[822] | 1 | package uint128 // import "lukechampine.com/uint128"
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| 2 |
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| 3 | import (
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| 4 | "encoding/binary"
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| 5 | "errors"
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| 6 | "fmt"
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| 7 | "math"
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| 8 | "math/big"
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| 9 | "math/bits"
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| 10 | )
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| 11 |
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| 12 | // Zero is a zero-valued uint128.
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| 13 | var Zero Uint128
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| 14 |
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| 15 | // Max is the largest possible uint128 value.
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| 16 | var Max = New(math.MaxUint64, math.MaxUint64)
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| 17 |
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| 18 | // A Uint128 is an unsigned 128-bit number.
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| 19 | type Uint128 struct {
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| 20 | Lo, Hi uint64
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| 21 | }
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| 22 |
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| 23 | // IsZero returns true if u == 0.
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| 24 | func (u Uint128) IsZero() bool {
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| 25 | // NOTE: we do not compare against Zero, because that is a global variable
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| 26 | // that could be modified.
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| 27 | return u == Uint128{}
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| 28 | }
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| 29 |
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| 30 | // Equals returns true if u == v.
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| 31 | //
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| 32 | // Uint128 values can be compared directly with ==, but use of the Equals method
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| 33 | // is preferred for consistency.
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| 34 | func (u Uint128) Equals(v Uint128) bool {
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| 35 | return u == v
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| 36 | }
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| 37 |
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| 38 | // Equals64 returns true if u == v.
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| 39 | func (u Uint128) Equals64(v uint64) bool {
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| 40 | return u.Lo == v && u.Hi == 0
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| 41 | }
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| 42 |
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| 43 | // Cmp compares u and v and returns:
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| 44 | //
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| 45 | // -1 if u < v
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| 46 | // 0 if u == v
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| 47 | // +1 if u > v
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| 48 | //
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| 49 | func (u Uint128) Cmp(v Uint128) int {
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| 50 | if u == v {
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| 51 | return 0
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| 52 | } else if u.Hi < v.Hi || (u.Hi == v.Hi && u.Lo < v.Lo) {
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| 53 | return -1
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| 54 | } else {
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| 55 | return 1
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| 56 | }
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| 57 | }
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| 58 |
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| 59 | // Cmp64 compares u and v and returns:
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| 60 | //
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| 61 | // -1 if u < v
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| 62 | // 0 if u == v
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| 63 | // +1 if u > v
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| 64 | //
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| 65 | func (u Uint128) Cmp64(v uint64) int {
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| 66 | if u.Hi == 0 && u.Lo == v {
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| 67 | return 0
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| 68 | } else if u.Hi == 0 && u.Lo < v {
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| 69 | return -1
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| 70 | } else {
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| 71 | return 1
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| 72 | }
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| 73 | }
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| 74 |
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| 75 | // And returns u&v.
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| 76 | func (u Uint128) And(v Uint128) Uint128 {
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| 77 | return Uint128{u.Lo & v.Lo, u.Hi & v.Hi}
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| 78 | }
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| 79 |
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| 80 | // And64 returns u&v.
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| 81 | func (u Uint128) And64(v uint64) Uint128 {
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| 82 | return Uint128{u.Lo & v, u.Hi & 0}
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| 83 | }
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| 84 |
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| 85 | // Or returns u|v.
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| 86 | func (u Uint128) Or(v Uint128) Uint128 {
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| 87 | return Uint128{u.Lo | v.Lo, u.Hi | v.Hi}
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| 88 | }
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| 89 |
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| 90 | // Or64 returns u|v.
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| 91 | func (u Uint128) Or64(v uint64) Uint128 {
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| 92 | return Uint128{u.Lo | v, u.Hi | 0}
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| 93 | }
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| 94 |
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| 95 | // Xor returns u^v.
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| 96 | func (u Uint128) Xor(v Uint128) Uint128 {
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| 97 | return Uint128{u.Lo ^ v.Lo, u.Hi ^ v.Hi}
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| 98 | }
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| 99 |
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| 100 | // Xor64 returns u^v.
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| 101 | func (u Uint128) Xor64(v uint64) Uint128 {
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| 102 | return Uint128{u.Lo ^ v, u.Hi ^ 0}
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| 103 | }
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| 104 |
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| 105 | // Add returns u+v.
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| 106 | func (u Uint128) Add(v Uint128) Uint128 {
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| 107 | lo, carry := bits.Add64(u.Lo, v.Lo, 0)
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| 108 | hi, carry := bits.Add64(u.Hi, v.Hi, carry)
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| 109 | if carry != 0 {
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| 110 | panic("overflow")
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| 111 | }
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| 112 | return Uint128{lo, hi}
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| 113 | }
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| 114 |
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| 115 | // AddWrap returns u+v with wraparound semantics; for example,
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| 116 | // Max.AddWrap(From64(1)) == Zero.
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| 117 | func (u Uint128) AddWrap(v Uint128) Uint128 {
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| 118 | lo, carry := bits.Add64(u.Lo, v.Lo, 0)
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| 119 | hi, _ := bits.Add64(u.Hi, v.Hi, carry)
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| 120 | return Uint128{lo, hi}
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| 121 | }
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| 122 |
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| 123 | // Add64 returns u+v.
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| 124 | func (u Uint128) Add64(v uint64) Uint128 {
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| 125 | lo, carry := bits.Add64(u.Lo, v, 0)
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| 126 | hi, carry := bits.Add64(u.Hi, 0, carry)
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| 127 | if carry != 0 {
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| 128 | panic("overflow")
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| 129 | }
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| 130 | return Uint128{lo, hi}
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| 131 | }
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| 132 |
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| 133 | // AddWrap64 returns u+v with wraparound semantics; for example,
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| 134 | // Max.AddWrap64(1) == Zero.
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| 135 | func (u Uint128) AddWrap64(v uint64) Uint128 {
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| 136 | lo, carry := bits.Add64(u.Lo, v, 0)
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| 137 | hi := u.Hi + carry
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| 138 | return Uint128{lo, hi}
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| 139 | }
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| 140 |
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| 141 | // Sub returns u-v.
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| 142 | func (u Uint128) Sub(v Uint128) Uint128 {
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| 143 | lo, borrow := bits.Sub64(u.Lo, v.Lo, 0)
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| 144 | hi, borrow := bits.Sub64(u.Hi, v.Hi, borrow)
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| 145 | if borrow != 0 {
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| 146 | panic("underflow")
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| 147 | }
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| 148 | return Uint128{lo, hi}
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| 149 | }
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| 150 |
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| 151 | // SubWrap returns u-v with wraparound semantics; for example,
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| 152 | // Zero.SubWrap(From64(1)) == Max.
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| 153 | func (u Uint128) SubWrap(v Uint128) Uint128 {
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| 154 | lo, borrow := bits.Sub64(u.Lo, v.Lo, 0)
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| 155 | hi, _ := bits.Sub64(u.Hi, v.Hi, borrow)
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| 156 | return Uint128{lo, hi}
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| 157 | }
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| 158 |
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| 159 | // Sub64 returns u-v.
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| 160 | func (u Uint128) Sub64(v uint64) Uint128 {
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| 161 | lo, borrow := bits.Sub64(u.Lo, v, 0)
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| 162 | hi, borrow := bits.Sub64(u.Hi, 0, borrow)
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| 163 | if borrow != 0 {
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| 164 | panic("underflow")
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| 165 | }
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| 166 | return Uint128{lo, hi}
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| 167 | }
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| 168 |
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| 169 | // SubWrap64 returns u-v with wraparound semantics; for example,
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| 170 | // Zero.SubWrap64(1) == Max.
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| 171 | func (u Uint128) SubWrap64(v uint64) Uint128 {
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| 172 | lo, borrow := bits.Sub64(u.Lo, v, 0)
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| 173 | hi := u.Hi - borrow
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| 174 | return Uint128{lo, hi}
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| 175 | }
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| 176 |
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| 177 | // Mul returns u*v, panicking on overflow.
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| 178 | func (u Uint128) Mul(v Uint128) Uint128 {
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| 179 | hi, lo := bits.Mul64(u.Lo, v.Lo)
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| 180 | p0, p1 := bits.Mul64(u.Hi, v.Lo)
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| 181 | p2, p3 := bits.Mul64(u.Lo, v.Hi)
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| 182 | hi, c0 := bits.Add64(hi, p1, 0)
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| 183 | hi, c1 := bits.Add64(hi, p3, c0)
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| 184 | if (u.Hi != 0 && v.Hi != 0) || p0 != 0 || p2 != 0 || c1 != 0 {
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| 185 | panic("overflow")
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| 186 | }
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| 187 | return Uint128{lo, hi}
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| 188 | }
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| 189 |
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| 190 | // MulWrap returns u*v with wraparound semantics; for example,
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| 191 | // Max.MulWrap(Max) == 1.
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| 192 | func (u Uint128) MulWrap(v Uint128) Uint128 {
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| 193 | hi, lo := bits.Mul64(u.Lo, v.Lo)
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| 194 | hi += u.Hi*v.Lo + u.Lo*v.Hi
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| 195 | return Uint128{lo, hi}
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| 196 | }
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| 197 |
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| 198 | // Mul64 returns u*v, panicking on overflow.
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| 199 | func (u Uint128) Mul64(v uint64) Uint128 {
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| 200 | hi, lo := bits.Mul64(u.Lo, v)
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| 201 | p0, p1 := bits.Mul64(u.Hi, v)
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| 202 | hi, c0 := bits.Add64(hi, p1, 0)
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| 203 | if p0 != 0 || c0 != 0 {
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| 204 | panic("overflow")
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| 205 | }
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| 206 | return Uint128{lo, hi}
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| 207 | }
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| 208 |
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| 209 | // MulWrap64 returns u*v with wraparound semantics; for example,
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| 210 | // Max.MulWrap64(2) == Max.Sub64(1).
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| 211 | func (u Uint128) MulWrap64(v uint64) Uint128 {
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| 212 | hi, lo := bits.Mul64(u.Lo, v)
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| 213 | hi += u.Hi * v
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| 214 | return Uint128{lo, hi}
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| 215 | }
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| 216 |
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| 217 | // Div returns u/v.
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| 218 | func (u Uint128) Div(v Uint128) Uint128 {
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| 219 | q, _ := u.QuoRem(v)
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| 220 | return q
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| 221 | }
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| 222 |
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| 223 | // Div64 returns u/v.
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| 224 | func (u Uint128) Div64(v uint64) Uint128 {
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| 225 | q, _ := u.QuoRem64(v)
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| 226 | return q
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| 227 | }
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| 228 |
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| 229 | // QuoRem returns q = u/v and r = u%v.
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| 230 | func (u Uint128) QuoRem(v Uint128) (q, r Uint128) {
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| 231 | if v.Hi == 0 {
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| 232 | var r64 uint64
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| 233 | q, r64 = u.QuoRem64(v.Lo)
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| 234 | r = From64(r64)
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| 235 | } else {
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| 236 | // generate a "trial quotient," guaranteed to be within 1 of the actual
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| 237 | // quotient, then adjust.
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| 238 | n := uint(bits.LeadingZeros64(v.Hi))
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| 239 | v1 := v.Lsh(n)
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| 240 | u1 := u.Rsh(1)
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| 241 | tq, _ := bits.Div64(u1.Hi, u1.Lo, v1.Hi)
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| 242 | tq >>= 63 - n
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| 243 | if tq != 0 {
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| 244 | tq--
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| 245 | }
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| 246 | q = From64(tq)
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| 247 | // calculate remainder using trial quotient, then adjust if remainder is
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| 248 | // greater than divisor
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| 249 | r = u.Sub(v.Mul64(tq))
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| 250 | if r.Cmp(v) >= 0 {
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| 251 | q = q.Add64(1)
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| 252 | r = r.Sub(v)
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| 253 | }
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| 254 | }
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| 255 | return
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| 256 | }
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| 257 |
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| 258 | // QuoRem64 returns q = u/v and r = u%v.
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| 259 | func (u Uint128) QuoRem64(v uint64) (q Uint128, r uint64) {
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| 260 | if u.Hi < v {
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| 261 | q.Lo, r = bits.Div64(u.Hi, u.Lo, v)
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| 262 | } else {
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| 263 | q.Hi, r = bits.Div64(0, u.Hi, v)
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| 264 | q.Lo, r = bits.Div64(r, u.Lo, v)
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| 265 | }
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| 266 | return
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| 267 | }
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| 268 |
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| 269 | // Mod returns r = u%v.
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| 270 | func (u Uint128) Mod(v Uint128) (r Uint128) {
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| 271 | _, r = u.QuoRem(v)
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| 272 | return
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| 273 | }
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| 274 |
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| 275 | // Mod64 returns r = u%v.
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| 276 | func (u Uint128) Mod64(v uint64) (r uint64) {
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| 277 | _, r = u.QuoRem64(v)
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| 278 | return
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| 279 | }
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| 280 |
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| 281 | // Lsh returns u<<n.
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| 282 | func (u Uint128) Lsh(n uint) (s Uint128) {
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| 283 | if n > 64 {
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| 284 | s.Lo = 0
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| 285 | s.Hi = u.Lo << (n - 64)
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| 286 | } else {
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| 287 | s.Lo = u.Lo << n
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| 288 | s.Hi = u.Hi<<n | u.Lo>>(64-n)
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| 289 | }
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| 290 | return
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| 291 | }
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| 292 |
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| 293 | // Rsh returns u>>n.
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| 294 | func (u Uint128) Rsh(n uint) (s Uint128) {
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| 295 | if n > 64 {
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| 296 | s.Lo = u.Hi >> (n - 64)
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| 297 | s.Hi = 0
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| 298 | } else {
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| 299 | s.Lo = u.Lo>>n | u.Hi<<(64-n)
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| 300 | s.Hi = u.Hi >> n
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| 301 | }
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| 302 | return
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| 303 | }
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| 304 |
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| 305 | // LeadingZeros returns the number of leading zero bits in u; the result is 128
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| 306 | // for u == 0.
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| 307 | func (u Uint128) LeadingZeros() int {
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| 308 | if u.Hi > 0 {
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| 309 | return bits.LeadingZeros64(u.Hi)
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| 310 | }
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| 311 | return 64 + bits.LeadingZeros64(u.Lo)
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| 312 | }
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| 313 |
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| 314 | // TrailingZeros returns the number of trailing zero bits in u; the result is
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| 315 | // 128 for u == 0.
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| 316 | func (u Uint128) TrailingZeros() int {
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| 317 | if u.Lo > 0 {
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| 318 | return bits.TrailingZeros64(u.Lo)
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| 319 | }
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| 320 | return 64 + bits.TrailingZeros64(u.Hi)
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| 321 | }
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| 322 |
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| 323 | // OnesCount returns the number of one bits ("population count") in u.
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| 324 | func (u Uint128) OnesCount() int {
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| 325 | return bits.OnesCount64(u.Hi) + bits.OnesCount64(u.Lo)
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| 326 | }
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| 327 |
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| 328 | // RotateLeft returns the value of u rotated left by (k mod 128) bits.
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| 329 | func (u Uint128) RotateLeft(k int) Uint128 {
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| 330 | const n = 128
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| 331 | s := uint(k) & (n - 1)
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| 332 | return u.Lsh(s).Or(u.Rsh(n - s))
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| 333 | }
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| 334 |
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| 335 | // RotateRight returns the value of u rotated left by (k mod 128) bits.
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| 336 | func (u Uint128) RotateRight(k int) Uint128 {
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| 337 | return u.RotateLeft(-k)
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| 338 | }
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| 339 |
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| 340 | // Reverse returns the value of u with its bits in reversed order.
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| 341 | func (u Uint128) Reverse() Uint128 {
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| 342 | return Uint128{bits.Reverse64(u.Hi), bits.Reverse64(u.Lo)}
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| 343 | }
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| 344 |
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| 345 | // ReverseBytes returns the value of u with its bytes in reversed order.
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| 346 | func (u Uint128) ReverseBytes() Uint128 {
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| 347 | return Uint128{bits.ReverseBytes64(u.Hi), bits.ReverseBytes64(u.Lo)}
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| 348 | }
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| 349 |
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| 350 | // Len returns the minimum number of bits required to represent u; the result is
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| 351 | // 0 for u == 0.
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| 352 | func (u Uint128) Len() int {
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| 353 | return 128 - u.LeadingZeros()
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| 354 | }
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| 355 |
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| 356 | // String returns the base-10 representation of u as a string.
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| 357 | func (u Uint128) String() string {
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| 358 | if u.IsZero() {
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| 359 | return "0"
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| 360 | }
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| 361 | buf := []byte("0000000000000000000000000000000000000000") // log10(2^128) < 40
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| 362 | for i := len(buf); ; i -= 19 {
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| 363 | q, r := u.QuoRem64(1e19) // largest power of 10 that fits in a uint64
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| 364 | var n int
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| 365 | for ; r != 0; r /= 10 {
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| 366 | n++
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| 367 | buf[i-n] += byte(r % 10)
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| 368 | }
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| 369 | if q.IsZero() {
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| 370 | return string(buf[i-n:])
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| 371 | }
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| 372 | u = q
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| 373 | }
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| 374 | }
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| 375 |
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| 376 | // PutBytes stores u in b in little-endian order. It panics if len(b) < 16.
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| 377 | func (u Uint128) PutBytes(b []byte) {
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| 378 | binary.LittleEndian.PutUint64(b[:8], u.Lo)
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| 379 | binary.LittleEndian.PutUint64(b[8:], u.Hi)
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| 380 | }
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| 381 |
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| 382 | // Big returns u as a *big.Int.
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| 383 | func (u Uint128) Big() *big.Int {
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| 384 | i := new(big.Int).SetUint64(u.Hi)
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| 385 | i = i.Lsh(i, 64)
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| 386 | i = i.Xor(i, new(big.Int).SetUint64(u.Lo))
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| 387 | return i
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| 388 | }
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| 389 |
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| 390 | // Scan implements fmt.Scanner.
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| 391 | func (u *Uint128) Scan(s fmt.ScanState, ch rune) error {
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| 392 | i := new(big.Int)
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| 393 | if err := i.Scan(s, ch); err != nil {
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| 394 | return err
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| 395 | } else if i.Sign() < 0 {
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| 396 | return errors.New("value cannot be negative")
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| 397 | } else if i.BitLen() > 128 {
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| 398 | return errors.New("value overflows Uint128")
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| 399 | }
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| 400 | u.Lo = i.Uint64()
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| 401 | u.Hi = i.Rsh(i, 64).Uint64()
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| 402 | return nil
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| 403 | }
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| 404 |
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| 405 | // New returns the Uint128 value (lo,hi).
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| 406 | func New(lo, hi uint64) Uint128 {
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| 407 | return Uint128{lo, hi}
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| 408 | }
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| 409 |
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| 410 | // From64 converts v to a Uint128 value.
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| 411 | func From64(v uint64) Uint128 {
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| 412 | return New(v, 0)
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| 413 | }
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| 414 |
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| 415 | // FromBytes converts b to a Uint128 value.
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| 416 | func FromBytes(b []byte) Uint128 {
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| 417 | return New(
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| 418 | binary.LittleEndian.Uint64(b[:8]),
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| 419 | binary.LittleEndian.Uint64(b[8:]),
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| 420 | )
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| 421 | }
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| 422 |
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| 423 | // FromBig converts i to a Uint128 value. It panics if i is negative or
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| 424 | // overflows 128 bits.
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| 425 | func FromBig(i *big.Int) (u Uint128) {
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| 426 | if i.Sign() < 0 {
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| 427 | panic("value cannot be negative")
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| 428 | } else if i.BitLen() > 128 {
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| 429 | panic("value overflows Uint128")
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| 430 | }
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| 431 | u.Lo = i.Uint64()
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| 432 | u.Hi = i.Rsh(i, 64).Uint64()
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| 433 | return u
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| 434 | }
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| 435 |
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| 436 | // FromString parses s as a Uint128 value.
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| 437 | func FromString(s string) (u Uint128, err error) {
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| 438 | _, err = fmt.Sscan(s, &u)
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| 439 | return
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| 440 | }
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