inline-encryption.rst 17 KB

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  1. .. SPDX-License-Identifier: GPL-2.0
  2. .. _inline_encryption:
  3. =================
  4. Inline Encryption
  5. =================
  6. Background
  7. ==========
  8. Inline encryption hardware sits logically between memory and disk, and can
  9. en/decrypt data as it goes in/out of the disk. For each I/O request, software
  10. can control exactly how the inline encryption hardware will en/decrypt the data
  11. in terms of key, algorithm, data unit size (the granularity of en/decryption),
  12. and data unit number (a value that determines the initialization vector(s)).
  13. Some inline encryption hardware accepts all encryption parameters including raw
  14. keys directly in low-level I/O requests. However, most inline encryption
  15. hardware instead has a fixed number of "keyslots" and requires that the key,
  16. algorithm, and data unit size first be programmed into a keyslot. Each
  17. low-level I/O request then just contains a keyslot index and data unit number.
  18. Note that inline encryption hardware is very different from traditional crypto
  19. accelerators, which are supported through the kernel crypto API. Traditional
  20. crypto accelerators operate on memory regions, whereas inline encryption
  21. hardware operates on I/O requests. Thus, inline encryption hardware needs to be
  22. managed by the block layer, not the kernel crypto API.
  23. Inline encryption hardware is also very different from "self-encrypting drives",
  24. such as those based on the TCG Opal or ATA Security standards. Self-encrypting
  25. drives don't provide fine-grained control of encryption and provide no way to
  26. verify the correctness of the resulting ciphertext. Inline encryption hardware
  27. provides fine-grained control of encryption, including the choice of key and
  28. initialization vector for each sector, and can be tested for correctness.
  29. Objective
  30. =========
  31. We want to support inline encryption in the kernel. To make testing easier, we
  32. also want support for falling back to the kernel crypto API when actual inline
  33. encryption hardware is absent. We also want inline encryption to work with
  34. layered devices like device-mapper and loopback (i.e. we want to be able to use
  35. the inline encryption hardware of the underlying devices if present, or else
  36. fall back to crypto API en/decryption).
  37. Constraints and notes
  38. =====================
  39. - We need a way for upper layers (e.g. filesystems) to specify an encryption
  40. context to use for en/decrypting a bio, and device drivers (e.g. UFSHCD) need
  41. to be able to use that encryption context when they process the request.
  42. Encryption contexts also introduce constraints on bio merging; the block layer
  43. needs to be aware of these constraints.
  44. - Different inline encryption hardware has different supported algorithms,
  45. supported data unit sizes, maximum data unit numbers, etc. We call these
  46. properties the "crypto capabilities". We need a way for device drivers to
  47. advertise crypto capabilities to upper layers in a generic way.
  48. - Inline encryption hardware usually (but not always) requires that keys be
  49. programmed into keyslots before being used. Since programming keyslots may be
  50. slow and there may not be very many keyslots, we shouldn't just program the
  51. key for every I/O request, but rather keep track of which keys are in the
  52. keyslots and reuse an already-programmed keyslot when possible.
  53. - Upper layers typically define a specific end-of-life for crypto keys, e.g.
  54. when an encrypted directory is locked or when a crypto mapping is torn down.
  55. At these times, keys are wiped from memory. We must provide a way for upper
  56. layers to also evict keys from any keyslots they are present in.
  57. - When possible, device-mapper devices must be able to pass through the inline
  58. encryption support of their underlying devices. However, it doesn't make
  59. sense for device-mapper devices to have keyslots themselves.
  60. Basic design
  61. ============
  62. We introduce ``struct blk_crypto_key`` to represent an inline encryption key and
  63. how it will be used. This includes the actual bytes of the key; the size of the
  64. key; the algorithm and data unit size the key will be used with; and the number
  65. of bytes needed to represent the maximum data unit number the key will be used
  66. with.
  67. We introduce ``struct bio_crypt_ctx`` to represent an encryption context. It
  68. contains a data unit number and a pointer to a blk_crypto_key. We add pointers
  69. to a bio_crypt_ctx to ``struct bio`` and ``struct request``; this allows users
  70. of the block layer (e.g. filesystems) to provide an encryption context when
  71. creating a bio and have it be passed down the stack for processing by the block
  72. layer and device drivers. Note that the encryption context doesn't explicitly
  73. say whether to encrypt or decrypt, as that is implicit from the direction of the
  74. bio; WRITE means encrypt, and READ means decrypt.
  75. We also introduce ``struct blk_crypto_profile`` to contain all generic inline
  76. encryption-related state for a particular inline encryption device. The
  77. blk_crypto_profile serves as the way that drivers for inline encryption hardware
  78. advertise their crypto capabilities and provide certain functions (e.g.,
  79. functions to program and evict keys) to upper layers. Each device driver that
  80. wants to support inline encryption will construct a blk_crypto_profile, then
  81. associate it with the disk's request_queue.
  82. The blk_crypto_profile also manages the hardware's keyslots, when applicable.
  83. This happens in the block layer, so that users of the block layer can just
  84. specify encryption contexts and don't need to know about keyslots at all, nor do
  85. device drivers need to care about most details of keyslot management.
  86. Specifically, for each keyslot, the block layer (via the blk_crypto_profile)
  87. keeps track of which blk_crypto_key that keyslot contains (if any), and how many
  88. in-flight I/O requests are using it. When the block layer creates a
  89. ``struct request`` for a bio that has an encryption context, it grabs a keyslot
  90. that already contains the key if possible. Otherwise it waits for an idle
  91. keyslot (a keyslot that isn't in-use by any I/O), then programs the key into the
  92. least-recently-used idle keyslot using the function the device driver provided.
  93. In both cases, the resulting keyslot is stored in the ``crypt_keyslot`` field of
  94. the request, where it is then accessible to device drivers and is released after
  95. the request completes.
  96. ``struct request`` also contains a pointer to the original bio_crypt_ctx.
  97. Requests can be built from multiple bios, and the block layer must take the
  98. encryption context into account when trying to merge bios and requests. For two
  99. bios/requests to be merged, they must have compatible encryption contexts: both
  100. unencrypted, or both encrypted with the same key and contiguous data unit
  101. numbers. Only the encryption context for the first bio in a request is
  102. retained, since the remaining bios have been verified to be merge-compatible
  103. with the first bio.
  104. To make it possible for inline encryption to work with request_queue based
  105. layered devices, when a request is cloned, its encryption context is cloned as
  106. well. When the cloned request is submitted, it is then processed as usual; this
  107. includes getting a keyslot from the clone's target device if needed.
  108. blk-crypto-fallback
  109. ===================
  110. It is desirable for the inline encryption support of upper layers (e.g.
  111. filesystems) to be testable without real inline encryption hardware, and
  112. likewise for the block layer's keyslot management logic. It is also desirable
  113. to allow upper layers to just always use inline encryption rather than have to
  114. implement encryption in multiple ways.
  115. Therefore, we also introduce *blk-crypto-fallback*, which is an implementation
  116. of inline encryption using the kernel crypto API. blk-crypto-fallback is built
  117. into the block layer, so it works on any block device without any special setup.
  118. Essentially, when a bio with an encryption context is submitted to a
  119. block_device that doesn't support that encryption context, the block layer will
  120. handle en/decryption of the bio using blk-crypto-fallback.
  121. For encryption, the data cannot be encrypted in-place, as callers usually rely
  122. on it being unmodified. Instead, blk-crypto-fallback allocates bounce pages,
  123. fills a new bio with those bounce pages, encrypts the data into those bounce
  124. pages, and submits that "bounce" bio. When the bounce bio completes,
  125. blk-crypto-fallback completes the original bio. If the original bio is too
  126. large, multiple bounce bios may be required; see the code for details.
  127. For decryption, blk-crypto-fallback "wraps" the bio's completion callback
  128. (``bi_complete``) and private data (``bi_private``) with its own, unsets the
  129. bio's encryption context, then submits the bio. If the read completes
  130. successfully, blk-crypto-fallback restores the bio's original completion
  131. callback and private data, then decrypts the bio's data in-place using the
  132. kernel crypto API. Decryption happens from a workqueue, as it may sleep.
  133. Afterwards, blk-crypto-fallback completes the bio.
  134. In both cases, the bios that blk-crypto-fallback submits no longer have an
  135. encryption context. Therefore, lower layers only see standard unencrypted I/O.
  136. blk-crypto-fallback also defines its own blk_crypto_profile and has its own
  137. "keyslots"; its keyslots contain ``struct crypto_skcipher`` objects. The reason
  138. for this is twofold. First, it allows the keyslot management logic to be tested
  139. without actual inline encryption hardware. Second, similar to actual inline
  140. encryption hardware, the crypto API doesn't accept keys directly in requests but
  141. rather requires that keys be set ahead of time, and setting keys can be
  142. expensive; moreover, allocating a crypto_skcipher can't happen on the I/O path
  143. at all due to the locks it takes. Therefore, the concept of keyslots still
  144. makes sense for blk-crypto-fallback.
  145. Note that regardless of whether real inline encryption hardware or
  146. blk-crypto-fallback is used, the ciphertext written to disk (and hence the
  147. on-disk format of data) will be the same (assuming that both the inline
  148. encryption hardware's implementation and the kernel crypto API's implementation
  149. of the algorithm being used adhere to spec and function correctly).
  150. blk-crypto-fallback is optional and is controlled by the
  151. ``CONFIG_BLK_INLINE_ENCRYPTION_FALLBACK`` kernel configuration option.
  152. API presented to users of the block layer
  153. =========================================
  154. ``blk_crypto_config_supported()`` allows users to check ahead of time whether
  155. inline encryption with particular crypto settings will work on a particular
  156. block_device -- either via hardware or via blk-crypto-fallback. This function
  157. takes in a ``struct blk_crypto_config`` which is like blk_crypto_key, but omits
  158. the actual bytes of the key and instead just contains the algorithm, data unit
  159. size, etc. This function can be useful if blk-crypto-fallback is disabled.
  160. ``blk_crypto_init_key()`` allows users to initialize a blk_crypto_key.
  161. Users must call ``blk_crypto_start_using_key()`` before actually starting to use
  162. a blk_crypto_key on a block_device (even if ``blk_crypto_config_supported()``
  163. was called earlier). This is needed to initialize blk-crypto-fallback if it
  164. will be needed. This must not be called from the data path, as this may have to
  165. allocate resources, which may deadlock in that case.
  166. Next, to attach an encryption context to a bio, users should call
  167. ``bio_crypt_set_ctx()``. This function allocates a bio_crypt_ctx and attaches
  168. it to a bio, given the blk_crypto_key and the data unit number that will be used
  169. for en/decryption. Users don't need to worry about freeing the bio_crypt_ctx
  170. later, as that happens automatically when the bio is freed or reset.
  171. Finally, when done using inline encryption with a blk_crypto_key on a
  172. block_device, users must call ``blk_crypto_evict_key()``. This ensures that
  173. the key is evicted from all keyslots it may be programmed into and unlinked from
  174. any kernel data structures it may be linked into.
  175. In summary, for users of the block layer, the lifecycle of a blk_crypto_key is
  176. as follows:
  177. 1. ``blk_crypto_config_supported()`` (optional)
  178. 2. ``blk_crypto_init_key()``
  179. 3. ``blk_crypto_start_using_key()``
  180. 4. ``bio_crypt_set_ctx()`` (potentially many times)
  181. 5. ``blk_crypto_evict_key()`` (after all I/O has completed)
  182. 6. Zeroize the blk_crypto_key (this has no dedicated function)
  183. If a blk_crypto_key is being used on multiple block_devices, then
  184. ``blk_crypto_config_supported()`` (if used), ``blk_crypto_start_using_key()``,
  185. and ``blk_crypto_evict_key()`` must be called on each block_device.
  186. API presented to device drivers
  187. ===============================
  188. A device driver that wants to support inline encryption must set up a
  189. blk_crypto_profile in the request_queue of its device. To do this, it first
  190. must call ``blk_crypto_profile_init()`` (or its resource-managed variant
  191. ``devm_blk_crypto_profile_init()``), providing the number of keyslots.
  192. Next, it must advertise its crypto capabilities by setting fields in the
  193. blk_crypto_profile, e.g. ``modes_supported`` and ``max_dun_bytes_supported``.
  194. It then must set function pointers in the ``ll_ops`` field of the
  195. blk_crypto_profile to tell upper layers how to control the inline encryption
  196. hardware, e.g. how to program and evict keyslots. Most drivers will need to
  197. implement ``keyslot_program`` and ``keyslot_evict``. For details, see the
  198. comments for ``struct blk_crypto_ll_ops``.
  199. Once the driver registers a blk_crypto_profile with a request_queue, I/O
  200. requests the driver receives via that queue may have an encryption context. All
  201. encryption contexts will be compatible with the crypto capabilities declared in
  202. the blk_crypto_profile, so drivers don't need to worry about handling
  203. unsupported requests. Also, if a nonzero number of keyslots was declared in the
  204. blk_crypto_profile, then all I/O requests that have an encryption context will
  205. also have a keyslot which was already programmed with the appropriate key.
  206. If the driver implements runtime suspend and its blk_crypto_ll_ops don't work
  207. while the device is runtime-suspended, then the driver must also set the ``dev``
  208. field of the blk_crypto_profile to point to the ``struct device`` that will be
  209. resumed before any of the low-level operations are called.
  210. If there are situations where the inline encryption hardware loses the contents
  211. of its keyslots, e.g. device resets, the driver must handle reprogramming the
  212. keyslots. To do this, the driver may call ``blk_crypto_reprogram_all_keys()``.
  213. Finally, if the driver used ``blk_crypto_profile_init()`` instead of
  214. ``devm_blk_crypto_profile_init()``, then it is responsible for calling
  215. ``blk_crypto_profile_destroy()`` when the crypto profile is no longer needed.
  216. Layered Devices
  217. ===============
  218. Request queue based layered devices like dm-rq that wish to support inline
  219. encryption need to create their own blk_crypto_profile for their request_queue,
  220. and expose whatever functionality they choose. When a layered device wants to
  221. pass a clone of that request to another request_queue, blk-crypto will
  222. initialize and prepare the clone as necessary.
  223. Interaction between inline encryption and blk integrity
  224. =======================================================
  225. At the time of this patch, there is no real hardware that supports both these
  226. features. However, these features do interact with each other, and it's not
  227. completely trivial to make them both work together properly. In particular,
  228. when a WRITE bio wants to use inline encryption on a device that supports both
  229. features, the bio will have an encryption context specified, after which
  230. its integrity information is calculated (using the plaintext data, since
  231. the encryption will happen while data is being written), and the data and
  232. integrity info is sent to the device. Obviously, the integrity info must be
  233. verified before the data is encrypted. After the data is encrypted, the device
  234. must not store the integrity info that it received with the plaintext data
  235. since that might reveal information about the plaintext data. As such, it must
  236. re-generate the integrity info from the ciphertext data and store that on disk
  237. instead. Another issue with storing the integrity info of the plaintext data is
  238. that it changes the on disk format depending on whether hardware inline
  239. encryption support is present or the kernel crypto API fallback is used (since
  240. if the fallback is used, the device will receive the integrity info of the
  241. ciphertext, not that of the plaintext).
  242. Because there isn't any real hardware yet, it seems prudent to assume that
  243. hardware implementations might not implement both features together correctly,
  244. and disallow the combination for now. Whenever a device supports integrity, the
  245. kernel will pretend that the device does not support hardware inline encryption
  246. (by setting the blk_crypto_profile in the request_queue of the device to NULL).
  247. When the crypto API fallback is enabled, this means that all bios with and
  248. encryption context will use the fallback, and IO will complete as usual. When
  249. the fallback is disabled, a bio with an encryption context will be failed.