22b1908610
Most MMU-based CPUs have a restriction on the setting of the data cache enable and mmu enable bits in the control register, whereby if the data cache is enabled, the MMU must also be enabled. Enabling the data cache without the MMU is an invalid combination. However, there are CPUs where the data cache can be enabled without the MMU. In order to allow these CPUs to take advantage of that, provide a method whereby each proc-*.S file defines the control regsiter value for use with nommu (with the MMU disabled.) Later on, when we add support for enabling the MMU on these devices, we can adjust the "crval" macro to also enable the data cache for nommu. Signed-off-by: Russell King <rmk+kernel@arm.linux.org.uk>
306 lines
7.2 KiB
ArmAsm
306 lines
7.2 KiB
ArmAsm
/*
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* linux/arch/arm/mm/proc-sa1100.S
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*
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* Copyright (C) 1997-2002 Russell King
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* hacked for non-paged-MM by Hyok S. Choi, 2003.
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License version 2 as
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* published by the Free Software Foundation.
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*
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* MMU functions for SA110
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*
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* These are the low level assembler for performing cache and TLB
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* functions on the StrongARM-1100 and StrongARM-1110.
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*
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* Note that SA1100 and SA1110 share everything but their name and CPU ID.
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*
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* 12-jun-2000, Erik Mouw (J.A.K.Mouw@its.tudelft.nl):
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* Flush the read buffer at context switches
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*/
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#include <linux/linkage.h>
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#include <linux/init.h>
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#include <asm/assembler.h>
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#include <asm/asm-offsets.h>
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#include <asm/procinfo.h>
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#include <asm/hardware.h>
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#include <asm/pgtable-hwdef.h>
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#include <asm/pgtable.h>
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/*
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* the cache line size of the I and D cache
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*/
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#define DCACHELINESIZE 32
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__INIT
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/*
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* cpu_sa1100_proc_init()
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*/
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ENTRY(cpu_sa1100_proc_init)
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mov r0, #0
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mcr p15, 0, r0, c15, c1, 2 @ Enable clock switching
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mcr p15, 0, r0, c9, c0, 5 @ Allow read-buffer operations from userland
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mov pc, lr
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.previous
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/*
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* cpu_sa1100_proc_fin()
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*
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* Prepare the CPU for reset:
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* - Disable interrupts
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* - Clean and turn off caches.
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*/
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ENTRY(cpu_sa1100_proc_fin)
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stmfd sp!, {lr}
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mov ip, #PSR_F_BIT | PSR_I_BIT | SVC_MODE
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msr cpsr_c, ip
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bl v4wb_flush_kern_cache_all
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mcr p15, 0, ip, c15, c2, 2 @ Disable clock switching
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mrc p15, 0, r0, c1, c0, 0 @ ctrl register
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bic r0, r0, #0x1000 @ ...i............
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bic r0, r0, #0x000e @ ............wca.
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mcr p15, 0, r0, c1, c0, 0 @ disable caches
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ldmfd sp!, {pc}
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/*
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* cpu_sa1100_reset(loc)
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*
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* Perform a soft reset of the system. Put the CPU into the
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* same state as it would be if it had been reset, and branch
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* to what would be the reset vector.
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*
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* loc: location to jump to for soft reset
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*/
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.align 5
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ENTRY(cpu_sa1100_reset)
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mov ip, #0
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mcr p15, 0, ip, c7, c7, 0 @ invalidate I,D caches
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mcr p15, 0, ip, c7, c10, 4 @ drain WB
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#ifdef CONFIG_MMU
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mcr p15, 0, ip, c8, c7, 0 @ invalidate I & D TLBs
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#endif
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mrc p15, 0, ip, c1, c0, 0 @ ctrl register
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bic ip, ip, #0x000f @ ............wcam
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bic ip, ip, #0x1100 @ ...i...s........
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mcr p15, 0, ip, c1, c0, 0 @ ctrl register
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mov pc, r0
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/*
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* cpu_sa1100_do_idle(type)
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*
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* Cause the processor to idle
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*
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* type: call type:
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* 0 = slow idle
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* 1 = fast idle
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* 2 = switch to slow processor clock
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* 3 = switch to fast processor clock
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*/
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.align 5
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ENTRY(cpu_sa1100_do_idle)
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mov r0, r0 @ 4 nop padding
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mov r0, r0
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mov r0, r0
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mov r0, r0 @ 4 nop padding
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mov r0, r0
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mov r0, r0
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mov r0, #0
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ldr r1, =UNCACHEABLE_ADDR @ ptr to uncacheable address
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@ --- aligned to a cache line
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mcr p15, 0, r0, c15, c2, 2 @ disable clock switching
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ldr r1, [r1, #0] @ force switch to MCLK
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mcr p15, 0, r0, c15, c8, 2 @ wait for interrupt
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mov r0, r0 @ safety
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mcr p15, 0, r0, c15, c1, 2 @ enable clock switching
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mov pc, lr
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/* ================================= CACHE ================================ */
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/*
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* cpu_sa1100_dcache_clean_area(addr,sz)
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*
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* Clean the specified entry of any caches such that the MMU
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* translation fetches will obtain correct data.
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*
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* addr: cache-unaligned virtual address
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*/
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.align 5
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ENTRY(cpu_sa1100_dcache_clean_area)
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1: mcr p15, 0, r0, c7, c10, 1 @ clean D entry
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add r0, r0, #DCACHELINESIZE
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subs r1, r1, #DCACHELINESIZE
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bhi 1b
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mov pc, lr
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/* =============================== PageTable ============================== */
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/*
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* cpu_sa1100_switch_mm(pgd)
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*
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* Set the translation base pointer to be as described by pgd.
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*
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* pgd: new page tables
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*/
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.align 5
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ENTRY(cpu_sa1100_switch_mm)
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#ifdef CONFIG_MMU
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str lr, [sp, #-4]!
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bl v4wb_flush_kern_cache_all @ clears IP
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mcr p15, 0, ip, c9, c0, 0 @ invalidate RB
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mcr p15, 0, r0, c2, c0, 0 @ load page table pointer
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mcr p15, 0, ip, c8, c7, 0 @ invalidate I & D TLBs
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ldr pc, [sp], #4
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#else
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mov pc, lr
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#endif
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/*
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* cpu_sa1100_set_pte(ptep, pte)
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*
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* Set a PTE and flush it out
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*/
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.align 5
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ENTRY(cpu_sa1100_set_pte)
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#ifdef CONFIG_MMU
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str r1, [r0], #-2048 @ linux version
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eor r1, r1, #L_PTE_PRESENT | L_PTE_YOUNG | L_PTE_WRITE | L_PTE_DIRTY
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bic r2, r1, #PTE_SMALL_AP_MASK
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bic r2, r2, #PTE_TYPE_MASK
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orr r2, r2, #PTE_TYPE_SMALL
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tst r1, #L_PTE_USER @ User?
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orrne r2, r2, #PTE_SMALL_AP_URO_SRW
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tst r1, #L_PTE_WRITE | L_PTE_DIRTY @ Write and Dirty?
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orreq r2, r2, #PTE_SMALL_AP_UNO_SRW
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tst r1, #L_PTE_PRESENT | L_PTE_YOUNG @ Present and Young?
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movne r2, #0
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str r2, [r0] @ hardware version
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mov r0, r0
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mcr p15, 0, r0, c7, c10, 1 @ clean D entry
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mcr p15, 0, r0, c7, c10, 4 @ drain WB
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#endif
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mov pc, lr
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__INIT
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.type __sa1100_setup, #function
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__sa1100_setup:
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mov r0, #0
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mcr p15, 0, r0, c7, c7 @ invalidate I,D caches on v4
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mcr p15, 0, r0, c7, c10, 4 @ drain write buffer on v4
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#ifdef CONFIG_MMU
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mcr p15, 0, r0, c8, c7 @ invalidate I,D TLBs on v4
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#endif
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adr r5, sa1100_crval
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ldmia r5, {r5, r6}
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mrc p15, 0, r0, c1, c0 @ get control register v4
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bic r0, r0, r5
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orr r0, r0, r6
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mov pc, lr
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.size __sa1100_setup, . - __sa1100_setup
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/*
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* R
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* .RVI ZFRS BLDP WCAM
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* ..11 0001 ..11 1101
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*
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*/
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.type sa1100_crval, #object
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sa1100_crval:
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crval clear=0x00003f3f, mmuset=0x0000313d, ucset=0x00001130
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__INITDATA
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/*
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* Purpose : Function pointers used to access above functions - all calls
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* come through these
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*/
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/*
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* SA1100 and SA1110 share the same function calls
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*/
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.type sa1100_processor_functions, #object
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ENTRY(sa1100_processor_functions)
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.word v4_early_abort
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.word cpu_sa1100_proc_init
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.word cpu_sa1100_proc_fin
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.word cpu_sa1100_reset
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.word cpu_sa1100_do_idle
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.word cpu_sa1100_dcache_clean_area
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.word cpu_sa1100_switch_mm
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.word cpu_sa1100_set_pte
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.size sa1100_processor_functions, . - sa1100_processor_functions
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.section ".rodata"
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.type cpu_arch_name, #object
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cpu_arch_name:
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.asciz "armv4"
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.size cpu_arch_name, . - cpu_arch_name
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.type cpu_elf_name, #object
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cpu_elf_name:
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.asciz "v4"
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.size cpu_elf_name, . - cpu_elf_name
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.type cpu_sa1100_name, #object
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cpu_sa1100_name:
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.asciz "StrongARM-1100"
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.size cpu_sa1100_name, . - cpu_sa1100_name
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.type cpu_sa1110_name, #object
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cpu_sa1110_name:
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.asciz "StrongARM-1110"
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.size cpu_sa1110_name, . - cpu_sa1110_name
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.align
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.section ".proc.info.init", #alloc, #execinstr
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.type __sa1100_proc_info,#object
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__sa1100_proc_info:
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.long 0x4401a110
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.long 0xfffffff0
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.long PMD_TYPE_SECT | \
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PMD_SECT_BUFFERABLE | \
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PMD_SECT_CACHEABLE | \
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PMD_SECT_AP_WRITE | \
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PMD_SECT_AP_READ
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b __sa1100_setup
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.long cpu_arch_name
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.long cpu_elf_name
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.long HWCAP_SWP | HWCAP_HALF | HWCAP_26BIT | HWCAP_FAST_MULT
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.long cpu_sa1100_name
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.long sa1100_processor_functions
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.long v4wb_tlb_fns
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.long v4_mc_user_fns
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.long v4wb_cache_fns
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.size __sa1100_proc_info, . - __sa1100_proc_info
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.type __sa1110_proc_info,#object
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__sa1110_proc_info:
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.long 0x6901b110
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.long 0xfffffff0
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.long PMD_TYPE_SECT | \
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PMD_SECT_BUFFERABLE | \
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PMD_SECT_CACHEABLE | \
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PMD_SECT_AP_WRITE | \
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PMD_SECT_AP_READ
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b __sa1100_setup
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.long cpu_arch_name
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.long cpu_elf_name
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.long HWCAP_SWP | HWCAP_HALF | HWCAP_26BIT | HWCAP_FAST_MULT
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.long cpu_sa1110_name
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.long sa1100_processor_functions
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.long v4wb_tlb_fns
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.long v4_mc_user_fns
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.long v4wb_cache_fns
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.size __sa1110_proc_info, . - __sa1110_proc_info
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