sparc: Resolve conflict between sparc v9 and M7 on usage of bit 9 of TTE
sparc: Resolve conflict between sparc v9 and M7 on usage of bit 9 of TTE Bit 9 of TTE is CV (Cacheable in V-cache) on sparc v9 processor while the same bit 9 is MCDE (Memory Corruption Detection Enable) on M7 processor. This creates a conflicting usage of the same bit. Kernel sets TTE.cv bit on all pages for sun4v architecture which works well for sparc v9 but enables memory corruption detection on M7 processor which is not the intent. This patch adds code to determine if kernel is running on M7 processor and takes steps to not enable memory corruption detection in TTE erroneously. Signed-off-by: Khalid Aziz <khalid.aziz@oracle.com> Signed-off-by: David S. Miller <davem@davemloft.net>
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@ -308,12 +308,26 @@ static inline pte_t pte_modify(pte_t pte, pgprot_t prot)
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" sllx %1, 32, %1\n"
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" or %0, %1, %0\n"
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" .previous\n"
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" .section .sun_m7_2insn_patch, \"ax\"\n"
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" .word 661b\n"
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" sethi %%uhi(%4), %1\n"
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" sethi %%hi(%4), %0\n"
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" .word 662b\n"
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" or %1, %%ulo(%4), %1\n"
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" or %0, %%lo(%4), %0\n"
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" .word 663b\n"
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" sllx %1, 32, %1\n"
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" or %0, %1, %0\n"
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" .previous\n"
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: "=r" (mask), "=r" (tmp)
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: "i" (_PAGE_PADDR_4U | _PAGE_MODIFIED_4U | _PAGE_ACCESSED_4U |
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_PAGE_CP_4U | _PAGE_CV_4U | _PAGE_E_4U |
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_PAGE_SPECIAL | _PAGE_PMD_HUGE | _PAGE_SZALL_4U),
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"i" (_PAGE_PADDR_4V | _PAGE_MODIFIED_4V | _PAGE_ACCESSED_4V |
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_PAGE_CP_4V | _PAGE_CV_4V | _PAGE_E_4V |
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_PAGE_SPECIAL | _PAGE_PMD_HUGE | _PAGE_SZALL_4V),
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"i" (_PAGE_PADDR_4V | _PAGE_MODIFIED_4V | _PAGE_ACCESSED_4V |
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_PAGE_CP_4V | _PAGE_E_4V |
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_PAGE_SPECIAL | _PAGE_PMD_HUGE | _PAGE_SZALL_4V));
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return __pte((pte_val(pte) & mask) | (pgprot_val(prot) & ~mask));
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@ -342,9 +356,15 @@ static inline pgprot_t pgprot_noncached(pgprot_t prot)
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" andn %0, %4, %0\n"
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" or %0, %5, %0\n"
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" .previous\n"
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" .section .sun_m7_2insn_patch, \"ax\"\n"
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" .word 661b\n"
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" andn %0, %6, %0\n"
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" or %0, %5, %0\n"
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" .previous\n"
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: "=r" (val)
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: "0" (val), "i" (_PAGE_CP_4U | _PAGE_CV_4U), "i" (_PAGE_E_4U),
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"i" (_PAGE_CP_4V | _PAGE_CV_4V), "i" (_PAGE_E_4V));
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"i" (_PAGE_CP_4V | _PAGE_CV_4V), "i" (_PAGE_E_4V),
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"i" (_PAGE_CP_4V));
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return __pgprot(val);
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}
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@ -79,6 +79,8 @@ struct sun4v_2insn_patch_entry {
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};
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extern struct sun4v_2insn_patch_entry __sun4v_2insn_patch,
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__sun4v_2insn_patch_end;
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extern struct sun4v_2insn_patch_entry __sun_m7_2insn_patch,
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__sun_m7_2insn_patch_end;
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#endif /* !(__ASSEMBLY__) */
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@ -69,6 +69,8 @@ void sun4v_patch_1insn_range(struct sun4v_1insn_patch_entry *,
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struct sun4v_1insn_patch_entry *);
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void sun4v_patch_2insn_range(struct sun4v_2insn_patch_entry *,
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struct sun4v_2insn_patch_entry *);
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void sun_m7_patch_2insn_range(struct sun4v_2insn_patch_entry *,
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struct sun4v_2insn_patch_entry *);
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extern unsigned int dcache_parity_tl1_occurred;
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extern unsigned int icache_parity_tl1_occurred;
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@ -255,6 +255,24 @@ void sun4v_patch_2insn_range(struct sun4v_2insn_patch_entry *start,
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}
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}
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void sun_m7_patch_2insn_range(struct sun4v_2insn_patch_entry *start,
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struct sun4v_2insn_patch_entry *end)
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{
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while (start < end) {
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unsigned long addr = start->addr;
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*(unsigned int *) (addr + 0) = start->insns[0];
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wmb();
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__asm__ __volatile__("flush %0" : : "r" (addr + 0));
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*(unsigned int *) (addr + 4) = start->insns[1];
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wmb();
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__asm__ __volatile__("flush %0" : : "r" (addr + 4));
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start++;
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}
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}
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static void __init sun4v_patch(void)
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{
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extern void sun4v_hvapi_init(void);
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@ -267,6 +285,9 @@ static void __init sun4v_patch(void)
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sun4v_patch_2insn_range(&__sun4v_2insn_patch,
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&__sun4v_2insn_patch_end);
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if (sun4v_chip_type == SUN4V_CHIP_SPARC_M7)
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sun_m7_patch_2insn_range(&__sun_m7_2insn_patch,
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&__sun_m7_2insn_patch_end);
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sun4v_hvapi_init();
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}
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@ -138,6 +138,11 @@ SECTIONS
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*(.pause_3insn_patch)
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__pause_3insn_patch_end = .;
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}
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.sun_m7_2insn_patch : {
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__sun_m7_2insn_patch = .;
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*(.sun_m7_2insn_patch)
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__sun_m7_2insn_patch_end = .;
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}
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PERCPU_SECTION(SMP_CACHE_BYTES)
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. = ALIGN(PAGE_SIZE);
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@ -54,6 +54,7 @@
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#include "init_64.h"
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unsigned long kern_linear_pte_xor[4] __read_mostly;
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static unsigned long page_cache4v_flag;
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/* A bitmap, two bits for every 256MB of physical memory. These two
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* bits determine what page size we use for kernel linear
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@ -1909,11 +1910,24 @@ static void __init sun4u_linear_pte_xor_finalize(void)
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static void __init sun4v_linear_pte_xor_finalize(void)
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{
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unsigned long pagecv_flag;
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/* Bit 9 of TTE is no longer CV bit on M7 processor and it instead
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* enables MCD error. Do not set bit 9 on M7 processor.
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*/
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switch (sun4v_chip_type) {
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case SUN4V_CHIP_SPARC_M7:
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pagecv_flag = 0x00;
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break;
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default:
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pagecv_flag = _PAGE_CV_4V;
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break;
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}
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#ifndef CONFIG_DEBUG_PAGEALLOC
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if (cpu_pgsz_mask & HV_PGSZ_MASK_256MB) {
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kern_linear_pte_xor[1] = (_PAGE_VALID | _PAGE_SZ256MB_4V) ^
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PAGE_OFFSET;
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kern_linear_pte_xor[1] |= (_PAGE_CP_4V | _PAGE_CV_4V |
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kern_linear_pte_xor[1] |= (_PAGE_CP_4V | pagecv_flag |
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_PAGE_P_4V | _PAGE_W_4V);
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} else {
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kern_linear_pte_xor[1] = kern_linear_pte_xor[0];
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@ -1922,7 +1936,7 @@ static void __init sun4v_linear_pte_xor_finalize(void)
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if (cpu_pgsz_mask & HV_PGSZ_MASK_2GB) {
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kern_linear_pte_xor[2] = (_PAGE_VALID | _PAGE_SZ2GB_4V) ^
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PAGE_OFFSET;
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kern_linear_pte_xor[2] |= (_PAGE_CP_4V | _PAGE_CV_4V |
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kern_linear_pte_xor[2] |= (_PAGE_CP_4V | pagecv_flag |
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_PAGE_P_4V | _PAGE_W_4V);
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} else {
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kern_linear_pte_xor[2] = kern_linear_pte_xor[1];
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@ -1931,7 +1945,7 @@ static void __init sun4v_linear_pte_xor_finalize(void)
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if (cpu_pgsz_mask & HV_PGSZ_MASK_16GB) {
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kern_linear_pte_xor[3] = (_PAGE_VALID | _PAGE_SZ16GB_4V) ^
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PAGE_OFFSET;
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kern_linear_pte_xor[3] |= (_PAGE_CP_4V | _PAGE_CV_4V |
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kern_linear_pte_xor[3] |= (_PAGE_CP_4V | pagecv_flag |
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_PAGE_P_4V | _PAGE_W_4V);
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} else {
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kern_linear_pte_xor[3] = kern_linear_pte_xor[2];
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@ -1958,6 +1972,13 @@ static phys_addr_t __init available_memory(void)
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return available;
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}
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#define _PAGE_CACHE_4U (_PAGE_CP_4U | _PAGE_CV_4U)
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#define _PAGE_CACHE_4V (_PAGE_CP_4V | _PAGE_CV_4V)
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#define __DIRTY_BITS_4U (_PAGE_MODIFIED_4U | _PAGE_WRITE_4U | _PAGE_W_4U)
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#define __DIRTY_BITS_4V (_PAGE_MODIFIED_4V | _PAGE_WRITE_4V | _PAGE_W_4V)
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#define __ACCESS_BITS_4U (_PAGE_ACCESSED_4U | _PAGE_READ_4U | _PAGE_R)
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#define __ACCESS_BITS_4V (_PAGE_ACCESSED_4V | _PAGE_READ_4V | _PAGE_R)
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/* We need to exclude reserved regions. This exclusion will include
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* vmlinux and initrd. To be more precise the initrd size could be used to
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* compute a new lower limit because it is freed later during initialization.
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@ -2034,6 +2055,25 @@ void __init paging_init(void)
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memset(swapper_4m_tsb, 0x40, sizeof(swapper_4m_tsb));
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#endif
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/* TTE.cv bit on sparc v9 occupies the same position as TTE.mcde
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* bit on M7 processor. This is a conflicting usage of the same
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* bit. Enabling TTE.cv on M7 would turn on Memory Corruption
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* Detection error on all pages and this will lead to problems
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* later. Kernel does not run with MCD enabled and hence rest
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* of the required steps to fully configure memory corruption
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* detection are not taken. We need to ensure TTE.mcde is not
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* set on M7 processor. Compute the value of cacheability
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* flag for use later taking this into consideration.
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*/
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switch (sun4v_chip_type) {
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case SUN4V_CHIP_SPARC_M7:
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page_cache4v_flag = _PAGE_CP_4V;
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break;
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default:
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page_cache4v_flag = _PAGE_CACHE_4V;
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break;
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}
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if (tlb_type == hypervisor)
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sun4v_pgprot_init();
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else
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@ -2274,13 +2314,6 @@ void free_initrd_mem(unsigned long start, unsigned long end)
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}
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#endif
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#define _PAGE_CACHE_4U (_PAGE_CP_4U | _PAGE_CV_4U)
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#define _PAGE_CACHE_4V (_PAGE_CP_4V | _PAGE_CV_4V)
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#define __DIRTY_BITS_4U (_PAGE_MODIFIED_4U | _PAGE_WRITE_4U | _PAGE_W_4U)
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#define __DIRTY_BITS_4V (_PAGE_MODIFIED_4V | _PAGE_WRITE_4V | _PAGE_W_4V)
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#define __ACCESS_BITS_4U (_PAGE_ACCESSED_4U | _PAGE_READ_4U | _PAGE_R)
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#define __ACCESS_BITS_4V (_PAGE_ACCESSED_4V | _PAGE_READ_4V | _PAGE_R)
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pgprot_t PAGE_KERNEL __read_mostly;
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EXPORT_SYMBOL(PAGE_KERNEL);
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@ -2312,8 +2345,7 @@ int __meminit vmemmap_populate(unsigned long vstart, unsigned long vend,
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_PAGE_P_4U | _PAGE_W_4U);
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if (tlb_type == hypervisor)
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pte_base = (_PAGE_VALID | _PAGE_SZ4MB_4V |
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_PAGE_CP_4V | _PAGE_CV_4V |
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_PAGE_P_4V | _PAGE_W_4V);
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page_cache4v_flag | _PAGE_P_4V | _PAGE_W_4V);
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pte_base |= _PAGE_PMD_HUGE;
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@ -2450,14 +2482,14 @@ static void __init sun4v_pgprot_init(void)
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int i;
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PAGE_KERNEL = __pgprot (_PAGE_PRESENT_4V | _PAGE_VALID |
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_PAGE_CACHE_4V | _PAGE_P_4V |
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page_cache4v_flag | _PAGE_P_4V |
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__ACCESS_BITS_4V | __DIRTY_BITS_4V |
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_PAGE_EXEC_4V);
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PAGE_KERNEL_LOCKED = PAGE_KERNEL;
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_PAGE_IE = _PAGE_IE_4V;
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_PAGE_E = _PAGE_E_4V;
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_PAGE_CACHE = _PAGE_CACHE_4V;
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_PAGE_CACHE = page_cache4v_flag;
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#ifdef CONFIG_DEBUG_PAGEALLOC
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kern_linear_pte_xor[0] = _PAGE_VALID ^ PAGE_OFFSET;
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@ -2465,8 +2497,8 @@ static void __init sun4v_pgprot_init(void)
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kern_linear_pte_xor[0] = (_PAGE_VALID | _PAGE_SZ4MB_4V) ^
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PAGE_OFFSET;
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#endif
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kern_linear_pte_xor[0] |= (_PAGE_CP_4V | _PAGE_CV_4V |
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_PAGE_P_4V | _PAGE_W_4V);
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kern_linear_pte_xor[0] |= (page_cache4v_flag | _PAGE_P_4V |
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_PAGE_W_4V);
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for (i = 1; i < 4; i++)
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kern_linear_pte_xor[i] = kern_linear_pte_xor[0];
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@ -2479,12 +2511,12 @@ static void __init sun4v_pgprot_init(void)
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_PAGE_SZ4MB_4V | _PAGE_SZ512K_4V |
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_PAGE_SZ64K_4V | _PAGE_SZ8K_4V);
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page_none = _PAGE_PRESENT_4V | _PAGE_ACCESSED_4V | _PAGE_CACHE_4V;
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page_shared = (_PAGE_VALID | _PAGE_PRESENT_4V | _PAGE_CACHE_4V |
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page_none = _PAGE_PRESENT_4V | _PAGE_ACCESSED_4V | page_cache4v_flag;
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page_shared = (_PAGE_VALID | _PAGE_PRESENT_4V | page_cache4v_flag |
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__ACCESS_BITS_4V | _PAGE_WRITE_4V | _PAGE_EXEC_4V);
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page_copy = (_PAGE_VALID | _PAGE_PRESENT_4V | _PAGE_CACHE_4V |
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page_copy = (_PAGE_VALID | _PAGE_PRESENT_4V | page_cache4v_flag |
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__ACCESS_BITS_4V | _PAGE_EXEC_4V);
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page_readonly = (_PAGE_VALID | _PAGE_PRESENT_4V | _PAGE_CACHE_4V |
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page_readonly = (_PAGE_VALID | _PAGE_PRESENT_4V | page_cache4v_flag |
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__ACCESS_BITS_4V | _PAGE_EXEC_4V);
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page_exec_bit = _PAGE_EXEC_4V;
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@ -2542,7 +2574,7 @@ static unsigned long kern_large_tte(unsigned long paddr)
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_PAGE_EXEC_4U | _PAGE_L_4U | _PAGE_W_4U);
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if (tlb_type == hypervisor)
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val = (_PAGE_VALID | _PAGE_SZ4MB_4V |
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_PAGE_CP_4V | _PAGE_CV_4V | _PAGE_P_4V |
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page_cache4v_flag | _PAGE_P_4V |
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_PAGE_EXEC_4V | _PAGE_W_4V);
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return val | paddr;
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