2 * arch/parisc/kernel/firmware.c - safe PDC access routines
4 * PDC == Processor Dependent Code
6 * See http://www.parisc-linux.org/documentation/index.html
7 * for documentation describing the entry points and calling
8 * conventions defined below.
11 * Copyright 1999 The Puffin Group, (Alex deVries, David Kennedy)
12 * Copyright 2003 Grant Grundler <grundler parisc-linux org>
16 * This program is free software; you can redistribute it and/or modify
17 * it under the terms of the GNU General Public License as published by
18 * the Free Software Foundation; either version 2 of the License, or
19 * (at your option) any later version.
23 /* I think it would be in everyone's best interest to follow this
24 * guidelines when writing PDC wrappers:
26 * - the name of the pdc wrapper should match one of the macros
27 * used for the first two arguments
28 * - don't use caps for random parts of the name
29 * - use the static PDC result buffers and "copyout" to structs
30 * supplied by the caller to encapsulate alignment restrictions
31 * - hold pdc_lock while in PDC or using static result buffers
32 * - use __pa() to convert virtual (kernel) pointers to physical
34 * - the name of the struct used for pdc return values should equal
35 * one of the macros used for the first two arguments to the
36 * corresponding PDC call
37 * - keep the order of arguments
38 * - don't be smart (setting trailing NUL bytes for strings, return
39 * something useful even if the call failed) unless you are sure
40 * it's not going to affect functionality or performance
43 * int pdc_cache_info(struct pdc_cache_info *cache_info )
47 * spin_lock_irq(&pdc_lock);
48 * retval = mem_pdc_call(PDC_CACHE,PDC_CACHE_INFO,__pa(cache_info),0);
49 * convert_to_wide(pdc_result);
50 * memcpy(cache_info, pdc_result, sizeof(*cache_info));
51 * spin_unlock_irq(&pdc_lock);
60 #include <linux/delay.h>
61 #include <linux/init.h>
62 #include <linux/kernel.h>
63 #include <linux/module.h>
64 #include <linux/string.h>
65 #include <linux/spinlock.h>
69 #include <asm/pdcpat.h>
70 #include <asm/processor.h> /* for boot_cpu_data */
72 #if defined(BOOTLOADER)
73 # undef spin_lock_irqsave
74 # define spin_lock_irqsave(a, b) { b = 1; }
75 # undef spin_unlock_irqrestore
76 # define spin_unlock_irqrestore(a, b)
78 static DEFINE_SPINLOCK(pdc_lock);
81 extern unsigned long pdc_result[NUM_PDC_RESULT];
82 extern unsigned long pdc_result2[NUM_PDC_RESULT];
85 #define WIDE_FIRMWARE 0x1
86 #define NARROW_FIRMWARE 0x2
88 /* Firmware needs to be initially set to narrow to determine the
89 * actual firmware width. */
90 int parisc_narrow_firmware __read_mostly = 1;
93 /* On most currently-supported platforms, IODC I/O calls are 32-bit calls
94 * and MEM_PDC calls are always the same width as the OS.
95 * Some PAT boxes may have 64-bit IODC I/O.
97 * Ryan Bradetich added the now obsolete CONFIG_PDC_NARROW to allow
98 * 64-bit kernels to run on systems with 32-bit MEM_PDC calls.
99 * This allowed wide kernels to run on Cxxx boxes.
100 * We now detect 32-bit-only PDC and dynamically switch to 32-bit mode
101 * when running a 64-bit kernel on such boxes (e.g. C200 or C360).
105 long real64_call(unsigned long function, ...);
107 long real32_call(unsigned long function, ...);
110 # define MEM_PDC (unsigned long)(PAGE0->mem_pdc_hi) << 32 | PAGE0->mem_pdc
111 # define mem_pdc_call(args...) unlikely(parisc_narrow_firmware) ? real32_call(MEM_PDC, args) : real64_call(MEM_PDC, args)
113 # define MEM_PDC (unsigned long)PAGE0->mem_pdc
114 # define mem_pdc_call(args...) real32_call(MEM_PDC, args)
119 * f_extend - Convert PDC addresses to kernel addresses.
120 * @address: Address returned from PDC.
122 * This function is used to convert PDC addresses into kernel addresses
123 * when the PDC address size and kernel address size are different.
125 static unsigned long f_extend(unsigned long address)
128 if(unlikely(parisc_narrow_firmware)) {
129 if((address & 0xff000000) == 0xf0000000)
130 return 0xf0f0f0f000000000UL | (u32)address;
132 if((address & 0xf0000000) == 0xf0000000)
133 return 0xffffffff00000000UL | (u32)address;
140 * convert_to_wide - Convert the return buffer addresses into kernel addresses.
141 * @address: The return buffer from PDC.
143 * This function is used to convert the return buffer addresses retrieved from PDC
144 * into kernel addresses when the PDC address size and kernel address size are
147 static void convert_to_wide(unsigned long *addr)
151 unsigned int *p = (unsigned int *)addr;
153 if (unlikely(parisc_narrow_firmware)) {
154 for (i = (NUM_PDC_RESULT-1); i >= 0; --i)
161 void set_firmware_width_unlocked(void)
165 ret = mem_pdc_call(PDC_MODEL, PDC_MODEL_CAPABILITIES,
166 __pa(pdc_result), 0);
167 convert_to_wide(pdc_result);
168 if (pdc_result[0] != NARROW_FIRMWARE)
169 parisc_narrow_firmware = 0;
173 * set_firmware_width - Determine if the firmware is wide or narrow.
175 * This function must be called before any pdc_* function that uses the
176 * convert_to_wide function.
178 void set_firmware_width(void)
181 spin_lock_irqsave(&pdc_lock, flags);
182 set_firmware_width_unlocked();
183 spin_unlock_irqrestore(&pdc_lock, flags);
186 void set_firmware_width_unlocked(void)
191 void set_firmware_width(void)
195 #endif /*CONFIG_64BIT*/
198 #if !defined(BOOTLOADER)
200 * pdc_emergency_unlock - Unlock the linux pdc lock
202 * This call unlocks the linux pdc lock in case we need some PDC functions
203 * (like pdc_add_valid) during kernel stack dump.
205 void pdc_emergency_unlock(void)
207 /* Spinlock DEBUG code freaks out if we unconditionally unlock */
208 if (spin_is_locked(&pdc_lock))
209 spin_unlock(&pdc_lock);
214 * pdc_add_valid - Verify address can be accessed without causing a HPMC.
215 * @address: Address to be verified.
217 * This PDC call attempts to read from the specified address and verifies
218 * if the address is valid.
220 * The return value is PDC_OK (0) in case accessing this address is valid.
222 int pdc_add_valid(unsigned long address)
227 spin_lock_irqsave(&pdc_lock, flags);
228 retval = mem_pdc_call(PDC_ADD_VALID, PDC_ADD_VALID_VERIFY, address);
229 spin_unlock_irqrestore(&pdc_lock, flags);
233 EXPORT_SYMBOL(pdc_add_valid);
236 * pdc_chassis_info - Return chassis information.
237 * @result: The return buffer.
238 * @chassis_info: The memory buffer address.
239 * @len: The size of the memory buffer address.
241 * An HVERSION dependent call for returning the chassis information.
243 int __init pdc_chassis_info(struct pdc_chassis_info *chassis_info, void *led_info, unsigned long len)
248 spin_lock_irqsave(&pdc_lock, flags);
249 memcpy(&pdc_result, chassis_info, sizeof(*chassis_info));
250 memcpy(&pdc_result2, led_info, len);
251 retval = mem_pdc_call(PDC_CHASSIS, PDC_RETURN_CHASSIS_INFO,
252 __pa(pdc_result), __pa(pdc_result2), len);
253 memcpy(chassis_info, pdc_result, sizeof(*chassis_info));
254 memcpy(led_info, pdc_result2, len);
255 spin_unlock_irqrestore(&pdc_lock, flags);
261 * pdc_pat_chassis_send_log - Sends a PDC PAT CHASSIS log message.
262 * @retval: -1 on error, 0 on success. Other value are PDC errors
264 * Must be correctly formatted or expect system crash
267 int pdc_pat_chassis_send_log(unsigned long state, unsigned long data)
275 spin_lock_irqsave(&pdc_lock, flags);
276 retval = mem_pdc_call(PDC_PAT_CHASSIS_LOG, PDC_PAT_CHASSIS_WRITE_LOG, __pa(&state), __pa(&data));
277 spin_unlock_irqrestore(&pdc_lock, flags);
284 * pdc_chassis_disp - Updates chassis code
285 * @retval: -1 on error, 0 on success
287 int pdc_chassis_disp(unsigned long disp)
292 spin_lock_irqsave(&pdc_lock, flags);
293 retval = mem_pdc_call(PDC_CHASSIS, PDC_CHASSIS_DISP, disp);
294 spin_unlock_irqrestore(&pdc_lock, flags);
300 * pdc_chassis_warn - Fetches chassis warnings
301 * @retval: -1 on error, 0 on success
303 int pdc_chassis_warn(unsigned long *warn)
308 spin_lock_irqsave(&pdc_lock, flags);
309 retval = mem_pdc_call(PDC_CHASSIS, PDC_CHASSIS_WARN, __pa(pdc_result));
310 *warn = pdc_result[0];
311 spin_unlock_irqrestore(&pdc_lock, flags);
316 int pdc_coproc_cfg_unlocked(struct pdc_coproc_cfg *pdc_coproc_info)
320 ret = mem_pdc_call(PDC_COPROC, PDC_COPROC_CFG, __pa(pdc_result));
321 convert_to_wide(pdc_result);
322 pdc_coproc_info->ccr_functional = pdc_result[0];
323 pdc_coproc_info->ccr_present = pdc_result[1];
324 pdc_coproc_info->revision = pdc_result[17];
325 pdc_coproc_info->model = pdc_result[18];
331 * pdc_coproc_cfg - To identify coprocessors attached to the processor.
332 * @pdc_coproc_info: Return buffer address.
334 * This PDC call returns the presence and status of all the coprocessors
335 * attached to the processor.
337 int pdc_coproc_cfg(struct pdc_coproc_cfg *pdc_coproc_info)
342 spin_lock_irqsave(&pdc_lock, flags);
343 ret = pdc_coproc_cfg_unlocked(pdc_coproc_info);
344 spin_unlock_irqrestore(&pdc_lock, flags);
350 * pdc_iodc_read - Read data from the modules IODC.
351 * @actcnt: The actual number of bytes.
352 * @hpa: The HPA of the module for the iodc read.
353 * @index: The iodc entry point.
354 * @iodc_data: A buffer memory for the iodc options.
355 * @iodc_data_size: Size of the memory buffer.
357 * This PDC call reads from the IODC of the module specified by the hpa
360 int pdc_iodc_read(unsigned long *actcnt, unsigned long hpa, unsigned int index,
361 void *iodc_data, unsigned int iodc_data_size)
366 spin_lock_irqsave(&pdc_lock, flags);
367 retval = mem_pdc_call(PDC_IODC, PDC_IODC_READ, __pa(pdc_result), hpa,
368 index, __pa(pdc_result2), iodc_data_size);
369 convert_to_wide(pdc_result);
370 *actcnt = pdc_result[0];
371 memcpy(iodc_data, pdc_result2, iodc_data_size);
372 spin_unlock_irqrestore(&pdc_lock, flags);
376 EXPORT_SYMBOL(pdc_iodc_read);
379 * pdc_system_map_find_mods - Locate unarchitected modules.
380 * @pdc_mod_info: Return buffer address.
381 * @mod_path: pointer to dev path structure.
382 * @mod_index: fixed address module index.
384 * To locate and identify modules which reside at fixed I/O addresses, which
385 * do not self-identify via architected bus walks.
387 int pdc_system_map_find_mods(struct pdc_system_map_mod_info *pdc_mod_info,
388 struct pdc_module_path *mod_path, long mod_index)
393 spin_lock_irqsave(&pdc_lock, flags);
394 retval = mem_pdc_call(PDC_SYSTEM_MAP, PDC_FIND_MODULE, __pa(pdc_result),
395 __pa(pdc_result2), mod_index);
396 convert_to_wide(pdc_result);
397 memcpy(pdc_mod_info, pdc_result, sizeof(*pdc_mod_info));
398 memcpy(mod_path, pdc_result2, sizeof(*mod_path));
399 spin_unlock_irqrestore(&pdc_lock, flags);
401 pdc_mod_info->mod_addr = f_extend(pdc_mod_info->mod_addr);
406 * pdc_system_map_find_addrs - Retrieve additional address ranges.
407 * @pdc_addr_info: Return buffer address.
408 * @mod_index: Fixed address module index.
409 * @addr_index: Address range index.
411 * Retrieve additional information about subsequent address ranges for modules
412 * with multiple address ranges.
414 int pdc_system_map_find_addrs(struct pdc_system_map_addr_info *pdc_addr_info,
415 long mod_index, long addr_index)
420 spin_lock_irqsave(&pdc_lock, flags);
421 retval = mem_pdc_call(PDC_SYSTEM_MAP, PDC_FIND_ADDRESS, __pa(pdc_result),
422 mod_index, addr_index);
423 convert_to_wide(pdc_result);
424 memcpy(pdc_addr_info, pdc_result, sizeof(*pdc_addr_info));
425 spin_unlock_irqrestore(&pdc_lock, flags);
427 pdc_addr_info->mod_addr = f_extend(pdc_addr_info->mod_addr);
432 * pdc_model_info - Return model information about the processor.
433 * @model: The return buffer.
435 * Returns the version numbers, identifiers, and capabilities from the processor module.
437 int pdc_model_info(struct pdc_model *model)
442 spin_lock_irqsave(&pdc_lock, flags);
443 retval = mem_pdc_call(PDC_MODEL, PDC_MODEL_INFO, __pa(pdc_result), 0);
444 convert_to_wide(pdc_result);
445 memcpy(model, pdc_result, sizeof(*model));
446 spin_unlock_irqrestore(&pdc_lock, flags);
452 * pdc_model_sysmodel - Get the system model name.
453 * @name: A char array of at least 81 characters.
455 * Get system model name from PDC ROM (e.g. 9000/715 or 9000/778/B160L).
456 * Using OS_ID_HPUX will return the equivalent of the 'modelname' command
459 int pdc_model_sysmodel(char *name)
464 spin_lock_irqsave(&pdc_lock, flags);
465 retval = mem_pdc_call(PDC_MODEL, PDC_MODEL_SYSMODEL, __pa(pdc_result),
466 OS_ID_HPUX, __pa(name));
467 convert_to_wide(pdc_result);
469 if (retval == PDC_OK) {
470 name[pdc_result[0]] = '\0'; /* add trailing '\0' */
474 spin_unlock_irqrestore(&pdc_lock, flags);
480 * pdc_model_versions - Identify the version number of each processor.
481 * @cpu_id: The return buffer.
482 * @id: The id of the processor to check.
484 * Returns the version number for each processor component.
486 * This comment was here before, but I do not know what it means :( -RB
487 * id: 0 = cpu revision, 1 = boot-rom-version
489 int pdc_model_versions(unsigned long *versions, int id)
494 spin_lock_irqsave(&pdc_lock, flags);
495 retval = mem_pdc_call(PDC_MODEL, PDC_MODEL_VERSIONS, __pa(pdc_result), id);
496 convert_to_wide(pdc_result);
497 *versions = pdc_result[0];
498 spin_unlock_irqrestore(&pdc_lock, flags);
504 * pdc_model_cpuid - Returns the CPU_ID.
505 * @cpu_id: The return buffer.
507 * Returns the CPU_ID value which uniquely identifies the cpu portion of
508 * the processor module.
510 int pdc_model_cpuid(unsigned long *cpu_id)
515 spin_lock_irqsave(&pdc_lock, flags);
516 pdc_result[0] = 0; /* preset zero (call may not be implemented!) */
517 retval = mem_pdc_call(PDC_MODEL, PDC_MODEL_CPU_ID, __pa(pdc_result), 0);
518 convert_to_wide(pdc_result);
519 *cpu_id = pdc_result[0];
520 spin_unlock_irqrestore(&pdc_lock, flags);
526 * pdc_model_capabilities - Returns the platform capabilities.
527 * @capabilities: The return buffer.
529 * Returns information about platform support for 32- and/or 64-bit
530 * OSes, IO-PDIR coherency, and virtual aliasing.
532 int pdc_model_capabilities(unsigned long *capabilities)
537 spin_lock_irqsave(&pdc_lock, flags);
538 pdc_result[0] = 0; /* preset zero (call may not be implemented!) */
539 retval = mem_pdc_call(PDC_MODEL, PDC_MODEL_CAPABILITIES, __pa(pdc_result), 0);
540 convert_to_wide(pdc_result);
541 if (retval == PDC_OK) {
542 *capabilities = pdc_result[0];
544 *capabilities = PDC_MODEL_OS32;
546 spin_unlock_irqrestore(&pdc_lock, flags);
552 * pdc_cache_info - Return cache and TLB information.
553 * @cache_info: The return buffer.
555 * Returns information about the processor's cache and TLB.
557 int pdc_cache_info(struct pdc_cache_info *cache_info)
562 spin_lock_irqsave(&pdc_lock, flags);
563 retval = mem_pdc_call(PDC_CACHE, PDC_CACHE_INFO, __pa(pdc_result), 0);
564 convert_to_wide(pdc_result);
565 memcpy(cache_info, pdc_result, sizeof(*cache_info));
566 spin_unlock_irqrestore(&pdc_lock, flags);
572 * pdc_spaceid_bits - Return whether Space ID hashing is turned on.
573 * @space_bits: Should be 0, if not, bad mojo!
575 * Returns information about Space ID hashing.
577 int pdc_spaceid_bits(unsigned long *space_bits)
582 spin_lock_irqsave(&pdc_lock, flags);
584 retval = mem_pdc_call(PDC_CACHE, PDC_CACHE_RET_SPID, __pa(pdc_result), 0);
585 convert_to_wide(pdc_result);
586 *space_bits = pdc_result[0];
587 spin_unlock_irqrestore(&pdc_lock, flags);
594 * pdc_btlb_info - Return block TLB information.
595 * @btlb: The return buffer.
597 * Returns information about the hardware Block TLB.
599 int pdc_btlb_info(struct pdc_btlb_info *btlb)
604 spin_lock_irqsave(&pdc_lock, flags);
605 retval = mem_pdc_call(PDC_BLOCK_TLB, PDC_BTLB_INFO, __pa(pdc_result), 0);
606 memcpy(btlb, pdc_result, sizeof(*btlb));
607 spin_unlock_irqrestore(&pdc_lock, flags);
616 * pdc_mem_map_hpa - Find fixed module information.
617 * @address: The return buffer
618 * @mod_path: pointer to dev path structure.
620 * This call was developed for S700 workstations to allow the kernel to find
621 * the I/O devices (Core I/O). In the future (Kittyhawk and beyond) this
622 * call will be replaced (on workstations) by the architected PDC_SYSTEM_MAP
625 * This call is supported by all existing S700 workstations (up to Gecko).
627 int pdc_mem_map_hpa(struct pdc_memory_map *address,
628 struct pdc_module_path *mod_path)
633 spin_lock_irqsave(&pdc_lock, flags);
634 memcpy(pdc_result2, mod_path, sizeof(*mod_path));
635 retval = mem_pdc_call(PDC_MEM_MAP, PDC_MEM_MAP_HPA, __pa(pdc_result),
637 memcpy(address, pdc_result, sizeof(*address));
638 spin_unlock_irqrestore(&pdc_lock, flags);
642 #endif /* !CONFIG_PA20 */
645 * pdc_lan_station_id - Get the LAN address.
646 * @lan_addr: The return buffer.
647 * @hpa: The network device HPA.
649 * Get the LAN station address when it is not directly available from the LAN hardware.
651 int pdc_lan_station_id(char *lan_addr, unsigned long hpa)
656 spin_lock_irqsave(&pdc_lock, flags);
657 retval = mem_pdc_call(PDC_LAN_STATION_ID, PDC_LAN_STATION_ID_READ,
658 __pa(pdc_result), hpa);
660 /* FIXME: else read MAC from NVRAM */
661 memset(lan_addr, 0, PDC_LAN_STATION_ID_SIZE);
663 memcpy(lan_addr, pdc_result, PDC_LAN_STATION_ID_SIZE);
665 spin_unlock_irqrestore(&pdc_lock, flags);
669 EXPORT_SYMBOL(pdc_lan_station_id);
672 * pdc_stable_read - Read data from Stable Storage.
673 * @staddr: Stable Storage address to access.
674 * @memaddr: The memory address where Stable Storage data shall be copied.
675 * @count: number of bytes to transfer. count is multiple of 4.
677 * This PDC call reads from the Stable Storage address supplied in staddr
678 * and copies count bytes to the memory address memaddr.
679 * The call will fail if staddr+count > PDC_STABLE size.
681 int pdc_stable_read(unsigned long staddr, void *memaddr, unsigned long count)
686 spin_lock_irqsave(&pdc_lock, flags);
687 retval = mem_pdc_call(PDC_STABLE, PDC_STABLE_READ, staddr,
688 __pa(pdc_result), count);
689 convert_to_wide(pdc_result);
690 memcpy(memaddr, pdc_result, count);
691 spin_unlock_irqrestore(&pdc_lock, flags);
695 EXPORT_SYMBOL(pdc_stable_read);
698 * pdc_stable_write - Write data to Stable Storage.
699 * @staddr: Stable Storage address to access.
700 * @memaddr: The memory address where Stable Storage data shall be read from.
701 * @count: number of bytes to transfer. count is multiple of 4.
703 * This PDC call reads count bytes from the supplied memaddr address,
704 * and copies count bytes to the Stable Storage address staddr.
705 * The call will fail if staddr+count > PDC_STABLE size.
707 int pdc_stable_write(unsigned long staddr, void *memaddr, unsigned long count)
712 spin_lock_irqsave(&pdc_lock, flags);
713 memcpy(pdc_result, memaddr, count);
714 convert_to_wide(pdc_result);
715 retval = mem_pdc_call(PDC_STABLE, PDC_STABLE_WRITE, staddr,
716 __pa(pdc_result), count);
717 spin_unlock_irqrestore(&pdc_lock, flags);
721 EXPORT_SYMBOL(pdc_stable_write);
724 * pdc_stable_get_size - Get Stable Storage size in bytes.
725 * @size: pointer where the size will be stored.
727 * This PDC call returns the number of bytes in the processor's Stable
728 * Storage, which is the number of contiguous bytes implemented in Stable
729 * Storage starting from staddr=0. size in an unsigned 64-bit integer
730 * which is a multiple of four.
732 int pdc_stable_get_size(unsigned long *size)
737 spin_lock_irqsave(&pdc_lock, flags);
738 retval = mem_pdc_call(PDC_STABLE, PDC_STABLE_RETURN_SIZE, __pa(pdc_result));
739 *size = pdc_result[0];
740 spin_unlock_irqrestore(&pdc_lock, flags);
744 EXPORT_SYMBOL(pdc_stable_get_size);
747 * pdc_stable_verify_contents - Checks that Stable Storage contents are valid.
749 * This PDC call is meant to be used to check the integrity of the current
750 * contents of Stable Storage.
752 int pdc_stable_verify_contents(void)
757 spin_lock_irqsave(&pdc_lock, flags);
758 retval = mem_pdc_call(PDC_STABLE, PDC_STABLE_VERIFY_CONTENTS);
759 spin_unlock_irqrestore(&pdc_lock, flags);
763 EXPORT_SYMBOL(pdc_stable_verify_contents);
766 * pdc_stable_initialize - Sets Stable Storage contents to zero and initialize
767 * the validity indicator.
769 * This PDC call will erase all contents of Stable Storage. Use with care!
771 int pdc_stable_initialize(void)
776 spin_lock_irqsave(&pdc_lock, flags);
777 retval = mem_pdc_call(PDC_STABLE, PDC_STABLE_INITIALIZE);
778 spin_unlock_irqrestore(&pdc_lock, flags);
782 EXPORT_SYMBOL(pdc_stable_initialize);
785 * pdc_get_initiator - Get the SCSI Interface Card params (SCSI ID, SDTR, SE or LVD)
786 * @hwpath: fully bc.mod style path to the device.
787 * @initiator: the array to return the result into
789 * Get the SCSI operational parameters from PDC.
790 * Needed since HPUX never used BIOS or symbios card NVRAM.
791 * Most ncr/sym cards won't have an entry and just use whatever
792 * capabilities of the card are (eg Ultra, LVD). But there are
793 * several cases where it's useful:
794 * o set SCSI id for Multi-initiator clusters,
795 * o cable too long (ie SE scsi 10Mhz won't support 6m length),
796 * o bus width exported is less than what the interface chip supports.
798 int pdc_get_initiator(struct hardware_path *hwpath, struct pdc_initiator *initiator)
803 spin_lock_irqsave(&pdc_lock, flags);
805 /* BCJ-XXXX series boxes. E.G. "9000/785/C3000" */
806 #define IS_SPROCKETS() (strlen(boot_cpu_data.pdc.sys_model_name) == 14 && \
807 strncmp(boot_cpu_data.pdc.sys_model_name, "9000/785", 8) == 0)
809 retval = mem_pdc_call(PDC_INITIATOR, PDC_GET_INITIATOR,
810 __pa(pdc_result), __pa(hwpath));
814 if (pdc_result[0] < 16) {
815 initiator->host_id = pdc_result[0];
817 initiator->host_id = -1;
821 * Sprockets and Piranha return 20 or 40 (MT/s). Prelude returns
822 * 1, 2, 5 or 10 for 5, 10, 20 or 40 MT/s, respectively
824 switch (pdc_result[1]) {
825 case 1: initiator->factor = 50; break;
826 case 2: initiator->factor = 25; break;
827 case 5: initiator->factor = 12; break;
828 case 25: initiator->factor = 10; break;
829 case 20: initiator->factor = 12; break;
830 case 40: initiator->factor = 10; break;
831 default: initiator->factor = -1; break;
834 if (IS_SPROCKETS()) {
835 initiator->width = pdc_result[4];
836 initiator->mode = pdc_result[5];
838 initiator->width = -1;
839 initiator->mode = -1;
843 spin_unlock_irqrestore(&pdc_lock, flags);
845 return (retval >= PDC_OK);
847 EXPORT_SYMBOL(pdc_get_initiator);
851 * pdc_pci_irt_size - Get the number of entries in the interrupt routing table.
852 * @num_entries: The return value.
853 * @hpa: The HPA for the device.
855 * This PDC function returns the number of entries in the specified cell's
857 * Similar to PDC_PAT stuff - but added for Forte/Allegro boxes
859 int pdc_pci_irt_size(unsigned long *num_entries, unsigned long hpa)
864 spin_lock_irqsave(&pdc_lock, flags);
865 retval = mem_pdc_call(PDC_PCI_INDEX, PDC_PCI_GET_INT_TBL_SIZE,
866 __pa(pdc_result), hpa);
867 convert_to_wide(pdc_result);
868 *num_entries = pdc_result[0];
869 spin_unlock_irqrestore(&pdc_lock, flags);
875 * pdc_pci_irt - Get the PCI interrupt routing table.
876 * @num_entries: The number of entries in the table.
877 * @hpa: The Hard Physical Address of the device.
880 * Get the PCI interrupt routing table for the device at the given HPA.
881 * Similar to PDC_PAT stuff - but added for Forte/Allegro boxes
883 int pdc_pci_irt(unsigned long num_entries, unsigned long hpa, void *tbl)
888 BUG_ON((unsigned long)tbl & 0x7);
890 spin_lock_irqsave(&pdc_lock, flags);
891 pdc_result[0] = num_entries;
892 retval = mem_pdc_call(PDC_PCI_INDEX, PDC_PCI_GET_INT_TBL,
893 __pa(pdc_result), hpa, __pa(tbl));
894 spin_unlock_irqrestore(&pdc_lock, flags);
900 #if 0 /* UNTEST CODE - left here in case someone needs it */
903 * pdc_pci_config_read - read PCI config space.
904 * @hpa token from PDC to indicate which PCI device
905 * @pci_addr configuration space address to read from
907 * Read PCI Configuration space *before* linux PCI subsystem is running.
909 unsigned int pdc_pci_config_read(void *hpa, unsigned long cfg_addr)
914 spin_lock_irqsave(&pdc_lock, flags);
917 retval = mem_pdc_call(PDC_PCI_INDEX, PDC_PCI_READ_CONFIG,
918 __pa(pdc_result), hpa, cfg_addr&~3UL, 4UL);
919 spin_unlock_irqrestore(&pdc_lock, flags);
921 return retval ? ~0 : (unsigned int) pdc_result[0];
926 * pdc_pci_config_write - read PCI config space.
927 * @hpa token from PDC to indicate which PCI device
928 * @pci_addr configuration space address to write
929 * @val value we want in the 32-bit register
931 * Write PCI Configuration space *before* linux PCI subsystem is running.
933 void pdc_pci_config_write(void *hpa, unsigned long cfg_addr, unsigned int val)
938 spin_lock_irqsave(&pdc_lock, flags);
940 retval = mem_pdc_call(PDC_PCI_INDEX, PDC_PCI_WRITE_CONFIG,
941 __pa(pdc_result), hpa,
942 cfg_addr&~3UL, 4UL, (unsigned long) val);
943 spin_unlock_irqrestore(&pdc_lock, flags);
947 #endif /* UNTESTED CODE */
950 * pdc_tod_read - Read the Time-Of-Day clock.
951 * @tod: The return buffer:
953 * Read the Time-Of-Day clock
955 int pdc_tod_read(struct pdc_tod *tod)
960 spin_lock_irqsave(&pdc_lock, flags);
961 retval = mem_pdc_call(PDC_TOD, PDC_TOD_READ, __pa(pdc_result), 0);
962 convert_to_wide(pdc_result);
963 memcpy(tod, pdc_result, sizeof(*tod));
964 spin_unlock_irqrestore(&pdc_lock, flags);
968 EXPORT_SYMBOL(pdc_tod_read);
970 int pdc_mem_pdt_info(struct pdc_mem_retinfo *rinfo)
975 spin_lock_irqsave(&pdc_lock, flags);
976 retval = mem_pdc_call(PDC_MEM, PDC_MEM_MEMINFO, __pa(pdc_result), 0);
977 convert_to_wide(pdc_result);
978 memcpy(rinfo, pdc_result, sizeof(*rinfo));
979 spin_unlock_irqrestore(&pdc_lock, flags);
984 int pdc_mem_pdt_read_entries(struct pdc_mem_read_pdt *pret,
985 unsigned long *pdt_entries_ptr)
990 spin_lock_irqsave(&pdc_lock, flags);
991 retval = mem_pdc_call(PDC_MEM, PDC_MEM_READ_PDT, __pa(pdc_result),
992 __pa(pdt_entries_ptr));
993 if (retval == PDC_OK) {
994 convert_to_wide(pdc_result);
995 memcpy(pret, pdc_result, sizeof(*pret));
997 spin_unlock_irqrestore(&pdc_lock, flags);
1001 * 64-bit kernels should not call this PDT function in narrow mode.
1002 * The pdt_entries_ptr array above will now contain 32-bit values
1004 if (WARN_ON_ONCE((retval == PDC_OK) && parisc_narrow_firmware))
1012 * pdc_tod_set - Set the Time-Of-Day clock.
1013 * @sec: The number of seconds since epoch.
1014 * @usec: The number of micro seconds.
1016 * Set the Time-Of-Day clock.
1018 int pdc_tod_set(unsigned long sec, unsigned long usec)
1021 unsigned long flags;
1023 spin_lock_irqsave(&pdc_lock, flags);
1024 retval = mem_pdc_call(PDC_TOD, PDC_TOD_WRITE, sec, usec);
1025 spin_unlock_irqrestore(&pdc_lock, flags);
1029 EXPORT_SYMBOL(pdc_tod_set);
1032 int pdc_mem_mem_table(struct pdc_memory_table_raddr *r_addr,
1033 struct pdc_memory_table *tbl, unsigned long entries)
1036 unsigned long flags;
1038 spin_lock_irqsave(&pdc_lock, flags);
1039 retval = mem_pdc_call(PDC_MEM, PDC_MEM_TABLE, __pa(pdc_result), __pa(pdc_result2), entries);
1040 convert_to_wide(pdc_result);
1041 memcpy(r_addr, pdc_result, sizeof(*r_addr));
1042 memcpy(tbl, pdc_result2, entries * sizeof(*tbl));
1043 spin_unlock_irqrestore(&pdc_lock, flags);
1047 #endif /* CONFIG_64BIT */
1049 /* FIXME: Is this pdc used? I could not find type reference to ftc_bitmap
1050 * so I guessed at unsigned long. Someone who knows what this does, can fix
1053 int pdc_do_firm_test_reset(unsigned long ftc_bitmap)
1056 unsigned long flags;
1058 spin_lock_irqsave(&pdc_lock, flags);
1059 retval = mem_pdc_call(PDC_BROADCAST_RESET, PDC_DO_FIRM_TEST_RESET,
1060 PDC_FIRM_TEST_MAGIC, ftc_bitmap);
1061 spin_unlock_irqrestore(&pdc_lock, flags);
1067 * pdc_do_reset - Reset the system.
1071 int pdc_do_reset(void)
1074 unsigned long flags;
1076 spin_lock_irqsave(&pdc_lock, flags);
1077 retval = mem_pdc_call(PDC_BROADCAST_RESET, PDC_DO_RESET);
1078 spin_unlock_irqrestore(&pdc_lock, flags);
1084 * pdc_soft_power_info - Enable soft power switch.
1085 * @power_reg: address of soft power register
1087 * Return the absolute address of the soft power switch register
1089 int __init pdc_soft_power_info(unsigned long *power_reg)
1092 unsigned long flags;
1094 *power_reg = (unsigned long) (-1);
1096 spin_lock_irqsave(&pdc_lock, flags);
1097 retval = mem_pdc_call(PDC_SOFT_POWER, PDC_SOFT_POWER_INFO, __pa(pdc_result), 0);
1098 if (retval == PDC_OK) {
1099 convert_to_wide(pdc_result);
1100 *power_reg = f_extend(pdc_result[0]);
1102 spin_unlock_irqrestore(&pdc_lock, flags);
1108 * pdc_soft_power_button - Control the soft power button behaviour
1109 * @sw_control: 0 for hardware control, 1 for software control
1112 * This PDC function places the soft power button under software or
1114 * Under software control the OS may control to when to allow to shut
1115 * down the system. Under hardware control pressing the power button
1116 * powers off the system immediately.
1118 int pdc_soft_power_button(int sw_control)
1121 unsigned long flags;
1123 spin_lock_irqsave(&pdc_lock, flags);
1124 retval = mem_pdc_call(PDC_SOFT_POWER, PDC_SOFT_POWER_ENABLE, __pa(pdc_result), sw_control);
1125 spin_unlock_irqrestore(&pdc_lock, flags);
1131 * pdc_io_reset - Hack to avoid overlapping range registers of Bridges devices.
1132 * Primarily a problem on T600 (which parisc-linux doesn't support) but
1133 * who knows what other platform firmware might do with this OS "hook".
1135 void pdc_io_reset(void)
1137 unsigned long flags;
1139 spin_lock_irqsave(&pdc_lock, flags);
1140 mem_pdc_call(PDC_IO, PDC_IO_RESET, 0);
1141 spin_unlock_irqrestore(&pdc_lock, flags);
1145 * pdc_io_reset_devices - Hack to Stop USB controller
1147 * If PDC used the usb controller, the usb controller
1148 * is still running and will crash the machines during iommu
1149 * setup, because of still running DMA. This PDC call
1150 * stops the USB controller.
1151 * Normally called after calling pdc_io_reset().
1153 void pdc_io_reset_devices(void)
1155 unsigned long flags;
1157 spin_lock_irqsave(&pdc_lock, flags);
1158 mem_pdc_call(PDC_IO, PDC_IO_RESET_DEVICES, 0);
1159 spin_unlock_irqrestore(&pdc_lock, flags);
1162 #endif /* defined(BOOTLOADER) */
1164 /* locked by pdc_console_lock */
1165 static int __attribute__((aligned(8))) iodc_retbuf[32];
1166 static char __attribute__((aligned(64))) iodc_dbuf[4096];
1169 * pdc_iodc_print - Console print using IODC.
1170 * @str: the string to output.
1171 * @count: length of str
1173 * Note that only these special chars are architected for console IODC io:
1174 * BEL, BS, CR, and LF. Others are passed through.
1175 * Since the HP console requires CR+LF to perform a 'newline', we translate
1178 int pdc_iodc_print(const unsigned char *str, unsigned count)
1181 unsigned long flags;
1183 for (i = 0; i < count;) {
1186 iodc_dbuf[i+0] = '\r';
1187 iodc_dbuf[i+1] = '\n';
1191 iodc_dbuf[i] = str[i];
1198 spin_lock_irqsave(&pdc_lock, flags);
1199 real32_call(PAGE0->mem_cons.iodc_io,
1200 (unsigned long)PAGE0->mem_cons.hpa, ENTRY_IO_COUT,
1201 PAGE0->mem_cons.spa, __pa(PAGE0->mem_cons.dp.layers),
1202 __pa(iodc_retbuf), 0, __pa(iodc_dbuf), i, 0);
1203 spin_unlock_irqrestore(&pdc_lock, flags);
1208 #if !defined(BOOTLOADER)
1210 * pdc_iodc_getc - Read a character (non-blocking) from the PDC console.
1212 * Read a character (non-blocking) from the PDC console, returns -1 if
1213 * key is not present.
1215 int pdc_iodc_getc(void)
1219 unsigned long flags;
1221 /* Bail if no console input device. */
1222 if (!PAGE0->mem_kbd.iodc_io)
1225 /* wait for a keyboard (rs232)-input */
1226 spin_lock_irqsave(&pdc_lock, flags);
1227 real32_call(PAGE0->mem_kbd.iodc_io,
1228 (unsigned long)PAGE0->mem_kbd.hpa, ENTRY_IO_CIN,
1229 PAGE0->mem_kbd.spa, __pa(PAGE0->mem_kbd.dp.layers),
1230 __pa(iodc_retbuf), 0, __pa(iodc_dbuf), 1, 0);
1233 status = *iodc_retbuf;
1234 spin_unlock_irqrestore(&pdc_lock, flags);
1242 int pdc_sti_call(unsigned long func, unsigned long flags,
1243 unsigned long inptr, unsigned long outputr,
1244 unsigned long glob_cfg)
1247 unsigned long irqflags;
1249 spin_lock_irqsave(&pdc_lock, irqflags);
1250 retval = real32_call(func, flags, inptr, outputr, glob_cfg);
1251 spin_unlock_irqrestore(&pdc_lock, irqflags);
1255 EXPORT_SYMBOL(pdc_sti_call);
1259 * pdc_pat_cell_get_number - Returns the cell number.
1260 * @cell_info: The return buffer.
1262 * This PDC call returns the cell number of the cell from which the call
1265 int pdc_pat_cell_get_number(struct pdc_pat_cell_num *cell_info)
1268 unsigned long flags;
1270 spin_lock_irqsave(&pdc_lock, flags);
1271 retval = mem_pdc_call(PDC_PAT_CELL, PDC_PAT_CELL_GET_NUMBER, __pa(pdc_result));
1272 memcpy(cell_info, pdc_result, sizeof(*cell_info));
1273 spin_unlock_irqrestore(&pdc_lock, flags);
1279 * pdc_pat_cell_module - Retrieve the cell's module information.
1280 * @actcnt: The number of bytes written to mem_addr.
1281 * @ploc: The physical location.
1282 * @mod: The module index.
1283 * @view_type: The view of the address type.
1284 * @mem_addr: The return buffer.
1286 * This PDC call returns information about each module attached to the cell
1287 * at the specified location.
1289 int pdc_pat_cell_module(unsigned long *actcnt, unsigned long ploc, unsigned long mod,
1290 unsigned long view_type, void *mem_addr)
1293 unsigned long flags;
1294 static struct pdc_pat_cell_mod_maddr_block result __attribute__ ((aligned (8)));
1296 spin_lock_irqsave(&pdc_lock, flags);
1297 retval = mem_pdc_call(PDC_PAT_CELL, PDC_PAT_CELL_MODULE, __pa(pdc_result),
1298 ploc, mod, view_type, __pa(&result));
1300 *actcnt = pdc_result[0];
1301 memcpy(mem_addr, &result, *actcnt);
1303 spin_unlock_irqrestore(&pdc_lock, flags);
1309 * pdc_pat_cpu_get_number - Retrieve the cpu number.
1310 * @cpu_info: The return buffer.
1311 * @hpa: The Hard Physical Address of the CPU.
1313 * Retrieve the cpu number for the cpu at the specified HPA.
1315 int pdc_pat_cpu_get_number(struct pdc_pat_cpu_num *cpu_info, unsigned long hpa)
1318 unsigned long flags;
1320 spin_lock_irqsave(&pdc_lock, flags);
1321 retval = mem_pdc_call(PDC_PAT_CPU, PDC_PAT_CPU_GET_NUMBER,
1322 __pa(&pdc_result), hpa);
1323 memcpy(cpu_info, pdc_result, sizeof(*cpu_info));
1324 spin_unlock_irqrestore(&pdc_lock, flags);
1330 * pdc_pat_get_irt_size - Retrieve the number of entries in the cell's interrupt table.
1331 * @num_entries: The return value.
1332 * @cell_num: The target cell.
1334 * This PDC function returns the number of entries in the specified cell's
1337 int pdc_pat_get_irt_size(unsigned long *num_entries, unsigned long cell_num)
1340 unsigned long flags;
1342 spin_lock_irqsave(&pdc_lock, flags);
1343 retval = mem_pdc_call(PDC_PAT_IO, PDC_PAT_IO_GET_PCI_ROUTING_TABLE_SIZE,
1344 __pa(pdc_result), cell_num);
1345 *num_entries = pdc_result[0];
1346 spin_unlock_irqrestore(&pdc_lock, flags);
1352 * pdc_pat_get_irt - Retrieve the cell's interrupt table.
1353 * @r_addr: The return buffer.
1354 * @cell_num: The target cell.
1356 * This PDC function returns the actual interrupt table for the specified cell.
1358 int pdc_pat_get_irt(void *r_addr, unsigned long cell_num)
1361 unsigned long flags;
1363 spin_lock_irqsave(&pdc_lock, flags);
1364 retval = mem_pdc_call(PDC_PAT_IO, PDC_PAT_IO_GET_PCI_ROUTING_TABLE,
1365 __pa(r_addr), cell_num);
1366 spin_unlock_irqrestore(&pdc_lock, flags);
1372 * pdc_pat_pd_get_addr_map - Retrieve information about memory address ranges.
1373 * @actlen: The return buffer.
1374 * @mem_addr: Pointer to the memory buffer.
1375 * @count: The number of bytes to read from the buffer.
1376 * @offset: The offset with respect to the beginning of the buffer.
1379 int pdc_pat_pd_get_addr_map(unsigned long *actual_len, void *mem_addr,
1380 unsigned long count, unsigned long offset)
1383 unsigned long flags;
1385 spin_lock_irqsave(&pdc_lock, flags);
1386 retval = mem_pdc_call(PDC_PAT_PD, PDC_PAT_PD_GET_ADDR_MAP, __pa(pdc_result),
1387 __pa(pdc_result2), count, offset);
1388 *actual_len = pdc_result[0];
1389 memcpy(mem_addr, pdc_result2, *actual_len);
1390 spin_unlock_irqrestore(&pdc_lock, flags);
1396 * pdc_pat_io_pci_cfg_read - Read PCI configuration space.
1397 * @pci_addr: PCI configuration space address for which the read request is being made.
1398 * @pci_size: Size of read in bytes. Valid values are 1, 2, and 4.
1399 * @mem_addr: Pointer to return memory buffer.
1402 int pdc_pat_io_pci_cfg_read(unsigned long pci_addr, int pci_size, u32 *mem_addr)
1405 unsigned long flags;
1407 spin_lock_irqsave(&pdc_lock, flags);
1408 retval = mem_pdc_call(PDC_PAT_IO, PDC_PAT_IO_PCI_CONFIG_READ,
1409 __pa(pdc_result), pci_addr, pci_size);
1411 case 1: *(u8 *) mem_addr = (u8) pdc_result[0]; break;
1412 case 2: *(u16 *)mem_addr = (u16) pdc_result[0]; break;
1413 case 4: *(u32 *)mem_addr = (u32) pdc_result[0]; break;
1415 spin_unlock_irqrestore(&pdc_lock, flags);
1421 * pdc_pat_io_pci_cfg_write - Retrieve information about memory address ranges.
1422 * @pci_addr: PCI configuration space address for which the write request is being made.
1423 * @pci_size: Size of write in bytes. Valid values are 1, 2, and 4.
1424 * @value: Pointer to 1, 2, or 4 byte value in low order end of argument to be
1425 * written to PCI Config space.
1428 int pdc_pat_io_pci_cfg_write(unsigned long pci_addr, int pci_size, u32 val)
1431 unsigned long flags;
1433 spin_lock_irqsave(&pdc_lock, flags);
1434 retval = mem_pdc_call(PDC_PAT_IO, PDC_PAT_IO_PCI_CONFIG_WRITE,
1435 pci_addr, pci_size, val);
1436 spin_unlock_irqrestore(&pdc_lock, flags);
1442 * pdc_pat_mem_pdc_info - Retrieve information about page deallocation table
1443 * @rinfo: memory pdt information
1446 int pdc_pat_mem_pdt_info(struct pdc_pat_mem_retinfo *rinfo)
1449 unsigned long flags;
1451 spin_lock_irqsave(&pdc_lock, flags);
1452 retval = mem_pdc_call(PDC_PAT_MEM, PDC_PAT_MEM_PD_INFO,
1454 if (retval == PDC_OK)
1455 memcpy(rinfo, &pdc_result, sizeof(*rinfo));
1456 spin_unlock_irqrestore(&pdc_lock, flags);
1462 * pdc_pat_mem_pdt_cell_info - Retrieve information about page deallocation
1464 * @rinfo: memory pdt information
1465 * @cell: cell number
1468 int pdc_pat_mem_pdt_cell_info(struct pdc_pat_mem_cell_pdt_retinfo *rinfo,
1472 unsigned long flags;
1474 spin_lock_irqsave(&pdc_lock, flags);
1475 retval = mem_pdc_call(PDC_PAT_MEM, PDC_PAT_MEM_CELL_INFO,
1476 __pa(&pdc_result), cell);
1477 if (retval == PDC_OK)
1478 memcpy(rinfo, &pdc_result, sizeof(*rinfo));
1479 spin_unlock_irqrestore(&pdc_lock, flags);
1485 * pdc_pat_mem_read_cell_pdt - Read PDT entries from (old) PAT firmware
1486 * @pret: array of PDT entries
1487 * @pdt_entries_ptr: ptr to hold number of PDT entries
1488 * @max_entries: maximum number of entries to be read
1491 int pdc_pat_mem_read_cell_pdt(struct pdc_pat_mem_read_pd_retinfo *pret,
1492 unsigned long *pdt_entries_ptr, unsigned long max_entries)
1495 unsigned long flags, entries;
1497 spin_lock_irqsave(&pdc_lock, flags);
1498 /* PDC_PAT_MEM_CELL_READ is available on early PAT machines only */
1499 retval = mem_pdc_call(PDC_PAT_MEM, PDC_PAT_MEM_CELL_READ,
1500 __pa(&pdc_result), parisc_cell_num,
1501 __pa(pdt_entries_ptr));
1503 if (retval == PDC_OK) {
1504 /* build up return value as for PDC_PAT_MEM_PD_READ */
1505 entries = min(pdc_result[0], max_entries);
1506 pret->pdt_entries = entries;
1507 pret->actual_count_bytes = entries * sizeof(unsigned long);
1510 spin_unlock_irqrestore(&pdc_lock, flags);
1511 WARN_ON(retval == PDC_OK && pdc_result[0] > max_entries);
1516 * pdc_pat_mem_read_pd_pdt - Read PDT entries from (newer) PAT firmware
1517 * @pret: array of PDT entries
1518 * @pdt_entries_ptr: ptr to hold number of PDT entries
1519 * @count: number of bytes to read
1520 * @offset: offset to start (in bytes)
1523 int pdc_pat_mem_read_pd_pdt(struct pdc_pat_mem_read_pd_retinfo *pret,
1524 unsigned long *pdt_entries_ptr, unsigned long count,
1525 unsigned long offset)
1528 unsigned long flags, entries;
1530 spin_lock_irqsave(&pdc_lock, flags);
1531 retval = mem_pdc_call(PDC_PAT_MEM, PDC_PAT_MEM_PD_READ,
1532 __pa(&pdc_result), __pa(pdt_entries_ptr),
1535 if (retval == PDC_OK) {
1536 entries = min(pdc_result[0], count);
1537 pret->actual_count_bytes = entries;
1538 pret->pdt_entries = entries / sizeof(unsigned long);
1541 spin_unlock_irqrestore(&pdc_lock, flags);
1547 * pdc_pat_mem_get_dimm_phys_location - Get physical DIMM slot via PAT firmware
1548 * @pret: ptr to hold returned information
1549 * @phys_addr: physical address to examine
1552 int pdc_pat_mem_get_dimm_phys_location(
1553 struct pdc_pat_mem_phys_mem_location *pret,
1554 unsigned long phys_addr)
1557 unsigned long flags;
1559 spin_lock_irqsave(&pdc_lock, flags);
1560 retval = mem_pdc_call(PDC_PAT_MEM, PDC_PAT_MEM_ADDRESS,
1561 __pa(&pdc_result), phys_addr);
1563 if (retval == PDC_OK)
1564 memcpy(pret, &pdc_result, sizeof(*pret));
1566 spin_unlock_irqrestore(&pdc_lock, flags);
1570 #endif /* CONFIG_64BIT */
1571 #endif /* defined(BOOTLOADER) */
1574 /***************** 32-bit real-mode calls ***********/
1575 /* The struct below is used
1576 * to overlay real_stack (real2.S), preparing a 32-bit call frame.
1577 * real32_call_asm() then uses this stack in narrow real mode
1580 struct narrow_stack {
1581 /* use int, not long which is 64 bits */
1596 unsigned int frame_marker[8];
1598 /* in reality, there's nearly 8k of stack after this */
1601 long real32_call(unsigned long fn, ...)
1604 extern struct narrow_stack real_stack;
1605 extern unsigned long real32_call_asm(unsigned int *,
1610 real_stack.arg0 = va_arg(args, unsigned int);
1611 real_stack.arg1 = va_arg(args, unsigned int);
1612 real_stack.arg2 = va_arg(args, unsigned int);
1613 real_stack.arg3 = va_arg(args, unsigned int);
1614 real_stack.arg4 = va_arg(args, unsigned int);
1615 real_stack.arg5 = va_arg(args, unsigned int);
1616 real_stack.arg6 = va_arg(args, unsigned int);
1617 real_stack.arg7 = va_arg(args, unsigned int);
1618 real_stack.arg8 = va_arg(args, unsigned int);
1619 real_stack.arg9 = va_arg(args, unsigned int);
1620 real_stack.arg10 = va_arg(args, unsigned int);
1621 real_stack.arg11 = va_arg(args, unsigned int);
1622 real_stack.arg12 = va_arg(args, unsigned int);
1623 real_stack.arg13 = va_arg(args, unsigned int);
1626 return real32_call_asm(&real_stack.sp, &real_stack.arg0, fn);
1630 /***************** 64-bit real-mode calls ***********/
1643 unsigned long arg10;
1644 unsigned long arg11;
1645 unsigned long arg12;
1646 unsigned long arg13;
1647 unsigned long frame_marker[2]; /* rp, previous sp */
1649 /* in reality, there's nearly 8k of stack after this */
1652 long real64_call(unsigned long fn, ...)
1655 extern struct wide_stack real64_stack;
1656 extern unsigned long real64_call_asm(unsigned long *,
1661 real64_stack.arg0 = va_arg(args, unsigned long);
1662 real64_stack.arg1 = va_arg(args, unsigned long);
1663 real64_stack.arg2 = va_arg(args, unsigned long);
1664 real64_stack.arg3 = va_arg(args, unsigned long);
1665 real64_stack.arg4 = va_arg(args, unsigned long);
1666 real64_stack.arg5 = va_arg(args, unsigned long);
1667 real64_stack.arg6 = va_arg(args, unsigned long);
1668 real64_stack.arg7 = va_arg(args, unsigned long);
1669 real64_stack.arg8 = va_arg(args, unsigned long);
1670 real64_stack.arg9 = va_arg(args, unsigned long);
1671 real64_stack.arg10 = va_arg(args, unsigned long);
1672 real64_stack.arg11 = va_arg(args, unsigned long);
1673 real64_stack.arg12 = va_arg(args, unsigned long);
1674 real64_stack.arg13 = va_arg(args, unsigned long);
1677 return real64_call_asm(&real64_stack.sp, &real64_stack.arg0, fn);
1680 #endif /* CONFIG_64BIT */