh "# of transactions queued to driver"); 1048ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1049ba6c22ceSWarner Losh OID_AUTO, "out", CTLFLAG_RD, 1050ba6c22ceSWarner Losh &ios->out, 0, 1051c4b72d8bSWarner Losh "# of transactions completed (including with error)"); 1052c4b72d8bSWarner Losh SYSCTL_ADD_INT(ctx, n, 1053c4b72d8bSWarner Losh OID_AUTO, "errs", CTLFLAG_RD, 1054c4b72d8bSWarner Losh &ios->errs, 0, 1055c4b72d8bSWarner Losh "# of transactions completed with an error"); 1056ba6c22ceSWarner Losh 1057ba6c22ceSWarner Losh SYSCTL_ADD_PROC(ctx, n, 10587029da5cSPawel Biernacki OID_AUTO, "limiter", 1059303477d3SAlexander Motin CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE, 1060ba6c22ceSWarner Losh ios, 0, cam_iosched_limiter_sysctl, "A", 1061ba6c22ceSWarner Losh "Current limiting type."); 1062ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1063ba6c22ceSWarner Losh OID_AUTO, "min", CTLFLAG_RW, 1064ba6c22ceSWarner Losh &ios->min, 0, 1065ba6c22ceSWarner Losh "min resource"); 1066ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1067ba6c22ceSWarner Losh OID_AUTO, "max", CTLFLAG_RW, 1068ba6c22ceSWarner Losh &ios->max, 0, 1069ba6c22ceSWarner Losh "max resource"); 1070ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1071ba6c22ceSWarner Losh OID_AUTO, "current", CTLFLAG_RW, 1072ba6c22ceSWarner Losh &ios->current, 0, 1073ba6c22ceSWarner Losh "current resource"); 1074ba6c22ceSWarner Losh 1075cf3ec151SWarner Losh SYSCTL_ADD_PROC(ctx, n, 10767029da5cSPawel Biernacki OID_AUTO, "latencies", 1077303477d3SAlexander Motin CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, 1078cf3ec151SWarner Losh &ios->latencies, 0, 1079cf3ec151SWarner Losh cam_iosched_sysctl_latencies, "A", 1080cf3ec151SWarner Losh "Array of power of 2 latency from 1ms to 1.024s"); 1081ba6c22ceSWarner Losh } 1082ba6c22ceSWarner Losh 1083ba6c22ceSWarner Losh static void 1084ba6c22ceSWarner Losh cam_iosched_iop_stats_fini(struct iop_stats *ios) 1085ba6c22ceSWarner Losh { 1086ba6c22ceSWarner Losh if (ios->sysctl_tree) 1087ba6c22ceSWarner Losh if (sysctl_ctx_free(&ios->sysctl_ctx) != 0) 1088ba6c22ceSWarner Losh printf("can't remove iosched sysctl stats context\n"); 1089ba6c22ceSWarner Losh } 1090ba6c22ceSWarner Losh 1091ba6c22ceSWarner Losh static void 1092ba6c22ceSWarner Losh cam_iosched_cl_sysctl_init(struct cam_iosched_softc *isc) 1093ba6c22ceSWarner Losh { 1094ba6c22ceSWarner Losh struct sysctl_oid_list *n; 1095ba6c22ceSWarner Losh struct sysctl_ctx_list *ctx; 1096ba6c22ceSWarner Losh struct control_loop *clp; 1097ba6c22ceSWarner Losh 1098ba6c22ceSWarner Losh clp = &isc->cl; 1099ba6c22ceSWarner Losh clp->sysctl_tree = SYSCTL_ADD_NODE(&isc->sysctl_ctx, 1100ba6c22ceSWarner Losh SYSCTL_CHILDREN(isc->sysctl_tree), OID_AUTO, "control", 11017029da5cSPawel Biernacki CTLFLAG_RD | CTLFLAG_MPSAFE, 0, "Control loop info"); 1102ba6c22ceSWarner Losh n = SYSCTL_CHILDREN(clp->sysctl_tree); 1103ba6c22ceSWarner Losh ctx = &clp->sysctl_ctx; 1104ba6c22ceSWarner Losh 1105ba6c22ceSWarner Losh SYSCTL_ADD_PROC(ctx, n, 11067029da5cSPawel Biernacki OID_AUTO, "type", 1107303477d3SAlexander Motin CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE, 1108ba6c22ceSWarner Losh clp, 0, cam_iosched_control_type_sysctl, "A", 1109ba6c22ceSWarner Losh "Control loop algorithm"); 1110ba6c22ceSWarner Losh SYSCTL_ADD_PROC(ctx, n, 11117029da5cSPawel Biernacki OID_AUTO, "steer_interval", 1112303477d3SAlexander Motin CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE, 1113ba6c22ceSWarner Losh &clp->steer_interval, 0, cam_iosched_sbintime_sysctl, "A", 1114ba6c22ceSWarner Losh "How often to steer (in us)"); 1115ba6c22ceSWarner Losh SYSCTL_ADD_PROC(ctx, n, 11167029da5cSPawel Biernacki OID_AUTO, "lolat", 1117303477d3SAlexander Motin CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE, 1118ba6c22ceSWarner Losh &clp->lolat, 0, cam_iosched_sbintime_sysctl, "A", 1119ba6c22ceSWarner Losh "Low water mark for Latency (in us)"); 1120ba6c22ceSWarner Losh SYSCTL_ADD_PROC(ctx, n, 11217029da5cSPawel Biernacki OID_AUTO, "hilat", 1122303477d3SAlexander Motin CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_MPSAFE, 1123ba6c22ceSWarner Losh &clp->hilat, 0, cam_iosched_sbintime_sysctl, "A", 1124ba6c22ceSWarner Losh "Hi water mark for Latency (in us)"); 1125ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1126ba6c22ceSWarner Losh OID_AUTO, "alpha", CTLFLAG_RW, 1127ba6c22ceSWarner Losh &clp->alpha, 0, 1128ba6c22ceSWarner Losh "Alpha for PLL (x100) aka gain"); 1129ba6c22ceSWarner Losh } 1130ba6c22ceSWarner Losh 1131ba6c22ceSWarner Losh static void 1132ba6c22ceSWarner Losh cam_iosched_cl_sysctl_fini(struct control_loop *clp) 1133ba6c22ceSWarner Losh { 1134ba6c22ceSWarner Losh if (clp->sysctl_tree) 1135ba6c22ceSWarner Losh if (sysctl_ctx_free(&clp->sysctl_ctx) != 0) 1136ba6c22ceSWarner Losh printf("can't remove iosched sysctl control loop context\n"); 1137ba6c22ceSWarner Losh } 1138ba6c22ceSWarner Losh #endif 1139ba6c22ceSWarner Losh 1140ba6c22ceSWarner Losh /* 1141ba6c22ceSWarner Losh * Allocate the iosched structure. This also insulates callers from knowing 1142ba6c22ceSWarner Losh * sizeof struct cam_iosched_softc. 1143ba6c22ceSWarner Losh */ 1144ba6c22ceSWarner Losh int 11450028abe6SWarner Losh cam_iosched_init(struct cam_iosched_softc **iscp, struct cam_periph *periph) 1146ba6c22ceSWarner Losh { 1147ba6c22ceSWarner Losh 1148ba6c22ceSWarner Losh *iscp = malloc(sizeof(**iscp), M_CAMSCHED, M_NOWAIT | M_ZERO); 1149ba6c22ceSWarner Losh if (*iscp == NULL) 1150ba6c22ceSWarner Losh return ENOMEM; 1151df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1152ba6c22ceSWarner Losh if (iosched_debug) 1153ba6c22ceSWarner Losh printf("CAM IOSCHEDULER Allocating entry at %p\n", *iscp); 1154ba6c22ceSWarner Losh #endif 1155ba6c22ceSWarner Losh (*iscp)->sort_io_queue = -1; 1156ba6c22ceSWarner Losh bioq_init(&(*iscp)->bio_queue); 1157ba6c22ceSWarner Losh bioq_init(&(*iscp)->trim_queue); 1158df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1159035ec48eSWarner Losh if (do_dynamic_iosched) { 1160ba6c22ceSWarner Losh bioq_init(&(*iscp)->write_queue); 1161d592c0dbSWarner Losh (*iscp)->read_bias = default_read_bias; 1162b65803baSWarner Losh (*iscp)->current_read_bias = 0; 1163d7fa1ab0SWarner Losh (*iscp)->quanta = min(hz, 200); 1164ba6c22ceSWarner Losh cam_iosched_iop_stats_init(*iscp, &(*iscp)->read_stats); 1165ba6c22ceSWarner Losh cam_iosched_iop_stats_init(*iscp, &(*iscp)->write_stats); 1166ba6c22ceSWarner Losh cam_iosched_iop_stats_init(*iscp, &(*iscp)->trim_stats); 1167ba6c22ceSWarner Losh (*iscp)->trim_stats.max = 1; /* Trims are special: one at a time for now */ 1168ba6c22ceSWarner Losh (*iscp)->last_time = sbinuptime(); 1169ba6c22ceSWarner Losh callout_init_mtx(&(*iscp)->ticker, cam_periph_mtx(periph), 0); 1170ba6c22ceSWarner Losh (*iscp)->periph = periph; 1171ba6c22ceSWarner Losh cam_iosched_cl_init(&(*iscp)->cl, *iscp); 11723028dd8dSWarner Losh callout_reset(&(*iscp)->ticker, hz / (*iscp)->quanta, cam_iosched_ticker, *iscp); 1173ba6c22ceSWarner Losh (*iscp)->flags |= CAM_IOSCHED_FLAG_CALLOUT_ACTIVE; 1174ba6c22ceSWarner Losh } 1175ba6c22ceSWarner Losh #endif 1176ba6c22ceSWarner Losh 1177ba6c22ceSWarner Losh return 0; 1178ba6c22ceSWarner Losh } 1179ba6c22ceSWarner Losh 1180ba6c22ceSWarner Losh /* 1181ba6c22ceSWarner Losh * Reclaim all used resources. This assumes that other folks have 1182ba6c22ceSWarner Losh * drained the requests in the hardware. Maybe an unwise assumption. 1183ba6c22ceSWarner Losh */ 1184ba6c22ceSWarner Losh void 1185ba6c22ceSWarner Losh cam_iosched_fini(struct cam_iosched_softc *isc) 1186ba6c22ceSWarner Losh { 1187ba6c22ceSWarner Losh if (isc) { 1188ba6c22ceSWarner Losh cam_iosched_flush(isc, NULL, ENXIO); 1189df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1190ba6c22ceSWarner Losh cam_iosched_iop_stats_fini(&isc->read_stats); 1191ba6c22ceSWarner Losh cam_iosched_iop_stats_fini(&isc->write_stats); 1192ba6c22ceSWarner Losh cam_iosched_iop_stats_fini(&isc->trim_stats); 1193ba6c22ceSWarner Losh cam_iosched_cl_sysctl_fini(&isc->cl); 1194ba6c22ceSWarner Losh if (isc->sysctl_tree) 1195ba6c22ceSWarner Losh if (sysctl_ctx_free(&isc->sysctl_ctx) != 0) 1196ba6c22ceSWarner Losh printf("can't remove iosched sysctl stats context\n"); 1197ba6c22ceSWarner Losh if (isc->flags & CAM_IOSCHED_FLAG_CALLOUT_ACTIVE) { 1198ba6c22ceSWarner Losh callout_drain(&isc->ticker); 1199ba6c22ceSWarner Losh isc->flags &= ~ CAM_IOSCHED_FLAG_CALLOUT_ACTIVE; 1200ba6c22ceSWarner Losh } 1201ba6c22ceSWarner Losh #endif 1202ba6c22ceSWarner Losh free(isc, M_CAMSCHED); 1203ba6c22ceSWarner Losh } 1204ba6c22ceSWarner Losh } 1205ba6c22ceSWarner Losh 1206ba6c22ceSWarner Losh /* 1207ba6c22ceSWarner Losh * After we're sure we're attaching a device, go ahead and add 1208ba6c22ceSWarner Losh * hooks for any sysctl we may wish to honor. 1209ba6c22ceSWarner Losh */ 1210ba6c22ceSWarner Losh void cam_iosched_sysctl_init(struct cam_iosched_softc *isc, 1211ba6c22ceSWarner Losh struct sysctl_ctx_list *ctx, struct sysctl_oid *node) 1212ba6c22ceSWarner Losh { 1213ba6c22ceSWarner Losh struct sysctl_oid_list *n; 1214ba6c22ceSWarner Losh 1215d900ade5SWarner Losh n = SYSCTL_CHILDREN(node); 1216d900ade5SWarner Losh SYSCTL_ADD_INT(ctx, n, 1217ba6c22ceSWarner Losh OID_AUTO, "sort_io_queue", CTLFLAG_RW | CTLFLAG_MPSAFE, 1218ba6c22ceSWarner Losh &isc->sort_io_queue, 0, 1219ba6c22ceSWarner Losh "Sort IO queue to try and optimise disk access patterns"); 1220d900ade5SWarner Losh SYSCTL_ADD_INT(ctx, n, 1221d900ade5SWarner Losh OID_AUTO, "trim_goal", CTLFLAG_RW, 1222d900ade5SWarner Losh &isc->trim_goal, 0, 1223d900ade5SWarner Losh "Number of trims to try to accumulate before sending to hardware"); 1224d900ade5SWarner Losh SYSCTL_ADD_INT(ctx, n, 1225d900ade5SWarner Losh OID_AUTO, "trim_ticks", CTLFLAG_RW, 1226d900ade5SWarner Losh &isc->trim_goal, 0, 1227d900ade5SWarner Losh "IO Schedul qaunta to hold back trims for when accumulating"); 1228ba6c22ceSWarner Losh 1229df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1230035ec48eSWarner Losh if (!do_dynamic_iosched) 1231ba6c22ceSWarner Losh return; 1232ba6c22ceSWarner Losh 1233ba6c22ceSWarner Losh isc->sysctl_tree = SYSCTL_ADD_NODE(&isc->sysctl_ctx, 1234ba6c22ceSWarner Losh SYSCTL_CHILDREN(node), OID_AUTO, "iosched", 12357029da5cSPawel Biernacki CTLFLAG_RD | CTLFLAG_MPSAFE, 0, "I/O scheduler statistics"); 1236ba6c22ceSWarner Losh n = SYSCTL_CHILDREN(isc->sysctl_tree); 1237ba6c22ceSWarner Losh ctx = &isc->sysctl_ctx; 1238ba6c22ceSWarner Losh 1239ba6c22ceSWarner Losh cam_iosched_iop_stats_sysctl_init(isc, &isc->read_stats, "read"); 1240ba6c22ceSWarner Losh cam_iosched_iop_stats_sysctl_init(isc, &isc->write_stats, "write"); 1241ba6c22ceSWarner Losh cam_iosched_iop_stats_sysctl_init(isc, &isc->trim_stats, "trim"); 1242ba6c22ceSWarner Losh cam_iosched_cl_sysctl_init(isc); 1243ba6c22ceSWarner Losh 1244ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1245ba6c22ceSWarner Losh OID_AUTO, "read_bias", CTLFLAG_RW, 1246d592c0dbSWarner Losh &isc->read_bias, default_read_bias, 1247ba6c22ceSWarner Losh "How biased towards read should we be independent of limits"); 1248ba6c22ceSWarner Losh 12492d22619aSWarner Losh SYSCTL_ADD_PROC(ctx, n, 1250303477d3SAlexander Motin OID_AUTO, "quanta", CTLTYPE_UINT | CTLFLAG_RW | CTLFLAG_MPSAFE, 12512d22619aSWarner Losh &isc->quanta, 0, cam_iosched_quanta_sysctl, "I", 1252ba6c22ceSWarner Losh "How many quanta per second do we slice the I/O up into"); 1253ba6c22ceSWarner Losh 1254ba6c22ceSWarner Losh SYSCTL_ADD_INT(ctx, n, 1255ba6c22ceSWarner Losh OID_AUTO, "total_ticks", CTLFLAG_RD, 1256ba6c22ceSWarner Losh &isc->total_ticks, 0, 1257ba6c22ceSWarner Losh "Total number of ticks we've done"); 1258cf3ec151SWarner Losh 1259cf3ec151SWarner Losh SYSCTL_ADD_INT(ctx, n, 1260cf3ec151SWarner Losh OID_AUTO, "load", CTLFLAG_RD, 1261cf3ec151SWarner Losh &isc->load, 0, 1262cf3ec151SWarner Losh "scaled load average / 100"); 1263e5436ab5SWarner Losh 1264e5436ab5SWarner Losh SYSCTL_ADD_U64(ctx, n, 1265e5436ab5SWarner Losh OID_AUTO, "latency_trigger", CTLFLAG_RW, 1266e5436ab5SWarner Losh &isc->max_lat, 0, 1267e5436ab5SWarner Losh "Latency treshold to trigger callbacks"); 1268e5436ab5SWarner Losh #endif 1269e5436ab5SWarner Losh } 1270e5436ab5SWarner Losh 1271e5436ab5SWarner Losh void 1272e5436ab5SWarner Losh cam_iosched_set_latfcn(struct cam_iosched_softc *isc, 1273e5436ab5SWarner Losh cam_iosched_latfcn_t fnp, void *argp) 1274e5436ab5SWarner Losh { 1275e5436ab5SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1276e5436ab5SWarner Losh isc->latfcn = fnp; 1277e5436ab5SWarner Losh isc->latarg = argp; 1278ba6c22ceSWarner Losh #endif 1279ba6c22ceSWarner Losh } 1280ba6c22ceSWarner Losh 1281ba6c22ceSWarner Losh /* 1282d900ade5SWarner Losh * Client drivers can set two parameters. "goal" is the number of BIO_DELETEs 1283d900ade5SWarner Losh * that will be queued up before iosched will "release" the trims to the client 1284d900ade5SWarner Losh * driver to wo with what they will (usually combine as many as possible). If we 1285d900ade5SWarner Losh * don't get this many, after trim_ticks we'll submit the I/O anyway with 1286d900ade5SWarner Losh * whatever we have. We do need an I/O of some kind of to clock the deferred 1287d900ade5SWarner Losh * trims out to disk. Since we will eventually get a write for the super block 1288d900ade5SWarner Losh * or something before we shutdown, the trims will complete. To be safe, when a 1289d900ade5SWarner Losh * BIO_FLUSH is presented to the iosched work queue, we set the ticks time far 1290d900ade5SWarner Losh * enough in the past so we'll present the BIO_DELETEs to the client driver. 1291d900ade5SWarner Losh * There might be a race if no BIO_DELETESs were queued, a BIO_FLUSH comes in 1292d900ade5SWarner Losh * and then a BIO_DELETE is sent down. No know client does this, and there's 1293d900ade5SWarner Losh * already a race between an ordered BIO_FLUSH and any BIO_DELETEs in flight, 1294d900ade5SWarner Losh * but no client depends on the ordering being honored. 1295d900ade5SWarner Losh * 1296d900ade5SWarner Losh * XXX I'm not sure what the interaction between UFS direct BIOs and the BUF 1297d900ade5SWarner Losh * flushing on shutdown. I think there's bufs that would be dependent on the BIO 1298d900ade5SWarner Losh * finishing to write out at least metadata, so we'll be fine. To be safe, keep 1299d900ade5SWarner Losh * the number of ticks low (less than maybe 10s) to avoid shutdown races. 1300d900ade5SWarner Losh */ 1301d900ade5SWarner Losh 1302d900ade5SWarner Losh void 1303d900ade5SWarner Losh cam_iosched_set_trim_goal(struct cam_iosched_softc *isc, int goal) 1304d900ade5SWarner Losh { 1305d900ade5SWarner Losh 1306d900ade5SWarner Losh isc->trim_goal = goal; 1307d900ade5SWarner Losh } 1308d900ade5SWarner Losh 1309d900ade5SWarner Losh void 1310d900ade5SWarner Losh cam_iosched_set_trim_ticks(struct cam_iosched_softc *isc, int trim_ticks) 1311d900ade5SWarner Losh { 1312d900ade5SWarner Losh 1313d900ade5SWarner Losh isc->trim_ticks = trim_ticks; 1314d900ade5SWarner Losh } 1315d900ade5SWarner Losh 1316d900ade5SWarner Losh /* 1317ba6c22ceSWarner Losh * Flush outstanding I/O. Consumers of this library don't know all the 1318ba6c22ceSWarner Losh * queues we may keep, so this allows all I/O to be flushed in one 1319ba6c22ceSWarner Losh * convenient call. 1320ba6c22ceSWarner Losh */ 1321ba6c22ceSWarner Losh void 1322ba6c22ceSWarner Losh cam_iosched_flush(struct cam_iosched_softc *isc, struct devstat *stp, int err) 1323ba6c22ceSWarner Losh { 1324ba6c22ceSWarner Losh bioq_flush(&isc->bio_queue, stp, err); 1325ba6c22ceSWarner Losh bioq_flush(&isc->trim_queue, stp, err); 1326df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1327035ec48eSWarner Losh if (do_dynamic_iosched) 1328ba6c22ceSWarner Losh bioq_flush(&isc->write_queue, stp, err); 1329ba6c22ceSWarner Losh #endif 1330ba6c22ceSWarner Losh } 1331ba6c22ceSWarner Losh 1332df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1333ba6c22ceSWarner Losh static struct bio * 13340028abe6SWarner Losh cam_iosched_get_write(struct cam_iosched_softc *isc) 1335ba6c22ceSWarner Losh { 1336ba6c22ceSWarner Losh struct bio *bp; 1337ba6c22ceSWarner Losh 1338ba6c22ceSWarner Losh /* 1339ba6c22ceSWarner Losh * We control the write rate by controlling how many requests we send 1340ba6c22ceSWarner Losh * down to the drive at any one time. Fewer requests limits the 1341ba6c22ceSWarner Losh * effects of both starvation when the requests take a while and write 1342ba6c22ceSWarner Losh * amplification when each request is causing more than one write to 1343ba6c22ceSWarner Losh * the NAND media. Limiting the queue depth like this will also limit 1344ba6c22ceSWarner Losh * the write throughput and give and reads that want to compete to 1345ba6c22ceSWarner Losh * compete unfairly. 1346ba6c22ceSWarner Losh */ 1347ba6c22ceSWarner Losh bp = bioq_first(&isc->write_queue); 1348ba6c22ceSWarner Losh if (bp == NULL) { 1349ba6c22ceSWarner Losh if (iosched_debug > 3) 1350ba6c22ceSWarner Losh printf("No writes present in write_queue\n"); 1351ba6c22ceSWarner Losh return NULL; 1352ba6c22ceSWarner Losh } 1353ba6c22ceSWarner Losh 1354ba6c22ceSWarner Losh /* 1355ba6c22ceSWarner Losh * If pending read, prefer that based on current read bias 1356ba6c22ceSWarner Losh * setting. 1357ba6c22ceSWarner Losh */ 1358ba6c22ceSWarner Losh if (bioq_first(&isc->bio_queue) && isc->current_read_bias) { 1359ba6c22ceSWarner Losh if (iosched_debug) 1360f2b98850SWarner Losh printf( 1361f2b98850SWarner Losh "Reads present and current_read_bias is %d queued " 1362f2b98850SWarner Losh "writes %d queued reads %d\n", 1363f2b98850SWarner Losh isc->current_read_bias, isc->write_stats.queued, 1364f2b98850SWarner Losh isc->read_stats.queued); 1365ba6c22ceSWarner Losh isc->current_read_bias--; 1366cf3ec151SWarner Losh /* We're not limiting writes, per se, just doing reads first */ 1367ba6c22ceSWarner Losh return NULL; 1368ba6c22ceSWarner Losh } 1369ba6c22ceSWarner Losh 1370ba6c22ceSWarner Losh /* 1371ba6c22ceSWarner Losh * See if our current limiter allows this I/O. 1372ba6c22ceSWarner Losh */ 1373ba6c22ceSWarner Losh if (cam_iosched_limiter_iop(&isc->write_stats, bp) != 0) { 1374ba6c22ceSWarner Losh if (iosched_debug) 1375ba6c22ceSWarner Losh printf("Can't write because limiter says no.\n"); 1376cf3ec151SWarner Losh isc->write_stats.state_flags |= IOP_RATE_LIMITED; 1377ba6c22ceSWarner Losh return NULL; 1378ba6c22ceSWarner Losh } 1379ba6c22ceSWarner Losh 1380ba6c22ceSWarner Losh /* 1381ba6c22ceSWarner Losh * Let's do this: We've passed all the gates and we're a go 1382ba6c22ceSWarner Losh * to schedule the I/O in the SIM. 1383ba6c22ceSWarner Losh */ 1384ba6c22ceSWarner Losh isc->current_read_bias = isc->read_bias; 1385ba6c22ceSWarner Losh bioq_remove(&isc->write_queue, bp); 1386ba6c22ceSWarner Losh if (bp->bio_cmd == BIO_WRITE) { 1387ba6c22ceSWarner Losh isc->write_stats.queued--; 1388ba6c22ceSWarner Losh isc->write_stats.total++; 1389ba6c22ceSWarner Losh isc->write_stats.pending++; 1390ba6c22ceSWarner Losh } 1391ba6c22ceSWarner Losh if (iosched_debug > 9) 1392ba6c22ceSWarner Losh printf("HWQ : %p %#x\n", bp, bp->bio_cmd); 1393cf3ec151SWarner Losh isc->write_stats.state_flags &= ~IOP_RATE_LIMITED; 1394ba6c22ceSWarner Losh return bp; 1395ba6c22ceSWarner Losh } 1396ba6c22ceSWarner Losh #endif 1397ba6c22ceSWarner Losh 1398ba6c22ceSWarner Losh /* 1399ba6c22ceSWarner Losh * Put back a trim that you weren't able to actually schedule this time. 1400ba6c22ceSWarner Losh */ 1401ba6c22ceSWarner Losh void 1402ba6c22ceSWarner Losh cam_iosched_put_back_trim(struct cam_iosched_softc *isc, struct bio *bp) 1403ba6c22ceSWarner Losh { 1404ba6c22ceSWarner Losh bioq_insert_head(&isc->trim_queue, bp); 1405d900ade5SWarner Losh if (isc->queued_trims == 0) 1406d900ade5SWarner Losh isc->last_trim_tick = ticks; 1407d900ade5SWarner Losh isc->queued_trims++; 1408df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1409ba6c22ceSWarner Losh isc->trim_stats.queued++; 1410ba6c22ceSWarner Losh isc->trim_stats.total--; /* since we put it back, don't double count */ 1411ba6c22ceSWarner Losh isc->trim_stats.pending--; 1412ba6c22ceSWarner Losh #endif 1413ba6c22ceSWarner Losh } 1414ba6c22ceSWarner Losh 1415ba6c22ceSWarner Losh /* 1416ba6c22ceSWarner Losh * gets the next trim from the trim queue. 1417ba6c22ceSWarner Losh * 1418ba6c22ceSWarner Losh * Assumes we're called with the periph lock held. It removes this 14190b4060b0SEd Maste * trim from the queue and the device must explicitly reinsert it 1420ba6c22ceSWarner Losh * should the need arise. 1421ba6c22ceSWarner Losh */ 1422ba6c22ceSWarner Losh struct bio * 1423ba6c22ceSWarner Losh cam_iosched_next_trim(struct cam_iosched_softc *isc) 1424ba6c22ceSWarner Losh { 1425ba6c22ceSWarner Losh struct bio *bp; 1426ba6c22ceSWarner Losh 1427ba6c22ceSWarner Losh bp = bioq_first(&isc->trim_queue); 1428ba6c22ceSWarner Losh if (bp == NULL) 1429ba6c22ceSWarner Losh return NULL; 1430ba6c22ceSWarner Losh bioq_remove(&isc->trim_queue, bp); 1431d900ade5SWarner Losh isc->queued_trims--; 1432d900ade5SWarner Losh isc->last_trim_tick = ticks; /* Reset the tick timer when we take trims */ 1433df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1434ba6c22ceSWarner Losh isc->trim_stats.queued--; 1435ba6c22ceSWarner Losh isc->trim_stats.total++; 1436ba6c22ceSWarner Losh isc->trim_stats.pending++; 1437ba6c22ceSWarner Losh #endif 1438ba6c22ceSWarner Losh return bp; 1439ba6c22ceSWarner Losh } 1440ba6c22ceSWarner Losh 1441ba6c22ceSWarner Losh /* 14420b4060b0SEd Maste * gets an available trim from the trim queue, if there's no trim 1443ba6c22ceSWarner Losh * already pending. It removes this trim from the queue and the device 14440b4060b0SEd Maste * must explicitly reinsert it should the need arise. 1445ba6c22ceSWarner Losh * 1446ba6c22ceSWarner Losh * Assumes we're called with the periph lock held. 1447ba6c22ceSWarner Losh */ 14480028abe6SWarner Losh struct bio * 14490028abe6SWarner Losh cam_iosched_get_trim(struct cam_iosched_softc *isc) 1450ba6c22ceSWarner Losh { 1451c6171b44SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1452c6171b44SWarner Losh struct bio *bp; 1453c6171b44SWarner Losh #endif 1454ba6c22ceSWarner Losh 14550028abe6SWarner Losh if (!cam_iosched_has_more_trim(isc)) 1456ba6c22ceSWarner Losh return NULL; 145762c94a05SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1458c6171b44SWarner Losh bp = bioq_first(&isc->trim_queue); 1459c6171b44SWarner Losh if (bp == NULL) 1460c6171b44SWarner Losh return NULL; 1461c6171b44SWarner Losh 146262c94a05SWarner Losh /* 14631759fd77SWarner Losh * If pending read, prefer that based on current read bias setting. The 14641759fd77SWarner Losh * read bias is shared for both writes and TRIMs, but on TRIMs the bias 14651759fd77SWarner Losh * is for a combined TRIM not a single TRIM request that's come in. 146662c94a05SWarner Losh */ 14671759fd77SWarner Losh if (do_dynamic_iosched) { 146862c94a05SWarner Losh if (bioq_first(&isc->bio_queue) && isc->current_read_bias) { 14691759fd77SWarner Losh if (iosched_debug) 14701759fd77SWarner Losh printf("Reads present and current_read_bias is %d" 14711759fd77SWarner Losh " queued trims %d queued reads %d\n", 14721759fd77SWarner Losh isc->current_read_bias, isc->trim_stats.queued, 14731759fd77SWarner Losh isc->read_stats.queued); 147462c94a05SWarner Losh isc->current_read_bias--; 147562c94a05SWarner Losh /* We're not limiting TRIMS, per se, just doing reads first */ 147662c94a05SWarner Losh return NULL; 147762c94a05SWarner Losh } 147862c94a05SWarner Losh /* 147962c94a05SWarner Losh * We're going to do a trim, so reset the bias. 148062c94a05SWarner Losh */ 148162c94a05SWarner Losh isc->current_read_bias = isc->read_bias; 148262c94a05SWarner Losh } 1483c6171b44SWarner Losh 1484c6171b44SWarner Losh /* 1485c6171b44SWarner Losh * See if our current limiter allows this I/O. Because we only call this 1486c6171b44SWarner Losh * here, and not in next_trim, the 'bandwidth' limits for trims won't 1487c6171b44SWarner Losh * work, while the iops or max queued limits will work. It's tricky 1488c6171b44SWarner Losh * because we want the limits to be from the perspective of the 1489c6171b44SWarner Losh * "commands sent to the device." To make iops work, we need to check 1490c6171b44SWarner Losh * only here (since we want all the ops we combine to count as one). To 1491c6171b44SWarner Losh * make bw limits work, we'd need to check in next_trim, but that would 1492c6171b44SWarner Losh * have the effect of limiting the iops as seen from the upper layers. 1493c6171b44SWarner Losh */ 1494c6171b44SWarner Losh if (cam_iosched_limiter_iop(&isc->trim_stats, bp) != 0) { 1495c6171b44SWarner Losh if (iosched_debug) 1496c6171b44SWarner Losh printf("Can't trim because limiter says no.\n"); 1497c6171b44SWarner Losh isc->trim_stats.state_flags |= IOP_RATE_LIMITED; 1498c6171b44SWarner Losh return NULL; 1499c6171b44SWarner Losh } 1500c6171b44SWarner Losh isc->current_read_bias = isc->read_bias; 1501c6171b44SWarner Losh isc->trim_stats.state_flags &= ~IOP_RATE_LIMITED; 1502c6171b44SWarner Losh /* cam_iosched_next_trim below keeps proper book */ 150362c94a05SWarner Losh #endif 1504ba6c22ceSWarner Losh return cam_iosched_next_trim(isc); 1505ba6c22ceSWarner Losh } 1506ba6c22ceSWarner Losh 1507cc1572ddSWarner Losh 15081599fc90SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1509cc1572ddSWarner Losh static struct bio * 1510cc1572ddSWarner Losh bio_next(struct bio *bp) 1511cc1572ddSWarner Losh { 1512cc1572ddSWarner Losh bp = TAILQ_NEXT(bp, bio_queue); 1513cc1572ddSWarner Losh /* 1514cc1572ddSWarner Losh * After the first commands, the ordered bit terminates 1515cc1572ddSWarner Losh * our search because BIO_ORDERED acts like a barrier. 1516cc1572ddSWarner Losh */ 1517cc1572ddSWarner Losh if (bp == NULL || bp->bio_flags & BIO_ORDERED) 1518cc1572ddSWarner Losh return NULL; 1519cc1572ddSWarner Losh return bp; 1520cc1572ddSWarner Losh } 1521cc1572ddSWarner Losh 1522cc1572ddSWarner Losh static bool 1523cc1572ddSWarner Losh cam_iosched_rate_limited(struct iop_stats *ios) 1524cc1572ddSWarner Losh { 1525cc1572ddSWarner Losh return ios->state_flags & IOP_RATE_LIMITED; 1526cc1572ddSWarner Losh } 1527cc1572ddSWarner Losh #endif 1528cc1572ddSWarner Losh 1529ba6c22ceSWarner Losh /* 1530ba6c22ceSWarner Losh * Determine what the next bit of work to do is for the periph. The 1531ba6c22ceSWarner Losh * default implementation looks to see if we have trims to do, but no 1532ba6c22ceSWarner Losh * trims outstanding. If so, we do that. Otherwise we see if we have 1533ba6c22ceSWarner Losh * other work. If we do, then we do that. Otherwise why were we called? 1534ba6c22ceSWarner Losh */ 1535ba6c22ceSWarner Losh struct bio * 1536ba6c22ceSWarner Losh cam_iosched_next_bio(struct cam_iosched_softc *isc) 1537ba6c22ceSWarner Losh { 1538ba6c22ceSWarner Losh struct bio *bp; 1539ba6c22ceSWarner Losh 1540ba6c22ceSWarner Losh /* 1541ba6c22ceSWarner Losh * See if we have a trim that can be scheduled. We can only send one 15420028abe6SWarner Losh * at a time down, so this takes that into account. 15430028abe6SWarner Losh * 15440028abe6SWarner Losh * XXX newer TRIM commands are queueable. Revisit this when we 15450028abe6SWarner Losh * implement them. 1546ba6c22ceSWarner Losh */ 15470028abe6SWarner Losh if ((bp = cam_iosched_get_trim(isc)) != NULL) 1548ba6c22ceSWarner Losh return bp; 1549ba6c22ceSWarner Losh 1550df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1551ba6c22ceSWarner Losh /* 1552e3d92d4cSWarner Losh * See if we have any pending writes, room in the queue for them, 1553e3d92d4cSWarner Losh * and no pending reads (unless we've scheduled too many). 1554e3d92d4cSWarner Losh * if so, those are next. 1555ba6c22ceSWarner Losh */ 1556035ec48eSWarner Losh if (do_dynamic_iosched) { 15570028abe6SWarner Losh if ((bp = cam_iosched_get_write(isc)) != NULL) 1558ba6c22ceSWarner Losh return bp; 1559ba6c22ceSWarner Losh } 1560ba6c22ceSWarner Losh #endif 1561ba6c22ceSWarner Losh /* 1562ba6c22ceSWarner Losh * next, see if there's other, normal I/O waiting. If so return that. 1563ba6c22ceSWarner Losh */ 1564df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1565035ec48eSWarner Losh if (do_dynamic_iosched) { 1566cc1572ddSWarner Losh for (bp = bioq_first(&isc->bio_queue); bp != NULL; 1567cc1572ddSWarner Losh bp = bio_next(bp)) { 1568cc1572ddSWarner Losh /* 1569cc1572ddSWarner Losh * For the dynamic scheduler with a read bias, bio_queue 1570cc1572ddSWarner Losh * is only for reads. However, without one, all 1571cc1572ddSWarner Losh * operations are queued. Enforce limits here for any 1572cc1572ddSWarner Losh * operation we find here. 1573cc1572ddSWarner Losh */ 1574cc1572ddSWarner Losh if (bp->bio_cmd == BIO_READ) { 1575cc1572ddSWarner Losh if (cam_iosched_rate_limited(&isc->read_stats) || 1576cf3ec151SWarner Losh cam_iosched_limiter_iop(&isc->read_stats, bp) != 0) { 1577cf3ec151SWarner Losh isc->read_stats.state_flags |= IOP_RATE_LIMITED; 1578cc1572ddSWarner Losh continue; 1579cf3ec151SWarner Losh } 1580cf3ec151SWarner Losh isc->read_stats.state_flags &= ~IOP_RATE_LIMITED; 1581cc1572ddSWarner Losh } 1582cc1572ddSWarner Losh /* 1583cc1572ddSWarner Losh * There can only be write requests on the queue when 1584cc1572ddSWarner Losh * the read bias is 0, but we need to process them 1585cc1572ddSWarner Losh * here. We do not assert for read bias == 0, however, 1586cc1572ddSWarner Losh * since it is dynamic and we can have WRITE operations 1587cc1572ddSWarner Losh * in the queue after we transition from 0 to non-zero. 1588cc1572ddSWarner Losh */ 1589cc1572ddSWarner Losh if (bp->bio_cmd == BIO_WRITE) { 1590cc1572ddSWarner Losh if (cam_iosched_rate_limited(&isc->write_stats) || 1591cc1572ddSWarner Losh cam_iosched_limiter_iop(&isc->write_stats, bp) != 0) { 1592cc1572ddSWarner Losh isc->write_stats.state_flags |= IOP_RATE_LIMITED; 1593cc1572ddSWarner Losh continue; 1594cc1572ddSWarner Losh } 1595cc1572ddSWarner Losh isc->write_stats.state_flags &= ~IOP_RATE_LIMITED; 1596cc1572ddSWarner Losh } 1597cc1572ddSWarner Losh /* 1598cc1572ddSWarner Losh * here we know we have a bp that's != NULL, that's not rate limited 1599cc1572ddSWarner Losh * and can be the next I/O. 1600cc1572ddSWarner Losh */ 1601cc1572ddSWarner Losh break; 1602cc1572ddSWarner Losh } 1603cc1572ddSWarner Losh } else 1604ba6c22ceSWarner Losh #endif 1605cc1572ddSWarner Losh bp = bioq_first(&isc->bio_queue); 1606cc1572ddSWarner Losh 1607cc1572ddSWarner Losh if (bp == NULL) 1608cc1572ddSWarner Losh return (NULL); 1609ba6c22ceSWarner Losh bioq_remove(&isc->bio_queue, bp); 1610df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1611035ec48eSWarner Losh if (do_dynamic_iosched) { 1612ba6c22ceSWarner Losh if (bp->bio_cmd == BIO_READ) { 1613ba6c22ceSWarner Losh isc->read_stats.queued--; 1614ba6c22ceSWarner Losh isc->read_stats.total++; 1615ba6c22ceSWarner Losh isc->read_stats.pending++; 1616cc1572ddSWarner Losh } else if (bp->bio_cmd == BIO_WRITE) { 1617cc1572ddSWarner Losh isc->write_stats.queued--; 1618cc1572ddSWarner Losh isc->write_stats.total++; 1619cc1572ddSWarner Losh isc->write_stats.pending++; 1620*a85fea31SWarner Losh } 1621ba6c22ceSWarner Losh } 1622ba6c22ceSWarner Losh if (iosched_debug > 9) 1623ba6c22ceSWarner Losh printf("HWQ : %p %#x\n", bp, bp->bio_cmd); 1624ba6c22ceSWarner Losh #endif 1625ba6c22ceSWarner Losh return bp; 1626ba6c22ceSWarner Losh } 1627ba6c22ceSWarner Losh 1628ba6c22ceSWarner Losh /* 1629ba6c22ceSWarner Losh * Driver has been given some work to do by the block layer. Tell the 1630ba6c22ceSWarner Losh * scheduler about it and have it queue the work up. The scheduler module 1631ba6c22ceSWarner Losh * will then return the currently most useful bit of work later, possibly 1632ba6c22ceSWarner Losh * deferring work for various reasons. 1633ba6c22ceSWarner Losh */ 1634ba6c22ceSWarner Losh void 1635ba6c22ceSWarner Losh cam_iosched_queue_work(struct cam_iosched_softc *isc, struct bio *bp) 1636ba6c22ceSWarner Losh { 1637ba6c22ceSWarner Losh 1638ba6c22ceSWarner Losh /* 16390d83f8dcSWarner Losh * A BIO_SPEEDUP from the uppper layers means that they have a block 16400d83f8dcSWarner Losh * shortage. At the present, this is only sent when we're trying to 16410d83f8dcSWarner Losh * allocate blocks, but have a shortage before giving up. bio_length is 16420d83f8dcSWarner Losh * the size of their shortage. We will complete just enough BIO_DELETEs 16430d83f8dcSWarner Losh * in the queue to satisfy the need. If bio_length is 0, we'll complete 16440d83f8dcSWarner Losh * them all. This allows the scheduler to delay BIO_DELETEs to improve 16450d83f8dcSWarner Losh * read/write performance without worrying about the upper layers. When 16460d83f8dcSWarner Losh * it's possibly a problem, we respond by pretending the BIO_DELETEs 16470d83f8dcSWarner Losh * just worked. We can't do anything about the BIO_DELETEs in the 16480d83f8dcSWarner Losh * hardware, though. We have to wait for them to complete. 16490d83f8dcSWarner Losh */ 16500d83f8dcSWarner Losh if (bp->bio_cmd == BIO_SPEEDUP) { 16510d83f8dcSWarner Losh off_t len; 16520d83f8dcSWarner Losh struct bio *nbp; 16530d83f8dcSWarner Losh 16540d83f8dcSWarner Losh len = 0; 16550d83f8dcSWarner Losh while (bioq_first(&isc->trim_queue) && 16560d83f8dcSWarner Losh (bp->bio_length == 0 || len < bp->bio_length)) { 16570d83f8dcSWarner Losh nbp = bioq_takefirst(&isc->trim_queue); 16580d83f8dcSWarner Losh len += nbp->bio_length; 16590d83f8dcSWarner Losh nbp->bio_error = 0; 16600d83f8dcSWarner Losh biodone(nbp); 16610d83f8dcSWarner Losh } 16620d83f8dcSWarner Losh if (bp->bio_length > 0) { 16630d83f8dcSWarner Losh if (bp->bio_length > len) 16640d83f8dcSWarner Losh bp->bio_resid = bp->bio_length - len; 16650d83f8dcSWarner Losh else 16660d83f8dcSWarner Losh bp->bio_resid = 0; 16670d83f8dcSWarner Losh } 16680d83f8dcSWarner Losh bp->bio_error = 0; 16690d83f8dcSWarner Losh biodone(bp); 16700d83f8dcSWarner Losh return; 16710d83f8dcSWarner Losh } 16720d83f8dcSWarner Losh 16730d83f8dcSWarner Losh /* 1674d900ade5SWarner Losh * If we get a BIO_FLUSH, and we're doing delayed BIO_DELETEs then we 1675d900ade5SWarner Losh * set the last tick time to one less than the current ticks minus the 1676d900ade5SWarner Losh * delay to force the BIO_DELETEs to be presented to the client driver. 1677d900ade5SWarner Losh */ 1678d900ade5SWarner Losh if (bp->bio_cmd == BIO_FLUSH && isc->trim_ticks > 0) 1679d900ade5SWarner Losh isc->last_trim_tick = ticks - isc->trim_ticks - 1; 1680d900ade5SWarner Losh 1681d900ade5SWarner Losh /* 1682d900ade5SWarner Losh * Put all trims on the trim queue. Otherwise put the work on the bio 1683d900ade5SWarner Losh * queue. 1684ba6c22ceSWarner Losh */ 1685ba6c22ceSWarner Losh if (bp->bio_cmd == BIO_DELETE) { 168697f8aa05SWarner Losh bioq_insert_tail(&isc->trim_queue, bp); 1687d900ade5SWarner Losh if (isc->queued_trims == 0) 1688d900ade5SWarner Losh isc->last_trim_tick = ticks; 1689d900ade5SWarner Losh isc->queued_trims++; 1690df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1691ba6c22ceSWarner Losh isc->trim_stats.in++; 1692ba6c22ceSWarner Losh isc->trim_stats.queued++; 1693ba6c22ceSWarner Losh #endif 1694ba6c22ceSWarner Losh } 1695df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1696cc1572ddSWarner Losh else if (do_dynamic_iosched && isc->read_bias != 0 && 1697cc1572ddSWarner Losh (bp->bio_cmd != BIO_READ)) { 1698ba6c22ceSWarner Losh if (cam_iosched_sort_queue(isc)) 1699ba6c22ceSWarner Losh bioq_disksort(&isc->write_queue, bp); 1700ba6c22ceSWarner Losh else 1701ba6c22ceSWarner Losh bioq_insert_tail(&isc->write_queue, bp); 1702ba6c22ceSWarner Losh if (iosched_debug > 9) 1703ba6c22ceSWarner Losh printf("Qw : %p %#x\n", bp, bp->bio_cmd); 1704ba6c22ceSWarner Losh if (bp->bio_cmd == BIO_WRITE) { 1705ba6c22ceSWarner Losh isc->write_stats.in++; 1706ba6c22ceSWarner Losh isc->write_stats.queued++; 1707ba6c22ceSWarner Losh } 1708ba6c22ceSWarner Losh } 1709ba6c22ceSWarner Losh #endif 1710ba6c22ceSWarner Losh else { 1711ba6c22ceSWarner Losh if (cam_iosched_sort_queue(isc)) 1712ba6c22ceSWarner Losh bioq_disksort(&isc->bio_queue, bp); 1713ba6c22ceSWarner Losh else 1714ba6c22ceSWarner Losh bioq_insert_tail(&isc->bio_queue, bp); 1715df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1716ba6c22ceSWarner Losh if (iosched_debug > 9) 1717ba6c22ceSWarner Losh printf("Qr : %p %#x\n", bp, bp->bio_cmd); 1718ba6c22ceSWarner Losh if (bp->bio_cmd == BIO_READ) { 1719ba6c22ceSWarner Losh isc->read_stats.in++; 1720ba6c22ceSWarner Losh isc->read_stats.queued++; 1721ba6c22ceSWarner Losh } else if (bp->bio_cmd == BIO_WRITE) { 1722ba6c22ceSWarner Losh isc->write_stats.in++; 1723ba6c22ceSWarner Losh isc->write_stats.queued++; 1724ba6c22ceSWarner Losh } 1725ba6c22ceSWarner Losh #endif 1726ba6c22ceSWarner Losh } 1727ba6c22ceSWarner Losh } 1728ba6c22ceSWarner Losh 1729ba6c22ceSWarner Losh /* 1730ba6c22ceSWarner Losh * If we have work, get it scheduled. Called with the periph lock held. 1731ba6c22ceSWarner Losh */ 1732ba6c22ceSWarner Losh void 1733ba6c22ceSWarner Losh cam_iosched_schedule(struct cam_iosched_softc *isc, struct cam_periph *periph) 1734ba6c22ceSWarner Losh { 1735ba6c22ceSWarner Losh 1736ba6c22ceSWarner Losh if (cam_iosched_has_work(isc)) 1737ba6c22ceSWarner Losh xpt_schedule(periph, CAM_PRIORITY_NORMAL); 1738ba6c22ceSWarner Losh } 1739ba6c22ceSWarner Losh 1740ba6c22ceSWarner Losh /* 174155c770b4SWarner Losh * Complete a trim request. Mark that we no longer have one in flight. 1742ba6c22ceSWarner Losh */ 1743ba6c22ceSWarner Losh void 1744ba6c22ceSWarner Losh cam_iosched_trim_done(struct cam_iosched_softc *isc) 1745ba6c22ceSWarner Losh { 1746ba6c22ceSWarner Losh 1747ece56614SWarner Losh isc->flags &= ~CAM_IOSCHED_FLAG_TRIM_ACTIVE; 1748ba6c22ceSWarner Losh } 1749ba6c22ceSWarner Losh 1750ba6c22ceSWarner Losh /* 1751ba6c22ceSWarner Losh * Complete a bio. Called before we release the ccb with xpt_release_ccb so we 1752ba6c22ceSWarner Losh * might use notes in the ccb for statistics. 1753ba6c22ceSWarner Losh */ 1754ba6c22ceSWarner Losh int 1755ba6c22ceSWarner Losh cam_iosched_bio_complete(struct cam_iosched_softc *isc, struct bio *bp, 1756ba6c22ceSWarner Losh union ccb *done_ccb) 1757ba6c22ceSWarner Losh { 1758ba6c22ceSWarner Losh int retval = 0; 1759df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1760035ec48eSWarner Losh if (!do_dynamic_iosched) 1761ba6c22ceSWarner Losh return retval; 1762ba6c22ceSWarner Losh 1763ba6c22ceSWarner Losh if (iosched_debug > 10) 1764ba6c22ceSWarner Losh printf("done: %p %#x\n", bp, bp->bio_cmd); 1765ba6c22ceSWarner Losh if (bp->bio_cmd == BIO_WRITE) { 1766ba6c22ceSWarner Losh retval = cam_iosched_limiter_iodone(&isc->write_stats, bp); 1767157cb465SWarner Losh if ((bp->bio_flags & BIO_ERROR) != 0) 1768c4b72d8bSWarner Losh isc->write_stats.errs++; 1769ba6c22ceSWarner Losh isc->write_stats.out++; 1770ba6c22ceSWarner Losh isc->write_stats.pending--; 1771ba6c22ceSWarner Losh } else if (bp->bio_cmd == BIO_READ) { 1772ba6c22ceSWarner Losh retval = cam_iosched_limiter_iodone(&isc->read_stats, bp); 1773157cb465SWarner Losh if ((bp->bio_flags & BIO_ERROR) != 0) 1774c4b72d8bSWarner Losh isc->read_stats.errs++; 1775ba6c22ceSWarner Losh isc->read_stats.out++; 1776ba6c22ceSWarner Losh isc->read_stats.pending--; 1777ba6c22ceSWarner Losh } else if (bp->bio_cmd == BIO_DELETE) { 1778157cb465SWarner Losh if ((bp->bio_flags & BIO_ERROR) != 0) 1779c4b72d8bSWarner Losh isc->trim_stats.errs++; 1780ba6c22ceSWarner Losh isc->trim_stats.out++; 1781ba6c22ceSWarner Losh isc->trim_stats.pending--; 1782ba6c22ceSWarner Losh } else if (bp->bio_cmd != BIO_FLUSH) { 1783ba6c22ceSWarner Losh if (iosched_debug) 1784ba6c22ceSWarner Losh printf("Completing command with bio_cmd == %#x\n", bp->bio_cmd); 1785ba6c22ceSWarner Losh } 1786ba6c22ceSWarner Losh 17874afa62beSWarner Losh if ((bp->bio_flags & BIO_ERROR) == 0 && done_ccb != NULL && 17884afa62beSWarner Losh (done_ccb->ccb_h.status & CAM_QOS_VALID) != 0) { 1789e5436ab5SWarner Losh sbintime_t sim_latency; 1790e5436ab5SWarner Losh 1791e5436ab5SWarner Losh sim_latency = cam_iosched_sbintime_t(done_ccb->ccb_h.qos.periph_data); 1792e5436ab5SWarner Losh 1793e5436ab5SWarner Losh cam_iosched_io_metric_update(isc, sim_latency, 1794ba6c22ceSWarner Losh bp->bio_cmd, bp->bio_bcount); 1795e5436ab5SWarner Losh /* 1796e5436ab5SWarner Losh * Debugging code: allow callbacks to the periph driver when latency max 1797e5436ab5SWarner Losh * is exceeded. This can be useful for triggering external debugging actions. 1798e5436ab5SWarner Losh */ 1799e5436ab5SWarner Losh if (isc->latfcn && isc->max_lat != 0 && sim_latency > isc->max_lat) 1800e5436ab5SWarner Losh isc->latfcn(isc->latarg, sim_latency, bp); 1801e5436ab5SWarner Losh } 1802e5436ab5SWarner Losh 1803ba6c22ceSWarner Losh #endif 1804ba6c22ceSWarner Losh return retval; 1805ba6c22ceSWarner Losh } 1806ba6c22ceSWarner Losh 1807ba6c22ceSWarner Losh /* 1808ba6c22ceSWarner Losh * Tell the io scheduler that you've pushed a trim down into the sim. 180955c770b4SWarner Losh * This also tells the I/O scheduler not to push any more trims down, so 181055c770b4SWarner Losh * some periphs do not call it if they can cope with multiple trims in flight. 1811ba6c22ceSWarner Losh */ 1812ba6c22ceSWarner Losh void 1813ba6c22ceSWarner Losh cam_iosched_submit_trim(struct cam_iosched_softc *isc) 1814ba6c22ceSWarner Losh { 1815ba6c22ceSWarner Losh 1816ece56614SWarner Losh isc->flags |= CAM_IOSCHED_FLAG_TRIM_ACTIVE; 1817ba6c22ceSWarner Losh } 1818ba6c22ceSWarner Losh 1819ba6c22ceSWarner Losh /* 1820ba6c22ceSWarner Losh * Change the sorting policy hint for I/O transactions for this device. 1821ba6c22ceSWarner Losh */ 1822ba6c22ceSWarner Losh void 1823ba6c22ceSWarner Losh cam_iosched_set_sort_queue(struct cam_iosched_softc *isc, int val) 1824ba6c22ceSWarner Losh { 1825ba6c22ceSWarner Losh 1826ba6c22ceSWarner Losh isc->sort_io_queue = val; 1827ba6c22ceSWarner Losh } 1828ba6c22ceSWarner Losh 1829ba6c22ceSWarner Losh int 1830ba6c22ceSWarner Losh cam_iosched_has_work_flags(struct cam_iosched_softc *isc, uint32_t flags) 1831ba6c22ceSWarner Losh { 1832ba6c22ceSWarner Losh return isc->flags & flags; 1833ba6c22ceSWarner Losh } 1834ba6c22ceSWarner Losh 1835ba6c22ceSWarner Losh void 1836ba6c22ceSWarner Losh cam_iosched_set_work_flags(struct cam_iosched_softc *isc, uint32_t flags) 1837ba6c22ceSWarner Losh { 1838ba6c22ceSWarner Losh isc->flags |= flags; 1839ba6c22ceSWarner Losh } 1840ba6c22ceSWarner Losh 1841ba6c22ceSWarner Losh void 1842ba6c22ceSWarner Losh cam_iosched_clr_work_flags(struct cam_iosched_softc *isc, uint32_t flags) 1843ba6c22ceSWarner Losh { 1844ba6c22ceSWarner Losh isc->flags &= ~flags; 1845ba6c22ceSWarner Losh } 1846ba6c22ceSWarner Losh 1847df236247SWarner Losh #ifdef CAM_IOSCHED_DYNAMIC 1848ba6c22ceSWarner Losh /* 1849ba6c22ceSWarner Losh * After the method presented in Jack Crenshaw's 1998 article "Integer 18500b4060b0SEd Maste * Square Roots," reprinted at 1851ba6c22ceSWarner Losh * http://www.embedded.com/electronics-blogs/programmer-s-toolbox/4219659/Integer-Square-Roots 1852ba6c22ceSWarner Losh * and well worth the read. Briefly, we find the power of 4 that's the 1853ba6c22ceSWarner Losh * largest smaller than val. We then check each smaller power of 4 to 1854ba6c22ceSWarner Losh * see if val is still bigger. The right shifts at each step divide 1855ba6c22ceSWarner Losh * the result by 2 which after successive application winds up 1856ba6c22ceSWarner Losh * accumulating the right answer. It could also have been accumulated 1857ba6c22ceSWarner Losh * using a separate root counter, but this code is smaller and faster 1858ba6c22ceSWarner Losh * than that method. This method is also integer size invariant. 18590b4060b0SEd Maste * It returns floor(sqrt((float)val)), or the largest integer less than 1860ba6c22ceSWarner Losh * or equal to the square root. 1861ba6c22ceSWarner Losh */ 1862ba6c22ceSWarner Losh static uint64_t 1863ba6c22ceSWarner Losh isqrt64(uint64_t val) 1864ba6c22ceSWarner Losh { 1865ba6c22ceSWarner Losh uint64_t res = 0; 1866ba6c22ceSWarner Losh uint64_t bit = 1ULL << (sizeof(uint64_t) * NBBY - 2); 1867ba6c22ceSWarner Losh 1868ba6c22ceSWarner Losh /* 1869ba6c22ceSWarner Losh * Find the largest power of 4 smaller than val. 1870ba6c22ceSWarner Losh */ 1871ba6c22ceSWarner Losh while (bit > val) 1872ba6c22ceSWarner Losh bit >>= 2; 1873ba6c22ceSWarner Losh 1874ba6c22ceSWarner Losh /* 1875ba6c22ceSWarner Losh * Accumulate the answer, one bit at a time (we keep moving 1876ba6c22ceSWarner Losh * them over since 2 is the square root of 4 and we test 1877ba6c22ceSWarner Losh * powers of 4). We accumulate where we find the bit, but 1878ba6c22ceSWarner Losh * the successive shifts land the bit in the right place 1879ba6c22ceSWarner Losh * by the end. 1880ba6c22ceSWarner Losh */ 1881ba6c22ceSWarner Losh while (bit != 0) { 1882ba6c22ceSWarner Losh if (val >= res + bit) { 1883ba6c22ceSWarner Losh val -= res + bit; 1884ba6c22ceSWarner Losh res = (res >> 1) + bit; 1885ba6c22ceSWarner Losh } else 1886ba6c22ceSWarner Losh res >>= 1; 1887ba6c22ceSWarner Losh bit >>= 2; 1888ba6c22ceSWarner Losh } 1889ba6c22ceSWarner Losh 1890ba6c22ceSWarner Losh return res; 1891ba6c22ceSWarner Losh } 1892ba6c22ceSWarner Losh 189308fc2f23SWarner Losh static sbintime_t latencies[LAT_BUCKETS - 1] = { 189422832069SWarner Losh BUCKET_BASE << 0, /* 20us */ 189522832069SWarner Losh BUCKET_BASE << 1, 189622832069SWarner Losh BUCKET_BASE << 2, 189722832069SWarner Losh BUCKET_BASE << 3, 189822832069SWarner Losh BUCKET_BASE << 4, 189922832069SWarner Losh BUCKET_BASE << 5, 190022832069SWarner Losh BUCKET_BASE << 6, 190122832069SWarner Losh BUCKET_BASE << 7, 190222832069SWarner Losh BUCKET_BASE << 8, 190322832069SWarner Losh BUCKET_BASE << 9, 190422832069SWarner Losh BUCKET_BASE << 10, 190522832069SWarner Losh BUCKET_BASE << 11, 190622832069SWarner Losh BUCKET_BASE << 12, 190722832069SWarner Losh BUCKET_BASE << 13, 190822832069SWarner Losh BUCKET_BASE << 14, 190922832069SWarner Losh BUCKET_BASE << 15, 191022832069SWarner Losh BUCKET_BASE << 16, 191122832069SWarner Losh BUCKET_BASE << 17, 191222832069SWarner Losh BUCKET_BASE << 18 /* 5,242,880us */ 1913cf3ec151SWarner Losh }; 1914cf3ec151SWarner Losh 1915ba6c22ceSWarner Losh static void 1916ba6c22ceSWarner Losh cam_iosched_update(struct iop_stats *iop, sbintime_t sim_latency) 1917ba6c22ceSWarner Losh { 191879d80af2SWarner Losh sbintime_t y, deltasq, delta; 1919cf3ec151SWarner Losh int i; 1920cf3ec151SWarner Losh 1921cf3ec151SWarner Losh /* 1922cf3ec151SWarner Losh * Keep counts for latency. We do it by power of two buckets. 1923cf3ec151SWarner Losh * This helps us spot outlier behavior obscured by averages. 1924cf3ec151SWarner Losh */ 1925cf3ec151SWarner Losh for (i = 0; i < LAT_BUCKETS - 1; i++) { 1926cf3ec151SWarner Losh if (sim_latency < latencies[i]) { 1927cf3ec151SWarner Losh iop->latencies[i]++; 1928cf3ec151SWarner Losh break; 1929cf3ec151SWarner Losh } 1930cf3ec151SWarner Losh } 1931cf3ec151SWarner Losh if (i == LAT_BUCKETS - 1) 1932c048ac62SWarner Losh iop->latencies[i]++; /* Put all > 8192ms values into the last bucket. */ 1933ba6c22ceSWarner Losh 1934ba6c22ceSWarner Losh /* 19350b4060b0SEd Maste * Classic exponentially decaying average with a tiny alpha 1936ba6c22ceSWarner Losh * (2 ^ -alpha_bits). For more info see the NIST statistical 1937ba6c22ceSWarner Losh * handbook. 1938ba6c22ceSWarner Losh * 193979d80af2SWarner Losh * ema_t = y_t * alpha + ema_t-1 * (1 - alpha) [nist] 194079d80af2SWarner Losh * ema_t = y_t * alpha + ema_t-1 - alpha * ema_t-1 194179d80af2SWarner Losh * ema_t = alpha * y_t - alpha * ema_t-1 + ema_t-1 1942ba6c22ceSWarner Losh * alpha = 1 / (1 << alpha_bits) 194379d80af2SWarner Losh * sub e == ema_t-1, b == 1/alpha (== 1 << alpha_bits), d == y_t - ema_t-1 194479d80af2SWarner Losh * = y_t/b - e/b + be/b 194579d80af2SWarner Losh * = (y_t - e + be) / b 194679d80af2SWarner Losh * = (e + d) / b 1947ba6c22ceSWarner Losh * 1948ba6c22ceSWarner Losh * Since alpha is a power of two, we can compute this w/o any mult or 1949ba6c22ceSWarner Losh * division. 195079d80af2SWarner Losh * 195179d80af2SWarner Losh * Variance can also be computed. Usually, it would be expressed as follows: 195279d80af2SWarner Losh * diff_t = y_t - ema_t-1 195379d80af2SWarner Losh * emvar_t = (1 - alpha) * (emavar_t-1 + diff_t^2 * alpha) 195479d80af2SWarner Losh * = emavar_t-1 - alpha * emavar_t-1 + delta_t^2 * alpha - (delta_t * alpha)^2 195579d80af2SWarner Losh * sub b == 1/alpha (== 1 << alpha_bits), e == emavar_t-1, d = delta_t^2 195679d80af2SWarner Losh * = e - e/b + dd/b + dd/bb 195779d80af2SWarner Losh * = (bbe - be + bdd + dd) / bb 195879d80af2SWarner Losh * = (bbe + b(dd-e) + dd) / bb (which is expanded below bb = 1<<(2*alpha_bits)) 195979d80af2SWarner Losh */ 196079d80af2SWarner Losh /* 196179d80af2SWarner Losh * XXX possible numeric issues 196279d80af2SWarner Losh * o We assume right shifted integers do the right thing, since that's 196379d80af2SWarner Losh * implementation defined. You can change the right shifts to / (1LL << alpha). 196479d80af2SWarner Losh * o alpha_bits = 9 gives ema ceiling of 23 bits of seconds for ema and 14 bits 196579d80af2SWarner Losh * for emvar. This puts a ceiling of 13 bits on alpha since we need a 196679d80af2SWarner Losh * few tens of seconds of representation. 196779d80af2SWarner Losh * o We mitigate alpha issues by never setting it too high. 1968ba6c22ceSWarner Losh */ 1969ba6c22ceSWarner Losh y = sim_latency; 197079d80af2SWarner Losh delta = (y - iop->ema); /* d */ 197179d80af2SWarner Losh iop->ema = ((iop->ema << alpha_bits) + delta) >> alpha_bits; 1972ba6c22ceSWarner Losh 1973ba6c22ceSWarner Losh /* 197479d80af2SWarner Losh * Were we to naively plow ahead at this point, we wind up with many numerical 197579d80af2SWarner Losh * issues making any SD > ~3ms unreliable. So, we shift right by 12. This leaves 197679d80af2SWarner Losh * us with microsecond level precision in the input, so the same in the 197779d80af2SWarner Losh * output. It means we can't overflow deltasq unless delta > 4k seconds. It 197879d80af2SWarner Losh * also means that emvar can be up 46 bits 40 of which are fraction, which 197979d80af2SWarner Losh * gives us a way to measure up to ~8s in the SD before the computation goes 198079d80af2SWarner Losh * unstable. Even the worst hard disk rarely has > 1s service time in the 198179d80af2SWarner Losh * drive. It does mean we have to shift left 12 bits after taking the 198279d80af2SWarner Losh * square root to compute the actual standard deviation estimate. This loss of 198379d80af2SWarner Losh * precision is preferable to needing int128 types to work. The above numbers 198479d80af2SWarner Losh * assume alpha=9. 10 or 11 are ok, but we start to run into issues at 12, 198579d80af2SWarner Losh * so 12 or 13 is OK for EMA, EMVAR and SD will be wrong in those cases. 1986ba6c22ceSWarner Losh */ 198779d80af2SWarner Losh delta >>= 12; 198879d80af2SWarner Losh deltasq = delta * delta; /* dd */ 198979d80af2SWarner Losh iop->emvar = ((iop->emvar << (2 * alpha_bits)) + /* bbe */ 199079d80af2SWarner Losh ((deltasq - iop->emvar) << alpha_bits) + /* b(dd-e) */ 199179d80af2SWarner Losh deltasq) /* dd */ 199279d80af2SWarner Losh >> (2 * alpha_bits); /* div bb */ 199379d80af2SWarner Losh iop->sd = (sbintime_t)isqrt64((uint64_t)iop->emvar) << 12; 1994ba6c22ceSWarner Losh } 1995ba6c22ceSWarner Losh 1996ba6c22ceSWarner Losh static void 1997ba6c22ceSWarner Losh cam_iosched_io_metric_update(struct cam_iosched_softc *isc, 1998ba6c22ceSWarner Losh sbintime_t sim_latency, int cmd, size_t size) 1999ba6c22ceSWarner Losh { 2000ba6c22ceSWarner Losh /* xxx Do we need to scale based on the size of the I/O ? */ 2001ba6c22ceSWarner Losh switch (cmd) { 2002ba6c22ceSWarner Losh case BIO_READ: 2003ba6c22ceSWarner Losh cam_iosched_update(&isc->read_stats, sim_latency); 2004ba6c22ceSWarner Losh break; 2005ba6c22ceSWarner Losh case BIO_WRITE: 2006ba6c22ceSWarner Losh cam_iosched_update(&isc->write_stats, sim_latency); 2007ba6c22ceSWarner Losh break; 2008ba6c22ceSWarner Losh case BIO_DELETE: 2009ba6c22ceSWarner Losh cam_iosched_update(&isc->trim_stats, sim_latency); 2010ba6c22ceSWarner Losh break; 2011ba6c22ceSWarner Losh default: 2012ba6c22ceSWarner Losh break; 2013ba6c22ceSWarner Losh } 2014ba6c22ceSWarner Losh } 2015ba6c22ceSWarner Losh 2016ba6c22ceSWarner Losh #ifdef DDB 2017ba6c22ceSWarner Losh static int biolen(struct bio_queue_head *bq) 2018ba6c22ceSWarner Losh { 2019ba6c22ceSWarner Losh int i = 0; 2020ba6c22ceSWarner Losh struct bio *bp; 2021ba6c22ceSWarner Losh 2022ba6c22ceSWarner Losh TAILQ_FOREACH(bp, &bq->queue, bio_queue) { 2023ba6c22ceSWarner Losh i++; 2024ba6c22ceSWarner Losh } 2025ba6c22ceSWarner Losh return i; 2026ba6c22ceSWarner Losh } 2027ba6c22ceSWarner Losh 2028ba6c22ceSWarner Losh /* 2029ba6c22ceSWarner Losh * Show the internal state of the I/O scheduler. 2030ba6c22ceSWarner Losh */ 2031ba6c22ceSWarner Losh DB_SHOW_COMMAND(iosched, cam_iosched_db_show) 2032ba6c22ceSWarner Losh { 2033ba6c22ceSWarner Losh struct cam_iosched_softc *isc; 2034ba6c22ceSWarner Losh 2035ba6c22ceSWarner Losh if (!have_addr) { 2036ba6c22ceSWarner Losh db_printf("Need addr\n"); 2037ba6c22ceSWarner Losh return; 2038ba6c22ceSWarner Losh } 2039ba6c22ceSWarner Losh isc = (struct cam_iosched_softc *)addr; 2040ba6c22ceSWarner Losh db_printf("pending_reads: %d\n", isc->read_stats.pending); 2041ba6c22ceSWarner Losh db_printf("min_reads: %d\n", isc->read_stats.min); 2042ba6c22ceSWarner Losh db_printf("max_reads: %d\n", isc->read_stats.max); 2043ba6c22ceSWarner Losh db_printf("reads: %d\n", isc->read_stats.total); 2044ba6c22ceSWarner Losh db_printf("in_reads: %d\n", isc->read_stats.in); 2045ba6c22ceSWarner Losh db_printf("out_reads: %d\n", isc->read_stats.out); 2046ba6c22ceSWarner Losh db_printf("queued_reads: %d\n", isc->read_stats.queued); 20473aba1d47SWarner Losh db_printf("Read Q len %d\n", biolen(&isc->bio_queue)); 2048ba6c22ceSWarner Losh db_printf("pending_writes: %d\n", isc->write_stats.pending); 2049ba6c22ceSWarner Losh db_printf("min_writes: %d\n", isc->write_stats.min); 2050ba6c22ceSWarner Losh db_printf("max_writes: %d\n", isc->write_stats.max); 2051ba6c22ceSWarner Losh db_printf("writes: %d\n", isc->write_stats.total); 2052ba6c22ceSWarner Losh db_printf("in_writes: %d\n", isc->write_stats.in); 2053ba6c22ceSWarner Losh db_printf("out_writes: %d\n", isc->write_stats.out); 2054ba6c22ceSWarner Losh db_printf("queued_writes: %d\n", isc->write_stats.queued); 20553aba1d47SWarner Losh db_printf("Write Q len %d\n", biolen(&isc->write_queue)); 2056ba6c22ceSWarner Losh db_printf("pending_trims: %d\n", isc->trim_stats.pending); 2057ba6c22ceSWarner Losh db_printf("min_trims: %d\n", isc->trim_stats.min); 2058ba6c22ceSWarner Losh db_printf("max_trims: %d\n", isc->trim_stats.max); 2059ba6c22ceSWarner Losh db_printf("trims: %d\n", isc->trim_stats.total); 2060ba6c22ceSWarner Losh db_printf("in_trims: %d\n", isc->trim_stats.in); 2061ba6c22ceSWarner Losh db_printf("out_trims: %d\n", isc->trim_stats.out); 2062ba6c22ceSWarner Losh db_printf("queued_trims: %d\n", isc->trim_stats.queued); 20633aba1d47SWarner Losh db_printf("Trim Q len %d\n", biolen(&isc->trim_queue)); 2064ba6c22ceSWarner Losh db_printf("read_bias: %d\n", isc->read_bias); 2065ba6c22ceSWarner Losh db_printf("current_read_bias: %d\n", isc->current_read_bias); 2066ece56614SWarner Losh db_printf("Trim active? %s\n", 2067ece56614SWarner Losh (isc->flags & CAM_IOSCHED_FLAG_TRIM_ACTIVE) ? "yes" : "no"); 2068ba6c22ceSWarner Losh } 2069ba6c22ceSWarner Losh #endif 2070ba6c22ceSWarner Losh #endif 2071