1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * Initial setup-routines for HP 9000 based hardware.
5 * Copyright (C) 1991, 1992, 1995 Linus Torvalds
6 * Modifications for PA-RISC (C) 1999-2008 Helge Deller <deller@gmx.de>
7 * Modifications copyright 1999 SuSE GmbH (Philipp Rumpf)
8 * Modifications copyright 2000 Martin K. Petersen <mkp@mkp.net>
9 * Modifications copyright 2000 Philipp Rumpf <prumpf@tux.org>
10 * Modifications copyright 2001 Ryan Bradetich <rbradetich@uswest.net>
12 * Initial PA-RISC Version: 04-23-1999 by Helge Deller
14 #include <linux/delay.h>
15 #include <linux/init.h>
17 #include <linux/module.h>
18 #include <linux/seq_file.h>
19 #include <linux/random.h>
20 #include <linux/slab.h>
21 #include <linux/cpu.h>
22 #include <asm/topology.h>
23 #include <asm/param.h>
24 #include <asm/cache.h>
25 #include <asm/hardware.h> /* for register_parisc_driver() stuff */
26 #include <asm/processor.h>
30 #include <asm/pdcpat.h>
31 #include <asm/irq.h> /* for struct irq_region */
32 #include <asm/parisc-device.h>
34 struct system_cpuinfo_parisc boot_cpu_data __ro_after_init
;
35 EXPORT_SYMBOL(boot_cpu_data
);
37 int _parisc_requires_coherency __ro_after_init
;
38 EXPORT_SYMBOL(_parisc_requires_coherency
);
41 DEFINE_PER_CPU(struct cpuinfo_parisc
, cpu_data
);
44 ** PARISC CPU driver - claim "device" and initialize CPU data structures.
46 ** Consolidate per CPU initialization into (mostly) one module.
47 ** Monarch CPU will initialize boot_cpu_data which shouldn't
48 ** change once the system has booted.
50 ** The callback *should* do per-instance initialization of
51 ** everything including the monarch. "Per CPU" init code in
52 ** setup.c:start_parisc() has migrated here and start_parisc()
53 ** will call register_parisc_driver(&cpu_driver) before calling do_inventory().
55 ** The goal of consolidating CPU initialization into one place is
56 ** to make sure all CPUs get initialized the same way.
57 ** The code path not shared is how PDC hands control of the CPU to the OS.
58 ** The initialization of OS data structures is the same (done below).
62 * init_percpu_prof - enable/setup per cpu profiling hooks.
63 * @cpunum: The processor instance.
65 * FIXME: doesn't do much yet...
68 init_percpu_prof(unsigned long cpunum
)
74 * processor_probe - Determine if processor driver should claim this device.
75 * @dev: The device which has been found.
77 * Determine if processor driver should claim this chip (return 0) or not
78 * (return 1). If so, initialize the chip and tell other partners in crime
79 * they have work to do.
81 static int __init
processor_probe(struct parisc_device
*dev
)
83 unsigned long txn_addr
;
85 struct cpuinfo_parisc
*p
;
86 struct pdc_pat_cpu_num cpu_info
= { };
89 if (num_online_cpus() >= nr_cpu_ids
) {
90 printk(KERN_INFO
"num_online_cpus() >= nr_cpu_ids\n");
94 if (boot_cpu_data
.cpu_count
> 0) {
95 printk(KERN_INFO
"CONFIG_SMP=n ignoring additional CPUs\n");
100 /* logical CPU ID and update global counter
101 * May get overwritten by PAT code.
103 cpuid
= boot_cpu_data
.cpu_count
;
104 txn_addr
= dev
->hpa
.start
; /* for legacy PDC */
105 cpu_info
.cpu_num
= cpu_info
.cpu_loc
= cpuid
;
110 unsigned long bytecnt
;
111 pdc_pat_cell_mod_maddr_block_t
*pa_pdc_cell
;
113 pa_pdc_cell
= kmalloc(sizeof (*pa_pdc_cell
), GFP_KERNEL
);
115 panic("couldn't allocate memory for PDC_PAT_CELL!");
117 status
= pdc_pat_cell_module(&bytecnt
, dev
->pcell_loc
,
118 dev
->mod_index
, PA_VIEW
, pa_pdc_cell
);
120 BUG_ON(PDC_OK
!= status
);
122 /* verify it's the same as what do_pat_inventory() found */
123 BUG_ON(dev
->mod_info
!= pa_pdc_cell
->mod_info
);
124 BUG_ON(dev
->pmod_loc
!= pa_pdc_cell
->mod_location
);
126 txn_addr
= pa_pdc_cell
->mod
[0]; /* id_eid for IO sapic */
130 /* get the cpu number */
131 status
= pdc_pat_cpu_get_number(&cpu_info
, dev
->hpa
.start
);
132 BUG_ON(PDC_OK
!= status
);
134 pr_info("Logical CPU #%lu is physical cpu #%lu at location "
135 "0x%lx with hpa %pa\n",
136 cpuid
, cpu_info
.cpu_num
, cpu_info
.cpu_loc
,
141 /* We need contiguous numbers for cpuid. Firmware's notion
142 * of cpuid is for physical CPUs and we just don't care yet.
143 * We'll care when we need to query PAT PDC about a CPU *after*
144 * boot time (ie shutdown a CPU from an OS perspective).
146 if (cpu_info
.cpu_num
>= NR_CPUS
) {
147 printk(KERN_WARNING
"IGNORING CPU at %pa,"
148 " cpu_slot_id > NR_CPUS"
150 &dev
->hpa
.start
, cpu_info
.cpu_num
, NR_CPUS
);
151 /* Ignore CPU since it will only crash */
152 boot_cpu_data
.cpu_count
--;
155 cpuid
= cpu_info
.cpu_num
;
161 p
= &per_cpu(cpu_data
, cpuid
);
162 boot_cpu_data
.cpu_count
++;
164 /* initialize counters - CPU 0 gets it_value set in time_init() */
166 memset(p
, 0, sizeof(struct cpuinfo_parisc
));
168 p
->dev
= dev
; /* Save IODC data in case we need it */
169 p
->hpa
= dev
->hpa
.start
; /* save CPU hpa */
170 p
->cpuid
= cpuid
; /* save CPU id */
171 p
->txn_addr
= txn_addr
; /* save CPU IRQ address */
172 p
->cpu_num
= cpu_info
.cpu_num
;
173 p
->cpu_loc
= cpu_info
.cpu_loc
;
175 store_cpu_topology(cpuid
);
179 ** FIXME: review if any other initialization is clobbered
180 ** for boot_cpu by the above memset().
182 init_percpu_prof(cpuid
);
186 ** CONFIG_SMP: init_smp_config() will attempt to get CPUs into
187 ** OS control. RENDEZVOUS is the default state - see mem_set above.
188 ** p->state = STATE_RENDEZVOUS;
192 /* CPU 0 IRQ table is statically allocated/initialized */
194 struct irqaction actions
[];
197 ** itimer and ipi IRQ handlers are statically initialized in
198 ** arch/parisc/kernel/irq.c. ie Don't need to register them.
200 actions
= kmalloc(sizeof(struct irqaction
)*MAX_CPU_IRQ
, GFP_ATOMIC
);
202 /* not getting it's own table, share with monarch */
203 actions
= cpu_irq_actions
[0];
206 cpu_irq_actions
[cpuid
] = actions
;
211 * Bring this CPU up now! (ignore bootstrap cpuid == 0)
215 set_cpu_present(cpuid
, true);
224 * collect_boot_cpu_data - Fill the boot_cpu_data structure.
226 * This function collects and stores the generic processor information
227 * in the boot_cpu_data structure.
229 void __init
collect_boot_cpu_data(void)
231 unsigned long cr16_seed
;
232 char orig_prod_num
[64], current_prod_num
[64], serial_no
[64];
234 memset(&boot_cpu_data
, 0, sizeof(boot_cpu_data
));
236 cr16_seed
= get_cycles();
237 add_device_randomness(&cr16_seed
, sizeof(cr16_seed
));
239 boot_cpu_data
.cpu_hz
= 100 * PAGE0
->mem_10msec
; /* Hz of this PARISC */
241 /* get CPU-Model Information... */
242 #define p ((unsigned long *)&boot_cpu_data.pdc.model)
243 if (pdc_model_info(&boot_cpu_data
.pdc
.model
) == PDC_OK
) {
245 "model %08lx %08lx %08lx %08lx %08lx %08lx %08lx %08lx %08lx %08lx\n",
246 p
[0], p
[1], p
[2], p
[3], p
[4], p
[5], p
[6], p
[7], p
[8], p
[9]);
248 add_device_randomness(&boot_cpu_data
.pdc
.model
,
249 sizeof(boot_cpu_data
.pdc
.model
));
253 if (pdc_model_versions(&boot_cpu_data
.pdc
.versions
, 0) == PDC_OK
) {
254 printk(KERN_INFO
"vers %08lx\n",
255 boot_cpu_data
.pdc
.versions
);
257 add_device_randomness(&boot_cpu_data
.pdc
.versions
,
258 sizeof(boot_cpu_data
.pdc
.versions
));
261 if (pdc_model_cpuid(&boot_cpu_data
.pdc
.cpuid
) == PDC_OK
) {
262 printk(KERN_INFO
"CPUID vers %ld rev %ld (0x%08lx)\n",
263 (boot_cpu_data
.pdc
.cpuid
>> 5) & 127,
264 boot_cpu_data
.pdc
.cpuid
& 31,
265 boot_cpu_data
.pdc
.cpuid
);
267 add_device_randomness(&boot_cpu_data
.pdc
.cpuid
,
268 sizeof(boot_cpu_data
.pdc
.cpuid
));
271 if (pdc_model_capabilities(&boot_cpu_data
.pdc
.capabilities
) == PDC_OK
)
272 printk(KERN_INFO
"capabilities 0x%lx\n",
273 boot_cpu_data
.pdc
.capabilities
);
275 if (pdc_model_sysmodel(OS_ID_HPUX
, boot_cpu_data
.pdc
.sys_model_name
) == PDC_OK
)
276 pr_info("HP-UX model name: %s\n",
277 boot_cpu_data
.pdc
.sys_model_name
);
280 if (pdc_model_sysmodel(OS_ID_MPEXL
, serial_no
) == PDC_OK
&&
282 pr_info("MPE/iX model name: %s\n", serial_no
);
284 dump_stack_set_arch_desc("%s", boot_cpu_data
.pdc
.sys_model_name
);
286 boot_cpu_data
.hversion
= boot_cpu_data
.pdc
.model
.hversion
;
287 boot_cpu_data
.sversion
= boot_cpu_data
.pdc
.model
.sversion
;
289 boot_cpu_data
.cpu_type
= parisc_get_cpu_type(boot_cpu_data
.hversion
);
290 boot_cpu_data
.cpu_name
= cpu_name_version
[boot_cpu_data
.cpu_type
][0];
291 boot_cpu_data
.family_name
= cpu_name_version
[boot_cpu_data
.cpu_type
][1];
294 _parisc_requires_coherency
= (boot_cpu_data
.cpu_type
== mako
) ||
295 (boot_cpu_data
.cpu_type
== mako2
);
298 if (pdc_model_platform_info(orig_prod_num
, current_prod_num
, serial_no
) == PDC_OK
) {
299 printk(KERN_INFO
"product %s, original product %s, S/N: %s\n",
300 current_prod_num
[0] ? current_prod_num
: "n/a",
301 orig_prod_num
, serial_no
);
302 add_device_randomness(orig_prod_num
, strlen(orig_prod_num
));
303 add_device_randomness(current_prod_num
, strlen(current_prod_num
));
304 add_device_randomness(serial_no
, strlen(serial_no
));
310 * init_per_cpu - Handle individual processor initializations.
311 * @cpunum: logical processor number.
313 * This function handles initialization for *every* CPU
316 * o Set "default" CPU width for trap handlers
318 * o Enable FP coprocessor
319 * REVISIT: this could be done in the "code 22" trap handler.
320 * (frowands idea - that way we know which processes need FP
321 * registers saved on the interrupt stack.)
322 * NEWS FLASH: wide kernels need FP coprocessor enabled to handle
323 * formatted printing of %lx for example (double divides I think)
325 * o Enable CPU profiling hooks.
327 int init_per_cpu(int cpunum
)
330 struct pdc_coproc_cfg coproc_cfg
;
332 set_firmware_width();
333 ret
= pdc_coproc_cfg(&coproc_cfg
);
335 if(ret
>= 0 && coproc_cfg
.ccr_functional
) {
336 mtctl(coproc_cfg
.ccr_functional
, 10); /* 10 == Coprocessor Control Reg */
338 /* FWIW, FP rev/model is a more accurate way to determine
339 ** CPU type. CPU rev/model has some ambiguous cases.
341 per_cpu(cpu_data
, cpunum
).fp_rev
= coproc_cfg
.revision
;
342 per_cpu(cpu_data
, cpunum
).fp_model
= coproc_cfg
.model
;
345 printk(KERN_INFO
"FP[%d] enabled: Rev %ld Model %ld\n",
346 cpunum
, coproc_cfg
.revision
, coproc_cfg
.model
);
349 ** store status register to stack (hopefully aligned)
350 ** and clear the T-bit.
352 asm volatile ("fstd %fr0,8(%sp)");
355 printk(KERN_WARNING
"WARNING: No FP CoProcessor?!"
356 " (coproc_cfg.ccr_functional == 0x%lx, expected 0xc0)\n"
358 "Halting Machine - FP required\n"
360 , coproc_cfg
.ccr_functional
);
362 mdelay(100); /* previous chars get pushed to console */
363 panic("FP CoProc not reported");
367 /* FUTURE: Enable Performance Monitor : ccr bit 0x20 */
368 init_percpu_prof(cpunum
);
376 * Display CPU info for all CPUs.
379 show_cpuinfo (struct seq_file
*m
, void *v
)
382 char cpu_name
[60], *p
;
384 /* strip PA path from CPU name to not confuse lscpu */
385 strscpy(cpu_name
, per_cpu(cpu_data
, 0).dev
->name
, sizeof(cpu_name
));
386 p
= strrchr(cpu_name
, '[');
390 for_each_online_cpu(cpu
) {
392 const struct cpuinfo_parisc
*cpuinfo
= &per_cpu(cpu_data
, cpu
);
394 if (0 == cpuinfo
->hpa
)
397 seq_printf(m
, "processor\t: %lu\n"
398 "cpu family\t: PA-RISC %s\n",
399 cpu
, boot_cpu_data
.family_name
);
401 seq_printf(m
, "cpu\t\t: %s\n", boot_cpu_data
.cpu_name
);
404 seq_printf(m
, "cpu MHz\t\t: %d.%06d\n",
405 boot_cpu_data
.cpu_hz
/ 1000000,
406 boot_cpu_data
.cpu_hz
% 1000000 );
408 #ifdef CONFIG_GENERIC_ARCH_TOPOLOGY
409 seq_printf(m
, "physical id\t: %d\n",
410 topology_physical_package_id(cpu
));
411 seq_printf(m
, "siblings\t: %d\n",
412 cpumask_weight(topology_core_cpumask(cpu
)));
413 seq_printf(m
, "core id\t\t: %d\n", topology_core_id(cpu
));
416 seq_printf(m
, "capabilities\t:");
417 if (boot_cpu_data
.pdc
.capabilities
& PDC_MODEL_OS32
)
418 seq_puts(m
, " os32");
419 if (boot_cpu_data
.pdc
.capabilities
& PDC_MODEL_OS64
)
420 seq_puts(m
, " os64");
421 if (boot_cpu_data
.pdc
.capabilities
& PDC_MODEL_IOPDIR_FDC
)
422 seq_puts(m
, " iopdir_fdc");
423 switch (boot_cpu_data
.pdc
.capabilities
& PDC_MODEL_NVA_MASK
) {
424 case PDC_MODEL_NVA_SUPPORTED
:
425 seq_puts(m
, " nva_supported");
427 case PDC_MODEL_NVA_SLOW
:
428 seq_puts(m
, " nva_slow");
430 case PDC_MODEL_NVA_UNSUPPORTED
:
431 seq_puts(m
, " needs_equivalent_aliasing");
434 seq_printf(m
, " (0x%02lx)\n", boot_cpu_data
.pdc
.capabilities
);
436 seq_printf(m
, "model\t\t: %s - %s\n",
437 boot_cpu_data
.pdc
.sys_model_name
,
440 seq_printf(m
, "hversion\t: 0x%08x\n"
441 "sversion\t: 0x%08x\n",
442 boot_cpu_data
.hversion
,
443 boot_cpu_data
.sversion
);
445 /* print cachesize info */
448 seq_printf(m
, "bogomips\t: %lu.%02lu\n",
449 loops_per_jiffy
/ (500000 / HZ
),
450 loops_per_jiffy
/ (5000 / HZ
) % 100);
452 seq_printf(m
, "software id\t: %ld\n\n",
453 boot_cpu_data
.pdc
.model
.sw_id
);
458 static const struct parisc_device_id processor_tbl
[] __initconst
= {
459 { HPHW_NPROC
, HVERSION_REV_ANY_ID
, HVERSION_ANY_ID
, SVERSION_ANY_ID
},
463 static struct parisc_driver cpu_driver __refdata
= {
465 .id_table
= processor_tbl
,
466 .probe
= processor_probe
470 * processor_init - Processor initialization procedure.
472 * Register this driver.
474 void __init
processor_init(void)
476 reset_cpu_topology();
477 register_parisc_driver(&cpu_driver
);