xen_shinfo_test.c 23.2 KB
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// SPDX-License-Identifier: GPL-2.0-only
/*
 * svm_vmcall_test
 *
 * Copyright © 2021 Amazon.com, Inc. or its affiliates.
 *
 * Xen shared_info / pvclock testing
 */

#include "test_util.h"
#include "kvm_util.h"
#include "processor.h"

#include <stdint.h>
#include <time.h>
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#include <sched.h>
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#include <signal.h>

#include <sys/eventfd.h>
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#define SHINFO_REGION_GVA	0xc0000000ULL
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#define SHINFO_REGION_GPA	0xc0000000ULL
#define SHINFO_REGION_SLOT	10

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#define DUMMY_REGION_GPA	(SHINFO_REGION_GPA + (2 * PAGE_SIZE))
#define DUMMY_REGION_SLOT	11

#define SHINFO_ADDR	(SHINFO_REGION_GPA)
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#define PVTIME_ADDR	(SHINFO_REGION_GPA + PAGE_SIZE)
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#define RUNSTATE_ADDR	(SHINFO_REGION_GPA + PAGE_SIZE + 0x20)
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#define VCPU_INFO_ADDR	(SHINFO_REGION_GPA + 0x40)
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#define SHINFO_VADDR	(SHINFO_REGION_GVA)
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#define RUNSTATE_VADDR	(SHINFO_REGION_GVA + PAGE_SIZE + 0x20)
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#define VCPU_INFO_VADDR	(SHINFO_REGION_GVA + 0x40)

#define EVTCHN_VECTOR	0x10
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#define EVTCHN_TEST1 15
#define EVTCHN_TEST2 66
#define EVTCHN_TIMER 13

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#define XEN_HYPERCALL_MSR	0x40000000

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#define MIN_STEAL_TIME		50000

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#define __HYPERVISOR_set_timer_op	15
#define __HYPERVISOR_sched_op		29
#define __HYPERVISOR_event_channel_op	32

#define SCHEDOP_poll			3

#define EVTCHNOP_send			4

#define EVTCHNSTAT_interdomain		2

struct evtchn_send {
	u32 port;
};

struct sched_poll {
	u32 *ports;
	unsigned int nr_ports;
	u64 timeout;
};

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struct pvclock_vcpu_time_info {
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	u32   version;
	u32   pad0;
	u64   tsc_timestamp;
	u64   system_time;
	u32   tsc_to_system_mul;
	s8    tsc_shift;
	u8    flags;
	u8    pad[2];
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} __attribute__((__packed__)); /* 32 bytes */

struct pvclock_wall_clock {
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	u32   version;
	u32   sec;
	u32   nsec;
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} __attribute__((__packed__));

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struct vcpu_runstate_info {
    uint32_t state;
    uint64_t state_entry_time;
    uint64_t time[4];
};

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struct arch_vcpu_info {
    unsigned long cr2;
    unsigned long pad; /* sizeof(vcpu_info_t) == 64 */
};

struct vcpu_info {
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	uint8_t evtchn_upcall_pending;
	uint8_t evtchn_upcall_mask;
	unsigned long evtchn_pending_sel;
	struct arch_vcpu_info arch;
	struct pvclock_vcpu_time_info time;
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}; /* 64 bytes (x86) */

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struct shared_info {
	struct vcpu_info vcpu_info[32];
	unsigned long evtchn_pending[64];
	unsigned long evtchn_mask[64];
	struct pvclock_wall_clock wc;
	uint32_t wc_sec_hi;
	/* arch_shared_info here */
};

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#define RUNSTATE_running  0
#define RUNSTATE_runnable 1
#define RUNSTATE_blocked  2
#define RUNSTATE_offline  3

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static const char *runstate_names[] = {
	"running",
	"runnable",
	"blocked",
	"offline"
};

struct {
	struct kvm_irq_routing info;
	struct kvm_irq_routing_entry entries[2];
} irq_routes;

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bool guest_saw_irq;

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static void evtchn_handler(struct ex_regs *regs)
{
	struct vcpu_info *vi = (void *)VCPU_INFO_VADDR;
	vi->evtchn_upcall_pending = 0;
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	vi->evtchn_pending_sel = 0;
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	guest_saw_irq = true;
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	GUEST_SYNC(0x20);
}

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static void guest_wait_for_irq(void)
{
	while (!guest_saw_irq)
		__asm__ __volatile__ ("rep nop" : : : "memory");
	guest_saw_irq = false;
}

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static void guest_code(void)
{
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	struct vcpu_runstate_info *rs = (void *)RUNSTATE_VADDR;

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	__asm__ __volatile__(
		"sti\n"
		"nop\n"
	);

	/* Trigger an interrupt injection */
	GUEST_SYNC(0);

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	guest_wait_for_irq();

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	/* Test having the host set runstates manually */
	GUEST_SYNC(RUNSTATE_runnable);
	GUEST_ASSERT(rs->time[RUNSTATE_runnable] != 0);
	GUEST_ASSERT(rs->state == 0);

	GUEST_SYNC(RUNSTATE_blocked);
	GUEST_ASSERT(rs->time[RUNSTATE_blocked] != 0);
	GUEST_ASSERT(rs->state == 0);

	GUEST_SYNC(RUNSTATE_offline);
	GUEST_ASSERT(rs->time[RUNSTATE_offline] != 0);
	GUEST_ASSERT(rs->state == 0);

	/* Test runstate time adjust */
	GUEST_SYNC(4);
	GUEST_ASSERT(rs->time[RUNSTATE_blocked] == 0x5a);
	GUEST_ASSERT(rs->time[RUNSTATE_offline] == 0x6b6b);

	/* Test runstate time set */
	GUEST_SYNC(5);
	GUEST_ASSERT(rs->state_entry_time >= 0x8000);
	GUEST_ASSERT(rs->time[RUNSTATE_runnable] == 0);
	GUEST_ASSERT(rs->time[RUNSTATE_blocked] == 0x6b6b);
	GUEST_ASSERT(rs->time[RUNSTATE_offline] == 0x5a);

	/* sched_yield() should result in some 'runnable' time */
	GUEST_SYNC(6);
	GUEST_ASSERT(rs->time[RUNSTATE_runnable] >= MIN_STEAL_TIME);

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	/* Attempt to deliver a *masked* interrupt */
	GUEST_SYNC(7);

	/* Wait until we see the bit set */
	struct shared_info *si = (void *)SHINFO_VADDR;
	while (!si->evtchn_pending[0])
		__asm__ __volatile__ ("rep nop" : : : "memory");

	/* Now deliver an *unmasked* interrupt */
	GUEST_SYNC(8);

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	guest_wait_for_irq();
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	/* Change memslots and deliver an interrupt */
	GUEST_SYNC(9);

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	guest_wait_for_irq();

	/* Deliver event channel with KVM_XEN_HVM_EVTCHN_SEND */
	GUEST_SYNC(10);

	guest_wait_for_irq();

	GUEST_SYNC(11);

	/* Our turn. Deliver event channel (to ourselves) with
	 * EVTCHNOP_send hypercall. */
	unsigned long rax;
	struct evtchn_send s = { .port = 127 };
	__asm__ __volatile__ ("vmcall" :
			      "=a" (rax) :
			      "a" (__HYPERVISOR_event_channel_op),
			      "D" (EVTCHNOP_send),
			      "S" (&s));

	GUEST_ASSERT(rax == 0);

	guest_wait_for_irq();

	GUEST_SYNC(12);

	/* Deliver "outbound" event channel to an eventfd which
	 * happens to be one of our own irqfds. */
	s.port = 197;
	__asm__ __volatile__ ("vmcall" :
			      "=a" (rax) :
			      "a" (__HYPERVISOR_event_channel_op),
			      "D" (EVTCHNOP_send),
			      "S" (&s));

	GUEST_ASSERT(rax == 0);

	guest_wait_for_irq();

	GUEST_SYNC(13);

	/* Set a timer 100ms in the future. */
	__asm__ __volatile__ ("vmcall" :
			      "=a" (rax) :
			      "a" (__HYPERVISOR_set_timer_op),
			      "D" (rs->state_entry_time + 100000000));
	GUEST_ASSERT(rax == 0);

	GUEST_SYNC(14);

	/* Now wait for the timer */
	guest_wait_for_irq();

	GUEST_SYNC(15);

	/* The host has 'restored' the timer. Just wait for it. */
	guest_wait_for_irq();

	GUEST_SYNC(16);

	/* Poll for an event channel port which is already set */
	u32 ports[1] = { EVTCHN_TIMER };
	struct sched_poll p = {
		.ports = ports,
		.nr_ports = 1,
		.timeout = 0,
	};

	__asm__ __volatile__ ("vmcall" :
			      "=a" (rax) :
			      "a" (__HYPERVISOR_sched_op),
			      "D" (SCHEDOP_poll),
			      "S" (&p));

	GUEST_ASSERT(rax == 0);

	GUEST_SYNC(17);

	/* Poll for an unset port and wait for the timeout. */
	p.timeout = 100000000;
	__asm__ __volatile__ ("vmcall" :
			      "=a" (rax) :
			      "a" (__HYPERVISOR_sched_op),
			      "D" (SCHEDOP_poll),
			      "S" (&p));

	GUEST_ASSERT(rax == 0);

	GUEST_SYNC(18);

	/* A timer will wake the masked port we're waiting on, while we poll */
	p.timeout = 0;
	__asm__ __volatile__ ("vmcall" :
			      "=a" (rax) :
			      "a" (__HYPERVISOR_sched_op),
			      "D" (SCHEDOP_poll),
			      "S" (&p));

	GUEST_ASSERT(rax == 0);

	GUEST_SYNC(19);

	/* A timer wake an *unmasked* port which should wake us with an
	 * actual interrupt, while we're polling on a different port. */
	ports[0]++;
	p.timeout = 0;
	__asm__ __volatile__ ("vmcall" :
			      "=a" (rax) :
			      "a" (__HYPERVISOR_sched_op),
			      "D" (SCHEDOP_poll),
			      "S" (&p));

	GUEST_ASSERT(rax == 0);

	guest_wait_for_irq();

	GUEST_SYNC(20);
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	/* Timer should have fired already */
	guest_wait_for_irq();

	GUEST_SYNC(21);
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}

static int cmp_timespec(struct timespec *a, struct timespec *b)
{
	if (a->tv_sec > b->tv_sec)
		return 1;
	else if (a->tv_sec < b->tv_sec)
		return -1;
	else if (a->tv_nsec > b->tv_nsec)
		return 1;
	else if (a->tv_nsec < b->tv_nsec)
		return -1;
	else
		return 0;
}
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static struct vcpu_info *vinfo;
static struct kvm_vcpu *vcpu;
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static void handle_alrm(int sig)
{
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	if (vinfo)
		printf("evtchn_upcall_pending 0x%x\n", vinfo->evtchn_upcall_pending);
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	vcpu_dump(stdout, vcpu, 0);
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	TEST_FAIL("IRQ delivery timed out");
}

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int main(int argc, char *argv[])
{
	struct timespec min_ts, max_ts, vm_ts;
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	struct kvm_vm *vm;
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	bool verbose;

	verbose = argc > 1 && (!strncmp(argv[1], "-v", 3) ||
			       !strncmp(argv[1], "--verbose", 10));
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	int xen_caps = kvm_check_cap(KVM_CAP_XEN_HVM);
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	TEST_REQUIRE(xen_caps & KVM_XEN_HVM_CONFIG_SHARED_INFO);
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	bool do_runstate_tests = !!(xen_caps & KVM_XEN_HVM_CONFIG_RUNSTATE);
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	bool do_eventfd_tests = !!(xen_caps & KVM_XEN_HVM_CONFIG_EVTCHN_2LEVEL);
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	bool do_evtchn_tests = do_eventfd_tests && !!(xen_caps & KVM_XEN_HVM_CONFIG_EVTCHN_SEND);
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	clock_gettime(CLOCK_REALTIME, &min_ts);

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	vm = vm_create_with_one_vcpu(&vcpu, guest_code);
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	/* Map a region for the shared_info page */
	vm_userspace_mem_region_add(vm, VM_MEM_SRC_ANONYMOUS,
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				    SHINFO_REGION_GPA, SHINFO_REGION_SLOT, 2, 0);
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	virt_map(vm, SHINFO_REGION_GVA, SHINFO_REGION_GPA, 2);
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	struct shared_info *shinfo = addr_gpa2hva(vm, SHINFO_VADDR);

	int zero_fd = open("/dev/zero", O_RDONLY);
	TEST_ASSERT(zero_fd != -1, "Failed to open /dev/zero");

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	struct kvm_xen_hvm_config hvmc = {
		.flags = KVM_XEN_HVM_CONFIG_INTERCEPT_HCALL,
		.msr = XEN_HYPERCALL_MSR,
	};
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	/* Let the kernel know that we *will* use it for sending all
	 * event channels, which lets it intercept SCHEDOP_poll */
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	if (do_evtchn_tests)
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		hvmc.flags |= KVM_XEN_HVM_CONFIG_EVTCHN_SEND;

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	vm_ioctl(vm, KVM_XEN_HVM_CONFIG, &hvmc);

	struct kvm_xen_hvm_attr lm = {
		.type = KVM_XEN_ATTR_TYPE_LONG_MODE,
		.u.long_mode = 1,
	};
	vm_ioctl(vm, KVM_XEN_HVM_SET_ATTR, &lm);

	struct kvm_xen_hvm_attr ha = {
		.type = KVM_XEN_ATTR_TYPE_SHARED_INFO,
		.u.shared_info.gfn = SHINFO_REGION_GPA / PAGE_SIZE,
	};
	vm_ioctl(vm, KVM_XEN_HVM_SET_ATTR, &ha);

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	/*
	 * Test what happens when the HVA of the shinfo page is remapped after
	 * the kernel has a reference to it. But make sure we copy the clock
	 * info over since that's only set at setup time, and we test it later.
	 */
	struct pvclock_wall_clock wc_copy = shinfo->wc;
	void *m = mmap(shinfo, PAGE_SIZE, PROT_READ|PROT_WRITE, MAP_FIXED|MAP_PRIVATE, zero_fd, 0);
	TEST_ASSERT(m == shinfo, "Failed to map /dev/zero over shared info");
	shinfo->wc = wc_copy;

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	struct kvm_xen_vcpu_attr vi = {
		.type = KVM_XEN_VCPU_ATTR_TYPE_VCPU_INFO,
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		.u.gpa = VCPU_INFO_ADDR,
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	};
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	vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &vi);
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	struct kvm_xen_vcpu_attr pvclock = {
		.type = KVM_XEN_VCPU_ATTR_TYPE_VCPU_TIME_INFO,
		.u.gpa = PVTIME_ADDR,
	};
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	vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &pvclock);
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	struct kvm_xen_hvm_attr vec = {
		.type = KVM_XEN_ATTR_TYPE_UPCALL_VECTOR,
		.u.vector = EVTCHN_VECTOR,
	};
	vm_ioctl(vm, KVM_XEN_HVM_SET_ATTR, &vec);

	vm_init_descriptor_tables(vm);
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	vcpu_init_descriptor_tables(vcpu);
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	vm_install_exception_handler(vm, EVTCHN_VECTOR, evtchn_handler);

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	if (do_runstate_tests) {
		struct kvm_xen_vcpu_attr st = {
			.type = KVM_XEN_VCPU_ATTR_TYPE_RUNSTATE_ADDR,
			.u.gpa = RUNSTATE_ADDR,
		};
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		vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &st);
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	}

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	int irq_fd[2] = { -1, -1 };

	if (do_eventfd_tests) {
		irq_fd[0] = eventfd(0, 0);
		irq_fd[1] = eventfd(0, 0);

		/* Unexpected, but not a KVM failure */
		if (irq_fd[0] == -1 || irq_fd[1] == -1)
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			do_evtchn_tests = do_eventfd_tests = false;
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	}

	if (do_eventfd_tests) {
		irq_routes.info.nr = 2;

		irq_routes.entries[0].gsi = 32;
		irq_routes.entries[0].type = KVM_IRQ_ROUTING_XEN_EVTCHN;
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		irq_routes.entries[0].u.xen_evtchn.port = EVTCHN_TEST1;
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		irq_routes.entries[0].u.xen_evtchn.vcpu = vcpu->id;
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		irq_routes.entries[0].u.xen_evtchn.priority = KVM_IRQ_ROUTING_XEN_EVTCHN_PRIO_2LEVEL;

		irq_routes.entries[1].gsi = 33;
		irq_routes.entries[1].type = KVM_IRQ_ROUTING_XEN_EVTCHN;
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		irq_routes.entries[1].u.xen_evtchn.port = EVTCHN_TEST2;
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		irq_routes.entries[1].u.xen_evtchn.vcpu = vcpu->id;
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		irq_routes.entries[1].u.xen_evtchn.priority = KVM_IRQ_ROUTING_XEN_EVTCHN_PRIO_2LEVEL;

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		vm_ioctl(vm, KVM_SET_GSI_ROUTING, &irq_routes.info);
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		struct kvm_irqfd ifd = { };

		ifd.fd = irq_fd[0];
		ifd.gsi = 32;
		vm_ioctl(vm, KVM_IRQFD, &ifd);

		ifd.fd = irq_fd[1];
		ifd.gsi = 33;
		vm_ioctl(vm, KVM_IRQFD, &ifd);

		struct sigaction sa = { };
		sa.sa_handler = handle_alrm;
		sigaction(SIGALRM, &sa, NULL);
	}

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	struct kvm_xen_vcpu_attr tmr = {
		.type = KVM_XEN_VCPU_ATTR_TYPE_TIMER,
		.u.timer.port = EVTCHN_TIMER,
		.u.timer.priority = KVM_IRQ_ROUTING_XEN_EVTCHN_PRIO_2LEVEL,
		.u.timer.expires_ns = 0
	};

	if (do_evtchn_tests) {
		struct kvm_xen_hvm_attr inj = {
			.type = KVM_XEN_ATTR_TYPE_EVTCHN,
			.u.evtchn.send_port = 127,
			.u.evtchn.type = EVTCHNSTAT_interdomain,
			.u.evtchn.flags = 0,
			.u.evtchn.deliver.port.port = EVTCHN_TEST1,
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			.u.evtchn.deliver.port.vcpu = vcpu->id + 1,
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			.u.evtchn.deliver.port.priority = KVM_IRQ_ROUTING_XEN_EVTCHN_PRIO_2LEVEL,
		};
		vm_ioctl(vm, KVM_XEN_HVM_SET_ATTR, &inj);

		/* Test migration to a different vCPU */
		inj.u.evtchn.flags = KVM_XEN_EVTCHN_UPDATE;
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		inj.u.evtchn.deliver.port.vcpu = vcpu->id;
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		vm_ioctl(vm, KVM_XEN_HVM_SET_ATTR, &inj);

		inj.u.evtchn.send_port = 197;
		inj.u.evtchn.deliver.eventfd.port = 0;
		inj.u.evtchn.deliver.eventfd.fd = irq_fd[1];
		inj.u.evtchn.flags = 0;
		vm_ioctl(vm, KVM_XEN_HVM_SET_ATTR, &inj);

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		vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &tmr);
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	}
	vinfo = addr_gpa2hva(vm, VCPU_INFO_VADDR);
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	vinfo->evtchn_upcall_pending = 0;

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	struct vcpu_runstate_info *rs = addr_gpa2hva(vm, RUNSTATE_ADDR);
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	rs->state = 0x5a;

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	bool evtchn_irq_expected = false;

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	for (;;) {
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		volatile struct kvm_run *run = vcpu->run;
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		struct ucall uc;

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		vcpu_run(vcpu);
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		TEST_ASSERT(run->exit_reason == KVM_EXIT_IO,
			    "Got exit_reason other than KVM_EXIT_IO: %u (%s)\n",
			    run->exit_reason,
			    exit_reason_str(run->exit_reason));

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		switch (get_ucall(vcpu, &uc)) {
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		case UCALL_ABORT:
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			REPORT_GUEST_ASSERT(uc);
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			/* NOT REACHED */
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		case UCALL_SYNC: {
			struct kvm_xen_vcpu_attr rst;
			long rundelay;

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			if (do_runstate_tests)
				TEST_ASSERT(rs->state_entry_time == rs->time[0] +
					    rs->time[1] + rs->time[2] + rs->time[3],
					    "runstate times don't add up");
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			switch (uc.args[1]) {
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			case 0:
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				if (verbose)
					printf("Delivering evtchn upcall\n");
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				evtchn_irq_expected = true;
				vinfo->evtchn_upcall_pending = 1;
				break;

			case RUNSTATE_runnable...RUNSTATE_offline:
				TEST_ASSERT(!evtchn_irq_expected, "Event channel IRQ not seen");
				if (!do_runstate_tests)
					goto done;
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				if (verbose)
					printf("Testing runstate %s\n", runstate_names[uc.args[1]]);
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				rst.type = KVM_XEN_VCPU_ATTR_TYPE_RUNSTATE_CURRENT;
				rst.u.runstate.state = uc.args[1];
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				vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &rst);
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				break;
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			case 4:
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				if (verbose)
					printf("Testing RUNSTATE_ADJUST\n");
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				rst.type = KVM_XEN_VCPU_ATTR_TYPE_RUNSTATE_ADJUST;
				memset(&rst.u, 0, sizeof(rst.u));
				rst.u.runstate.state = (uint64_t)-1;
				rst.u.runstate.time_blocked =
					0x5a - rs->time[RUNSTATE_blocked];
				rst.u.runstate.time_offline =
					0x6b6b - rs->time[RUNSTATE_offline];
				rst.u.runstate.time_runnable = -rst.u.runstate.time_blocked -
					rst.u.runstate.time_offline;
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				vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &rst);
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				break;

			case 5:
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				if (verbose)
					printf("Testing RUNSTATE_DATA\n");
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				rst.type = KVM_XEN_VCPU_ATTR_TYPE_RUNSTATE_DATA;
				memset(&rst.u, 0, sizeof(rst.u));
				rst.u.runstate.state = RUNSTATE_running;
				rst.u.runstate.state_entry_time = 0x6b6b + 0x5a;
				rst.u.runstate.time_blocked = 0x6b6b;
				rst.u.runstate.time_offline = 0x5a;
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				vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &rst);
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				break;
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			case 6:
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				if (verbose)
					printf("Testing steal time\n");
605 606 607 608 609 610
				/* Yield until scheduler delay exceeds target */
				rundelay = get_run_delay() + MIN_STEAL_TIME;
				do {
					sched_yield();
				} while (get_run_delay() < rundelay);
				break;
611 612 613 614 615 616

			case 7:
				if (!do_eventfd_tests)
					goto done;
				if (verbose)
					printf("Testing masked event channel\n");
617
				shinfo->evtchn_mask[0] = 1UL << EVTCHN_TEST1;
618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633
				eventfd_write(irq_fd[0], 1UL);
				alarm(1);
				break;

			case 8:
				if (verbose)
					printf("Testing unmasked event channel\n");
				/* Unmask that, but deliver the other one */
				shinfo->evtchn_pending[0] = 0;
				shinfo->evtchn_mask[0] = 0;
				eventfd_write(irq_fd[1], 1UL);
				evtchn_irq_expected = true;
				alarm(1);
				break;

			case 9:
634 635 636
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
				shinfo->evtchn_pending[1] = 0;
637 638 639 640 641 642 643 644 645
				if (verbose)
					printf("Testing event channel after memslot change\n");
				vm_userspace_mem_region_add(vm, VM_MEM_SRC_ANONYMOUS,
							    DUMMY_REGION_GPA, DUMMY_REGION_SLOT, 1, 0);
				eventfd_write(irq_fd[0], 1UL);
				evtchn_irq_expected = true;
				alarm(1);
				break;

646 647 648 649 650 651 652 653 654 655 656 657
			case 10:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
				if (!do_evtchn_tests)
					goto done;

				shinfo->evtchn_pending[0] = 0;
				if (verbose)
					printf("Testing injection with KVM_XEN_HVM_EVTCHN_SEND\n");

				struct kvm_irq_routing_xen_evtchn e;
				e.port = EVTCHN_TEST2;
658
				e.vcpu = vcpu->id;
659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698
				e.priority = KVM_IRQ_ROUTING_XEN_EVTCHN_PRIO_2LEVEL;

				vm_ioctl(vm, KVM_XEN_HVM_EVTCHN_SEND, &e);
				evtchn_irq_expected = true;
				alarm(1);
				break;

			case 11:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
				shinfo->evtchn_pending[1] = 0;

				if (verbose)
					printf("Testing guest EVTCHNOP_send direct to evtchn\n");
				evtchn_irq_expected = true;
				alarm(1);
				break;

			case 12:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
				shinfo->evtchn_pending[0] = 0;

				if (verbose)
					printf("Testing guest EVTCHNOP_send to eventfd\n");
				evtchn_irq_expected = true;
				alarm(1);
				break;

			case 13:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
				shinfo->evtchn_pending[1] = 0;

				if (verbose)
					printf("Testing guest oneshot timer\n");
				break;

			case 14:
				memset(&tmr, 0, sizeof(tmr));
699
				tmr.type = KVM_XEN_VCPU_ATTR_TYPE_TIMER;
700
				vcpu_ioctl(vcpu, KVM_XEN_VCPU_GET_ATTR, &tmr);
701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718
				TEST_ASSERT(tmr.u.timer.port == EVTCHN_TIMER,
					    "Timer port not returned");
				TEST_ASSERT(tmr.u.timer.priority == KVM_IRQ_ROUTING_XEN_EVTCHN_PRIO_2LEVEL,
					    "Timer priority not returned");
				TEST_ASSERT(tmr.u.timer.expires_ns > rs->state_entry_time,
					    "Timer expiry not returned");
				evtchn_irq_expected = true;
				alarm(1);
				break;

			case 15:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
				shinfo->evtchn_pending[0] = 0;

				if (verbose)
					printf("Testing restored oneshot timer\n");

719
				tmr.u.timer.expires_ns = rs->state_entry_time + 100000000;
720
				vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &tmr);
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				evtchn_irq_expected = true;
				alarm(1);
				break;

			case 16:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");

				if (verbose)
					printf("Testing SCHEDOP_poll with already pending event\n");
				shinfo->evtchn_pending[0] = shinfo->evtchn_mask[0] = 1UL << EVTCHN_TIMER;
				alarm(1);
				break;

			case 17:
				if (verbose)
					printf("Testing SCHEDOP_poll timeout\n");
				shinfo->evtchn_pending[0] = 0;
				alarm(1);
				break;

			case 18:
				if (verbose)
					printf("Testing SCHEDOP_poll wake on masked event\n");

746
				tmr.u.timer.expires_ns = rs->state_entry_time + 100000000;
747
				vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &tmr);
748
				alarm(1);
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				break;

			case 19:
				shinfo->evtchn_pending[0] = shinfo->evtchn_mask[0] = 0;
				if (verbose)
					printf("Testing SCHEDOP_poll wake on unmasked event\n");

				evtchn_irq_expected = true;
757
				tmr.u.timer.expires_ns = rs->state_entry_time + 100000000;
758
				vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &tmr);
759 760 761

				/* Read it back and check the pending time is reported correctly */
				tmr.u.timer.expires_ns = 0;
762
				vcpu_ioctl(vcpu, KVM_XEN_VCPU_GET_ATTR, &tmr);
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				TEST_ASSERT(tmr.u.timer.expires_ns == rs->state_entry_time + 100000000,
					    "Timer not reported pending");
				alarm(1);
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				break;

			case 20:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
771
				/* Read timer and check it is no longer pending */
772
				vcpu_ioctl(vcpu, KVM_XEN_VCPU_GET_ATTR, &tmr);
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				TEST_ASSERT(!tmr.u.timer.expires_ns, "Timer still reported pending");

				shinfo->evtchn_pending[0] = 0;
				if (verbose)
					printf("Testing timer in the past\n");

				evtchn_irq_expected = true;
				tmr.u.timer.expires_ns = rs->state_entry_time - 100000000ULL;
781
				vcpu_ioctl(vcpu, KVM_XEN_VCPU_SET_ATTR, &tmr);
782 783 784 785 786 787
				alarm(1);
				break;

			case 21:
				TEST_ASSERT(!evtchn_irq_expected,
					    "Expected event channel IRQ but it didn't happen");
788 789
				goto done;

790 791 792 793
			case 0x20:
				TEST_ASSERT(evtchn_irq_expected, "Unexpected event channel IRQ");
				evtchn_irq_expected = false;
				break;
794
			}
795
			break;
796
		}
797 798 799 800 801 802 803 804
		case UCALL_DONE:
			goto done;
		default:
			TEST_FAIL("Unknown ucall 0x%lx.", uc.cmd);
		}
	}

 done:
805
	alarm(0);
806 807 808 809 810 811 812 813 814 815
	clock_gettime(CLOCK_REALTIME, &max_ts);

	/*
	 * Just a *really* basic check that things are being put in the
	 * right place. The actual calculations are much the same for
	 * Xen as they are for the KVM variants, so no need to check.
	 */
	struct pvclock_wall_clock *wc;
	struct pvclock_vcpu_time_info *ti, *ti2;

816 817 818
	wc = addr_gpa2hva(vm, SHINFO_REGION_GPA + 0xc00);
	ti = addr_gpa2hva(vm, SHINFO_REGION_GPA + 0x40 + 0x20);
	ti2 = addr_gpa2hva(vm, PVTIME_ADDR);
819

820 821 822 823 824 825 826 827 828 829
	if (verbose) {
		printf("Wall clock (v %d) %d.%09d\n", wc->version, wc->sec, wc->nsec);
		printf("Time info 1: v %u tsc %" PRIu64 " time %" PRIu64 " mul %u shift %u flags %x\n",
		       ti->version, ti->tsc_timestamp, ti->system_time, ti->tsc_to_system_mul,
		       ti->tsc_shift, ti->flags);
		printf("Time info 2: v %u tsc %" PRIu64 " time %" PRIu64 " mul %u shift %u flags %x\n",
		       ti2->version, ti2->tsc_timestamp, ti2->system_time, ti2->tsc_to_system_mul,
		       ti2->tsc_shift, ti2->flags);
	}

830 831
	vm_ts.tv_sec = wc->sec;
	vm_ts.tv_nsec = wc->nsec;
832
	TEST_ASSERT(wc->version && !(wc->version & 1),
833 834 835 836 837 838 839 840 841
		    "Bad wallclock version %x", wc->version);
	TEST_ASSERT(cmp_timespec(&min_ts, &vm_ts) <= 0, "VM time too old");
	TEST_ASSERT(cmp_timespec(&max_ts, &vm_ts) >= 0, "VM time too new");

	TEST_ASSERT(ti->version && !(ti->version & 1),
		    "Bad time_info version %x", ti->version);
	TEST_ASSERT(ti2->version && !(ti2->version & 1),
		    "Bad time_info version %x", ti->version);

842 843 844 845 846 847 848 849 850
	if (do_runstate_tests) {
		/*
		 * Fetch runstate and check sanity. Strictly speaking in the
		 * general case we might not expect the numbers to be identical
		 * but in this case we know we aren't running the vCPU any more.
		 */
		struct kvm_xen_vcpu_attr rst = {
			.type = KVM_XEN_VCPU_ATTR_TYPE_RUNSTATE_DATA,
		};
851
		vcpu_ioctl(vcpu, KVM_XEN_VCPU_GET_ATTR, &rst);
852

853 854 855 856 857 858 859 860 861
		if (verbose) {
			printf("Runstate: %s(%d), entry %" PRIu64 " ns\n",
			       rs->state <= RUNSTATE_offline ? runstate_names[rs->state] : "unknown",
			       rs->state, rs->state_entry_time);
			for (int i = RUNSTATE_running; i <= RUNSTATE_offline; i++) {
				printf("State %s: %" PRIu64 " ns\n",
				       runstate_names[i], rs->time[i]);
			}
		}
862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877
		TEST_ASSERT(rs->state == rst.u.runstate.state, "Runstate mismatch");
		TEST_ASSERT(rs->state_entry_time == rst.u.runstate.state_entry_time,
			    "State entry time mismatch");
		TEST_ASSERT(rs->time[RUNSTATE_running] == rst.u.runstate.time_running,
			    "Running time mismatch");
		TEST_ASSERT(rs->time[RUNSTATE_runnable] == rst.u.runstate.time_runnable,
			    "Runnable time mismatch");
		TEST_ASSERT(rs->time[RUNSTATE_blocked] == rst.u.runstate.time_blocked,
			    "Blocked time mismatch");
		TEST_ASSERT(rs->time[RUNSTATE_offline] == rst.u.runstate.time_offline,
			    "Offline time mismatch");

		TEST_ASSERT(rs->state_entry_time == rs->time[0] +
			    rs->time[1] + rs->time[2] + rs->time[3],
			    "runstate times don't add up");
	}
878 879 880
	kvm_vm_free(vm);
	return 0;
}