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31 * cpu specific routines
34 #include <kern/kalloc.h>
35 #include <kern/misc_protos.h>
36 #include <kern/machine.h>
37 #include <mach/processor_info.h>
38 #include <i386/pmap.h>
39 #include <i386/machine_cpu.h>
40 #include <i386/machine_routines.h>
41 #include <i386/misc_protos.h>
42 #include <i386/cpu_threads.h>
43 #include <i386/rtclock_protos.h>
44 #include <i386/cpuid.h>
46 #include <i386/vmx/vmx_cpu.h>
48 #include <vm/vm_kern.h>
49 #include <kern/timer_call.h>
51 struct processor processor_master
;
57 processor_info_t info
,
60 printf("cpu_control(%d,%p,%d) not implemented\n",
61 slot_num
, info
, count
);
62 return (KERN_FAILURE
);
68 __unused processor_flavor_t flavor
,
72 return (KERN_FAILURE
);
78 processor_flavor_t flavor
,
80 processor_info_t info
,
83 printf("cpu_info(%d,%d,%p,%p) not implemented\n",
84 flavor
, slot_num
, info
, count
);
85 return (KERN_FAILURE
);
91 cpu_data_t
*cdp
= current_cpu_datap();
93 PE_cpu_machine_quiesce(cdp
->cpu_id
);
101 cpu_data_t
*cdp
= current_cpu_datap();
103 timer_call_queue_init(&cdp
->rtclock_timer
.queue
);
104 cdp
->rtclock_timer
.deadline
= EndOfAllTime
;
106 cdp
->cpu_type
= cpuid_cputype();
107 cdp
->cpu_subtype
= cpuid_cpusubtype();
118 if (cpu
== cpu_number()) {
124 * Try to bring the CPU back online without a reset.
125 * If the fast restart doesn't succeed, fall back to
128 ret
= intel_startCPU_fast(cpu
);
129 if (ret
!= KERN_SUCCESS
) {
131 * Should call out through PE.
132 * But take the shortcut here.
134 ret
= intel_startCPU(cpu
);
137 if (ret
!= KERN_SUCCESS
)
138 kprintf("cpu: cpu_start(%d) returning failure!\n", cpu
);
147 cpu_data_t
*cdp
= cpu_datap(cpu
);
148 boolean_t intrs_enabled
;
149 uint64_t tsc_timeout
;
152 * Wait until the CPU indicates that it has stopped.
153 * Disable interrupts while the topo lock is held -- arguably
154 * this should always be done but in this instance it can lead to
155 * a timeout if long-running interrupt were to occur here.
157 intrs_enabled
= ml_set_interrupts_enabled(FALSE
);
158 mp_safe_spin_lock(&x86_topo_lock
);
159 /* Set a generous timeout of several seconds (in TSC ticks) */
160 tsc_timeout
= rdtsc64() + (10ULL * 1000 * 1000 * 1000);
161 while ((cdp
->lcpu
.state
!= LCPU_HALT
)
162 && (cdp
->lcpu
.state
!= LCPU_OFF
)
163 && !cdp
->lcpu
.stopped
) {
164 simple_unlock(&x86_topo_lock
);
165 ml_set_interrupts_enabled(intrs_enabled
);
167 if (rdtsc64() > tsc_timeout
)
168 panic("cpu_exit_wait(%d) timeout", cpu
);
169 ml_set_interrupts_enabled(FALSE
);
170 mp_safe_spin_lock(&x86_topo_lock
);
172 simple_unlock(&x86_topo_lock
);
173 ml_set_interrupts_enabled(intrs_enabled
);
180 cpu_data_t
*cdp
= current_cpu_datap();
182 PE_cpu_machine_init(cdp
->cpu_id
, !cdp
->cpu_boot_complete
);
183 cdp
->cpu_boot_complete
= TRUE
;
184 cdp
->cpu_running
= TRUE
;
188 /* initialize VMX for every CPU */
194 cpu_processor_alloc(boolean_t is_boot_cpu
)
200 return &processor_master
;
202 ret
= kmem_alloc(kernel_map
, (vm_offset_t
*) &proc
, sizeof(*proc
), VM_KERN_MEMORY_OSFMK
);
203 if (ret
!= KERN_SUCCESS
)
206 bzero((void *) proc
, sizeof(*proc
));
211 cpu_processor_free(processor_t proc
)
213 if (proc
!= NULL
&& proc
!= &processor_master
)
214 kfree((void *) proc
, sizeof(*proc
));
218 current_processor(void)
220 return current_cpu_datap()->cpu_processor
;
227 return cpu_datap(cpu
)->cpu_processor
;
233 return (¤t_cpu_datap()->cpu_pending_ast
);
240 return (cpu_datap(slot_num
)->cpu_type
);
247 return (cpu_datap(slot_num
)->cpu_subtype
);
254 return (cpu_datap(slot_num
)->cpu_threadtype
);
260 return (current_cpu_datap()->cpu_type
);
266 return (current_cpu_datap()->cpu_subtype
);
272 return (current_cpu_datap()->cpu_threadtype
);