CCM.swift 9.7 KB

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  1. //// CryptoSwift
  2. //
  3. // Copyright (C) 2014-2018 Marcin Krzyżanowski <marcin@krzyzanowskim.com>
  4. // This software is provided 'as-is', without any express or implied warranty.
  5. //
  6. // In no event will the authors be held liable for any damages arising from the use of this software.
  7. //
  8. // Permission is granted to anyone to use this software for any purpose,including commercial applications, and to alter it and redistribute it freely, subject to the following restrictions:
  9. //
  10. // - The origin of this software must not be misrepresented; you must not claim that you wrote the original software. If you use this software in a product, an acknowledgment in the product documentation is required.
  11. // - Altered source versions must be plainly marked as such, and must not be misrepresented as being the original software.
  12. // - This notice may not be removed or altered from any source or binary distribution.
  13. //
  14. // CCM mode combines the well known CBC-MAC with the well known counter mode of encryption.
  15. // https://tools.ietf.org/html/rfc3610
  16. // https://csrc.nist.gov/publications/detail/sp/800-38c/final
  17. #if canImport(Darwin)
  18. import Darwin
  19. #else
  20. import Glibc
  21. #endif
  22. public struct CCM: StreamMode {
  23. public enum Error: Swift.Error {
  24. /// Invalid IV
  25. case invalidInitializationVector
  26. case invalidParameter
  27. }
  28. public let options: BlockModeOption = [.initializationVectorRequired]
  29. private let nonce: Array<UInt8>
  30. private let additionalAuthenticatedData: Array<UInt8>?
  31. private let tagLength: Int
  32. private let messageLength: Int // total message length. need to know in advance
  33. public init(nonce: Array<UInt8>, tagLength: Int, messageLength: Int, additionalAuthenticatedData: Array<UInt8>? = nil) {
  34. self.nonce = nonce
  35. self.tagLength = tagLength
  36. self.additionalAuthenticatedData = additionalAuthenticatedData
  37. self.messageLength = messageLength
  38. }
  39. public func worker(blockSize: Int, cipherOperation: @escaping CipherOperationOnBlock) throws -> CipherModeWorker {
  40. if nonce.isEmpty {
  41. throw Error.invalidInitializationVector
  42. }
  43. return CCMModeWorker(blockSize: blockSize, nonce: nonce.slice, messageLength: messageLength, additionalAuthenticatedData: additionalAuthenticatedData, tagLength: tagLength, cipherOperation: cipherOperation)
  44. }
  45. }
  46. class CCMModeWorker: StreamModeWorker, SeekableModeWorker, CounterModeWorker, FinalizingModeWorker {
  47. typealias Counter = Int
  48. var counter = 0
  49. let cipherOperation: CipherOperationOnBlock
  50. let blockSize: Int
  51. private let tagLength: Int
  52. private let messageLength: Int // total message length. need to know in advance
  53. private let q: UInt8
  54. let additionalBufferSize: Int
  55. private var keystreamPosIdx = 0
  56. private let nonce: Array<UInt8>
  57. private var last_y: ArraySlice<UInt8> = []
  58. private var keystream: Array<UInt8> = []
  59. public enum Error: Swift.Error {
  60. case invalidParameter
  61. }
  62. init(blockSize: Int, nonce: ArraySlice<UInt8>, messageLength: Int, additionalAuthenticatedData: [UInt8]?, tagLength: Int, cipherOperation: @escaping CipherOperationOnBlock) {
  63. self.blockSize = blockSize
  64. self.tagLength = tagLength
  65. self.additionalBufferSize = tagLength
  66. self.messageLength = messageLength
  67. self.cipherOperation = cipherOperation
  68. self.nonce = Array(nonce)
  69. self.q = UInt8(15 - nonce.count) // n = 15-q
  70. let hasAssociatedData = additionalAuthenticatedData != nil && !additionalAuthenticatedData!.isEmpty
  71. processControlInformation(nonce: self.nonce, tagLength: tagLength, hasAssociatedData: hasAssociatedData)
  72. if let aad = additionalAuthenticatedData {
  73. process(aad: aad)
  74. }
  75. }
  76. // For the very first time setup new IV (aka y0) from the block0
  77. private func processControlInformation(nonce: [UInt8], tagLength: Int, hasAssociatedData: Bool) {
  78. let block0 = try! format(nonce: nonce, Q: UInt32(messageLength), q: q, t: UInt8(tagLength), hasAssociatedData: hasAssociatedData).slice
  79. let y0 = cipherOperation(block0)!.slice
  80. last_y = y0
  81. }
  82. private func process(aad: [UInt8]) {
  83. let encodedAAD = format(aad: aad)
  84. for block_i in encodedAAD.batched(by: 16) {
  85. let y_i = cipherOperation(xor(block_i, last_y))!.slice
  86. last_y = y_i
  87. }
  88. }
  89. private func S(i: Int) throws -> [UInt8] {
  90. let ctr = try format(counter: i, nonce: nonce, q: q)
  91. return cipherOperation(ctr.slice)!
  92. }
  93. func seek(to position: Int) throws {
  94. self.counter = position
  95. keystream = try S(i: position)
  96. let offset = position % blockSize
  97. keystreamPosIdx = offset
  98. }
  99. func encrypt(block plaintext: ArraySlice<UInt8>) -> Array<UInt8> {
  100. var result = Array<UInt8>(reserveCapacity: plaintext.count)
  101. var processed = 0
  102. while processed < plaintext.count {
  103. // Need a full block here to update keystream and do CBC
  104. if keystream.isEmpty || keystreamPosIdx == blockSize {
  105. // y[i], where i is the counter. Can encrypt 1 block at a time
  106. counter += 1
  107. guard let S = try? S(i: counter) else { return Array(plaintext) }
  108. let plaintextP = addPadding(Array(plaintext), blockSize: 16)
  109. guard let y = cipherOperation(xor(last_y, plaintextP)) else { return Array(plaintext) }
  110. last_y = y.slice
  111. keystream = S
  112. keystreamPosIdx = 0
  113. }
  114. let xored: Array<UInt8> = xor(plaintext[plaintext.startIndex.advanced(by: processed)...], keystream[keystreamPosIdx...])
  115. keystreamPosIdx += xored.count
  116. processed += xored.count
  117. result += xored
  118. }
  119. return result
  120. }
  121. // TODO
  122. func decrypt(block ciphertext: ArraySlice<UInt8>) -> Array<UInt8> {
  123. guard let plaintext = cipherOperation(ciphertext) else {
  124. return Array(ciphertext)
  125. }
  126. let result: Array<UInt8> = xor(last_y, plaintext)
  127. last_y = ciphertext
  128. return result
  129. }
  130. func finalize(encrypt ciphertext: ArraySlice<UInt8>) throws -> Array<UInt8> {
  131. // concatenate T at the end
  132. guard let S0 = try? S(i: 0) else { return Array(ciphertext) }
  133. let tag = last_y.prefix(tagLength)
  134. return Array(ciphertext) + (xor(tag, S0) as Array<UInt8>)
  135. }
  136. func willDecryptLast(bytes ciphertext: ArraySlice<UInt8>) throws -> ArraySlice<UInt8> {
  137. return ciphertext
  138. }
  139. func didDecryptLast(block plaintext: ArraySlice<UInt8>) throws -> Array<UInt8> {
  140. return Array(plaintext)
  141. }
  142. }
  143. // Q - octet length of P
  144. // q - octet length of Q. Maximum length (in octets) of payload. An element of {2,3,4,5,6,7,8}
  145. // t - octet length of T (MAC length). An element of {4,6,8,10,12,14,16}
  146. private func format(nonce N: [UInt8], Q: UInt32, q: UInt8, t: UInt8, hasAssociatedData: Bool) throws -> [UInt8] {
  147. var flags0: UInt8 = 0
  148. if hasAssociatedData {
  149. // 7 bit
  150. flags0 |= (1 << 6)
  151. }
  152. // 6,5,4 bit is t in 3 bits
  153. flags0 |= (((t-2)/2) & 0x07) << 3
  154. // 3,2,1 bit is q in 3 bits
  155. flags0 |= ((q-1) & 0x07) << 0
  156. var block0: [UInt8] = Array<UInt8>(repeating: 0, count: 16)
  157. block0[0] = flags0
  158. // N in 1...(15-q) octets, n = 15-q
  159. // n is an element of {7,8,9,10,11,12,13}
  160. let n = 15-Int(q)
  161. guard (n + Int(q)) == 15 else {
  162. // n+q == 15
  163. throw CCMModeWorker.Error.invalidParameter
  164. }
  165. block0[1...n] = N[0...(n-1)]
  166. // Q in (16-q)...15 octets
  167. block0[(16-Int(q))...15] = Q.bytes(totalBytes: Int(q)).slice
  168. return block0
  169. }
  170. /// Formatting of the Counter Blocks. Ctr[i]
  171. /// The counter generation function.
  172. /// Q - octet length of P
  173. /// q - octet length of Q. Maximum length (in octets) of payload. An element of {2,3,4,5,6,7,8}
  174. private func format(counter i: Int, nonce N: [UInt8], q: UInt8) throws -> [UInt8] {
  175. var flags0: UInt8 = 0
  176. // bit 8,7 is Reserved
  177. // bit 4,5,6 shall be set to 0
  178. // 3,2,1 bit is q in 3 bits
  179. flags0 |= ((q-1) & 0x07) << 0
  180. var block = Array<UInt8>(repeating: 0, count: 16) // block[0]
  181. block[0] = flags0
  182. // N in 1...(15-q) octets, n = 15-q
  183. // n is an element of {7,8,9,10,11,12,13}
  184. let n = 15-Int(q)
  185. guard (n + Int(q)) == 15 else {
  186. // n+q == 15
  187. throw CCMModeWorker.Error.invalidParameter
  188. }
  189. block[1...n] = N[0...(n-1)]
  190. // [i]8q in (16-q)...15 octets
  191. block[(16-Int(q))...15] = i.bytes(totalBytes: Int(q)).slice
  192. return block
  193. }
  194. /// Resulting can be partitioned into 16-octet blocks
  195. private func format(aad: [UInt8]) -> [UInt8] {
  196. let a = aad.count
  197. switch Double(a) {
  198. case 0..<65280: // 2^16-2^8
  199. // [a]16
  200. return addPadding(a.bytes(totalBytes: 2) + aad, blockSize: 16)
  201. case 65280..<4_294_967_296: // 2^32
  202. // [a]32
  203. return addPadding([0xFF, 0xFE] + a.bytes(totalBytes: 4) + aad, blockSize: 16)
  204. case 4_294_967_296..<pow(2,64): // 2^64
  205. // [a]64
  206. return addPadding([0xFF, 0xFF] + a.bytes(totalBytes: 8) + aad, blockSize: 16)
  207. default:
  208. // Reserved
  209. return addPadding(aad, blockSize: 16)
  210. }
  211. }
  212. // If data is not a multiple of block size bytes long then the remainder is zero padded
  213. // Note: It's similar to ZeroPadding, but it's not the same.
  214. private func addPadding(_ bytes: Array<UInt8>, blockSize: Int) -> Array<UInt8> {
  215. if bytes.isEmpty {
  216. return Array<UInt8>(repeating: 0, count: blockSize)
  217. }
  218. let remainder = bytes.count % blockSize
  219. if remainder == 0 {
  220. return bytes
  221. }
  222. let paddingCount = blockSize - remainder
  223. if paddingCount > 0 {
  224. return bytes + Array<UInt8>(repeating: 0, count: paddingCount)
  225. }
  226. return bytes
  227. }