Paste a secret, get a link, send it. The first person to open it and press
Reveal sees the secret; the link dies at that moment. The recipient needs a
browser and nothing else — no account, no client, no installed tooling.
The server cannot read what it stores. AES-256-GCM happens in the browser and
the key lives in the URL fragment, which browsers never transmit, so hushd
holds ciphertext and no key material. That is a property of where the key sits
rather than a promise about our conduct, which is why there is deliberately no
endpoint accepting a plaintext secret and no server-side-encryption fallback:
two guarantees behind one URL would be worse than one honest guarantee.
Three decisions carry the design:
* GET /s/{id} touches NO storage, not even to check existence. Slack, Teams,
WhatsApp, iMessage and Outlook Safe Links all fetch a URL before a human
sees it, so destroying on GET would destroy most secrets in transit and the
recipient's "already used" would be indistinguishable from interception.
Only POST /reveal consumes. Bot user-agent detection is an arms race;
removing the side effect from GET is not. Pinned by
TestGettingTheRevealPageNeverConsumesTheSecret.
* Destruction is one Redis GETDEL, which is atomic. GET-then-DEL has a window
where two simultaneous readers both win, and for a one-time secret that
window is the product. The store contract demands atomicity and the same
concurrency test runs against both implementations.
* Missing, already-revealed, expired and evicted are ONE indistinguishable
410. Separating them would confirm to a prober that a given link was real.
The secret id IS the capability, so secret.ID is a struct whose every
accidental path — %v, %s, String(), slog, json.Marshal — emits a redacted
handle or refuses, and the raw value needs an explicit Value(). The first
version tried to prevent leaks by implementing no String() at all; its own test
caught that Go's fmt prints unexported fields anyway, so forbidding the method
had removed the control rather than the leak.
Operationally: structured JSON on stdout in the fleet's wire format, which
Vector already collects with no annotation; six hush_* metrics on the chassis
registry with no id, IP or path in any label; five alert rules wired into
vmalert. The public Ingress enumerates /, /s/ and /api/ so /metrics, /healthz
and /readyz share the port but are unreachable from the internet — no
basic-auth middleware to maintain and get wrong.
Dependencies are vendored because go-chassis is private: the Woodpecker test
step and the in-cluster Kaniko build both run -mod=vendor with GOPROXY=off and
hold no git credential.
cmd/hush-mcp is a stdio MCP server doing the same client-side crypto locally,
so using hush from an agent preserves the same guarantee as using it from a
browser.
198 lines
6.9 KiB
Go
198 lines
6.9 KiB
Go
package redis
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import (
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"context"
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"errors"
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)
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type BitMapCmdable interface {
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GetBit(ctx context.Context, key string, offset int64) *IntCmd
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SetBit(ctx context.Context, key string, offset int64, value int) *IntCmd
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BitCount(ctx context.Context, key string, bitCount *BitCount) *IntCmd
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BitOpAnd(ctx context.Context, destKey string, keys ...string) *IntCmd
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BitOpOr(ctx context.Context, destKey string, keys ...string) *IntCmd
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BitOpXor(ctx context.Context, destKey string, keys ...string) *IntCmd
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BitOpDiff(ctx context.Context, destKey string, keys ...string) *IntCmd
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BitOpDiff1(ctx context.Context, destKey string, keys ...string) *IntCmd
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BitOpAndOr(ctx context.Context, destKey string, keys ...string) *IntCmd
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BitOpOne(ctx context.Context, destKey string, keys ...string) *IntCmd
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BitOpNot(ctx context.Context, destKey string, key string) *IntCmd
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BitPos(ctx context.Context, key string, bit int64, pos ...int64) *IntCmd
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BitPosSpan(ctx context.Context, key string, bit int8, start, end int64, span string) *IntCmd
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BitField(ctx context.Context, key string, values ...interface{}) *IntSliceCmd
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BitFieldRO(ctx context.Context, key string, values ...interface{}) *IntSliceCmd
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}
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func (c cmdable) GetBit(ctx context.Context, key string, offset int64) *IntCmd {
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cmd := NewIntCmd(ctx, "getbit", key, offset)
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_ = c(ctx, cmd)
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return cmd
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}
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func (c cmdable) SetBit(ctx context.Context, key string, offset int64, value int) *IntCmd {
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cmd := NewIntCmd(
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ctx,
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"setbit",
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key,
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offset,
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value,
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)
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_ = c(ctx, cmd)
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return cmd
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}
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type BitCount struct {
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Start, End int64
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Unit string // BYTE(default) | BIT
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}
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const BitCountIndexByte string = "BYTE"
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const BitCountIndexBit string = "BIT"
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func (c cmdable) BitCount(ctx context.Context, key string, bitCount *BitCount) *IntCmd {
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args := make([]any, 2, 5)
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args[0] = "bitcount"
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args[1] = key
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if bitCount != nil {
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args = append(args, bitCount.Start, bitCount.End)
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if bitCount.Unit != "" {
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if bitCount.Unit != BitCountIndexByte && bitCount.Unit != BitCountIndexBit {
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cmd := NewIntCmd(ctx)
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cmd.SetErr(errors.New("redis: invalid bitcount index"))
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return cmd
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}
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args = append(args, bitCount.Unit)
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}
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}
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cmd := NewIntCmd(ctx, args...)
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_ = c(ctx, cmd)
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return cmd
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}
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func (c cmdable) bitOp(ctx context.Context, op, destKey string, keys ...string) *IntCmd {
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args := make([]interface{}, 3+len(keys))
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args[0] = "bitop"
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args[1] = op
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args[2] = destKey
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for i, key := range keys {
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args[3+i] = key
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}
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cmd := NewIntCmd(ctx, args...)
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_ = c(ctx, cmd)
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return cmd
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}
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// BitOpAnd creates a new bitmap in which users are members of all given bitmaps
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func (c cmdable) BitOpAnd(ctx context.Context, destKey string, keys ...string) *IntCmd {
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return c.bitOp(ctx, "and", destKey, keys...)
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}
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// BitOpOr creates a new bitmap in which users are member of at least one given bitmap
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func (c cmdable) BitOpOr(ctx context.Context, destKey string, keys ...string) *IntCmd {
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return c.bitOp(ctx, "or", destKey, keys...)
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}
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// BitOpXor creates a new bitmap in which users are the result of XORing all given bitmaps
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func (c cmdable) BitOpXor(ctx context.Context, destKey string, keys ...string) *IntCmd {
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return c.bitOp(ctx, "xor", destKey, keys...)
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}
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// BitOpNot creates a new bitmap in which users are not members of a given bitmap
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func (c cmdable) BitOpNot(ctx context.Context, destKey string, key string) *IntCmd {
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return c.bitOp(ctx, "not", destKey, key)
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}
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// BitOpDiff creates a new bitmap in which users are members of bitmap X but not of any of bitmaps Y1, Y2, …
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// Introduced with Redis 8.2
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func (c cmdable) BitOpDiff(ctx context.Context, destKey string, keys ...string) *IntCmd {
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return c.bitOp(ctx, "diff", destKey, keys...)
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}
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// BitOpDiff1 creates a new bitmap in which users are members of one or more of bitmaps Y1, Y2, … but not members of bitmap X
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// Introduced with Redis 8.2
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func (c cmdable) BitOpDiff1(ctx context.Context, destKey string, keys ...string) *IntCmd {
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return c.bitOp(ctx, "diff1", destKey, keys...)
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}
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// BitOpAndOr creates a new bitmap in which users are members of bitmap X and also members of one or more of bitmaps Y1, Y2, …
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// Introduced with Redis 8.2
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func (c cmdable) BitOpAndOr(ctx context.Context, destKey string, keys ...string) *IntCmd {
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return c.bitOp(ctx, "andor", destKey, keys...)
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}
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// BitOpOne creates a new bitmap in which users are members of exactly one of the given bitmaps
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// Introduced with Redis 8.2
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func (c cmdable) BitOpOne(ctx context.Context, destKey string, keys ...string) *IntCmd {
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return c.bitOp(ctx, "one", destKey, keys...)
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}
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// BitPos is an API before Redis version 7.0, cmd: bitpos key bit start end
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// if you need the `byte | bit` parameter, please use `BitPosSpan`.
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func (c cmdable) BitPos(ctx context.Context, key string, bit int64, pos ...int64) *IntCmd {
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args := make([]interface{}, 3+len(pos))
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args[0] = "bitpos"
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args[1] = key
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args[2] = bit
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switch len(pos) {
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case 0:
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case 1:
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args[3] = pos[0]
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case 2:
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args[3] = pos[0]
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args[4] = pos[1]
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default:
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cmd := NewIntCmd(ctx)
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cmd.SetErr(errors.New("too many arguments"))
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return cmd
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}
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cmd := NewIntCmd(ctx, args...)
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_ = c(ctx, cmd)
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return cmd
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}
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// BitPosSpan supports the `byte | bit` parameters in redis version 7.0,
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// the bitpos command defaults to using byte type for the `start-end` range,
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// which means it counts in bytes from start to end. you can set the value
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// of "span" to determine the type of `start-end`.
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// span = "bit", cmd: bitpos key bit start end bit
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// span = "byte", cmd: bitpos key bit start end byte
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func (c cmdable) BitPosSpan(ctx context.Context, key string, bit int8, start, end int64, span string) *IntCmd {
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cmd := NewIntCmd(ctx, "bitpos", key, bit, start, end, span)
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_ = c(ctx, cmd)
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return cmd
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}
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// BitField accepts multiple values:
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// - BitField("set", "i1", "offset1", "value1","cmd2", "type2", "offset2", "value2")
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// - BitField([]string{"cmd1", "type1", "offset1", "value1","cmd2", "type2", "offset2", "value2"})
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// - BitField([]interface{}{"cmd1", "type1", "offset1", "value1","cmd2", "type2", "offset2", "value2"})
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func (c cmdable) BitField(ctx context.Context, key string, values ...interface{}) *IntSliceCmd {
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args := make([]interface{}, 2, 2+len(values))
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args[0] = "bitfield"
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args[1] = key
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args = appendArgs(args, values)
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cmd := NewIntSliceCmd(ctx, args...)
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_ = c(ctx, cmd)
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return cmd
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}
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// BitFieldRO - Read-only variant of the BITFIELD command.
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// It is like the original BITFIELD but only accepts GET subcommand and can safely be used in read-only replicas.
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// - BitFieldRO(ctx, key, "<Encoding0>", "<Offset0>", "<Encoding1>","<Offset1>")
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func (c cmdable) BitFieldRO(ctx context.Context, key string, values ...interface{}) *IntSliceCmd {
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args := make([]interface{}, 2, 2+len(values))
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args[0] = "BITFIELD_RO"
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args[1] = key
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if len(values)%2 != 0 {
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c := NewIntSliceCmd(ctx)
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c.SetErr(errors.New("BitFieldRO: invalid number of arguments, must be even"))
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return c
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}
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for i := 0; i < len(values); i += 2 {
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args = append(args, "GET", values[i], values[i+1])
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}
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cmd := NewIntSliceCmd(ctx, args...)
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_ = c(ctx, cmd)
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return cmd
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}
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