fixed.odin 3.4 KB

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  1. package math_fixed
  2. import "core:math"
  3. import "core:strconv"
  4. import "core:intrinsics"
  5. _, _, _ :: intrinsics, strconv, math
  6. Fixed :: struct($Backing: typeid, $Fraction_Width: uint)
  7. where
  8. intrinsics.type_is_integer(Backing),
  9. 0 <= Fraction_Width,
  10. Fraction_Width <= 8*size_of(Backing) {
  11. i: Backing,
  12. }
  13. Fixed4_4 :: distinct Fixed(i8, 4)
  14. Fixed5_3 :: distinct Fixed(i8, 3)
  15. Fixed6_2 :: distinct Fixed(i8, 2)
  16. Fixed7_1 :: distinct Fixed(i8, 1)
  17. Fixed8_8 :: distinct Fixed(i16, 8)
  18. Fixed13_3 :: distinct Fixed(i16, 3)
  19. Fixed16_16 :: distinct Fixed(i32, 16)
  20. Fixed26_6 :: distinct Fixed(i32, 6)
  21. Fixed32_32 :: distinct Fixed(i64, 32)
  22. Fixed52_12 :: distinct Fixed(i64, 12)
  23. init_from_f64 :: proc(x: ^$T/Fixed($Backing, $Fraction_Width), val: f64) {
  24. i, f := math.modf(math.abs(val))
  25. x.i = Backing(f * (1<<Fraction_Width))
  26. x.i &= 1<<Fraction_Width - 1
  27. x.i |= Backing(i) << Fraction_Width
  28. if val < 0 do x.i *= -1
  29. }
  30. init_from_parts :: proc(x: ^$T/Fixed($Backing, $Fraction_Width), integer, fraction: Backing) {
  31. i, f := math.modf(val)
  32. x.i = fraction
  33. x.i &= 1<<Fraction_Width - 1
  34. x.i |= integer
  35. }
  36. to_f64 :: proc(x: $T/Fixed($Backing, $Fraction_Width)) -> f64 {
  37. sign := -1.0 if x.i < 0 else 1.0
  38. num := math.abs(x.i)
  39. res := f64(num >> Fraction_Width)
  40. res += f64(num & (1<<Fraction_Width-1)) / f64(1<<Fraction_Width)
  41. return res * sign
  42. }
  43. @(require_results)
  44. add :: proc(x, y: $T/Fixed) -> T {
  45. return {x.i + y.i}
  46. }
  47. @(require_results)
  48. sub :: proc(x, y: $T/Fixed) -> T {
  49. return {x.i - y.i}
  50. }
  51. @(require_results)
  52. mul :: proc(x, y: $T/Fixed($Backing, $Fraction_Width)) -> (z: T) {
  53. z.i = intrinsics.fixed_point_mul(x.i, y.i, Fraction_Width)
  54. return
  55. }
  56. @(require_results)
  57. mul_sat :: proc(x, y: $T/Fixed($Backing, $Fraction_Width)) -> (z: T) {
  58. z.i = intrinsics.fixed_point_mul_sat(x.i, y.i, Fraction_Width)
  59. return
  60. }
  61. @(require_results)
  62. div :: proc(x, y: $T/Fixed($Backing, $Fraction_Width)) -> (z: T) {
  63. z.i = intrinsics.fixed_point_div(x.i, y.i, Fraction_Width)
  64. return
  65. }
  66. @(require_results)
  67. div_sat :: proc(x, y: $T/Fixed($Backing, $Fraction_Width)) -> (z: T) {
  68. z.i = intrinsics.fixed_point_div_sat(x.i, y.i, Fraction_Width)
  69. return
  70. }
  71. @(require_results)
  72. floor :: proc(x: $T/Fixed($Backing, $Fraction_Width)) -> Backing {
  73. return x.i >> Fraction_Width
  74. }
  75. @(require_results)
  76. ceil :: proc(x: $T/Fixed($Backing, $Fraction_Width)) -> Backing {
  77. Integer :: 8*size_of(Backing) - Fraction_Width
  78. return (x.i + (1 << Integer-1)) >> Fraction_Width
  79. }
  80. @(require_results)
  81. round :: proc(x: $T/Fixed($Backing, $Fraction_Width)) -> Backing {
  82. Integer :: 8*size_of(Backing) - Fraction_Width
  83. return (x.i + (1 << (Integer - 1))) >> Fraction_Width
  84. }
  85. @(require_results)
  86. append :: proc(dst: []byte, x: $T/Fixed($Backing, $Fraction_Width)) -> string {
  87. x := x
  88. buf: [48]byte
  89. i := 0
  90. if x.i < 0 {
  91. buf[i] = '-'
  92. i += 1
  93. x.i = -x.i
  94. }
  95. integer := x.i >> Fraction_Width
  96. fraction := x.i & (1<<Fraction_Width - 1)
  97. s := strconv.append_uint(buf[i:], u64(integer), 10)
  98. i += len(s)
  99. if fraction != 0 {
  100. buf[i] = '.'
  101. i += 1
  102. for fraction > 0 {
  103. fraction *= 10
  104. buf[i] = byte('0' + (fraction>>Fraction_Width))
  105. i += 1
  106. fraction &= 1<<Fraction_Width - 1
  107. }
  108. }
  109. n := copy(dst, buf[:i])
  110. return string(dst[:i])
  111. }
  112. @(require_results)
  113. to_string :: proc(x: $T/Fixed($Backing, $Fraction_Width), allocator := context.allocator) -> string {
  114. buf: [48]byte
  115. s := append(buf[:], x)
  116. str := make([]byte, len(s), allocator)
  117. copy(str, s)
  118. return string(str)
  119. }