1 | /*
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2 | * Copyright (c) 2017 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 | /** @addtogroup kernel_generic
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30 | * @{
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31 | */
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32 | /** @file
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33 | */
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34 |
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35 | /*
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36 | * HelenOS capabilities are task-local names for references to kernel objects.
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37 | * Kernel objects are reference-counted wrappers for a select group of objects
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38 | * allocated in and by the kernel that can be made accessible to userspace in a
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39 | * controlled way via integer handles.
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40 | *
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41 | * A kernel object (kobject_t) encapsulates one of the following raw objects:
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42 | *
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43 | * - IPC call
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44 | * - IPC phone
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45 | * - IRQ object
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46 | *
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47 | * A capability (cap_t) is either free, allocated or published. Free
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48 | * capabilities can be allocated, which reserves the capability handle in the
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49 | * task-local capability space. Allocated capabilities can be published, which
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50 | * associates them with an existing kernel object. Userspace can only access
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51 | * published capabilities.
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52 | *
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53 | * A published capability may get unpublished, which disassociates it from the
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54 | * underlying kernel object and puts it back into the allocated state. An
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55 | * allocated capability can be freed to become available for future use.
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56 | *
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57 | * There is a 1:1 correspondence between a kernel object (kobject_t) and the
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58 | * actual raw object it encapsulates. A kernel object (kobject_t) may have
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59 | * multiple references, either implicit from one or more capabilities (cap_t),
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60 | * even from capabilities in different tasks, or explicit as a result of
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61 | * creating a new reference from a capability handle using kobject_get(), or
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62 | * creating a new reference from an already existing reference by
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63 | * kobject_add_ref() or as a result of unpublishing a capability and
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64 | * disassociating it from its kobject_t using cap_unpublish().
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65 | *
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66 | * A holder of an explicit reference to a kernel object may revoke access to it
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67 | * from all capabilities that point to it by calling cap_revoke().
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68 | *
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69 | * As kernel objects are reference-counted, they get automatically destroyed
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70 | * when their last reference is dropped in kobject_put(). The idea is that
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71 | * whenever a kernel object is inserted into some sort of a container (e.g. a
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72 | * list or hash table), its reference count should be incremented via
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73 | * kobject_get() or kobject_add_ref(). When the kernel object is removed from
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74 | * the container, the reference count should go down via a call to
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75 | * kobject_put().
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76 | */
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77 |
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78 | #include <cap/cap.h>
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79 | #include <abi/cap.h>
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80 | #include <proc/task.h>
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81 | #include <synch/mutex.h>
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82 | #include <abi/errno.h>
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83 | #include <mm/slab.h>
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84 | #include <adt/list.h>
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85 | #include <synch/syswaitq.h>
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86 | #include <ipc/ipcrsc.h>
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87 | #include <ipc/ipc.h>
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88 | #include <ipc/irq.h>
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89 |
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90 | #include <limits.h>
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91 | #include <stdint.h>
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92 | #include <stdlib.h>
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93 |
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94 | #define CAPS_START ((intptr_t) CAP_NIL + 1)
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95 | #define CAPS_LAST ((intptr_t) INT_MAX - 1)
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96 | #define CAPS_SIZE (CAPS_LAST - CAPS_START + 1)
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97 |
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98 | static slab_cache_t *cap_cache;
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99 |
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100 | kobject_ops_t *kobject_ops[KOBJECT_TYPE_MAX] = {
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101 | [KOBJECT_TYPE_CALL] = &call_kobject_ops,
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102 | [KOBJECT_TYPE_IRQ] = &irq_kobject_ops,
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103 | [KOBJECT_TYPE_PHONE] = &phone_kobject_ops,
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104 | [KOBJECT_TYPE_WAITQ] = &waitq_kobject_ops
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105 | };
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106 |
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107 | static size_t caps_hash(const ht_link_t *item)
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108 | {
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109 | cap_t *cap = hash_table_get_inst(item, cap_t, caps_link);
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110 | return hash_mix(cap_handle_raw(cap->handle));
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111 | }
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112 |
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113 | static size_t caps_key_hash(const void *key)
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114 | {
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115 | const cap_handle_t *handle = key;
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116 | return hash_mix(cap_handle_raw(*handle));
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117 | }
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118 |
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119 | static bool caps_key_equal(const void *key, const ht_link_t *item)
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120 | {
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121 | const cap_handle_t *handle = key;
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122 | cap_t *cap = hash_table_get_inst(item, cap_t, caps_link);
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123 | return *handle == cap->handle;
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124 | }
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125 |
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126 | static void caps_remove_callback(ht_link_t *item)
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127 | {
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128 | cap_t *cap = hash_table_get_inst(item, cap_t, caps_link);
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129 |
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130 | if (cap->kobject) {
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131 | kobject_t *kobj = cap->kobject;
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132 |
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133 | mutex_lock(&kobj->caps_list_lock);
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134 | cap->kobject = NULL;
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135 | list_remove(&cap->kobj_link);
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136 | mutex_unlock(&kobj->caps_list_lock);
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137 |
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138 | kobject_put(kobj);
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139 | }
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140 |
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141 | list_remove(&cap->type_link);
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142 |
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143 | slab_free(cap_cache, cap);
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144 | }
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145 |
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146 | static const hash_table_ops_t caps_ops = {
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147 | .hash = caps_hash,
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148 | .key_hash = caps_key_hash,
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149 | .key_equal = caps_key_equal,
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150 | .remove_callback = caps_remove_callback,
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151 | };
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152 |
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153 | void caps_init(void)
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154 | {
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155 | cap_cache = slab_cache_create("cap_t", sizeof(cap_t), 0, NULL,
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156 | NULL, 0);
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157 | }
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158 |
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159 | /** Allocate the capability info structure
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160 | *
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161 | * @param task Task for which to allocate the info structure.
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162 | */
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163 | errno_t caps_task_alloc(task_t *task)
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164 | {
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165 | task->cap_info = (cap_info_t *) malloc(sizeof(cap_info_t));
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166 | if (!task->cap_info)
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167 | return ENOMEM;
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168 |
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169 | if (!hash_table_create(&task->cap_info->caps, 0, 0, &caps_ops)) {
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170 | free(task->cap_info);
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171 | return ENOMEM;
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172 | }
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173 |
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174 | mutex_initialize(&task->cap_info->lock, MUTEX_RECURSIVE);
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175 |
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176 | task->cap_info->handles = NULL;
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177 |
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178 | for (kobject_type_t t = 0; t < KOBJECT_TYPE_MAX; t++)
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179 | list_initialize(&task->cap_info->type_list[t]);
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180 |
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181 | return EOK;
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182 | }
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183 |
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184 | /** Initialize the capability info structure
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185 | *
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186 | * @param task Task for which to initialize the info structure.
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187 | */
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188 | errno_t caps_task_init(task_t *task)
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189 | {
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190 | assert(task->cap_info);
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191 | assert(!task->cap_info->handles);
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192 |
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193 | task->cap_info->handles = ra_arena_create();
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194 | if (!task->cap_info->handles)
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195 | return ENOMEM;
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196 |
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197 | if (!ra_span_add(task->cap_info->handles, CAPS_START, CAPS_SIZE)) {
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198 | ra_arena_destroy(task->cap_info->handles);
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199 | return ENOMEM;
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200 | }
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201 |
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202 | return EOK;
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203 | }
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204 |
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205 | void caps_task_clear(task_t *task)
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206 | {
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207 | mutex_lock(&task->cap_info->lock);
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208 |
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209 | hash_table_clear(&task->cap_info->caps);
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210 |
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211 | if (task->cap_info->handles) {
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212 | ra_arena_destroy(task->cap_info->handles);
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213 | task->cap_info->handles = NULL;
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214 | }
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215 |
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216 | for (kobject_type_t t = 0; t < KOBJECT_TYPE_MAX; t++)
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217 | list_initialize(&task->cap_info->type_list[t]);
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218 |
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219 | mutex_unlock(&task->cap_info->lock);
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220 | }
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221 |
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222 | /** Deallocate the capability info structure
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223 | *
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224 | * @param task Task from which to deallocate the info structure.
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225 | */
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226 | void caps_task_free(task_t *task)
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227 | {
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228 | hash_table_destroy(&task->cap_info->caps);
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229 |
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230 | if (task->cap_info->handles)
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231 | ra_arena_destroy(task->cap_info->handles);
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232 |
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233 | free(task->cap_info);
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234 | }
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235 |
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236 | /** Invoke callback function on task's capabilites of given type
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237 | *
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238 | * @param task Task where the invocation should take place.
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239 | * @param type Kernel object type of the task's capabilities that will be
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240 | * subject to the callback invocation.
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241 | * @param cb Callback function.
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242 | * @param arg Argument for the callback function.
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243 | *
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244 | * @return True if the callback was called on all matching capabilities.
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245 | * @return False if the callback was applied only partially.
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246 | */
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247 | bool caps_apply_to_kobject_type(task_t *task, kobject_type_t type,
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248 | bool (*cb)(cap_t *, void *), void *arg)
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249 | {
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250 | bool done = true;
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251 |
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252 | mutex_lock(&task->cap_info->lock);
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253 | list_foreach_safe(task->cap_info->type_list[type], cur, next) {
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254 | cap_t *cap = list_get_instance(cur, cap_t, type_link);
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255 | done = cb(cap, arg);
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256 | if (!done)
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257 | break;
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258 | }
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259 | mutex_unlock(&task->cap_info->lock);
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260 |
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261 | return done;
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262 | }
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263 |
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264 | /** Initialize capability and associate it with its handle
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265 | *
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266 | * @param cap Address of the capability.
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267 | * @param task Backling to the owning task.
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268 | * @param handle Capability handle.
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269 | */
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270 | static void cap_initialize(cap_t *cap, task_t *task, cap_handle_t handle)
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271 | {
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272 | cap->state = CAP_STATE_FREE;
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273 | cap->task = task;
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274 | cap->handle = handle;
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275 | link_initialize(&cap->kobj_link);
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276 | link_initialize(&cap->type_link);
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277 | }
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278 |
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279 | /** Get capability using capability handle
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280 | *
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281 | * @param task Task whose capability to get.
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282 | * @param handle Capability handle of the desired capability.
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283 | * @param state State in which the capability must be.
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284 | *
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285 | * @return Address of the desired capability if it exists and its state matches.
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286 | * @return NULL if no such capability exists or it's in a different state.
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287 | */
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288 | static cap_t *cap_get(task_t *task, cap_handle_t handle, cap_state_t state)
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289 | {
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290 | assert(mutex_locked(&task->cap_info->lock));
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291 |
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292 | if ((cap_handle_raw(handle) < CAPS_START) ||
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293 | (cap_handle_raw(handle) > CAPS_LAST))
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294 | return NULL;
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295 | ht_link_t *link = hash_table_find(&task->cap_info->caps, &handle);
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296 | if (!link)
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297 | return NULL;
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298 | cap_t *cap = hash_table_get_inst(link, cap_t, caps_link);
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299 | if (cap->state != state)
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300 | return NULL;
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301 | return cap;
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302 | }
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303 |
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304 | /** Allocate new capability
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305 | *
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306 | * @param task Task for which to allocate the new capability.
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307 | *
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308 | * @param[out] handle New capability handle on success.
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309 | *
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310 | * @return An error code in case of error.
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311 | */
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312 | errno_t cap_alloc(task_t *task, cap_handle_t *handle)
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313 | {
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314 | mutex_lock(&task->cap_info->lock);
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315 | cap_t *cap = slab_alloc(cap_cache, FRAME_ATOMIC);
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316 | if (!cap) {
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317 | mutex_unlock(&task->cap_info->lock);
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318 | return ENOMEM;
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319 | }
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320 | uintptr_t hbase;
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321 | if (!ra_alloc(task->cap_info->handles, 1, 1, &hbase)) {
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322 | slab_free(cap_cache, cap);
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323 | mutex_unlock(&task->cap_info->lock);
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324 | return ENOMEM;
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325 | }
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326 | cap_initialize(cap, task, (cap_handle_t) hbase);
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327 | hash_table_insert(&task->cap_info->caps, &cap->caps_link);
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328 |
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329 | cap->state = CAP_STATE_ALLOCATED;
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330 | *handle = cap->handle;
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331 | mutex_unlock(&task->cap_info->lock);
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332 |
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333 | return EOK;
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334 | }
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335 |
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336 | /** Publish allocated capability
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337 | *
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338 | * The kernel object is moved into the capability. In other words, its reference
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339 | * is handed over to the capability. Once published, userspace can access and
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340 | * manipulate the capability.
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341 | *
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342 | * @param task Task in which to publish the capability.
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343 | * @param handle Capability handle.
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344 | * @param kobj Kernel object.
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345 | */
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346 | void
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347 | cap_publish(task_t *task, cap_handle_t handle, kobject_t *kobj)
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348 | {
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349 | mutex_lock(&task->cap_info->lock);
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350 | mutex_lock(&kobj->caps_list_lock);
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351 | cap_t *cap = cap_get(task, handle, CAP_STATE_ALLOCATED);
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352 | assert(cap);
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353 | cap->state = CAP_STATE_PUBLISHED;
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354 | /* Hand over kobj's reference to cap */
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355 | cap->kobject = kobj;
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356 | list_append(&cap->kobj_link, &kobj->caps_list);
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357 | list_append(&cap->type_link, &task->cap_info->type_list[kobj->type]);
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358 | mutex_unlock(&kobj->caps_list_lock);
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359 | mutex_unlock(&task->cap_info->lock);
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360 | }
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361 |
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362 | static void cap_unpublish_unsafe(cap_t *cap)
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363 | {
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364 | cap->kobject = NULL;
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365 | list_remove(&cap->kobj_link);
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366 | list_remove(&cap->type_link);
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367 | cap->state = CAP_STATE_ALLOCATED;
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368 | }
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369 |
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370 | /** Unpublish published capability
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371 | *
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372 | * The kernel object is moved out of the capability. In other words, the
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373 | * capability's reference to the objects is handed over to the kernel object
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374 | * pointer returned by this function. Once unpublished, the capability does not
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375 | * refer to any kernel object anymore.
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376 | *
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377 | * @param task Task in which to unpublish the capability.
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378 | * @param handle Capability handle.
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379 | * @param type Kernel object type of the object associated with the
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380 | * capability.
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381 | *
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382 | * @return Pointer and explicit reference to the kobject that was associated
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383 | * with the capability.
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384 | */
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385 | kobject_t *cap_unpublish(task_t *task, cap_handle_t handle, kobject_type_t type)
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386 | {
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387 | kobject_t *kobj = NULL;
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388 |
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389 | mutex_lock(&task->cap_info->lock);
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390 | cap_t *cap = cap_get(task, handle, CAP_STATE_PUBLISHED);
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391 | if (cap) {
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392 | if (cap->kobject->type == type) {
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393 | /* Hand over cap's reference to kobj */
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394 | kobj = cap->kobject;
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395 |
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396 | mutex_lock(&kobj->caps_list_lock);
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397 | cap_unpublish_unsafe(cap);
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398 | mutex_unlock(&kobj->caps_list_lock);
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399 | }
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400 | }
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401 | mutex_unlock(&task->cap_info->lock);
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402 |
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403 | return kobj;
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404 | }
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405 |
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406 | /** Revoke access to kobject from all existing capabilities
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407 | *
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408 | * All published capabilities associated with the kobject are unpublished (i.e.
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409 | * their new state is set to CAP_STATE_ALLOCATED) and no longer point to the
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410 | * kobject. Kobject's reference count is decreased accordingly.
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411 | *
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412 | * Note that the caller is supposed to hold an explicit reference to the kobject
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413 | * so that the kobject is guaranteed to exist when this function returns.
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414 | *
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415 | * @param kobj Pointer and explicit reference to the kobject capabilities of
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416 | * which are about to be unpublished.
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417 | */
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418 | void cap_revoke(kobject_t *kobj)
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419 | {
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420 | mutex_lock(&kobj->caps_list_lock);
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421 |
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422 | while (!list_empty(&kobj->caps_list)) {
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423 | cap_t *cap = list_get_instance(list_first(&kobj->caps_list), cap_t, kobj_link);
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424 |
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425 | /* We're trying to acquire the two locks in reverse order. */
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426 | if (mutex_trylock(&cap->task->cap_info->lock) != EOK) {
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427 | mutex_unlock(&kobj->caps_list_lock);
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428 | mutex_lock(&kobj->caps_list_lock);
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429 | continue;
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430 | }
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431 |
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432 | cap_unpublish_unsafe(cap);
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433 | /* Drop the reference for the unpublished capability */
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434 | kobject_put(kobj);
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435 |
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436 | mutex_unlock(&cap->task->cap_info->lock);
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437 | }
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438 |
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439 | mutex_unlock(&kobj->caps_list_lock);
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440 | }
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441 |
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442 | /** Free allocated capability
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443 | *
|
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444 | * @param task Task in which to free the capability.
|
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445 | * @param handle Capability handle.
|
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446 | */
|
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447 | void cap_free(task_t *task, cap_handle_t handle)
|
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448 | {
|
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449 | assert(cap_handle_raw(handle) >= CAPS_START);
|
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450 | assert(cap_handle_raw(handle) <= CAPS_LAST);
|
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451 |
|
---|
452 | mutex_lock(&task->cap_info->lock);
|
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453 | cap_t *cap = cap_get(task, handle, CAP_STATE_ALLOCATED);
|
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454 |
|
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455 | assert(cap);
|
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456 |
|
---|
457 | hash_table_remove_item(&task->cap_info->caps, &cap->caps_link);
|
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458 | ra_free(task->cap_info->handles, cap_handle_raw(handle), 1);
|
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459 | mutex_unlock(&task->cap_info->lock);
|
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460 | }
|
---|
461 |
|
---|
462 | /** Initialize kernel object
|
---|
463 | *
|
---|
464 | * @param kobj Kernel object to initialize.
|
---|
465 | * @param type Type of the kernel object.
|
---|
466 | */
|
---|
467 | void kobject_initialize(kobject_t *kobj, kobject_type_t type)
|
---|
468 | {
|
---|
469 | refcount_init(&kobj->refcnt);
|
---|
470 |
|
---|
471 | mutex_initialize(&kobj->caps_list_lock, MUTEX_PASSIVE);
|
---|
472 | list_initialize(&kobj->caps_list);
|
---|
473 |
|
---|
474 | kobj->type = type;
|
---|
475 | }
|
---|
476 |
|
---|
477 | /** Get new reference to kernel object from capability
|
---|
478 | *
|
---|
479 | * @param task Task from which to get the reference.
|
---|
480 | * @param handle Capability handle.
|
---|
481 | * @param type Kernel object type of the object associated with the
|
---|
482 | * capability referenced by handle.
|
---|
483 | *
|
---|
484 | * @return Kernel object with incremented reference count on success.
|
---|
485 | * @return NULL if there is no matching capability or kernel object.
|
---|
486 | */
|
---|
487 | kobject_t *
|
---|
488 | kobject_get(struct task *task, cap_handle_t handle, kobject_type_t type)
|
---|
489 | {
|
---|
490 | kobject_t *kobj = NULL;
|
---|
491 |
|
---|
492 | mutex_lock(&task->cap_info->lock);
|
---|
493 | cap_t *cap = cap_get(task, handle, CAP_STATE_PUBLISHED);
|
---|
494 | if (cap) {
|
---|
495 | if (cap->kobject->type == type) {
|
---|
496 | kobj = cap->kobject;
|
---|
497 | refcount_up(&kobj->refcnt);
|
---|
498 | }
|
---|
499 | }
|
---|
500 | mutex_unlock(&task->cap_info->lock);
|
---|
501 |
|
---|
502 | return kobj;
|
---|
503 | }
|
---|
504 |
|
---|
505 | /** Record new reference
|
---|
506 | *
|
---|
507 | * @param kobj Kernel object from which the new reference is created.
|
---|
508 | */
|
---|
509 | void kobject_add_ref(kobject_t *kobj)
|
---|
510 | {
|
---|
511 | refcount_up(&kobj->refcnt);
|
---|
512 | }
|
---|
513 |
|
---|
514 | /** Drop reference to kernel object
|
---|
515 | *
|
---|
516 | * The encapsulated object and the kobject_t wrapper are both destroyed when the
|
---|
517 | * last reference is dropped.
|
---|
518 | *
|
---|
519 | * @param kobj Kernel object whose reference to drop.
|
---|
520 | */
|
---|
521 | void kobject_put(kobject_t *kobj)
|
---|
522 | {
|
---|
523 | if (refcount_down(&kobj->refcnt)) {
|
---|
524 | KOBJECT_OP(kobj)->destroy(kobj);
|
---|
525 | }
|
---|
526 | }
|
---|
527 |
|
---|
528 | /** @}
|
---|
529 | */
|
---|