MD5.swift 4.5 KB

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  1. //
  2. // MD5.swift
  3. // CryptoSwift
  4. //
  5. // Created by Marcin Krzyzanowski on 06/08/14.
  6. // Copyright (c) 2014 Marcin Krzyzanowski. All rights reserved.
  7. //
  8. import Foundation
  9. final class MD5 : HashProtocol {
  10. var size:Int = 16 // 128 / 8
  11. let message: NSData
  12. init (_ message: NSData) {
  13. self.message = message
  14. }
  15. /** specifies the per-round shift amounts */
  16. private let s: [UInt32] = [7, 12, 17, 22, 7, 12, 17, 22, 7, 12, 17, 22, 7, 12, 17, 22,
  17. 5, 9, 14, 20, 5, 9, 14, 20, 5, 9, 14, 20, 5, 9, 14, 20,
  18. 4, 11, 16, 23, 4, 11, 16, 23, 4, 11, 16, 23, 4, 11, 16, 23,
  19. 6, 10, 15, 21, 6, 10, 15, 21, 6, 10, 15, 21, 6, 10, 15, 21]
  20. /** binary integer part of the sines of integers (Radians) */
  21. private let k: [UInt32] = [0xd76aa478,0xe8c7b756,0x242070db,0xc1bdceee,
  22. 0xf57c0faf,0x4787c62a,0xa8304613,0xfd469501,
  23. 0x698098d8,0x8b44f7af,0xffff5bb1,0x895cd7be,
  24. 0x6b901122,0xfd987193,0xa679438e,0x49b40821,
  25. 0xf61e2562,0xc040b340,0x265e5a51,0xe9b6c7aa,
  26. 0xd62f105d,0x2441453,0xd8a1e681,0xe7d3fbc8,
  27. 0x21e1cde6,0xc33707d6,0xf4d50d87,0x455a14ed,
  28. 0xa9e3e905,0xfcefa3f8,0x676f02d9,0x8d2a4c8a,
  29. 0xfffa3942,0x8771f681,0x6d9d6122,0xfde5380c,
  30. 0xa4beea44,0x4bdecfa9,0xf6bb4b60,0xbebfbc70,
  31. 0x289b7ec6,0xeaa127fa,0xd4ef3085,0x4881d05,
  32. 0xd9d4d039,0xe6db99e5,0x1fa27cf8,0xc4ac5665,
  33. 0xf4292244,0x432aff97,0xab9423a7,0xfc93a039,
  34. 0x655b59c3,0x8f0ccc92,0xffeff47d,0x85845dd1,
  35. 0x6fa87e4f,0xfe2ce6e0,0xa3014314,0x4e0811a1,
  36. 0xf7537e82,0xbd3af235,0x2ad7d2bb,0xeb86d391]
  37. private let h:[UInt32] = [0x67452301, 0xefcdab89, 0x98badcfe, 0x10325476]
  38. func calculate() -> NSData {
  39. let tmpMessage = prepare(64)
  40. // hash values
  41. var hh = h
  42. // Step 2. Append Length a 64-bit representation of lengthInBits
  43. let lengthInBits = (message.length * 8)
  44. let lengthBytes = lengthInBits.bytes(64 / 8)
  45. tmpMessage.appendBytes(Array(lengthBytes.reverse())); //FIXME: Array?
  46. // Process the message in successive 512-bit chunks:
  47. let chunkSizeBytes = 512 / 8 // 64
  48. var leftMessageBytes = tmpMessage.length
  49. for (var i = 0; i < tmpMessage.length; i = i + chunkSizeBytes, leftMessageBytes -= chunkSizeBytes) {
  50. let chunk = tmpMessage.subdataWithRange(NSRange(location: i, length: min(chunkSizeBytes,leftMessageBytes)))
  51. // break chunk into sixteen 32-bit words M[j], 0 ≤ j ≤ 15
  52. var M:[UInt32] = [UInt32](count: 16, repeatedValue: 0)
  53. let range = NSRange(location:0, length: M.count * sizeof(UInt32))
  54. chunk.getBytes(UnsafeMutablePointer<Void>(M), range: range)
  55. // Initialize hash value for this chunk:
  56. var A:UInt32 = hh[0]
  57. var B:UInt32 = hh[1]
  58. var C:UInt32 = hh[2]
  59. var D:UInt32 = hh[3]
  60. var dTemp:UInt32 = 0
  61. // Main loop
  62. for j in 0..<k.count {
  63. var g = 0
  64. var F:UInt32 = 0
  65. switch (j) {
  66. case 0...15:
  67. F = (B & C) | ((~B) & D)
  68. g = j
  69. break
  70. case 16...31:
  71. F = (D & B) | (~D & C)
  72. g = (5 * j + 1) % 16
  73. break
  74. case 32...47:
  75. F = B ^ C ^ D
  76. g = (3 * j + 5) % 16
  77. break
  78. case 48...63:
  79. F = C ^ (B | (~D))
  80. g = (7 * j) % 16
  81. break
  82. default:
  83. break
  84. }
  85. dTemp = D
  86. D = C
  87. C = B
  88. B = B &+ rotateLeft((A &+ F &+ k[j] &+ M[g]), n: s[j])
  89. A = dTemp
  90. }
  91. hh[0] = hh[0] &+ A
  92. hh[1] = hh[1] &+ B
  93. hh[2] = hh[2] &+ C
  94. hh[3] = hh[3] &+ D
  95. }
  96. let buf: NSMutableData = NSMutableData();
  97. hh.map({ (item) -> () in
  98. var i:UInt32 = item.littleEndian
  99. buf.appendBytes(&i, length: sizeofValue(i))
  100. })
  101. return buf.copy() as! NSData
  102. }
  103. }