#include "opt_ddb.h"
#include "opt_inet.h"
#include "opt_msgbuf.h"
#include "opt_swap.h"
#include <sys/param.h>
#include <sys/systm.h>
#include <sys/sysmsg.h>
#include <sys/signalvar.h>
#include <sys/kernel.h>
#include <sys/linker.h>
#include <sys/malloc.h>
#include <sys/proc.h>
#include <sys/buf.h>
#include <sys/reboot.h>
#include <sys/mbuf.h>
#include <sys/msgbuf.h>
#include <sys/sysent.h>
#include <sys/sysctl.h>
#include <sys/vmmeter.h>
#include <sys/bus.h>
#include <sys/usched.h>
#include <sys/reg.h>
#include <vm/vm.h>
#include <vm/vm_param.h>
#include <sys/lock.h>
#include <vm/vm_kern.h>
#include <vm/vm_object.h>
#include <vm/vm_page.h>
#include <vm/vm_map.h>
#include <vm/vm_pager.h>
#include <vm/vm_extern.h>
#include <sys/thread2.h>
#include <sys/exec.h>
#include <sys/cons.h>
#include <ddb/ddb.h>
#include <machine/cpu.h>
#include <machine/clock.h>
#include <machine/specialreg.h>
#include <machine/md_var.h>
#include <machine/pcb.h>
#include <machine/pcb_ext.h>
#include <machine/globaldata.h>
#include <machine/smp.h>
#include <machine/cputypes.h>
#include <bus/isa/rtc.h>
#include <sys/random.h>
#include <sys/ptrace.h>
#include <machine/sigframe.h>
#include <unistd.h>
extern void dblfault_handler (void);
static void set_fpregs_xmm (struct save87 *, struct savexmm *);
static void fill_fpregs_xmm (struct savexmm *, struct save87 *);
int64_t tsc_offsets[MAXCPU];
#if defined(SWTCH_OPTIM_STATS)
extern int swtch_optim_stats;
SYSCTL_INT(_debug, OID_AUTO, swtch_optim_stats,
CTLFLAG_RD, &swtch_optim_stats, 0, "");
SYSCTL_INT(_debug, OID_AUTO, tlb_flush_count,
CTLFLAG_RD, &tlb_flush_count, 0, "");
#endif
static int
sysctl_hw_physmem(SYSCTL_HANDLER_ARGS)
{
u_long pmem = ctob(physmem);
int error;
error = sysctl_handle_long(oidp, &pmem, 0, req);
return (error);
}
SYSCTL_PROC(_hw, HW_PHYSMEM, physmem, CTLTYPE_ULONG|CTLFLAG_RD,
0, 0, sysctl_hw_physmem, "LU", "Total system memory in bytes (number of pages * page size)");
static int
sysctl_hw_usermem(SYSCTL_HANDLER_ARGS)
{
u_long usermem = ctob(Maxmem - vmstats.v_wire_count);
int error;
error = sysctl_handle_long(oidp, &usermem, 0, req);
return (error);
}
SYSCTL_PROC(_hw, HW_USERMEM, usermem, CTLTYPE_ULONG|CTLFLAG_RD,
0, 0, sysctl_hw_usermem, "LU", "");
SYSCTL_ULONG(_hw, OID_AUTO, availpages, CTLFLAG_RD, &Maxmem, 0, "");
void
sendsig(sig_t catcher, int sig, sigset_t *mask, u_long code)
{
struct lwp *lp = curthread->td_lwp;
struct proc *p = lp->lwp_proc;
struct trapframe *regs;
struct sigacts *psp = p->p_sigacts;
struct sigframe sf, *sfp;
int oonstack;
char *sp;
regs = lp->lwp_md.md_regs;
oonstack = (lp->lwp_sigstk.ss_flags & SS_ONSTACK) ? 1 : 0;
bzero(&sf, sizeof(struct sigframe));
sf.sf_uc.uc_sigmask = *mask;
sf.sf_uc.uc_stack = lp->lwp_sigstk;
sf.sf_uc.uc_mcontext.mc_onstack = oonstack;
KKASSERT(__offsetof(struct trapframe, tf_rdi) == 0);
_bcopy(regs, &sf.sf_uc.uc_mcontext.mc_rdi, sizeof(struct trapframe));
sf.sf_uc.uc_mcontext.mc_len = sizeof(sf.sf_uc.uc_mcontext);
if ((lp->lwp_flags & LWP_ALTSTACK) != 0 && !oonstack &&
SIGISMEMBER(psp->ps_sigonstack, sig)) {
sp = (char *)lp->lwp_sigstk.ss_sp + lp->lwp_sigstk.ss_size -
sizeof(struct sigframe);
lp->lwp_sigstk.ss_flags |= SS_ONSTACK;
} else {
sp = (char *)regs->tf_rsp - sizeof(struct sigframe) - 128;
}
sfp = (struct sigframe *)((intptr_t)sp & ~0xFUL);
if (p->p_sysent->sv_sigtbl) {
if (sig <= p->p_sysent->sv_sigsize)
sig = p->p_sysent->sv_sigtbl[_SIG_IDX(sig)];
}
regs->tf_rdi = sig;
regs->tf_rdx = (register_t)&sfp->sf_uc;
if (SIGISMEMBER(psp->ps_siginfo, sig)) {
regs->tf_rsi = (register_t)&sfp->sf_si;
regs->tf_rcx = (register_t)regs->tf_err;
sf.sf_ahu.sf_action = (__siginfohandler_t *)catcher;
sf.sf_si.si_signo = sig;
sf.sf_si.si_pid = psp->ps_frominfo[sig].pid;
sf.sf_si.si_uid = psp->ps_frominfo[sig].uid;
sf.sf_si.si_code = code;
sf.sf_si.si_addr = (void *)regs->tf_addr;
} else {
regs->tf_rsi = (register_t)code;
regs->tf_rcx = (register_t)regs->tf_addr;
sf.sf_ahu.sf_handler = catcher;
}
#if 0
if (regs->tf_eflags & PSL_VM) {
struct trapframe_vm86 *tf = (struct trapframe_vm86 *)regs;
struct vm86_kernel *vm86 = &lp->lwp_thread->td_pcb->pcb_ext->ext_vm86;
sf.sf_uc.uc_mcontext.mc_gs = tf->tf_vm86_gs;
sf.sf_uc.uc_mcontext.mc_fs = tf->tf_vm86_fs;
sf.sf_uc.uc_mcontext.mc_es = tf->tf_vm86_es;
sf.sf_uc.uc_mcontext.mc_ds = tf->tf_vm86_ds;
if (vm86->vm86_has_vme == 0)
sf.sf_uc.uc_mcontext.mc_eflags =
(tf->tf_eflags & ~(PSL_VIF | PSL_VIP)) |
(vm86->vm86_eflags & (PSL_VIF | PSL_VIP));
tf->tf_eflags &= ~(PSL_VM | PSL_NT | PSL_VIF | PSL_VIP);
}
#endif
npxpush(&sf.sf_uc.uc_mcontext);
if (copyout(&sf, sfp, sizeof(struct sigframe)) != 0) {
sigexit(lp, SIGILL);
}
regs->tf_rsp = (register_t)sfp;
regs->tf_rip = trunc_page64(PS_STRINGS - *(p->p_sysent->sv_szsigcode));
regs->tf_rip -= SZSIGCODE_EXTRA_BYTES;
regs->tf_rflags &= ~(PSL_T|PSL_D);
regs->tf_cs = _ucodesel;
regs->tf_ss = _udatasel;
}
int
cpu_sanitize_frame(struct trapframe *frame)
{
frame->tf_cs = _ucodesel;
frame->tf_ss = _udatasel;
frame->tf_rflags &= (PSL_RF | PSL_USERCHANGE | PSL_VM_UNSUPP);
frame->tf_rflags |= PSL_RESERVED_DEFAULT | PSL_I;
return(0);
}
int
cpu_sanitize_tls(struct savetls *tls)
{
return(0);
}
#define EFL_SECURE(ef, oef) ((((ef) ^ (oef)) & ~PSL_USERCHANGE) == 0)
#define CS_SECURE(cs) (ISPL(cs) == SEL_UPL)
int
sys_sigreturn(struct sysmsg *sysmsg, const struct sigreturn_args *uap)
{
struct lwp *lp = curthread->td_lwp;
struct trapframe *regs;
ucontext_t uc;
ucontext_t *ucp;
register_t rflags;
int cs;
int error;
regs = lp->lwp_md.md_regs;
error = copyin(uap->sigcntxp, &uc, sizeof(uc));
if (error)
return (error);
ucp = &uc;
rflags = ucp->uc_mcontext.mc_rflags;
rflags &= ~PSL_VM_UNSUPP;
#if 0
if (eflags & PSL_VM) {
struct trapframe_vm86 *tf = (struct trapframe_vm86 *)regs;
struct vm86_kernel *vm86;
if (lp->lwp_thread->td_pcb->pcb_ext == 0)
return (EINVAL);
vm86 = &lp->lwp_thread->td_pcb->pcb_ext->ext_vm86;
if (vm86->vm86_inited == 0)
return (EINVAL);
if ((eflags & PSL_VIP) && (eflags & PSL_VIF))
trapsignal(lp->lwp_proc, SIGBUS, 0);
if (vm86->vm86_has_vme) {
eflags = (tf->tf_eflags & ~VME_USERCHANGE) |
(eflags & VME_USERCHANGE) | PSL_VM;
} else {
vm86->vm86_eflags = eflags;
eflags = (tf->tf_eflags & ~VM_USERCHANGE) | (eflags & VM_USERCHANGE) | PSL_VM;
}
bcopy(&ucp.uc_mcontext.mc_gs, tf, sizeof(struct trapframe));
tf->tf_eflags = eflags;
tf->tf_vm86_ds = tf->tf_ds;
tf->tf_vm86_es = tf->tf_es;
tf->tf_vm86_fs = tf->tf_fs;
tf->tf_vm86_gs = tf->tf_gs;
tf->tf_ds = _udatasel;
tf->tf_es = _udatasel;
#if 0
tf->tf_fs = _udatasel;
tf->tf_gs = _udatasel;
#endif
} else
#endif
{
if (!EFL_SECURE(rflags & ~PSL_RF, regs->tf_rflags & ~PSL_RF)) {
kprintf("sigreturn: rflags = 0x%lx\n", (long)rflags);
return(EINVAL);
}
cs = ucp->uc_mcontext.mc_cs;
if (!CS_SECURE(cs)) {
kprintf("sigreturn: cs = 0x%x\n", cs);
trapsignal(lp, SIGBUS, T_PROTFLT);
return(EINVAL);
}
bcopy(&ucp->uc_mcontext.mc_rdi, regs, sizeof(struct trapframe));
}
npxpop(&ucp->uc_mcontext);
if (ucp->uc_mcontext.mc_onstack & 1)
lp->lwp_sigstk.ss_flags |= SS_ONSTACK;
else
lp->lwp_sigstk.ss_flags &= ~SS_ONSTACK;
lp->lwp_sigmask = ucp->uc_sigmask;
SIG_CANTMASK(lp->lwp_sigmask);
return(EJUSTRETURN);
}
__read_mostly static int cpu_idle_hlt = 1;
SYSCTL_INT(_machdep, OID_AUTO, cpu_idle_hlt, CTLFLAG_RW,
&cpu_idle_hlt, 0, "Idle loop HLT enable");
void
cpu_idle(void)
{
struct thread *td = curthread;
struct mdglobaldata *gd = mdcpu;
int reqflags;
crit_exit();
KKASSERT(td->td_critcount == 0);
cpu_enable_intr();
for (;;) {
lwkt_switch();
if (cpu_idle_hlt &&
(td->td_gd->gd_reqflags & RQF_IDLECHECK_WK_MASK) == 0) {
splz();
if ((td->td_gd->gd_reqflags & RQF_IDLECHECK_WK_MASK) == 0) {
#ifdef DEBUGIDLE
struct timeval tv1, tv2;
gettimeofday(&tv1, NULL);
#endif
reqflags = gd->mi.gd_reqflags &
~RQF_IDLECHECK_WK_MASK;
KKASSERT(gd->mi.gd_processing_ipiq == 0);
umtx_sleep(&gd->mi.gd_reqflags, reqflags,
1000000);
#ifdef DEBUGIDLE
gettimeofday(&tv2, NULL);
if (tv2.tv_usec - tv1.tv_usec +
(tv2.tv_sec - tv1.tv_sec) * 1000000
> 500000) {
kprintf("cpu %d idlelock %08x %08x\n",
gd->mi.gd_cpuid,
gd->mi.gd_reqflags,
gd->gd_fpending);
}
#endif
}
} else {
splz();
__asm __volatile("pause");
}
}
}
void
cpu_spinlock_contested(void)
{
cpu_pause();
}
void
exec_setregs(u_long entry, u_long stack, u_long ps_strings)
{
struct thread *td = curthread;
struct lwp *lp = td->td_lwp;
struct pcb *pcb = td->td_pcb;
struct trapframe *regs = lp->lwp_md.md_regs;
user_ldt_free(pcb);
bzero((char *)regs, sizeof(struct trapframe));
regs->tf_rip = entry;
regs->tf_rsp = ((stack - 8) & ~0xFul) + 8;
regs->tf_rdi = stack;
regs->tf_rflags = PSL_USER | (regs->tf_rflags & PSL_T);
regs->tf_ss = _udatasel;
regs->tf_cs = _ucodesel;
regs->tf_rbx = ps_strings;
if (pcb->pcb_flags & PCB_DBREGS) {
pcb->pcb_dr0 = 0;
pcb->pcb_dr1 = 0;
pcb->pcb_dr2 = 0;
pcb->pcb_dr3 = 0;
pcb->pcb_dr6 = 0;
pcb->pcb_dr7 = 0;
if (pcb == td->td_pcb) {
reset_dbregs();
}
pcb->pcb_flags &= ~PCB_DBREGS;
}
pcb->pcb_flags &= ~FP_SOFTFP;
crit_enter();
#if 0
load_cr0(rcr0() | CR0_MP);
#endif
pcb->pcb_fsbase = 0;
pcb->pcb_gsbase = 0;
npxinit();
crit_exit();
}
void
cpu_setregs(void)
{
#if 0
unsigned int cr0;
cr0 = rcr0();
cr0 |= CR0_NE;
cr0 |= CR0_MP | CR0_TS;
cr0 |= CR0_WP | CR0_AM;
load_cr0(cr0);
load_gs(_udatasel);
#endif
}
static int
sysctl_machdep_adjkerntz(SYSCTL_HANDLER_ARGS)
{
int error;
error = sysctl_handle_int(oidp, oidp->oid_arg1, oidp->oid_arg2,
req);
if (!error && req->newptr)
resettodr();
return (error);
}
SYSCTL_PROC(_machdep, CPU_ADJKERNTZ, adjkerntz, CTLTYPE_INT|CTLFLAG_RW,
&adjkerntz, 0, sysctl_machdep_adjkerntz, "I", "");
extern struct user *proc0paddr;
#if 0
extern inthand_t
IDTVEC(div), IDTVEC(dbg), IDTVEC(nmi), IDTVEC(bpt), IDTVEC(ofl),
IDTVEC(bnd), IDTVEC(ill), IDTVEC(dna), IDTVEC(fpusegm),
IDTVEC(tss), IDTVEC(missing), IDTVEC(stk), IDTVEC(prot),
IDTVEC(page), IDTVEC(mchk), IDTVEC(rsvd), IDTVEC(fpu), IDTVEC(align),
IDTVEC(xmm), IDTVEC(dblfault),
IDTVEC(fast_syscall), IDTVEC(fast_syscall32);
#endif
int
ptrace_set_pc(struct lwp *lp, unsigned long addr)
{
lp->lwp_md.md_regs->tf_rip = addr;
return (0);
}
int
ptrace_single_step(struct lwp *lp)
{
lp->lwp_md.md_regs->tf_rflags |= PSL_T;
return (0);
}
int
fill_regs(struct lwp *lp, struct reg *regs)
{
struct trapframe *tp;
if ((tp = lp->lwp_md.md_regs) == NULL)
return EINVAL;
bcopy(&tp->tf_rdi, ®s->r_rdi, sizeof(*regs));
return (0);
}
int
set_regs(struct lwp *lp, struct reg *regs)
{
struct trapframe *tp;
tp = lp->lwp_md.md_regs;
if (!EFL_SECURE(regs->r_rflags, tp->tf_rflags) ||
!CS_SECURE(regs->r_cs))
return (EINVAL);
bcopy(®s->r_rdi, &tp->tf_rdi, sizeof(*regs));
return (0);
}
static void
fill_fpregs_xmm(struct savexmm *sv_xmm, struct save87 *sv_87)
{
struct env87 *penv_87 = &sv_87->sv_env;
struct envxmm *penv_xmm = &sv_xmm->sv_env;
int i;
penv_87->en_cw = penv_xmm->en_cw;
penv_87->en_sw = penv_xmm->en_sw;
penv_87->en_tw = penv_xmm->en_tw;
penv_87->en_fip = penv_xmm->en_fip;
penv_87->en_fcs = penv_xmm->en_fcs;
penv_87->en_opcode = penv_xmm->en_opcode;
penv_87->en_foo = penv_xmm->en_foo;
penv_87->en_fos = penv_xmm->en_fos;
for (i = 0; i < 8; ++i)
sv_87->sv_ac[i] = sv_xmm->sv_fp[i].fp_acc;
}
static void
set_fpregs_xmm(struct save87 *sv_87, struct savexmm *sv_xmm)
{
struct env87 *penv_87 = &sv_87->sv_env;
struct envxmm *penv_xmm = &sv_xmm->sv_env;
int i;
penv_xmm->en_cw = penv_87->en_cw;
penv_xmm->en_sw = penv_87->en_sw;
penv_xmm->en_tw = penv_87->en_tw;
penv_xmm->en_fip = penv_87->en_fip;
penv_xmm->en_fcs = penv_87->en_fcs;
penv_xmm->en_opcode = penv_87->en_opcode;
penv_xmm->en_foo = penv_87->en_foo;
penv_xmm->en_fos = penv_87->en_fos;
for (i = 0; i < 8; ++i)
sv_xmm->sv_fp[i].fp_acc = sv_87->sv_ac[i];
}
int
fill_fpregs(struct lwp *lp, struct fpreg *fpregs)
{
if (lp->lwp_thread == NULL || lp->lwp_thread->td_pcb == NULL)
return EINVAL;
if (cpu_fxsr) {
fill_fpregs_xmm(&lp->lwp_thread->td_pcb->pcb_save.sv_xmm,
(struct save87 *)fpregs);
return (0);
}
bcopy(&lp->lwp_thread->td_pcb->pcb_save.sv_87, fpregs, sizeof *fpregs);
return (0);
}
int
set_fpregs(struct lwp *lp, struct fpreg *fpregs)
{
if (cpu_fxsr) {
set_fpregs_xmm((struct save87 *)fpregs,
&lp->lwp_thread->td_pcb->pcb_save.sv_xmm);
return (0);
}
bcopy(fpregs, &lp->lwp_thread->td_pcb->pcb_save.sv_87, sizeof *fpregs);
return (0);
}
int
fill_dbregs(struct lwp *lp, struct dbreg *dbregs)
{
return (ENOSYS);
}
int
set_dbregs(struct lwp *lp, struct dbreg *dbregs)
{
return (ENOSYS);
}
#if 0
int
user_dbreg_trap(void)
{
u_int32_t dr7, dr6;
u_int32_t bp;
int nbp;
caddr_t addr[4];
int i;
dr7 = rdr7();
if ((dr7 & 0x000000ff) == 0) {
return 0;
}
nbp = 0;
dr6 = rdr6();
bp = dr6 & 0x0000000f;
if (!bp) {
return 0;
}
if (bp & 0x01) {
addr[nbp++] = (caddr_t)rdr0();
}
if (bp & 0x02) {
addr[nbp++] = (caddr_t)rdr1();
}
if (bp & 0x04) {
addr[nbp++] = (caddr_t)rdr2();
}
if (bp & 0x08) {
addr[nbp++] = (caddr_t)rdr3();
}
for (i=0; i<nbp; i++) {
if (addr[i] <
(caddr_t)VM_MAX_USER_ADDRESS) {
return nbp;
}
}
return 0;
}
#endif
void
identcpu(void)
{
int regs[4];
do_cpuid(1, regs);
cpu_feature = regs[3];
cpu_feature2 = regs[2];
cpu_feature2 &= ~(CPUID2_XSAVE | CPUID2_OSXSAVE | CPUID2_AVX |
CPUID2_FMA | CPUID2_F16C);
}
#ifndef DDB
void
Debugger(const char *msg)
{
kprintf("Debugger(\"%s\") called.\n", msg);
}
#endif