255 lines
7.6 KiB
Go
255 lines
7.6 KiB
Go
// Copyright 2017-2018 DERO Project. All rights reserved.
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// Use of this source code in any form is governed by RESEARCH license.
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// license can be found in the LICENSE file.
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// GPG: 0F39 E425 8C65 3947 702A 8234 08B2 0360 A03A 9DE8
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//
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//
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND ANY
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// EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
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// MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL
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// THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
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// PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
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// INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
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// STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF
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// THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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package dvm
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import "fmt"
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import "encoding/binary"
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import "github.com/deroproject/derohe/cryptography/crypto"
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// this package exports an interface which is used by blockchain to persist/query data
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type DataKey struct {
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SCID crypto.Hash // tx which created the the contract or contract ID
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Asset crypto.Hash // used only if it repesebts a balane
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Balance bool // whether this represents a balance
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Key Variable
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}
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type TransferInternal struct {
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Asset crypto.Hash `cbor:"Asset,omitempty" json:"Asset,omitempty"` // transfer this asset
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SCID string `cbor:"A,omitempty" json:"A,omitempty"` // transfer to this SCID
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Amount uint64 `cbor:"V,omitempty" json:"V,omitempty"` // Amount in Atomic units
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}
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// any external tranfers
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type TransferExternal struct {
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Asset crypto.Hash `cbor:"Asset,omitempty" json:"Asset,omitempty"` // transfer this asset
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Address string `cbor:"A,omitempty" json:"A,omitempty"` // transfer to this address 33 bytes
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Amount uint64 `cbor:"V,omitempty" json:"V,omitempty"` // Amount in Atomic units
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}
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type SC_Transfers struct {
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BalanceAtStart uint64 // value at start
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TransferI []TransferInternal // all internal transfers, SC to other SC
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TransferE []TransferExternal // all external transfers, SC to external wallets
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}
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// all SC load and store operations will go though this
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type TX_Storage struct {
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DiskLoader func(DataKey, *uint64) Variable // used to load variabled
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BalanceLoader func(DataKey) uint64 // used to load balance
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DiskLoaderRaw func([]byte) ([]byte, bool)
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SCID crypto.Hash
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BalanceAtStart uint64 // at runtime this will be fed balance
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RawKeys map[string][]byte // this keeps the in-transit DB updates, just in case we have to discard instantly
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Transfers map[crypto.Hash]SC_Transfers // all transfers ( internal/external )
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State *Shared_State // only for book keeping of storage gas
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}
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// initialize tx store
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func Initialize_TX_store() (tx_store *TX_Storage) {
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tx_store = &TX_Storage{RawKeys: map[string][]byte{}, Transfers: map[crypto.Hash]SC_Transfers{}}
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return
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}
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func (tx_store *TX_Storage) RawLoad(key []byte) (value []byte, found bool) {
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if value, found = tx_store.RawKeys[string(key)]; !found {
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if tx_store.DiskLoaderRaw == nil {
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return
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}
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value, found = tx_store.DiskLoaderRaw(key)
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}
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return
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}
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func (tx_store *TX_Storage) Delete(dkey DataKey) {
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tx_store.RawKeys[string(dkey.MarshalBinaryPanic())] = []byte{}
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return
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}
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// this will load the variable, and if the key is found
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// loads are cheaper
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func (tx_store *TX_Storage) Load(dkey DataKey, found_value *uint64) (value Variable) {
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//fmt.Printf("Loading %+v \n", dkey)
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*found_value = 0
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if result, ok := tx_store.RawKeys[string(dkey.MarshalBinaryPanic())]; ok { // if it was modified in current TX, use it
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*found_value = 1
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if err := value.UnmarshalBinary(result); err != nil {
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panic(err)
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}
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if tx_store.State != nil {
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if value.Length() > 10 {
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tx_store.State.ConsumeStorageGas(value.Length() / 10)
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} else {
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tx_store.State.ConsumeStorageGas(1)
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}
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}
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return value
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}
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if tx_store.DiskLoader == nil {
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panic("DVM_STORAGE_BACKEND is not ready")
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}
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value = tx_store.DiskLoader(dkey, found_value)
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if tx_store.State != nil {
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if value.Length() > 10 {
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tx_store.State.ConsumeStorageGas(value.Length() / 10)
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} else {
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tx_store.State.ConsumeStorageGas(1)
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}
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}
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return
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}
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// store variable
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func (tx_store *TX_Storage) Store(dkey DataKey, v Variable) {
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//fmt.Printf("Storing request %+v : %+v\n", dkey, v)
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kbytes := dkey.MarshalBinaryPanic()
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vbytes := v.MarshalBinaryPanic()
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tx_store.State.ConsumeStorageGas(int64(len(vbytes)) * 1)
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tx_store.RawKeys[string(kbytes)] = vbytes
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}
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// store variable
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func (tx_store *TX_Storage) SendExternal(sender_scid, asset crypto.Hash, addr_str string, amount uint64) {
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//fmt.Printf("Transfer to external address : %+v\n", addr_str)
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transfer := tx_store.Transfers[sender_scid]
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transfer.TransferE = append(transfer.TransferE, TransferExternal{Address: addr_str, Asset: asset, Amount: amount})
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tx_store.Transfers[sender_scid] = transfer
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}
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func GetBalanceKey(scid, asset crypto.Hash) (x DataKey) {
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x.SCID = scid
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x.Balance = true
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x.Key = Variable{Type: String, ValueString: string(asset[:])}
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return x
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}
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/*
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func GetNormalKey(scid crypto.Key, v Variable) (x DataKey) {
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x.SCID = scid
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x.Key = Variable {Type:v.Type, Value: v.Value}
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return x
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}
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*/
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// why should we not hash the return value to return a hash value
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// using entire key could be useful, if DB can somehow link between them in the form of buckets and all
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func (dkey DataKey) MarshalBinary() (ser []byte, err error) {
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ser, err = dkey.Key.MarshalBinary()
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return
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}
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func (dkey DataKey) MarshalBinaryPanic() (ser []byte) {
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var err error
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if dkey.Balance {
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switch dkey.Key.Type {
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case String:
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ser = append(ser, ([]byte(dkey.Key.ValueString))...) // string
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return
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default:
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panic("balance keys can only be string")
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}
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}
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if ser, err = dkey.Key.MarshalBinary(); err != nil {
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panic(err)
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}
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return
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}
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func (v Variable) Length() (length int64) {
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switch v.Type {
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case Invalid, None:
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return
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case Uint64:
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var buf [binary.MaxVarintLen64]byte
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done := binary.PutUvarint(buf[:], v.ValueUint64) // uint64 data type
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length += int64(done) + 1
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case String:
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length = int64(len([]byte(v.ValueString)) + 1)
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default:
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panic("unknown variable type not implemented")
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}
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return
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}
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// these are used by lowest layers
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func (v Variable) MarshalBinary() (data []byte, err error) {
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switch v.Type {
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case Invalid, None:
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return
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case Uint64:
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var buf [binary.MaxVarintLen64]byte
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done := binary.PutUvarint(buf[:], v.ValueUint64) // uint64 data type
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data = append(data, buf[:done]...)
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case String:
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data = append(data, ([]byte(v.ValueString))...) // string
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default:
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panic("unknown variable type not implemented2")
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}
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data = append(data, byte(v.Type)) // add object type
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return
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}
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func (v Variable) MarshalBinaryPanic() (ser []byte) {
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var err error
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if ser, err = v.MarshalBinary(); err != nil {
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panic(err)
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}
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return
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}
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func (v *Variable) UnmarshalBinary(buf []byte) (err error) {
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if len(buf) < 1 {
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return fmt.Errorf("invalid, probably corruption")
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}
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switch Vtype(buf[len(buf)-1]) {
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case Invalid, None:
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return fmt.Errorf("Invalid cannot be deserialized")
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case Uint64:
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v.Type = Uint64
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var n int
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v.ValueUint64, n = binary.Uvarint(buf[:len(buf)-1]) // uint64 data type
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if n <= 0 {
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panic("corruption in DB")
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return fmt.Errorf("corruption in DB")
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}
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case String:
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v.Type = String
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v.ValueString = string(buf[:len(buf)-1])
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return nil
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default:
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panic("unknown variable type not implemented3")
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}
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return
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}
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