2 * Copyright (C) 2010 Citrix Ltd.
4 * This work is licensed under the terms of the GNU GPL, version 2. See
5 * the COPYING file in the top-level directory.
7 * Contributions after 2012-01-13 are licensed under the terms of the
8 * GNU GPL, version 2 or (at your option) any later version.
13 #include "hw/pci/pci.h"
14 #include "hw/i386/pc.h"
15 #include "hw/xen/xen_common.h"
16 #include "hw/xen/xen_backend.h"
17 #include "qmp-commands.h"
19 #include "sysemu/char.h"
20 #include "qemu/range.h"
21 #include "sysemu/xen-mapcache.h"
23 #include "exec/address-spaces.h"
25 #include <xen/hvm/ioreq.h>
26 #include <xen/hvm/params.h>
27 #include <xen/hvm/e820.h>
29 //#define DEBUG_XEN_HVM
32 #define DPRINTF(fmt, ...) \
33 do { fprintf(stderr, "xen: " fmt, ## __VA_ARGS__); } while (0)
35 #define DPRINTF(fmt, ...) \
39 static MemoryRegion ram_memory
, ram_640k
, ram_lo
, ram_hi
;
40 static MemoryRegion
*framebuffer
;
41 static bool xen_in_migration
;
43 /* Compatibility with older version */
45 /* This allows QEMU to build on a system that has Xen 4.5 or earlier
46 * installed. This here (not in hw/xen/xen_common.h) because xen/hvm/ioreq.h
47 * needs to be included before this block and hw/xen/xen_common.h needs to
48 * be included before xen/hvm/ioreq.h
50 #ifndef IOREQ_TYPE_VMWARE_PORT
51 #define IOREQ_TYPE_VMWARE_PORT 3
59 typedef struct vmware_regs vmware_regs_t
;
61 struct shared_vmport_iopage
{
62 struct vmware_regs vcpu_vmport_regs
[1];
64 typedef struct shared_vmport_iopage shared_vmport_iopage_t
;
67 #if __XEN_LATEST_INTERFACE_VERSION__ < 0x0003020a
68 static inline uint32_t xen_vcpu_eport(shared_iopage_t
*shared_page
, int i
)
70 return shared_page
->vcpu_iodata
[i
].vp_eport
;
72 static inline ioreq_t
*xen_vcpu_ioreq(shared_iopage_t
*shared_page
, int vcpu
)
74 return &shared_page
->vcpu_iodata
[vcpu
].vp_ioreq
;
76 # define FMT_ioreq_size PRIx64
78 static inline uint32_t xen_vcpu_eport(shared_iopage_t
*shared_page
, int i
)
80 return shared_page
->vcpu_ioreq
[i
].vp_eport
;
82 static inline ioreq_t
*xen_vcpu_ioreq(shared_iopage_t
*shared_page
, int vcpu
)
84 return &shared_page
->vcpu_ioreq
[vcpu
];
86 # define FMT_ioreq_size "u"
88 #ifndef HVM_PARAM_BUFIOREQ_EVTCHN
89 #define HVM_PARAM_BUFIOREQ_EVTCHN 26
92 #define BUFFER_IO_MAX_DELAY 100
94 typedef struct XenPhysmap
{
100 QLIST_ENTRY(XenPhysmap
) list
;
103 typedef struct XenIOState
{
104 shared_iopage_t
*shared_page
;
105 shared_vmport_iopage_t
*shared_vmport_page
;
106 buffered_iopage_t
*buffered_io_page
;
107 QEMUTimer
*buffered_io_timer
;
108 CPUState
**cpu_by_vcpu_id
;
109 /* the evtchn port for polling the notification, */
110 evtchn_port_t
*ioreq_local_port
;
111 /* evtchn local port for buffered io */
112 evtchn_port_t bufioreq_local_port
;
113 /* the evtchn fd for polling */
114 XenEvtchn xce_handle
;
115 /* which vcpu we are serving */
118 struct xs_handle
*xenstore
;
119 MemoryListener memory_listener
;
120 QLIST_HEAD(, XenPhysmap
) physmap
;
121 hwaddr free_phys_offset
;
122 const XenPhysmap
*log_for_dirtybit
;
129 /* Xen specific function for piix pci */
131 int xen_pci_slot_get_pirq(PCIDevice
*pci_dev
, int irq_num
)
133 return irq_num
+ ((pci_dev
->devfn
>> 3) << 2);
136 void xen_piix3_set_irq(void *opaque
, int irq_num
, int level
)
138 xc_hvm_set_pci_intx_level(xen_xc
, xen_domid
, 0, 0, irq_num
>> 2,
142 void xen_piix_pci_write_config_client(uint32_t address
, uint32_t val
, int len
)
146 /* Scan for updates to PCI link routes (0x60-0x63). */
147 for (i
= 0; i
< len
; i
++) {
148 uint8_t v
= (val
>> (8 * i
)) & 0xff;
153 if (((address
+ i
) >= 0x60) && ((address
+ i
) <= 0x63)) {
154 xc_hvm_set_pci_link_route(xen_xc
, xen_domid
, address
+ i
- 0x60, v
);
159 void xen_hvm_inject_msi(uint64_t addr
, uint32_t data
)
161 xen_xc_hvm_inject_msi(xen_xc
, xen_domid
, addr
, data
);
164 static void xen_suspend_notifier(Notifier
*notifier
, void *data
)
166 xc_set_hvm_param(xen_xc
, xen_domid
, HVM_PARAM_ACPI_S_STATE
, 3);
169 /* Xen Interrupt Controller */
171 static void xen_set_irq(void *opaque
, int irq
, int level
)
173 xc_hvm_set_isa_irq_level(xen_xc
, xen_domid
, irq
, level
);
176 qemu_irq
*xen_interrupt_controller_init(void)
178 return qemu_allocate_irqs(xen_set_irq
, NULL
, 16);
183 static void xen_ram_init(ram_addr_t
*below_4g_mem_size
,
184 ram_addr_t
*above_4g_mem_size
,
185 ram_addr_t ram_size
, MemoryRegion
**ram_memory_p
)
187 MemoryRegion
*sysmem
= get_system_memory();
188 ram_addr_t block_len
;
189 uint64_t user_lowmem
= object_property_get_int(qdev_get_machine(),
190 PC_MACHINE_MAX_RAM_BELOW_4G
,
193 /* Handle the machine opt max-ram-below-4g. It is basically doing
194 * min(xen limit, user limit).
196 if (HVM_BELOW_4G_RAM_END
<= user_lowmem
) {
197 user_lowmem
= HVM_BELOW_4G_RAM_END
;
200 if (ram_size
>= user_lowmem
) {
201 *above_4g_mem_size
= ram_size
- user_lowmem
;
202 *below_4g_mem_size
= user_lowmem
;
204 *above_4g_mem_size
= 0;
205 *below_4g_mem_size
= ram_size
;
207 if (!*above_4g_mem_size
) {
208 block_len
= ram_size
;
211 * Xen does not allocate the memory continuously, it keeps a
212 * hole of the size computed above or passed in.
214 block_len
= (1ULL << 32) + *above_4g_mem_size
;
216 memory_region_init_ram(&ram_memory
, NULL
, "xen.ram", block_len
,
218 *ram_memory_p
= &ram_memory
;
219 vmstate_register_ram_global(&ram_memory
);
221 memory_region_init_alias(&ram_640k
, NULL
, "xen.ram.640k",
222 &ram_memory
, 0, 0xa0000);
223 memory_region_add_subregion(sysmem
, 0, &ram_640k
);
224 /* Skip of the VGA IO memory space, it will be registered later by the VGA
227 * The area between 0xc0000 and 0x100000 will be used by SeaBIOS to load
228 * the Options ROM, so it is registered here as RAM.
230 memory_region_init_alias(&ram_lo
, NULL
, "xen.ram.lo",
231 &ram_memory
, 0xc0000,
232 *below_4g_mem_size
- 0xc0000);
233 memory_region_add_subregion(sysmem
, 0xc0000, &ram_lo
);
234 if (*above_4g_mem_size
> 0) {
235 memory_region_init_alias(&ram_hi
, NULL
, "xen.ram.hi",
236 &ram_memory
, 0x100000000ULL
,
238 memory_region_add_subregion(sysmem
, 0x100000000ULL
, &ram_hi
);
242 void xen_ram_alloc(ram_addr_t ram_addr
, ram_addr_t size
, MemoryRegion
*mr
)
244 unsigned long nr_pfn
;
248 if (runstate_check(RUN_STATE_INMIGRATE
)) {
249 /* RAM already populated in Xen */
250 fprintf(stderr
, "%s: do not alloc "RAM_ADDR_FMT
251 " bytes of ram at "RAM_ADDR_FMT
" when runstate is INMIGRATE\n",
252 __func__
, size
, ram_addr
);
256 if (mr
== &ram_memory
) {
260 trace_xen_ram_alloc(ram_addr
, size
);
262 nr_pfn
= size
>> TARGET_PAGE_BITS
;
263 pfn_list
= g_malloc(sizeof (*pfn_list
) * nr_pfn
);
265 for (i
= 0; i
< nr_pfn
; i
++) {
266 pfn_list
[i
] = (ram_addr
>> TARGET_PAGE_BITS
) + i
;
269 if (xc_domain_populate_physmap_exact(xen_xc
, xen_domid
, nr_pfn
, 0, 0, pfn_list
)) {
270 hw_error("xen: failed to populate ram at " RAM_ADDR_FMT
, ram_addr
);
276 static XenPhysmap
*get_physmapping(XenIOState
*state
,
277 hwaddr start_addr
, ram_addr_t size
)
279 XenPhysmap
*physmap
= NULL
;
281 start_addr
&= TARGET_PAGE_MASK
;
283 QLIST_FOREACH(physmap
, &state
->physmap
, list
) {
284 if (range_covers_byte(physmap
->start_addr
, physmap
->size
, start_addr
)) {
291 static hwaddr
xen_phys_offset_to_gaddr(hwaddr start_addr
,
292 ram_addr_t size
, void *opaque
)
294 hwaddr addr
= start_addr
& TARGET_PAGE_MASK
;
295 XenIOState
*xen_io_state
= opaque
;
296 XenPhysmap
*physmap
= NULL
;
298 QLIST_FOREACH(physmap
, &xen_io_state
->physmap
, list
) {
299 if (range_covers_byte(physmap
->phys_offset
, physmap
->size
, addr
)) {
300 return physmap
->start_addr
;
307 #if CONFIG_XEN_CTRL_INTERFACE_VERSION >= 340
308 static int xen_add_to_physmap(XenIOState
*state
,
312 hwaddr offset_within_region
)
316 XenPhysmap
*physmap
= NULL
;
317 hwaddr pfn
, start_gpfn
;
318 hwaddr phys_offset
= memory_region_get_ram_addr(mr
);
319 char path
[80], value
[17];
322 if (get_physmapping(state
, start_addr
, size
)) {
329 /* Xen can only handle a single dirty log region for now and we want
330 * the linear framebuffer to be that region.
331 * Avoid tracking any regions that is not videoram and avoid tracking
332 * the legacy vga region. */
333 if (mr
== framebuffer
&& start_addr
> 0xbffff) {
339 DPRINTF("mapping vram to %"HWADDR_PRIx
" - %"HWADDR_PRIx
"\n",
340 start_addr
, start_addr
+ size
);
342 pfn
= phys_offset
>> TARGET_PAGE_BITS
;
343 start_gpfn
= start_addr
>> TARGET_PAGE_BITS
;
344 for (i
= 0; i
< size
>> TARGET_PAGE_BITS
; i
++) {
345 unsigned long idx
= pfn
+ i
;
346 xen_pfn_t gpfn
= start_gpfn
+ i
;
348 rc
= xc_domain_add_to_physmap(xen_xc
, xen_domid
, XENMAPSPACE_gmfn
, idx
, gpfn
);
350 DPRINTF("add_to_physmap MFN %"PRI_xen_pfn
" to PFN %"
351 PRI_xen_pfn
" failed: %d\n", idx
, gpfn
, rc
);
356 mr_name
= memory_region_name(mr
);
358 physmap
= g_malloc(sizeof (XenPhysmap
));
360 physmap
->start_addr
= start_addr
;
361 physmap
->size
= size
;
362 physmap
->name
= mr_name
;
363 physmap
->phys_offset
= phys_offset
;
365 QLIST_INSERT_HEAD(&state
->physmap
, physmap
, list
);
367 xc_domain_pin_memory_cacheattr(xen_xc
, xen_domid
,
368 start_addr
>> TARGET_PAGE_BITS
,
369 (start_addr
+ size
- 1) >> TARGET_PAGE_BITS
,
370 XEN_DOMCTL_MEM_CACHEATTR_WB
);
372 snprintf(path
, sizeof(path
),
373 "/local/domain/0/device-model/%d/physmap/%"PRIx64
"/start_addr",
374 xen_domid
, (uint64_t)phys_offset
);
375 snprintf(value
, sizeof(value
), "%"PRIx64
, (uint64_t)start_addr
);
376 if (!xs_write(state
->xenstore
, 0, path
, value
, strlen(value
))) {
379 snprintf(path
, sizeof(path
),
380 "/local/domain/0/device-model/%d/physmap/%"PRIx64
"/size",
381 xen_domid
, (uint64_t)phys_offset
);
382 snprintf(value
, sizeof(value
), "%"PRIx64
, (uint64_t)size
);
383 if (!xs_write(state
->xenstore
, 0, path
, value
, strlen(value
))) {
387 snprintf(path
, sizeof(path
),
388 "/local/domain/0/device-model/%d/physmap/%"PRIx64
"/name",
389 xen_domid
, (uint64_t)phys_offset
);
390 if (!xs_write(state
->xenstore
, 0, path
, mr_name
, strlen(mr_name
))) {
398 static int xen_remove_from_physmap(XenIOState
*state
,
404 XenPhysmap
*physmap
= NULL
;
405 hwaddr phys_offset
= 0;
407 physmap
= get_physmapping(state
, start_addr
, size
);
408 if (physmap
== NULL
) {
412 phys_offset
= physmap
->phys_offset
;
413 size
= physmap
->size
;
415 DPRINTF("unmapping vram to %"HWADDR_PRIx
" - %"HWADDR_PRIx
", at "
416 "%"HWADDR_PRIx
"\n", start_addr
, start_addr
+ size
, phys_offset
);
418 size
>>= TARGET_PAGE_BITS
;
419 start_addr
>>= TARGET_PAGE_BITS
;
420 phys_offset
>>= TARGET_PAGE_BITS
;
421 for (i
= 0; i
< size
; i
++) {
422 xen_pfn_t idx
= start_addr
+ i
;
423 xen_pfn_t gpfn
= phys_offset
+ i
;
425 rc
= xc_domain_add_to_physmap(xen_xc
, xen_domid
, XENMAPSPACE_gmfn
, idx
, gpfn
);
427 fprintf(stderr
, "add_to_physmap MFN %"PRI_xen_pfn
" to PFN %"
428 PRI_xen_pfn
" failed: %d\n", idx
, gpfn
, rc
);
433 QLIST_REMOVE(physmap
, list
);
434 if (state
->log_for_dirtybit
== physmap
) {
435 state
->log_for_dirtybit
= NULL
;
443 static int xen_add_to_physmap(XenIOState
*state
,
447 hwaddr offset_within_region
)
452 static int xen_remove_from_physmap(XenIOState
*state
,
460 static void xen_set_memory(struct MemoryListener
*listener
,
461 MemoryRegionSection
*section
,
464 XenIOState
*state
= container_of(listener
, XenIOState
, memory_listener
);
465 hwaddr start_addr
= section
->offset_within_address_space
;
466 ram_addr_t size
= int128_get64(section
->size
);
467 bool log_dirty
= memory_region_is_logging(section
->mr
);
468 hvmmem_type_t mem_type
;
470 if (!memory_region_is_ram(section
->mr
)) {
474 if (!(section
->mr
!= &ram_memory
475 && ( (log_dirty
&& add
) || (!log_dirty
&& !add
)))) {
479 trace_xen_client_set_memory(start_addr
, size
, log_dirty
);
481 start_addr
&= TARGET_PAGE_MASK
;
482 size
= TARGET_PAGE_ALIGN(size
);
485 if (!memory_region_is_rom(section
->mr
)) {
486 xen_add_to_physmap(state
, start_addr
, size
,
487 section
->mr
, section
->offset_within_region
);
489 mem_type
= HVMMEM_ram_ro
;
490 if (xc_hvm_set_mem_type(xen_xc
, xen_domid
, mem_type
,
491 start_addr
>> TARGET_PAGE_BITS
,
492 size
>> TARGET_PAGE_BITS
)) {
493 DPRINTF("xc_hvm_set_mem_type error, addr: "TARGET_FMT_plx
"\n",
498 if (xen_remove_from_physmap(state
, start_addr
, size
) < 0) {
499 DPRINTF("physmapping does not exist at "TARGET_FMT_plx
"\n", start_addr
);
504 static void xen_region_add(MemoryListener
*listener
,
505 MemoryRegionSection
*section
)
507 memory_region_ref(section
->mr
);
508 xen_set_memory(listener
, section
, true);
511 static void xen_region_del(MemoryListener
*listener
,
512 MemoryRegionSection
*section
)
514 xen_set_memory(listener
, section
, false);
515 memory_region_unref(section
->mr
);
518 static void xen_sync_dirty_bitmap(XenIOState
*state
,
522 hwaddr npages
= size
>> TARGET_PAGE_BITS
;
523 const int width
= sizeof(unsigned long) * 8;
524 unsigned long bitmap
[(npages
+ width
- 1) / width
];
526 const XenPhysmap
*physmap
= NULL
;
528 physmap
= get_physmapping(state
, start_addr
, size
);
529 if (physmap
== NULL
) {
534 if (state
->log_for_dirtybit
== NULL
) {
535 state
->log_for_dirtybit
= physmap
;
536 } else if (state
->log_for_dirtybit
!= physmap
) {
537 /* Only one range for dirty bitmap can be tracked. */
541 rc
= xc_hvm_track_dirty_vram(xen_xc
, xen_domid
,
542 start_addr
>> TARGET_PAGE_BITS
, npages
,
546 #define ENODATA ENOENT
548 if (errno
== ENODATA
) {
549 memory_region_set_dirty(framebuffer
, 0, size
);
550 DPRINTF("xen: track_dirty_vram failed (0x" TARGET_FMT_plx
551 ", 0x" TARGET_FMT_plx
"): %s\n",
552 start_addr
, start_addr
+ size
, strerror(errno
));
557 for (i
= 0; i
< ARRAY_SIZE(bitmap
); i
++) {
558 unsigned long map
= bitmap
[i
];
562 memory_region_set_dirty(framebuffer
,
563 (i
* width
+ j
) * TARGET_PAGE_SIZE
,
569 static void xen_log_start(MemoryListener
*listener
,
570 MemoryRegionSection
*section
)
572 XenIOState
*state
= container_of(listener
, XenIOState
, memory_listener
);
574 xen_sync_dirty_bitmap(state
, section
->offset_within_address_space
,
575 int128_get64(section
->size
));
578 static void xen_log_stop(MemoryListener
*listener
, MemoryRegionSection
*section
)
580 XenIOState
*state
= container_of(listener
, XenIOState
, memory_listener
);
582 state
->log_for_dirtybit
= NULL
;
583 /* Disable dirty bit tracking */
584 xc_hvm_track_dirty_vram(xen_xc
, xen_domid
, 0, 0, NULL
);
587 static void xen_log_sync(MemoryListener
*listener
, MemoryRegionSection
*section
)
589 XenIOState
*state
= container_of(listener
, XenIOState
, memory_listener
);
591 xen_sync_dirty_bitmap(state
, section
->offset_within_address_space
,
592 int128_get64(section
->size
));
595 static void xen_log_global_start(MemoryListener
*listener
)
598 xen_in_migration
= true;
602 static void xen_log_global_stop(MemoryListener
*listener
)
604 xen_in_migration
= false;
607 static MemoryListener xen_memory_listener
= {
608 .region_add
= xen_region_add
,
609 .region_del
= xen_region_del
,
610 .log_start
= xen_log_start
,
611 .log_stop
= xen_log_stop
,
612 .log_sync
= xen_log_sync
,
613 .log_global_start
= xen_log_global_start
,
614 .log_global_stop
= xen_log_global_stop
,
618 /* get the ioreq packets from share mem */
619 static ioreq_t
*cpu_get_ioreq_from_shared_memory(XenIOState
*state
, int vcpu
)
621 ioreq_t
*req
= xen_vcpu_ioreq(state
->shared_page
, vcpu
);
623 if (req
->state
!= STATE_IOREQ_READY
) {
624 DPRINTF("I/O request not ready: "
625 "%x, ptr: %x, port: %"PRIx64
", "
626 "data: %"PRIx64
", count: %" FMT_ioreq_size
", size: %" FMT_ioreq_size
"\n",
627 req
->state
, req
->data_is_ptr
, req
->addr
,
628 req
->data
, req
->count
, req
->size
);
632 xen_rmb(); /* see IOREQ_READY /then/ read contents of ioreq */
634 req
->state
= STATE_IOREQ_INPROCESS
;
638 /* use poll to get the port notification */
639 /* ioreq_vec--out,the */
640 /* retval--the number of ioreq packet */
641 static ioreq_t
*cpu_get_ioreq(XenIOState
*state
)
646 port
= xc_evtchn_pending(state
->xce_handle
);
647 if (port
== state
->bufioreq_local_port
) {
648 timer_mod(state
->buffered_io_timer
,
649 BUFFER_IO_MAX_DELAY
+ qemu_clock_get_ms(QEMU_CLOCK_REALTIME
));
654 for (i
= 0; i
< max_cpus
; i
++) {
655 if (state
->ioreq_local_port
[i
] == port
) {
661 hw_error("Fatal error while trying to get io event!\n");
664 /* unmask the wanted port again */
665 xc_evtchn_unmask(state
->xce_handle
, port
);
667 /* get the io packet from shared memory */
668 state
->send_vcpu
= i
;
669 return cpu_get_ioreq_from_shared_memory(state
, i
);
672 /* read error or read nothing */
676 static uint32_t do_inp(pio_addr_t addr
, unsigned long size
)
680 return cpu_inb(addr
);
682 return cpu_inw(addr
);
684 return cpu_inl(addr
);
686 hw_error("inp: bad size: %04"FMT_pioaddr
" %lx", addr
, size
);
690 static void do_outp(pio_addr_t addr
,
691 unsigned long size
, uint32_t val
)
695 return cpu_outb(addr
, val
);
697 return cpu_outw(addr
, val
);
699 return cpu_outl(addr
, val
);
701 hw_error("outp: bad size: %04"FMT_pioaddr
" %lx", addr
, size
);
706 * Helper functions which read/write an object from/to physical guest
707 * memory, as part of the implementation of an ioreq.
710 * cpu_physical_memory_rw(addr + (req->df ? -1 : +1) * req->size * i,
711 * val, req->size, 0/1)
712 * except without the integer overflow problems.
714 static void rw_phys_req_item(hwaddr addr
,
715 ioreq_t
*req
, uint32_t i
, void *val
, int rw
)
717 /* Do everything unsigned so overflow just results in a truncated result
718 * and accesses to undesired parts of guest memory, which is up
720 hwaddr offset
= (hwaddr
)req
->size
* i
;
726 cpu_physical_memory_rw(addr
, val
, req
->size
, rw
);
729 static inline void read_phys_req_item(hwaddr addr
,
730 ioreq_t
*req
, uint32_t i
, void *val
)
732 rw_phys_req_item(addr
, req
, i
, val
, 0);
734 static inline void write_phys_req_item(hwaddr addr
,
735 ioreq_t
*req
, uint32_t i
, void *val
)
737 rw_phys_req_item(addr
, req
, i
, val
, 1);
741 static void cpu_ioreq_pio(ioreq_t
*req
)
745 if (req
->dir
== IOREQ_READ
) {
746 if (!req
->data_is_ptr
) {
747 req
->data
= do_inp(req
->addr
, req
->size
);
751 for (i
= 0; i
< req
->count
; i
++) {
752 tmp
= do_inp(req
->addr
, req
->size
);
753 write_phys_req_item(req
->data
, req
, i
, &tmp
);
756 } else if (req
->dir
== IOREQ_WRITE
) {
757 if (!req
->data_is_ptr
) {
758 do_outp(req
->addr
, req
->size
, req
->data
);
760 for (i
= 0; i
< req
->count
; i
++) {
763 read_phys_req_item(req
->data
, req
, i
, &tmp
);
764 do_outp(req
->addr
, req
->size
, tmp
);
770 static void cpu_ioreq_move(ioreq_t
*req
)
774 if (!req
->data_is_ptr
) {
775 if (req
->dir
== IOREQ_READ
) {
776 for (i
= 0; i
< req
->count
; i
++) {
777 read_phys_req_item(req
->addr
, req
, i
, &req
->data
);
779 } else if (req
->dir
== IOREQ_WRITE
) {
780 for (i
= 0; i
< req
->count
; i
++) {
781 write_phys_req_item(req
->addr
, req
, i
, &req
->data
);
787 if (req
->dir
== IOREQ_READ
) {
788 for (i
= 0; i
< req
->count
; i
++) {
789 read_phys_req_item(req
->addr
, req
, i
, &tmp
);
790 write_phys_req_item(req
->data
, req
, i
, &tmp
);
792 } else if (req
->dir
== IOREQ_WRITE
) {
793 for (i
= 0; i
< req
->count
; i
++) {
794 read_phys_req_item(req
->data
, req
, i
, &tmp
);
795 write_phys_req_item(req
->addr
, req
, i
, &tmp
);
801 static void regs_to_cpu(vmware_regs_t
*vmport_regs
, ioreq_t
*req
)
806 cpu
= X86_CPU(current_cpu
);
808 env
->regs
[R_EAX
] = req
->data
;
809 env
->regs
[R_EBX
] = vmport_regs
->ebx
;
810 env
->regs
[R_ECX
] = vmport_regs
->ecx
;
811 env
->regs
[R_EDX
] = vmport_regs
->edx
;
812 env
->regs
[R_ESI
] = vmport_regs
->esi
;
813 env
->regs
[R_EDI
] = vmport_regs
->edi
;
816 static void regs_from_cpu(vmware_regs_t
*vmport_regs
)
818 X86CPU
*cpu
= X86_CPU(current_cpu
);
819 CPUX86State
*env
= &cpu
->env
;
821 vmport_regs
->ebx
= env
->regs
[R_EBX
];
822 vmport_regs
->ecx
= env
->regs
[R_ECX
];
823 vmport_regs
->edx
= env
->regs
[R_EDX
];
824 vmport_regs
->esi
= env
->regs
[R_ESI
];
825 vmport_regs
->edi
= env
->regs
[R_EDI
];
828 static void handle_vmport_ioreq(XenIOState
*state
, ioreq_t
*req
)
830 vmware_regs_t
*vmport_regs
;
832 assert(state
->shared_vmport_page
);
834 &state
->shared_vmport_page
->vcpu_vmport_regs
[state
->send_vcpu
];
835 QEMU_BUILD_BUG_ON(sizeof(*req
) < sizeof(*vmport_regs
));
837 current_cpu
= state
->cpu_by_vcpu_id
[state
->send_vcpu
];
838 regs_to_cpu(vmport_regs
, req
);
840 regs_from_cpu(vmport_regs
);
844 static void handle_ioreq(XenIOState
*state
, ioreq_t
*req
)
846 if (!req
->data_is_ptr
&& (req
->dir
== IOREQ_WRITE
) &&
847 (req
->size
< sizeof (target_ulong
))) {
848 req
->data
&= ((target_ulong
) 1 << (8 * req
->size
)) - 1;
855 case IOREQ_TYPE_COPY
:
858 case IOREQ_TYPE_VMWARE_PORT
:
859 handle_vmport_ioreq(state
, req
);
861 case IOREQ_TYPE_TIMEOFFSET
:
863 case IOREQ_TYPE_INVALIDATE
:
864 xen_invalidate_map_cache();
867 hw_error("Invalid ioreq type 0x%x\n", req
->type
);
871 static int handle_buffered_iopage(XenIOState
*state
)
873 buf_ioreq_t
*buf_req
= NULL
;
877 if (!state
->buffered_io_page
) {
881 memset(&req
, 0x00, sizeof(req
));
883 while (state
->buffered_io_page
->read_pointer
!= state
->buffered_io_page
->write_pointer
) {
884 buf_req
= &state
->buffered_io_page
->buf_ioreq
[
885 state
->buffered_io_page
->read_pointer
% IOREQ_BUFFER_SLOT_NUM
];
886 req
.size
= 1UL << buf_req
->size
;
888 req
.addr
= buf_req
->addr
;
889 req
.data
= buf_req
->data
;
890 req
.state
= STATE_IOREQ_READY
;
891 req
.dir
= buf_req
->dir
;
893 req
.type
= buf_req
->type
;
895 qw
= (req
.size
== 8);
897 buf_req
= &state
->buffered_io_page
->buf_ioreq
[
898 (state
->buffered_io_page
->read_pointer
+ 1) % IOREQ_BUFFER_SLOT_NUM
];
899 req
.data
|= ((uint64_t)buf_req
->data
) << 32;
902 handle_ioreq(state
, &req
);
905 state
->buffered_io_page
->read_pointer
+= qw
? 2 : 1;
911 static void handle_buffered_io(void *opaque
)
913 XenIOState
*state
= opaque
;
915 if (handle_buffered_iopage(state
)) {
916 timer_mod(state
->buffered_io_timer
,
917 BUFFER_IO_MAX_DELAY
+ qemu_clock_get_ms(QEMU_CLOCK_REALTIME
));
919 timer_del(state
->buffered_io_timer
);
920 xc_evtchn_unmask(state
->xce_handle
, state
->bufioreq_local_port
);
924 static void cpu_handle_ioreq(void *opaque
)
926 XenIOState
*state
= opaque
;
927 ioreq_t
*req
= cpu_get_ioreq(state
);
929 handle_buffered_iopage(state
);
931 handle_ioreq(state
, req
);
933 if (req
->state
!= STATE_IOREQ_INPROCESS
) {
934 fprintf(stderr
, "Badness in I/O request ... not in service?!: "
935 "%x, ptr: %x, port: %"PRIx64
", "
936 "data: %"PRIx64
", count: %" FMT_ioreq_size
937 ", size: %" FMT_ioreq_size
938 ", type: %"FMT_ioreq_size
"\n",
939 req
->state
, req
->data_is_ptr
, req
->addr
,
940 req
->data
, req
->count
, req
->size
, req
->type
);
941 destroy_hvm_domain(false);
945 xen_wmb(); /* Update ioreq contents /then/ update state. */
948 * We do this before we send the response so that the tools
949 * have the opportunity to pick up on the reset before the
950 * guest resumes and does a hlt with interrupts disabled which
951 * causes Xen to powerdown the domain.
953 if (runstate_is_running()) {
954 if (qemu_shutdown_requested_get()) {
955 destroy_hvm_domain(false);
957 if (qemu_reset_requested_get()) {
958 qemu_system_reset(VMRESET_REPORT
);
959 destroy_hvm_domain(true);
963 req
->state
= STATE_IORESP_READY
;
964 xc_evtchn_notify(state
->xce_handle
, state
->ioreq_local_port
[state
->send_vcpu
]);
968 static void xen_main_loop_prepare(XenIOState
*state
)
972 if (state
->xce_handle
!= XC_HANDLER_INITIAL_VALUE
) {
973 evtchn_fd
= xc_evtchn_fd(state
->xce_handle
);
976 state
->buffered_io_timer
= timer_new_ms(QEMU_CLOCK_REALTIME
, handle_buffered_io
,
979 if (evtchn_fd
!= -1) {
982 DPRINTF("%s: Init cpu_by_vcpu_id\n", __func__
);
983 CPU_FOREACH(cpu_state
) {
984 DPRINTF("%s: cpu_by_vcpu_id[%d]=%p\n",
985 __func__
, cpu_state
->cpu_index
, cpu_state
);
986 state
->cpu_by_vcpu_id
[cpu_state
->cpu_index
] = cpu_state
;
988 qemu_set_fd_handler(evtchn_fd
, cpu_handle_ioreq
, NULL
, state
);
993 static void xen_hvm_change_state_handler(void *opaque
, int running
,
997 xen_main_loop_prepare((XenIOState
*)opaque
);
1001 static void xen_exit_notifier(Notifier
*n
, void *data
)
1003 XenIOState
*state
= container_of(n
, XenIOState
, exit
);
1005 xc_evtchn_close(state
->xce_handle
);
1006 xs_daemon_close(state
->xenstore
);
1009 static void xen_read_physmap(XenIOState
*state
)
1011 XenPhysmap
*physmap
= NULL
;
1012 unsigned int len
, num
, i
;
1013 char path
[80], *value
= NULL
;
1014 char **entries
= NULL
;
1016 snprintf(path
, sizeof(path
),
1017 "/local/domain/0/device-model/%d/physmap", xen_domid
);
1018 entries
= xs_directory(state
->xenstore
, 0, path
, &num
);
1019 if (entries
== NULL
)
1022 for (i
= 0; i
< num
; i
++) {
1023 physmap
= g_malloc(sizeof (XenPhysmap
));
1024 physmap
->phys_offset
= strtoull(entries
[i
], NULL
, 16);
1025 snprintf(path
, sizeof(path
),
1026 "/local/domain/0/device-model/%d/physmap/%s/start_addr",
1027 xen_domid
, entries
[i
]);
1028 value
= xs_read(state
->xenstore
, 0, path
, &len
);
1029 if (value
== NULL
) {
1033 physmap
->start_addr
= strtoull(value
, NULL
, 16);
1036 snprintf(path
, sizeof(path
),
1037 "/local/domain/0/device-model/%d/physmap/%s/size",
1038 xen_domid
, entries
[i
]);
1039 value
= xs_read(state
->xenstore
, 0, path
, &len
);
1040 if (value
== NULL
) {
1044 physmap
->size
= strtoull(value
, NULL
, 16);
1047 snprintf(path
, sizeof(path
),
1048 "/local/domain/0/device-model/%d/physmap/%s/name",
1049 xen_domid
, entries
[i
]);
1050 physmap
->name
= xs_read(state
->xenstore
, 0, path
, &len
);
1052 QLIST_INSERT_HEAD(&state
->physmap
, physmap
, list
);
1057 static void xen_wakeup_notifier(Notifier
*notifier
, void *data
)
1059 xc_set_hvm_param(xen_xc
, xen_domid
, HVM_PARAM_ACPI_S_STATE
, 0);
1062 /* return 0 means OK, or -1 means critical issue -- will exit(1) */
1063 int xen_hvm_init(ram_addr_t
*below_4g_mem_size
, ram_addr_t
*above_4g_mem_size
,
1064 MemoryRegion
**ram_memory
)
1067 unsigned long ioreq_pfn
;
1068 unsigned long bufioreq_evtchn
;
1071 state
= g_malloc0(sizeof (XenIOState
));
1073 state
->xce_handle
= xen_xc_evtchn_open(NULL
, 0);
1074 if (state
->xce_handle
== XC_HANDLER_INITIAL_VALUE
) {
1075 perror("xen: event channel open");
1079 state
->xenstore
= xs_daemon_open();
1080 if (state
->xenstore
== NULL
) {
1081 perror("xen: xenstore open");
1085 state
->exit
.notify
= xen_exit_notifier
;
1086 qemu_add_exit_notifier(&state
->exit
);
1088 state
->suspend
.notify
= xen_suspend_notifier
;
1089 qemu_register_suspend_notifier(&state
->suspend
);
1091 state
->wakeup
.notify
= xen_wakeup_notifier
;
1092 qemu_register_wakeup_notifier(&state
->wakeup
);
1094 xc_get_hvm_param(xen_xc
, xen_domid
, HVM_PARAM_IOREQ_PFN
, &ioreq_pfn
);
1095 DPRINTF("shared page at pfn %lx\n", ioreq_pfn
);
1096 state
->shared_page
= xc_map_foreign_range(xen_xc
, xen_domid
, XC_PAGE_SIZE
,
1097 PROT_READ
|PROT_WRITE
, ioreq_pfn
);
1098 if (state
->shared_page
== NULL
) {
1099 hw_error("map shared IO page returned error %d handle=" XC_INTERFACE_FMT
,
1103 rc
= xen_get_vmport_regs_pfn(xen_xc
, xen_domid
, &ioreq_pfn
);
1105 DPRINTF("shared vmport page at pfn %lx\n", ioreq_pfn
);
1106 state
->shared_vmport_page
=
1107 xc_map_foreign_range(xen_xc
, xen_domid
, XC_PAGE_SIZE
,
1108 PROT_READ
|PROT_WRITE
, ioreq_pfn
);
1109 if (state
->shared_vmport_page
== NULL
) {
1110 hw_error("map shared vmport IO page returned error %d handle="
1111 XC_INTERFACE_FMT
, errno
, xen_xc
);
1113 } else if (rc
!= -ENOSYS
) {
1114 hw_error("get vmport regs pfn returned error %d, rc=%d", errno
, rc
);
1117 xc_get_hvm_param(xen_xc
, xen_domid
, HVM_PARAM_BUFIOREQ_PFN
, &ioreq_pfn
);
1118 DPRINTF("buffered io page at pfn %lx\n", ioreq_pfn
);
1119 state
->buffered_io_page
= xc_map_foreign_range(xen_xc
, xen_domid
, XC_PAGE_SIZE
,
1120 PROT_READ
|PROT_WRITE
, ioreq_pfn
);
1121 if (state
->buffered_io_page
== NULL
) {
1122 hw_error("map buffered IO page returned error %d", errno
);
1125 /* Note: cpus is empty at this point in init */
1126 state
->cpu_by_vcpu_id
= g_malloc0(max_cpus
* sizeof(CPUState
*));
1128 state
->ioreq_local_port
= g_malloc0(max_cpus
* sizeof (evtchn_port_t
));
1130 /* FIXME: how about if we overflow the page here? */
1131 for (i
= 0; i
< max_cpus
; i
++) {
1132 rc
= xc_evtchn_bind_interdomain(state
->xce_handle
, xen_domid
,
1133 xen_vcpu_eport(state
->shared_page
, i
));
1135 fprintf(stderr
, "bind interdomain ioctl error %d\n", errno
);
1138 state
->ioreq_local_port
[i
] = rc
;
1141 rc
= xc_get_hvm_param(xen_xc
, xen_domid
, HVM_PARAM_BUFIOREQ_EVTCHN
,
1144 fprintf(stderr
, "failed to get HVM_PARAM_BUFIOREQ_EVTCHN\n");
1147 rc
= xc_evtchn_bind_interdomain(state
->xce_handle
, xen_domid
,
1148 (uint32_t)bufioreq_evtchn
);
1150 fprintf(stderr
, "bind interdomain ioctl error %d\n", errno
);
1153 state
->bufioreq_local_port
= rc
;
1155 /* Init RAM management */
1156 xen_map_cache_init(xen_phys_offset_to_gaddr
, state
);
1157 xen_ram_init(below_4g_mem_size
, above_4g_mem_size
, ram_size
, ram_memory
);
1159 qemu_add_vm_change_state_handler(xen_hvm_change_state_handler
, state
);
1161 state
->memory_listener
= xen_memory_listener
;
1162 QLIST_INIT(&state
->physmap
);
1163 memory_listener_register(&state
->memory_listener
, &address_space_memory
);
1164 state
->log_for_dirtybit
= NULL
;
1166 /* Initialize backend core & drivers */
1167 if (xen_be_init() != 0) {
1168 fprintf(stderr
, "%s: xen backend core setup failed\n", __FUNCTION__
);
1171 xen_be_register("console", &xen_console_ops
);
1172 xen_be_register("vkbd", &xen_kbdmouse_ops
);
1173 xen_be_register("qdisk", &xen_blkdev_ops
);
1174 xen_read_physmap(state
);
1179 void destroy_hvm_domain(bool reboot
)
1184 xc_handle
= xen_xc_interface_open(0, 0, 0);
1185 if (xc_handle
== XC_HANDLER_INITIAL_VALUE
) {
1186 fprintf(stderr
, "Cannot acquire xenctrl handle\n");
1188 sts
= xc_domain_shutdown(xc_handle
, xen_domid
,
1189 reboot
? SHUTDOWN_reboot
: SHUTDOWN_poweroff
);
1191 fprintf(stderr
, "xc_domain_shutdown failed to issue %s, "
1192 "sts %d, %s\n", reboot
? "reboot" : "poweroff",
1193 sts
, strerror(errno
));
1195 fprintf(stderr
, "Issued domain %d %s\n", xen_domid
,
1196 reboot
? "reboot" : "poweroff");
1198 xc_interface_close(xc_handle
);
1202 void xen_register_framebuffer(MemoryRegion
*mr
)
1207 void xen_shutdown_fatal_error(const char *fmt
, ...)
1212 vfprintf(stderr
, fmt
, ap
);
1214 fprintf(stderr
, "Will destroy the domain.\n");
1215 /* destroy the domain */
1216 qemu_system_shutdown_request();
1219 void xen_modified_memory(ram_addr_t start
, ram_addr_t length
)
1221 if (unlikely(xen_in_migration
)) {
1223 ram_addr_t start_pfn
, nb_pages
;
1226 length
= TARGET_PAGE_SIZE
;
1228 start_pfn
= start
>> TARGET_PAGE_BITS
;
1229 nb_pages
= ((start
+ length
+ TARGET_PAGE_SIZE
- 1) >> TARGET_PAGE_BITS
)
1231 rc
= xc_hvm_modified_memory(xen_xc
, xen_domid
, start_pfn
, nb_pages
);
1234 "%s failed for "RAM_ADDR_FMT
" ("RAM_ADDR_FMT
"): %i, %s\n",
1235 __func__
, start
, nb_pages
, rc
, strerror(-rc
));
1240 void qmp_xen_set_global_dirty_log(bool enable
, Error
**errp
)
1243 memory_global_dirty_log_start();
1245 memory_global_dirty_log_stop();