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proposal-h
...
proposal-r
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| 4937903190 |
@@ -1,38 +0,0 @@
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package util
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import (
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"fmt"
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"math"
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)
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const bytesPerUnit = 1024
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var byteUnits = []string{"KiB", "MiB", "GiB", "TiB", "PiB", "EiB"}
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// HumanBytes writes a byte count the way a person would read it, using powers
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// of 1024: "0 B", "1023 B", "1.0 KiB", "1.5 MiB", "16.0 EiB". Counts below 1024
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// are given as whole bytes, and anything larger gets one digit after the
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// decimal point.
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func HumanBytes(bytes uint64) string {
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if bytes < bytesPerUnit {
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return fmt.Sprintf("%d B", bytes)
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}
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value := float64(bytes)
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unit := -1
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for value >= bytesPerUnit && unit < len(byteUnits)-1 {
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value /= bytesPerUnit
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unit++
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}
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// Rounding happens after the unit has been chosen, so a count just short
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// of the next threshold would otherwise come out as "1024.0 KiB" rather
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// than "1.0 MiB".
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if unit < len(byteUnits)-1 && math.Round(value*10)/10 >= bytesPerUnit {
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value /= bytesPerUnit
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unit++
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}
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return fmt.Sprintf("%.1f %s", value, byteUnits[unit])
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}
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@@ -1,33 +0,0 @@
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package util
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import "testing"
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func TestHumanBytes(t *testing.T) {
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tests := []struct {
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name string
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input uint64
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expected string
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}{
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{"zero", 0, "0 B"},
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{"one byte", 1, "1 B"},
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{"just below a kibibyte", 1023, "1023 B"},
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{"exactly a kibibyte", 1024, "1.0 KiB"},
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{"half a kibibyte more", 1536, "1.5 KiB"},
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{"rounds up into the next unit", 1048575, "1.0 MiB"},
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{"exactly a mebibyte", 1 << 20, "1.0 MiB"},
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{"a gibibyte", 1 << 30, "1.0 GiB"},
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{"a tebibyte", 1 << 40, "1.0 TiB"},
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{"a pebibyte", 1 << 50, "1.0 PiB"},
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{"an exbibyte", 1 << 60, "1.0 EiB"},
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{"the largest count there is", ^uint64(0), "16.0 EiB"},
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}
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for _, test := range tests {
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t.Run(test.name, func(t *testing.T) {
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got := HumanBytes(test.input)
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if got != test.expected {
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t.Errorf("expected %q got %q", test.expected, got)
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}
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})
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}
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}
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28
random.go
Normal file
28
random.go
Normal file
@@ -0,0 +1,28 @@
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package util
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import (
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"crypto/rand"
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"encoding/hex"
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"errors"
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)
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// RandomHexString returns byteLength random bytes from the operating system's
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// random source, written as lowercase hexadecimal, so the returned string is
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// twice as long as byteLength. The bytes come from crypto/rand, which means the
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// result is fit for session tokens, temporary filenames and anything else a
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// stranger should not be able to guess.
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//
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// An error comes back only for a negative length or if the random source
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// itself fails, which does not happen on a working system.
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func RandomHexString(byteLength int) (string, error) {
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if byteLength < 0 {
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return "", errors.New("byte length cannot be negative")
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}
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buffer := make([]byte, byteLength)
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if _, err := rand.Read(buffer); err != nil {
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return "", err
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}
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return hex.EncodeToString(buffer), nil
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}
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57
random_test.go
Normal file
57
random_test.go
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@@ -0,0 +1,57 @@
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package util
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import (
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"encoding/hex"
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"testing"
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)
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func TestRandomHexStringLength(t *testing.T) {
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tests := []struct {
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name string
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byteLength int
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expectedLength int
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}{
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{"no bytes at all", 0, 0},
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{"one byte", 1, 2},
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{"eight bytes", 8, 16},
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{"sixteen bytes", 16, 32},
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{"thirty-two bytes", 32, 64},
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}
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for _, test := range tests {
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t.Run(test.name, func(t *testing.T) {
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got, err := RandomHexString(test.byteLength)
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if err != nil {
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t.Fatalf("did not expect an error, got %v", err)
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}
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if len(got) != test.expectedLength {
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t.Errorf("expected a string of %d characters, got %d (%q)", test.expectedLength, len(got), got)
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}
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if _, err := hex.DecodeString(got); err != nil {
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t.Errorf("expected valid hexadecimal, got %q: %v", got, err)
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}
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})
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}
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}
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func TestRandomHexStringRejectsNegativeLength(t *testing.T) {
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got, err := RandomHexString(-1)
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if err == nil {
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t.Errorf("expected an error for a negative length, got %q", got)
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}
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}
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func TestRandomHexStringDiffersBetweenCalls(t *testing.T) {
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seen := make(map[string]struct{})
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for i := 0; i < 100; i++ {
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value, err := RandomHexString(16)
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if err != nil {
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t.Fatalf("did not expect an error, got %v", err)
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}
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if _, repeated := seen[value]; repeated {
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t.Fatalf("got the same string twice: %q", value)
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}
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seen[value] = struct{}{}
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}
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}
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