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- Replace .golangci.yml with the canonical strict config (all linters enabled except the standard disable list; lll 88, funlen 80/50, cyclop 15, dupl 100; test files now linted) - Pin the Dockerfile lint stage to golangci/golangci-lint:v2.12.2 by tag and digest (Debian-based) - Fix all ~1550 findings surfaced by the new config: line wrapping, wsl_v5/nlreturn blank lines, noinlineerr splits, err113 sentinel errors, perfsprint/modernize rewrites, goconst constants, thelper, testifylint, noctx CommandContext, testpackage conversions, t.Parallel() where safe, and complexity/dupl helper extraction - Record the change and follow-up items in TODO.md User-visible strings -------------------- No user-visible string changes remain. Every error message this branch composes is byte-identical to the one main composes. The err113 sentinels are shaped so that fmt.Errorf reassembles the original text around them: a sentinel carries the fixed words of the message and the caller supplies the interpolated value in the position it has always occupied. Where the value sits in the middle of the sentence the sentinel therefore holds only a fragment (for example vault.ErrVaultNotFound is "does not exist", composed by its caller as "vault <name> does not exist"); each such sentinel documents the message it participates in. Verified mechanically rather than by inspection: every fmt.Errorf and errors.New call site in both trees was parsed, the Error() text of any sentinel passed to %w substituted in, and the resulting sets of composed message templates compared. All 350 templates main produces are still produced, character for character; the set of messages lost or altered is empty. unlocker list ------------- findUnlockerIDByMetadata now returns (string, error) instead of signalling failure with an empty ID. An unreadable unlockers.d is no longer indistinguishable from "no matching entry", so UnlockersList skips the entry with a warning naming the directory, as it did before the scan was extracted into a helper, rather than emitting a row under a synthesized fallback ID that no unlocker remove or unlocker select can match and that suppresses the current-unlocker marker. The duplicate-check and shell-completion callers skip on the same condition, matching their pre-extraction behavior. Covered by tests in internal/cli/unlockers_list_test.go.
470 lines
13 KiB
Go
470 lines
13 KiB
Go
// Package bip85 implements BIP85 deterministic entropy derivation.
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package bip85
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import (
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"bytes"
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"crypto/hmac"
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"crypto/sha256"
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"crypto/sha512"
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"encoding/base64"
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"encoding/binary"
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"encoding/hex"
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"errors"
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"fmt"
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"io"
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"strings"
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"github.com/btcsuite/btcd/btcec/v2"
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"github.com/btcsuite/btcd/btcutil"
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"github.com/btcsuite/btcd/btcutil/base58"
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"github.com/btcsuite/btcd/btcutil/hdkeychain"
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"github.com/btcsuite/btcd/chaincfg"
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"golang.org/x/crypto/sha3"
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)
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const (
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// BIP85_MASTER_PATH is the derivation path prefix for all BIP85 applications
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BIP85_MASTER_PATH = "m/83696968'" //nolint:revive // BIP85 spec naming
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// BIP85_KEY_HMAC_KEY is the HMAC key used for deriving the entropy
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BIP85_KEY_HMAC_KEY = "bip-entropy-from-k" //nolint:revive // BIP85 spec naming
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// AppBIP39 is the application number for BIP39 mnemonics
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AppBIP39 = 39
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// AppHDWIF is the application number for WIF (Wallet Import Format) for Bitcoin Core
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AppHDWIF = 2
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// AppXPRV is the application number for extended private key
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AppXPRV = 32
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APP_HEX = 128169 //nolint:revive // BIP85 spec naming
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APP_PWD64 = 707764 // Base64 passwords //nolint:revive // BIP85 spec naming
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AppPWD85 = 707785 // Base85 passwords
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APP_RSA = 828365 //nolint:revive // BIP85 spec naming
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)
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// Sentinel errors for BIP85 derivation.
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var (
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// ErrNotPrivateKey is returned when the supplied master key is not a
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// private key.
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ErrNotPrivateKey = errors.New("master key must be a private key")
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// ErrInvalidPathComponent is returned when a derivation path component
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// cannot be parsed.
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ErrInvalidPathComponent = errors.New("invalid path component")
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// ErrInvalidWordCount is returned for unsupported BIP39 word counts.
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ErrInvalidWordCount = errors.New("invalid BIP39 word count")
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// ErrInvalidNumBytes is returned when numBytes is out of range.
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ErrInvalidNumBytes = errors.New("numBytes must be between 16 and 64")
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// ErrInvalidBase64PwdLen is returned when the Base64 password length
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// is out of range.
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ErrInvalidBase64PwdLen = errors.New("pwdLen must be between 20 and 86")
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// ErrInvalidBase85PwdLen is returned when the Base85 password length
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// is out of range.
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ErrInvalidBase85PwdLen = errors.New("pwdLen must be between 10 and 80")
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// ErrPasswordTooShort is returned when the derived material is
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// shorter than the requested password length. It carries only the
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// middle of the message, which the caller composes as
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// "derived password length <n> is shorter than requested length <m>",
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// so the emitted text is unchanged.
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ErrPasswordTooShort = errors.New("is shorter than requested length")
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// ErrEncodedTooShort is returned when the encoded material is shorter
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// than the requested password length. Composed as
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// "encoded length <n> is less than requested length <m>".
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ErrEncodedTooShort = errors.New("is less than requested length")
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)
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// Version bytes for extended keys
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//
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//nolint:gochecknoglobals // standard BIP32 version constants
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var (
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// MainNetPrivateKey is the version for mainnet private keys
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MainNetPrivateKey = []byte{0x04, 0x88, 0xAD, 0xE4}
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// TestNetPrivateKey is the version for testnet private keys
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TestNetPrivateKey = []byte{0x04, 0x35, 0x83, 0x94}
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)
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// DRNG is a deterministic random number generator seeded by BIP85 entropy
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type DRNG struct {
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shake io.Reader
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}
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// NewBIP85DRNG creates a new DRNG seeded with BIP85 entropy
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func NewBIP85DRNG(entropy []byte) *DRNG {
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const bip85EntropySize = 64 // 512 bits
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// The entropy must be exactly 64 bytes (512 bits)
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if len(entropy) != bip85EntropySize {
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panic("DRNG entropy must be 64 bytes")
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}
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// Initialize SHAKE256 with the entropy
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shake := sha3.NewShake256()
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_, _ = shake.Write(entropy) // Write to hash functions never returns an error
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return &DRNG{
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shake: shake,
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}
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}
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// Read implements the io.Reader interface
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func (d *DRNG) Read(p []byte) (int, error) {
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return d.shake.Read(p)
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}
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// DeriveChildKey returns the private key and chain code bytes
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func DeriveChildKey(masterKey *hdkeychain.ExtendedKey, path string) ([]byte, error) {
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// Validate the masterKey is a private key
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if !masterKey.IsPrivate() {
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return nil, ErrNotPrivateKey
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}
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// Derive the child key at the specified path
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childKey, err := deriveChildKey(masterKey, path)
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if err != nil {
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return nil, fmt.Errorf("failed to derive child key: %w", err)
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}
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// Get the private key bytes
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ecPrivKey, err := childKey.ECPrivKey()
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if err != nil {
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return nil, fmt.Errorf("failed to get EC private key: %w", err)
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}
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// Serialize the private key to get the bytes
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return ecPrivKey.Serialize(), nil
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}
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// DeriveBIP85Entropy derives entropy from a BIP32 master key using the
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// BIP85 method
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func DeriveBIP85Entropy(
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masterKey *hdkeychain.ExtendedKey,
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path string,
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) ([]byte, error) {
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// Get the child key bytes
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privKeyBytes, err := DeriveChildKey(masterKey, path)
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if err != nil {
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return nil, err
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}
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// Apply HMAC-SHA512
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h := hmac.New(sha512.New, []byte(BIP85_KEY_HMAC_KEY))
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h.Write(privKeyBytes)
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entropy := h.Sum(nil)
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return entropy, nil
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}
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// deriveChildKey derives a child key from a parent key using the given path
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func deriveChildKey(
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parent *hdkeychain.ExtendedKey,
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path string,
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) (*hdkeychain.ExtendedKey, error) {
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if path == "" || path == "m" || path == "/" {
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return parent, nil
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}
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// Remove the "m/" or "/" prefix if present
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path = strings.TrimPrefix(path, "m/")
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path = strings.TrimPrefix(path, "/")
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// Split the path into individual components
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components := strings.Split(path, "/")
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// Start with the parent key
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key := parent
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// Derive each component
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for _, component := range components {
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// Check if the component is hardened
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hardened := strings.HasSuffix(component, "'") || strings.HasSuffix(component, "h")
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if hardened {
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component = strings.TrimSuffix(component, "'")
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component = strings.TrimSuffix(component, "h")
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}
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// Parse the index
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var index uint32
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_, err := fmt.Sscanf(component, "%d", &index)
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if err != nil {
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return nil, fmt.Errorf(
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"%w: %s", ErrInvalidPathComponent, component,
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)
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}
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// Apply hardening if needed
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if hardened {
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index += hdkeychain.HardenedKeyStart
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}
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// Derive the child key
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child, err := key.Derive(index)
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if err != nil {
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return nil, fmt.Errorf("failed to derive child key at index %d: %w", index, err)
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}
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key = child
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}
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return key, nil
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}
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// DeriveBIP39Entropy derives entropy for a BIP39 mnemonic
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func DeriveBIP39Entropy(
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masterKey *hdkeychain.ExtendedKey,
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language, words, index uint32,
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) ([]byte, error) {
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path := fmt.Sprintf(
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"%s/%d'/%d'/%d'/%d'",
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BIP85_MASTER_PATH, AppBIP39, language, words, index,
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)
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entropy, err := DeriveBIP85Entropy(masterKey, path)
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if err != nil {
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return nil, err
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}
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// Determine how many bits of entropy to use based on the words
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// BIP39 defines specific word counts and their corresponding entropy bits
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const (
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words12 = 12 // 128 bits of entropy
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words15 = 15 // 160 bits of entropy
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words18 = 18 // 192 bits of entropy
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words21 = 21 // 224 bits of entropy
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words24 = 24 // 256 bits of entropy
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)
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var bits int
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switch words {
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case words12:
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bits = 128
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case words15:
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bits = 160
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case words18:
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bits = 192
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case words21:
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bits = 224
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case words24:
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bits = 256
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default:
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return nil, fmt.Errorf("%w: %d", ErrInvalidWordCount, words)
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}
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// Truncate to the required number of bits (bytes = bits / 8)
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entropy = entropy[:bits/8]
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return entropy, nil
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}
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// DeriveWIFKey derives a private key in WIF format
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func DeriveWIFKey(masterKey *hdkeychain.ExtendedKey, index uint32) (string, error) {
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path := fmt.Sprintf("%s/%d'/%d'", BIP85_MASTER_PATH, AppHDWIF, index)
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entropy, err := DeriveBIP85Entropy(masterKey, path)
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if err != nil {
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return "", err
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}
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// Use the first 32 bytes as the key
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keyBytes := entropy[:32]
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// Convert to WIF format
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privKey, _ := btcec.PrivKeyFromBytes(keyBytes)
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wif, err := btcutil.NewWIF(privKey, &chaincfg.MainNetParams, true) // compressed=true
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if err != nil {
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return "", fmt.Errorf("failed to create WIF: %w", err)
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}
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return wif.String(), nil
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}
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// DeriveXPRV derives an extended private key (XPRV)
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func DeriveXPRV(
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masterKey *hdkeychain.ExtendedKey,
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index uint32,
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) (*hdkeychain.ExtendedKey, error) {
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path := fmt.Sprintf("%s/%d'/%d'", BIP85_MASTER_PATH, AppXPRV, index)
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entropy, err := DeriveBIP85Entropy(masterKey, path)
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if err != nil {
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return nil, err
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}
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// The first 32 bytes are the chain code, the second 32 bytes are the private key
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chainCode := entropy[:32]
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privateKey := entropy[32:64]
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// Create serialized extended key
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var serialized bytes.Buffer
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// Add version bytes (4 bytes)
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// Default to mainnet version
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version := MainNetPrivateKey
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// Check if the master key serialization starts with the testnet version bytes
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masterKeyStr := masterKey.String()
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if strings.HasPrefix(masterKeyStr, "tprv") {
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version = TestNetPrivateKey
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}
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// Write serialized data
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serialized.Write(version) // 4 bytes: version
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serialized.WriteByte(0) // 1 byte: depth (0 for master)
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serialized.Write([]byte{0, 0, 0, 0}) // 4 bytes: parent fingerprint (0 for master)
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serialized.Write([]byte{0, 0, 0, 0}) // 4 bytes: child number (0 for master)
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serialized.Write(chainCode) // 32 bytes: chain code
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serialized.WriteByte(0) // 1 byte: 0x00 prefix for private key
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serialized.Write(privateKey) // 32 bytes: private key
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// Calculate checksum (first 4 bytes of double-SHA256)
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serializedBytes := serialized.Bytes()
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checksum := doubleSHA256(serializedBytes)[:4]
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// Append checksum
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serializedBytes = append(serializedBytes, checksum...)
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// Base58 encode
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xprvStr := base58.Encode(serializedBytes)
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// Parse the serialized xprv back to an ExtendedKey
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return hdkeychain.NewKeyFromString(xprvStr)
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}
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// doubleSHA256 calculates sha256(sha256(data))
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func doubleSHA256(data []byte) []byte {
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hash1 := sha256.Sum256(data)
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hash2 := sha256.Sum256(hash1[:])
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return hash2[:]
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}
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// DeriveHex derives a raw hex string of specified length
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func DeriveHex(
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masterKey *hdkeychain.ExtendedKey,
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numBytes, index uint32,
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) (string, error) {
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if numBytes < 16 || numBytes > 64 {
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return "", ErrInvalidNumBytes
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}
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path := fmt.Sprintf("%s/%d'/%d'/%d'", BIP85_MASTER_PATH, APP_HEX, numBytes, index)
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entropy, err := DeriveBIP85Entropy(masterKey, path)
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if err != nil {
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return "", err
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}
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// Truncate to the required number of bytes
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entropy = entropy[:numBytes]
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return hex.EncodeToString(entropy), nil
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}
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// DeriveBase64Password derives a password encoded in Base64
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func DeriveBase64Password(
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masterKey *hdkeychain.ExtendedKey,
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pwdLen, index uint32,
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) (string, error) {
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if pwdLen < 20 || pwdLen > 86 {
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return "", ErrInvalidBase64PwdLen
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}
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path := fmt.Sprintf("%s/%d'/%d'/%d'", BIP85_MASTER_PATH, APP_PWD64, pwdLen, index)
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entropy, err := DeriveBIP85Entropy(masterKey, path)
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if err != nil {
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return "", err
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}
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// Base64 encode all 64 bytes of entropy
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encodedStr := base64.StdEncoding.EncodeToString(entropy)
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// Remove any padding
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encodedStr = strings.TrimRight(encodedStr, "=")
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// Slice to the desired password length
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if len(encodedStr) < int(pwdLen) {
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return "", fmt.Errorf(
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"derived password length %d %w %d",
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len(encodedStr), ErrPasswordTooShort, pwdLen,
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)
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}
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return encodedStr[:pwdLen], nil
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}
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// DeriveBase85Password derives a password encoded in Base85
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func DeriveBase85Password(
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masterKey *hdkeychain.ExtendedKey,
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pwdLen, index uint32,
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) (string, error) {
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if pwdLen < 10 || pwdLen > 80 {
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return "", ErrInvalidBase85PwdLen
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}
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path := fmt.Sprintf("%s/%d'/%d'/%d'", BIP85_MASTER_PATH, AppPWD85, pwdLen, index)
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entropy, err := DeriveBIP85Entropy(masterKey, path)
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if err != nil {
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return "", err
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}
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// Base85 encode all 64 bytes of entropy using the RFC1924 character set
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encoded := encodeBase85WithRFC1924Charset(entropy)
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// Slice to the desired password length
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if len(encoded) < int(pwdLen) {
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return "", fmt.Errorf(
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"encoded length %d %w %d",
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len(encoded), ErrEncodedTooShort, pwdLen,
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)
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}
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return encoded[:pwdLen], nil
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}
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// encodeBase85WithRFC1924Charset encodes data using Base85 with the
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// RFC1924 character set
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func encodeBase85WithRFC1924Charset(data []byte) string {
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// RFC1924 character set
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charset := "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ" +
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"abcdefghijklmnopqrstuvwxyz!#$%&()*+-;<=>?@^_`{|}~"
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const (
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base85ChunkSize = 4 // Process 4 bytes at a time
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base85DigitCount = 5 // Each chunk produces 5 digits
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base85Base = 85 // Base85 encoding uses base 85
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)
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// Pad data to multiple of 4
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padded := make([]byte, ((len(data)+base85ChunkSize-1)/base85ChunkSize)*base85ChunkSize)
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copy(padded, data)
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var buf strings.Builder
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// Each 4 bytes becomes 5 Base85 characters
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buf.Grow(len(padded) * base85DigitCount / base85ChunkSize)
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// Process in 4-byte chunks
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for i := 0; i < len(padded); i += base85ChunkSize {
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// Convert 4 bytes to uint32 (big-endian)
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chunk := binary.BigEndian.Uint32(padded[i : i+base85ChunkSize])
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// Convert to 5 base-85 digits
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digits := make([]byte, base85DigitCount)
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for j := base85DigitCount - 1; j >= 0; j-- {
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idx := chunk % base85Base
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digits[j] = charset[idx]
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chunk /= base85Base
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}
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buf.Write(digits)
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}
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return buf.String()
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}
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// ParseMasterKey parses an extended key from a string
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func ParseMasterKey(xprv string) (*hdkeychain.ExtendedKey, error) {
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return hdkeychain.NewKeyFromString(xprv)
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}
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