rjw | 1f88458 | 2022-01-06 17:20:42 +0800 | [diff] [blame^] | 1 | /* |
| 2 | * Copyright (c) 2009, Microsoft Corporation. |
| 3 | * |
| 4 | * This program is free software; you can redistribute it and/or modify it |
| 5 | * under the terms and conditions of the GNU General Public License, |
| 6 | * version 2, as published by the Free Software Foundation. |
| 7 | * |
| 8 | * This program is distributed in the hope it will be useful, but WITHOUT |
| 9 | * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
| 10 | * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for |
| 11 | * more details. |
| 12 | * |
| 13 | * You should have received a copy of the GNU General Public License along with |
| 14 | * this program; if not, write to the Free Software Foundation, Inc., 59 Temple |
| 15 | * Place - Suite 330, Boston, MA 02111-1307 USA. |
| 16 | * |
| 17 | * Authors: |
| 18 | * Haiyang Zhang <haiyangz@microsoft.com> |
| 19 | * Hank Janssen <hjanssen@microsoft.com> |
| 20 | * |
| 21 | */ |
| 22 | #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt |
| 23 | |
| 24 | #include <linux/kernel.h> |
| 25 | #include <linux/mm.h> |
| 26 | #include <linux/slab.h> |
| 27 | #include <linux/vmalloc.h> |
| 28 | #include <linux/hyperv.h> |
| 29 | #include <linux/version.h> |
| 30 | #include <linux/interrupt.h> |
| 31 | #include <linux/clockchips.h> |
| 32 | #include <asm/hyperv.h> |
| 33 | #include <asm/mshyperv.h> |
| 34 | #include "hyperv_vmbus.h" |
| 35 | |
| 36 | /* The one and only */ |
| 37 | struct hv_context hv_context = { |
| 38 | .synic_initialized = false, |
| 39 | }; |
| 40 | |
| 41 | #define HV_TIMER_FREQUENCY (10 * 1000 * 1000) /* 100ns period */ |
| 42 | #define HV_MAX_MAX_DELTA_TICKS 0xffffffff |
| 43 | #define HV_MIN_DELTA_TICKS 1 |
| 44 | |
| 45 | /* |
| 46 | * hv_init - Main initialization routine. |
| 47 | * |
| 48 | * This routine must be called before any other routines in here are called |
| 49 | */ |
| 50 | int hv_init(void) |
| 51 | { |
| 52 | if (!hv_is_hypercall_page_setup()) |
| 53 | return -ENOTSUPP; |
| 54 | |
| 55 | hv_context.cpu_context = alloc_percpu(struct hv_per_cpu_context); |
| 56 | if (!hv_context.cpu_context) |
| 57 | return -ENOMEM; |
| 58 | |
| 59 | return 0; |
| 60 | } |
| 61 | |
| 62 | /* |
| 63 | * hv_post_message - Post a message using the hypervisor message IPC. |
| 64 | * |
| 65 | * This involves a hypercall. |
| 66 | */ |
| 67 | int hv_post_message(union hv_connection_id connection_id, |
| 68 | enum hv_message_type message_type, |
| 69 | void *payload, size_t payload_size) |
| 70 | { |
| 71 | struct hv_input_post_message *aligned_msg; |
| 72 | struct hv_per_cpu_context *hv_cpu; |
| 73 | u64 status; |
| 74 | |
| 75 | if (payload_size > HV_MESSAGE_PAYLOAD_BYTE_COUNT) |
| 76 | return -EMSGSIZE; |
| 77 | |
| 78 | hv_cpu = get_cpu_ptr(hv_context.cpu_context); |
| 79 | aligned_msg = hv_cpu->post_msg_page; |
| 80 | aligned_msg->connectionid = connection_id; |
| 81 | aligned_msg->reserved = 0; |
| 82 | aligned_msg->message_type = message_type; |
| 83 | aligned_msg->payload_size = payload_size; |
| 84 | memcpy((void *)aligned_msg->payload, payload, payload_size); |
| 85 | |
| 86 | status = hv_do_hypercall(HVCALL_POST_MESSAGE, aligned_msg, NULL); |
| 87 | |
| 88 | /* Preemption must remain disabled until after the hypercall |
| 89 | * so some other thread can't get scheduled onto this cpu and |
| 90 | * corrupt the per-cpu post_msg_page |
| 91 | */ |
| 92 | put_cpu_ptr(hv_cpu); |
| 93 | |
| 94 | return status & 0xFFFF; |
| 95 | } |
| 96 | |
| 97 | static int hv_ce_set_next_event(unsigned long delta, |
| 98 | struct clock_event_device *evt) |
| 99 | { |
| 100 | u64 current_tick; |
| 101 | |
| 102 | WARN_ON(!clockevent_state_oneshot(evt)); |
| 103 | |
| 104 | current_tick = hyperv_cs->read(NULL); |
| 105 | current_tick += delta; |
| 106 | hv_init_timer(HV_X64_MSR_STIMER0_COUNT, current_tick); |
| 107 | return 0; |
| 108 | } |
| 109 | |
| 110 | static int hv_ce_shutdown(struct clock_event_device *evt) |
| 111 | { |
| 112 | hv_init_timer(HV_X64_MSR_STIMER0_COUNT, 0); |
| 113 | hv_init_timer_config(HV_X64_MSR_STIMER0_CONFIG, 0); |
| 114 | |
| 115 | return 0; |
| 116 | } |
| 117 | |
| 118 | static int hv_ce_set_oneshot(struct clock_event_device *evt) |
| 119 | { |
| 120 | union hv_timer_config timer_cfg; |
| 121 | |
| 122 | timer_cfg.enable = 1; |
| 123 | timer_cfg.auto_enable = 1; |
| 124 | timer_cfg.sintx = VMBUS_MESSAGE_SINT; |
| 125 | hv_init_timer_config(HV_X64_MSR_STIMER0_CONFIG, timer_cfg.as_uint64); |
| 126 | |
| 127 | return 0; |
| 128 | } |
| 129 | |
| 130 | static void hv_init_clockevent_device(struct clock_event_device *dev, int cpu) |
| 131 | { |
| 132 | dev->name = "Hyper-V clockevent"; |
| 133 | dev->features = CLOCK_EVT_FEAT_ONESHOT; |
| 134 | dev->cpumask = cpumask_of(cpu); |
| 135 | dev->rating = 1000; |
| 136 | /* |
| 137 | * Avoid settint dev->owner = THIS_MODULE deliberately as doing so will |
| 138 | * result in clockevents_config_and_register() taking additional |
| 139 | * references to the hv_vmbus module making it impossible to unload. |
| 140 | */ |
| 141 | |
| 142 | dev->set_state_shutdown = hv_ce_shutdown; |
| 143 | dev->set_state_oneshot = hv_ce_set_oneshot; |
| 144 | dev->set_next_event = hv_ce_set_next_event; |
| 145 | } |
| 146 | |
| 147 | |
| 148 | int hv_synic_alloc(void) |
| 149 | { |
| 150 | int cpu; |
| 151 | struct hv_per_cpu_context *hv_cpu; |
| 152 | |
| 153 | /* |
| 154 | * First, zero all per-cpu memory areas so hv_synic_free() can |
| 155 | * detect what memory has been allocated and cleanup properly |
| 156 | * after any failures. |
| 157 | */ |
| 158 | for_each_present_cpu(cpu) { |
| 159 | hv_cpu = per_cpu_ptr(hv_context.cpu_context, cpu); |
| 160 | memset(hv_cpu, 0, sizeof(*hv_cpu)); |
| 161 | } |
| 162 | |
| 163 | hv_context.hv_numa_map = kzalloc(sizeof(struct cpumask) * nr_node_ids, |
| 164 | GFP_ATOMIC); |
| 165 | if (hv_context.hv_numa_map == NULL) { |
| 166 | pr_err("Unable to allocate NUMA map\n"); |
| 167 | goto err; |
| 168 | } |
| 169 | |
| 170 | for_each_present_cpu(cpu) { |
| 171 | hv_cpu = per_cpu_ptr(hv_context.cpu_context, cpu); |
| 172 | |
| 173 | tasklet_init(&hv_cpu->msg_dpc, |
| 174 | vmbus_on_msg_dpc, (unsigned long) hv_cpu); |
| 175 | |
| 176 | hv_cpu->clk_evt = kzalloc(sizeof(struct clock_event_device), |
| 177 | GFP_KERNEL); |
| 178 | if (hv_cpu->clk_evt == NULL) { |
| 179 | pr_err("Unable to allocate clock event device\n"); |
| 180 | goto err; |
| 181 | } |
| 182 | hv_init_clockevent_device(hv_cpu->clk_evt, cpu); |
| 183 | |
| 184 | hv_cpu->synic_message_page = |
| 185 | (void *)get_zeroed_page(GFP_ATOMIC); |
| 186 | if (hv_cpu->synic_message_page == NULL) { |
| 187 | pr_err("Unable to allocate SYNIC message page\n"); |
| 188 | goto err; |
| 189 | } |
| 190 | |
| 191 | hv_cpu->synic_event_page = (void *)get_zeroed_page(GFP_ATOMIC); |
| 192 | if (hv_cpu->synic_event_page == NULL) { |
| 193 | pr_err("Unable to allocate SYNIC event page\n"); |
| 194 | goto err; |
| 195 | } |
| 196 | |
| 197 | hv_cpu->post_msg_page = (void *)get_zeroed_page(GFP_ATOMIC); |
| 198 | if (hv_cpu->post_msg_page == NULL) { |
| 199 | pr_err("Unable to allocate post msg page\n"); |
| 200 | goto err; |
| 201 | } |
| 202 | |
| 203 | INIT_LIST_HEAD(&hv_cpu->chan_list); |
| 204 | } |
| 205 | |
| 206 | return 0; |
| 207 | err: |
| 208 | /* |
| 209 | * Any memory allocations that succeeded will be freed when |
| 210 | * the caller cleans up by calling hv_synic_free() |
| 211 | */ |
| 212 | return -ENOMEM; |
| 213 | } |
| 214 | |
| 215 | |
| 216 | void hv_synic_free(void) |
| 217 | { |
| 218 | int cpu; |
| 219 | |
| 220 | for_each_present_cpu(cpu) { |
| 221 | struct hv_per_cpu_context *hv_cpu |
| 222 | = per_cpu_ptr(hv_context.cpu_context, cpu); |
| 223 | |
| 224 | kfree(hv_cpu->clk_evt); |
| 225 | free_page((unsigned long)hv_cpu->synic_event_page); |
| 226 | free_page((unsigned long)hv_cpu->synic_message_page); |
| 227 | free_page((unsigned long)hv_cpu->post_msg_page); |
| 228 | } |
| 229 | |
| 230 | kfree(hv_context.hv_numa_map); |
| 231 | } |
| 232 | |
| 233 | /* |
| 234 | * hv_synic_init - Initialize the Synthethic Interrupt Controller. |
| 235 | * |
| 236 | * If it is already initialized by another entity (ie x2v shim), we need to |
| 237 | * retrieve the initialized message and event pages. Otherwise, we create and |
| 238 | * initialize the message and event pages. |
| 239 | */ |
| 240 | int hv_synic_init(unsigned int cpu) |
| 241 | { |
| 242 | struct hv_per_cpu_context *hv_cpu |
| 243 | = per_cpu_ptr(hv_context.cpu_context, cpu); |
| 244 | union hv_synic_simp simp; |
| 245 | union hv_synic_siefp siefp; |
| 246 | union hv_synic_sint shared_sint; |
| 247 | union hv_synic_scontrol sctrl; |
| 248 | |
| 249 | /* Setup the Synic's message page */ |
| 250 | hv_get_simp(simp.as_uint64); |
| 251 | simp.simp_enabled = 1; |
| 252 | simp.base_simp_gpa = virt_to_phys(hv_cpu->synic_message_page) |
| 253 | >> PAGE_SHIFT; |
| 254 | |
| 255 | hv_set_simp(simp.as_uint64); |
| 256 | |
| 257 | /* Setup the Synic's event page */ |
| 258 | hv_get_siefp(siefp.as_uint64); |
| 259 | siefp.siefp_enabled = 1; |
| 260 | siefp.base_siefp_gpa = virt_to_phys(hv_cpu->synic_event_page) |
| 261 | >> PAGE_SHIFT; |
| 262 | |
| 263 | hv_set_siefp(siefp.as_uint64); |
| 264 | |
| 265 | /* Setup the shared SINT. */ |
| 266 | hv_get_synint_state(HV_X64_MSR_SINT0 + VMBUS_MESSAGE_SINT, |
| 267 | shared_sint.as_uint64); |
| 268 | |
| 269 | shared_sint.as_uint64 = 0; |
| 270 | shared_sint.vector = HYPERVISOR_CALLBACK_VECTOR; |
| 271 | shared_sint.masked = false; |
| 272 | if (ms_hyperv.hints & HV_X64_DEPRECATING_AEOI_RECOMMENDED) |
| 273 | shared_sint.auto_eoi = false; |
| 274 | else |
| 275 | shared_sint.auto_eoi = true; |
| 276 | |
| 277 | hv_set_synint_state(HV_X64_MSR_SINT0 + VMBUS_MESSAGE_SINT, |
| 278 | shared_sint.as_uint64); |
| 279 | |
| 280 | /* Enable the global synic bit */ |
| 281 | hv_get_synic_state(sctrl.as_uint64); |
| 282 | sctrl.enable = 1; |
| 283 | |
| 284 | hv_set_synic_state(sctrl.as_uint64); |
| 285 | |
| 286 | hv_context.synic_initialized = true; |
| 287 | |
| 288 | /* |
| 289 | * Register the per-cpu clockevent source. |
| 290 | */ |
| 291 | if (ms_hyperv.features & HV_X64_MSR_SYNTIMER_AVAILABLE) |
| 292 | clockevents_config_and_register(hv_cpu->clk_evt, |
| 293 | HV_TIMER_FREQUENCY, |
| 294 | HV_MIN_DELTA_TICKS, |
| 295 | HV_MAX_MAX_DELTA_TICKS); |
| 296 | return 0; |
| 297 | } |
| 298 | |
| 299 | /* |
| 300 | * hv_synic_clockevents_cleanup - Cleanup clockevent devices |
| 301 | */ |
| 302 | void hv_synic_clockevents_cleanup(void) |
| 303 | { |
| 304 | int cpu; |
| 305 | |
| 306 | if (!(ms_hyperv.features & HV_X64_MSR_SYNTIMER_AVAILABLE)) |
| 307 | return; |
| 308 | |
| 309 | for_each_present_cpu(cpu) { |
| 310 | struct hv_per_cpu_context *hv_cpu |
| 311 | = per_cpu_ptr(hv_context.cpu_context, cpu); |
| 312 | |
| 313 | clockevents_unbind_device(hv_cpu->clk_evt, cpu); |
| 314 | } |
| 315 | } |
| 316 | |
| 317 | /* |
| 318 | * hv_synic_cleanup - Cleanup routine for hv_synic_init(). |
| 319 | */ |
| 320 | int hv_synic_cleanup(unsigned int cpu) |
| 321 | { |
| 322 | union hv_synic_sint shared_sint; |
| 323 | union hv_synic_simp simp; |
| 324 | union hv_synic_siefp siefp; |
| 325 | union hv_synic_scontrol sctrl; |
| 326 | struct vmbus_channel *channel, *sc; |
| 327 | bool channel_found = false; |
| 328 | unsigned long flags; |
| 329 | |
| 330 | if (!hv_context.synic_initialized) |
| 331 | return -EFAULT; |
| 332 | |
| 333 | /* |
| 334 | * Search for channels which are bound to the CPU we're about to |
| 335 | * cleanup. In case we find one and vmbus is still connected we need to |
| 336 | * fail, this will effectively prevent CPU offlining. There is no way |
| 337 | * we can re-bind channels to different CPUs for now. |
| 338 | */ |
| 339 | mutex_lock(&vmbus_connection.channel_mutex); |
| 340 | list_for_each_entry(channel, &vmbus_connection.chn_list, listentry) { |
| 341 | if (channel->target_cpu == cpu) { |
| 342 | channel_found = true; |
| 343 | break; |
| 344 | } |
| 345 | spin_lock_irqsave(&channel->lock, flags); |
| 346 | list_for_each_entry(sc, &channel->sc_list, sc_list) { |
| 347 | if (sc->target_cpu == cpu) { |
| 348 | channel_found = true; |
| 349 | break; |
| 350 | } |
| 351 | } |
| 352 | spin_unlock_irqrestore(&channel->lock, flags); |
| 353 | if (channel_found) |
| 354 | break; |
| 355 | } |
| 356 | mutex_unlock(&vmbus_connection.channel_mutex); |
| 357 | |
| 358 | if (channel_found && vmbus_connection.conn_state == CONNECTED) |
| 359 | return -EBUSY; |
| 360 | |
| 361 | /* Turn off clockevent device */ |
| 362 | if (ms_hyperv.features & HV_X64_MSR_SYNTIMER_AVAILABLE) { |
| 363 | struct hv_per_cpu_context *hv_cpu |
| 364 | = this_cpu_ptr(hv_context.cpu_context); |
| 365 | |
| 366 | clockevents_unbind_device(hv_cpu->clk_evt, cpu); |
| 367 | hv_ce_shutdown(hv_cpu->clk_evt); |
| 368 | } |
| 369 | |
| 370 | hv_get_synint_state(HV_X64_MSR_SINT0 + VMBUS_MESSAGE_SINT, |
| 371 | shared_sint.as_uint64); |
| 372 | |
| 373 | shared_sint.masked = 1; |
| 374 | |
| 375 | /* Need to correctly cleanup in the case of SMP!!! */ |
| 376 | /* Disable the interrupt */ |
| 377 | hv_set_synint_state(HV_X64_MSR_SINT0 + VMBUS_MESSAGE_SINT, |
| 378 | shared_sint.as_uint64); |
| 379 | |
| 380 | hv_get_simp(simp.as_uint64); |
| 381 | simp.simp_enabled = 0; |
| 382 | simp.base_simp_gpa = 0; |
| 383 | |
| 384 | hv_set_simp(simp.as_uint64); |
| 385 | |
| 386 | hv_get_siefp(siefp.as_uint64); |
| 387 | siefp.siefp_enabled = 0; |
| 388 | siefp.base_siefp_gpa = 0; |
| 389 | |
| 390 | hv_set_siefp(siefp.as_uint64); |
| 391 | |
| 392 | /* Disable the global synic bit */ |
| 393 | hv_get_synic_state(sctrl.as_uint64); |
| 394 | sctrl.enable = 0; |
| 395 | hv_set_synic_state(sctrl.as_uint64); |
| 396 | |
| 397 | return 0; |
| 398 | } |