| 1 | /*
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| 2 | * Copyright (C) 2006 Jakub Jermar
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| 3 | * All rights reserved.
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| 4 | *
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| 5 | * Redistribution and use in source and binary forms, with or without
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| 6 | * modification, are permitted provided that the following conditions
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| 7 | * are met:
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| 8 | *
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| 9 | * - Redistributions of source code must retain the above copyright
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| 10 | * notice, this list of conditions and the following disclaimer.
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| 11 | * - Redistributions in binary form must reproduce the above copyright
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| 12 | * notice, this list of conditions and the following disclaimer in the
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| 13 | * documentation and/or other materials provided with the distribution.
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| 14 | * - The name of the author may not be used to endorse or promote products
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| 15 | * derived from this software without specific prior written permission.
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| 16 | *
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| 17 | * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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| 18 | * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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| 19 | * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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| 20 | * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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| 21 | * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
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| 22 | * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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| 23 | * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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| 24 | * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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| 25 | * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
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| 26 | * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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| 27 | */
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| 28 |
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| 29 | /**
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| 30 | * @file page_pt.c
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| 31 | * @brief Virtual Address Translation for hierarchical 4-level page tables.
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| 32 | */
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| 33 |
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| 34 | #include <genarch/mm/page_pt.h>
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| 35 | #include <mm/page.h>
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| 36 | #include <mm/frame.h>
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| 37 | #include <mm/as.h>
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| 38 | #include <arch/mm/page.h>
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| 39 | #include <arch/mm/as.h>
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| 40 | #include <arch/types.h>
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| 41 | #include <typedefs.h>
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| 42 | #include <arch/asm.h>
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| 43 | #include <memstr.h>
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| 44 |
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| 45 | static void pt_mapping_insert(as_t *as, __address page, __address frame, int flags);
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| 46 | static void pt_mapping_remove(as_t *as, __address page);
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| 47 | static pte_t *pt_mapping_find(as_t *as, __address page);
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| 48 |
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| 49 | page_mapping_operations_t pt_mapping_operations = {
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| 50 | .mapping_insert = pt_mapping_insert,
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| 51 | .mapping_remove = pt_mapping_remove,
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| 52 | .mapping_find = pt_mapping_find
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| 53 | };
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| 54 |
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| 55 | /** Map page to frame using hierarchical page tables.
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| 56 | *
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| 57 | * Map virtual address page to physical address frame
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| 58 | * using flags.
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| 59 | *
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| 60 | * The page table must be locked and interrupts must be disabled.
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| 61 | *
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| 62 | * @param as Address space to wich page belongs.
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| 63 | * @param page Virtual address of the page to be mapped.
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| 64 | * @param frame Physical address of memory frame to which the mapping is done.
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| 65 | * @param flags Flags to be used for mapping.
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| 66 | */
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| 67 | void pt_mapping_insert(as_t *as, __address page, __address frame, int flags)
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| 68 | {
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| 69 | pte_t *ptl0, *ptl1, *ptl2, *ptl3;
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| 70 | __address newpt;
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| 71 |
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| 72 | ptl0 = (pte_t *) PA2KA((__address) as->page_table);
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| 73 |
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| 74 | if (GET_PTL1_FLAGS(ptl0, PTL0_INDEX(page)) & PAGE_NOT_PRESENT) {
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| 75 | newpt = PA2KA(PFN2ADDR(frame_alloc(ONE_FRAME, FRAME_KA)));
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| 76 | memsetb(newpt, PAGE_SIZE, 0);
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| 77 | SET_PTL1_ADDRESS(ptl0, PTL0_INDEX(page), KA2PA(newpt));
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| 78 | SET_PTL1_FLAGS(ptl0, PTL0_INDEX(page), PAGE_PRESENT | PAGE_USER | PAGE_EXEC | PAGE_CACHEABLE | PAGE_WRITE);
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| 79 | }
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| 80 |
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| 81 | ptl1 = (pte_t *) PA2KA(GET_PTL1_ADDRESS(ptl0, PTL0_INDEX(page)));
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| 82 |
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| 83 | if (GET_PTL2_FLAGS(ptl1, PTL1_INDEX(page)) & PAGE_NOT_PRESENT) {
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| 84 | newpt = PA2KA(PFN2ADDR(frame_alloc(ONE_FRAME, FRAME_KA)));
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| 85 | memsetb(newpt, PAGE_SIZE, 0);
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| 86 | SET_PTL2_ADDRESS(ptl1, PTL1_INDEX(page), KA2PA(newpt));
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| 87 | SET_PTL2_FLAGS(ptl1, PTL1_INDEX(page), PAGE_PRESENT | PAGE_USER | PAGE_EXEC | PAGE_CACHEABLE | PAGE_WRITE);
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| 88 | }
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| 89 |
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| 90 | ptl2 = (pte_t *) PA2KA(GET_PTL2_ADDRESS(ptl1, PTL1_INDEX(page)));
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| 91 |
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| 92 | if (GET_PTL3_FLAGS(ptl2, PTL2_INDEX(page)) & PAGE_NOT_PRESENT) {
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| 93 | newpt = PA2KA(PFN2ADDR(frame_alloc(ONE_FRAME, FRAME_KA)));
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| 94 | memsetb(newpt, PAGE_SIZE, 0);
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| 95 | SET_PTL3_ADDRESS(ptl2, PTL2_INDEX(page), KA2PA(newpt));
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| 96 | SET_PTL3_FLAGS(ptl2, PTL2_INDEX(page), PAGE_PRESENT | PAGE_USER | PAGE_EXEC | PAGE_CACHEABLE | PAGE_WRITE);
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| 97 | }
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| 98 |
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| 99 | ptl3 = (pte_t *) PA2KA(GET_PTL3_ADDRESS(ptl2, PTL2_INDEX(page)));
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| 100 |
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| 101 | SET_FRAME_ADDRESS(ptl3, PTL3_INDEX(page), frame);
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| 102 | SET_FRAME_FLAGS(ptl3, PTL3_INDEX(page), flags);
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| 103 | }
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| 104 |
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| 105 | /** Remove mapping of page from hierarchical page tables.
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| 106 | *
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| 107 | * Remove any mapping of page within address space as.
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| 108 | * TLB shootdown should follow in order to make effects of
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| 109 | * this call visible.
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| 110 | *
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| 111 | * Empty page tables except PTL0 are freed.
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| 112 | *
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| 113 | * The page table must be locked and interrupts must be disabled.
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| 114 | *
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| 115 | * @param as Address space to wich page belongs.
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| 116 | * @param page Virtual address of the page to be demapped.
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| 117 | */
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| 118 | void pt_mapping_remove(as_t *as, __address page)
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| 119 | {
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| 120 | pte_t *ptl0, *ptl1, *ptl2, *ptl3;
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| 121 | bool empty = true;
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| 122 | int i;
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| 123 |
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| 124 | /*
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| 125 | * First, remove the mapping, if it exists.
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| 126 | */
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| 127 |
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| 128 | ptl0 = (pte_t *) PA2KA((__address) as->page_table);
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| 129 |
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| 130 | if (GET_PTL1_FLAGS(ptl0, PTL0_INDEX(page)) & PAGE_NOT_PRESENT)
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| 131 | return;
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| 132 |
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| 133 | ptl1 = (pte_t *) PA2KA(GET_PTL1_ADDRESS(ptl0, PTL0_INDEX(page)));
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| 134 |
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| 135 | if (GET_PTL2_FLAGS(ptl1, PTL1_INDEX(page)) & PAGE_NOT_PRESENT)
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| 136 | return;
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| 137 |
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| 138 | ptl2 = (pte_t *) PA2KA(GET_PTL2_ADDRESS(ptl1, PTL1_INDEX(page)));
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| 139 |
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| 140 | if (GET_PTL3_FLAGS(ptl2, PTL2_INDEX(page)) & PAGE_NOT_PRESENT)
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| 141 | return;
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| 142 |
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| 143 | ptl3 = (pte_t *) PA2KA(GET_PTL3_ADDRESS(ptl2, PTL2_INDEX(page)));
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| 144 |
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| 145 | /* Destroy the mapping. Setting to PAGE_NOT_PRESENT is not sufficient. */
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| 146 | memsetb((__address) &ptl3[PTL3_INDEX(page)], sizeof(pte_t), 0);
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| 147 |
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| 148 | /*
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| 149 | * Second, free all empty tables along the way from PTL3 down to PTL0.
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| 150 | */
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| 151 |
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| 152 | /* check PTL3 */
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| 153 | for (i = 0; i < PTL3_ENTRIES; i++) {
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| 154 | if (PTE_VALID(&ptl3[i])) {
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| 155 | empty = false;
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| 156 | break;
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| 157 | }
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| 158 | }
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| 159 | if (empty) {
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| 160 | /*
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| 161 | * PTL3 is empty.
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| 162 | * Release the frame and remove PTL3 pointer from preceding table.
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| 163 | */
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| 164 | frame_free(ADDR2PFN(KA2PA((__address) ptl3)));
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| 165 | if (PTL2_ENTRIES)
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| 166 | memsetb((__address) &ptl2[PTL2_INDEX(page)], sizeof(pte_t), 0);
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| 167 | else if (PTL1_ENTRIES)
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| 168 | memsetb((__address) &ptl1[PTL1_INDEX(page)], sizeof(pte_t), 0);
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| 169 | else
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| 170 | memsetb((__address) &ptl0[PTL0_INDEX(page)], sizeof(pte_t), 0);
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| 171 | } else {
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| 172 | /*
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| 173 | * PTL3 is not empty.
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| 174 | * Therefore, there must be a path from PTL0 to PTL3 and
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| 175 | * thus nothing to free in higher levels.
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| 176 | */
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| 177 | return;
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| 178 | }
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| 179 |
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| 180 | /* check PTL2, empty is still true */
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| 181 | if (PTL2_ENTRIES) {
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| 182 | for (i = 0; i < PTL2_ENTRIES; i++) {
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| 183 | if (PTE_VALID(&ptl2[i])) {
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| 184 | empty = false;
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| 185 | break;
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| 186 | }
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| 187 | }
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| 188 | if (empty) {
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| 189 | /*
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| 190 | * PTL2 is empty.
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| 191 | * Release the frame and remove PTL2 pointer from preceding table.
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| 192 | */
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| 193 | frame_free(ADDR2PFN(KA2PA((__address) ptl2)));
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| 194 | if (PTL1_ENTRIES)
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| 195 | memsetb((__address) &ptl1[PTL1_INDEX(page)], sizeof(pte_t), 0);
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| 196 | else
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| 197 | memsetb((__address) &ptl0[PTL0_INDEX(page)], sizeof(pte_t), 0);
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| 198 | }
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| 199 | else {
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| 200 | /*
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| 201 | * PTL2 is not empty.
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| 202 | * Therefore, there must be a path from PTL0 to PTL2 and
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| 203 | * thus nothing to free in higher levels.
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| 204 | */
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| 205 | return;
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| 206 | }
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| 207 | }
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| 208 |
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| 209 | /* check PTL1, empty is still true */
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| 210 | if (PTL1_ENTRIES) {
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| 211 | for (i = 0; i < PTL1_ENTRIES; i++) {
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| 212 | if (PTE_VALID(&ptl1[i])) {
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| 213 | empty = false;
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| 214 | break;
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| 215 | }
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| 216 | }
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| 217 | if (empty) {
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| 218 | /*
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| 219 | * PTL1 is empty.
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| 220 | * Release the frame and remove PTL1 pointer from preceding table.
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| 221 | */
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| 222 | frame_free(ADDR2PFN(KA2PA((__address) ptl1)));
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| 223 | memsetb((__address) &ptl0[PTL0_INDEX(page)], sizeof(pte_t), 0);
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| 224 | }
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| 225 | }
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| 226 |
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| 227 | }
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| 228 |
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| 229 | /** Find mapping for virtual page in hierarchical page tables.
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| 230 | *
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| 231 | * Find mapping for virtual page.
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| 232 | *
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| 233 | * The page table must be locked and interrupts must be disabled.
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| 234 | *
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| 235 | * @param as Address space to which page belongs.
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| 236 | * @param page Virtual page.
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| 237 | *
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| 238 | * @return NULL if there is no such mapping; entry from PTL3 describing the mapping otherwise.
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| 239 | */
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| 240 | pte_t *pt_mapping_find(as_t *as, __address page)
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| 241 | {
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| 242 | pte_t *ptl0, *ptl1, *ptl2, *ptl3;
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| 243 |
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| 244 | ptl0 = (pte_t *) PA2KA((__address) as->page_table);
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| 245 |
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| 246 | if (GET_PTL1_FLAGS(ptl0, PTL0_INDEX(page)) & PAGE_NOT_PRESENT)
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| 247 | return NULL;
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| 248 |
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| 249 | ptl1 = (pte_t *) PA2KA(GET_PTL1_ADDRESS(ptl0, PTL0_INDEX(page)));
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| 250 |
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| 251 | if (GET_PTL2_FLAGS(ptl1, PTL1_INDEX(page)) & PAGE_NOT_PRESENT)
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| 252 | return NULL;
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| 253 |
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| 254 | ptl2 = (pte_t *) PA2KA(GET_PTL2_ADDRESS(ptl1, PTL1_INDEX(page)));
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| 255 |
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| 256 | if (GET_PTL3_FLAGS(ptl2, PTL2_INDEX(page)) & PAGE_NOT_PRESENT)
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| 257 | return NULL;
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| 258 |
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| 259 | ptl3 = (pte_t *) PA2KA(GET_PTL3_ADDRESS(ptl2, PTL2_INDEX(page)));
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| 260 |
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| 261 | return &ptl3[PTL3_INDEX(page)];
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| 262 | }
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