ADR-28 derive address functions (#9088)
* update Derive functions * update adr-028 * changelog update * Apply suggestions from code review Co-authored-by: Marie Gauthier <marie.gauthier63@gmail.com> * review updates * remove DeriveMulti and rollback some changes in CHANGELOG * add noop error check Co-authored-by: Marie Gauthier <marie.gauthier63@gmail.com>
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@ -42,6 +42,7 @@ Ref: https://keepachangelog.com/en/1.0.0/
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* [\#8786](https://github.com/cosmos/cosmos-sdk/pull/8786) Enabled secp256r1 in x/auth.
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* (rosetta) [\#8729](https://github.com/cosmos/cosmos-sdk/pull/8729) Data API fully supports balance tracking. Construction API can now construct any message supported by the application.
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* [\#8754](https://github.com/cosmos/cosmos-sdk/pull/8875) Added support for reverse iteration to pagination.
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* [#9088](https://github.com/cosmos/cosmos-sdk/pull/9088) Added implementation to ADR-28 Derived Addresses.
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### Client Breaking Changes
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* [\#8363](https://github.com/cosmos/cosmos-sdk/pull/8363) Addresses no longer have a fixed 20-byte length. From the SDK modules' point of view, any 1-255 bytes-long byte array is a valid address.
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@ -82,6 +83,8 @@ Ref: https://keepachangelog.com/en/1.0.0/
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* (x/bank) [\#8798](https://github.com/cosmos/cosmos-sdk/pull/8798) `GetTotalSupply` is removed in favour of `GetPaginatedTotalSupply`
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* (x/bank/types) [\#9061](https://github.com/cosmos/cosmos-sdk/pull/9061) `AddressFromBalancesStore` now returns an error for invalid key instead of panic.
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### State Machine Breaking
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* (x/{bank,distrib,gov,slashing,staking}) [\#8363](https://github.com/cosmos/cosmos-sdk/issues/8363) Store keys have been modified to allow for variable-length addresses.
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@ -135,7 +135,7 @@ type Addressable interface {
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Address() []byte
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}
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func NewComposed(typ string, subaccounts []Addressable) []byte {
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func Composed(typ string, subaccounts []Addressable) []byte {
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addresses = map(subaccounts, \a -> LengthPrefix(a.Address()))
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addresses = sort(addresses)
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return address.Hash(typ, addresses[0] + ... + addresses[n])
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@ -175,7 +175,7 @@ func (multisig PubKey) Address() {
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prefix := fmt.Sprintf("%s/%d", proto.MessageName(multisig), multisig.Threshold)
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// use the Composed function defined above
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return address.NewComposed(prefix, keys)
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return address.Composed(prefix, keys)
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}
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```
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@ -185,14 +185,14 @@ NOTE: this section is not finalize and it's in active discussion.
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In Basic Address section we defined a module account address as:
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```
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```go
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address.Hash("module", moduleName)
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```
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We use `"module"` as a schema type for all module derived addresses. Module accounts can have sub accounts. The derivation process has a defined order: module name, submodule key, subsubmodule key.
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Module account addresses are heavily used in the SDK so it makes sense to optimize the derivation process: instead of using of using `LengthPrefix` for the module name, we use a null byte (`'\x00'`) as a separator. This works, because null byte is not a part of a valid module name.
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```
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```go
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func Module(moduleName string, key []byte) []byte{
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return Hash("module", []byte(moduleName) + 0 + key)
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}
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@ -208,24 +208,24 @@ If we want to create an address for a module account depending on more than one
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btcAtomAMM := address.Module("amm", btc.Addrress() + atom.Address()})
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```
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We can continue the derivation process and can create an address for a submodule account.
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#### Derived Addresses
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```
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func Submodule(address []byte, derivationKey []byte) {
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return Hash("module", address + derivationKey)
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We must be able to cryptographically derive one address from another one. The derivation process must guarantee hash properties, hence we use the already defined `Hash` function:
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```go
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func Derive(address []byte, derivationKey []byte) []byte {
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return Hash(addres, derivationKey)
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}
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```
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NOTE: if `address` is not a hash based address (with `LEN` length) then we should use `LengthPrefix`. An alternative would be to use one `Module` function, which takes a slice of keys and mapped with `LengthPrefix`. For final version we need to validate what's the most common use.
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Note: `Module` is a special case of the more general _derived_ address, where we set the `"module"` string for the _from address_.
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**Example** For a cosmwasm smart-contract address we could use the following construction:
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```
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smartContractAddr := Submodule(Module("cosmwasm", smartContractsNamespace), smartContractKey)
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smartContractAddr := Derived(Module("cosmwasm", smartContractsNamespace), []{smartContractKey})
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```
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### Schema Types
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A `typ` parameter used in `Hash` function SHOULD be unique for each account type.
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@ -20,20 +20,21 @@ type Addressable interface {
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// Hash creates a new address from address type and key
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func Hash(typ string, key []byte) []byte {
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hasher := sha256.New()
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hasher.Write(conv.UnsafeStrToBytes(typ))
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_, err := hasher.Write(conv.UnsafeStrToBytes(typ))
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// the error always nil, it's here only to satisfy the io.Writer interface
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errors.AssertNil(err)
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th := hasher.Sum(nil)
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hasher.Reset()
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_, err := hasher.Write(th)
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// the error always nil, it's here only to satisfy the io.Writer interface
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_, err = hasher.Write(th)
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errors.AssertNil(err)
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_, err = hasher.Write(key)
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errors.AssertNil(err)
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return hasher.Sum(nil)
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}
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// NewComposed creates a new address based on sub addresses.
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func NewComposed(typ string, subAddresses []Addressable) ([]byte, error) {
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// Compose creates a new address based on sub addresses.
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func Compose(typ string, subAddresses []Addressable) ([]byte, error) {
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as := make([][]byte, len(subAddresses))
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totalLen := 0
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var err error
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@ -62,3 +63,8 @@ func Module(moduleName string, key []byte) []byte {
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mKey := append([]byte(moduleName), 0)
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return Hash("module", append(mKey, key...))
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}
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// Derive derives a new address from the main `address` and a derivation `key`.
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func Derive(address []byte, key []byte) []byte {
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return Hash(conv.UnsafeBytesToStr(address), key)
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}
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@ -34,7 +34,7 @@ func (suite *AddressSuite) TestComposed() {
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a2 := addrMock{[]byte{21, 22}}
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typ := "multisig"
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ac, err := NewComposed(typ, []Addressable{a1, a2})
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ac, err := Compose(typ, []Addressable{a1, a2})
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assert.NoError(err)
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assert.Len(ac, Len)
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@ -45,18 +45,18 @@ func (suite *AddressSuite) TestComposed() {
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assert.Equal(ac, ac2, "NewComposed works correctly")
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// changing order of addresses shouldn't impact a composed address
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ac2, err = NewComposed(typ, []Addressable{a2, a1})
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ac2, err = Compose(typ, []Addressable{a2, a1})
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assert.NoError(err)
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assert.Len(ac2, Len)
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assert.Equal(ac, ac2, "NewComposed is not sensitive for order")
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// changing a type should change composed address
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ac2, err = NewComposed(typ+"other", []Addressable{a2, a1})
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ac2, err = Compose(typ+"other", []Addressable{a2, a1})
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assert.NoError(err)
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assert.NotEqual(ac, ac2, "NewComposed must be sensitive to type")
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// changing order of addresses shouldn't impact a composed address
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ac2, err = NewComposed(typ, []Addressable{a1, addrMock{make([]byte, 300, 300)}})
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ac2, err = Compose(typ, []Addressable{a1, addrMock{make([]byte, 300, 300)}})
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assert.Error(err)
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assert.Contains(err.Error(), "should be max 255 bytes, got 300")
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}
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@ -75,6 +75,21 @@ func (suite *AddressSuite) TestModule() {
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assert.NotEqual(addr2, addr3, "changing key must change address")
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}
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func (suite *AddressSuite) TestDerive() {
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assert := suite.Assert()
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var addr, key1, key2 = []byte{1, 2}, []byte{3, 4}, []byte{1, 2}
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d1 := Derive(addr, key1)
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d2 := Derive(addr, key2)
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d3 := Derive(key1, key2)
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assert.Len(d1, Len)
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assert.Len(d2, Len)
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assert.Len(d3, Len)
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assert.NotEqual(d1, d2)
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assert.NotEqual(d1, d3)
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assert.NotEqual(d2, d3)
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}
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type addrMock struct {
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Addr []byte
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}
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