swarm/*: golint fixes for 2nd half of swarm

Specifically self and function receivers
This commit is contained in:
Eli 2018-05-02 10:19:40 -07:00
parent f63cea8d71
commit 8eeb64a578
21 changed files with 834 additions and 838 deletions

View file

@ -77,7 +77,7 @@ type HiveParams struct {
*kademlia.KadParams
}
//create default params
// NewDefaultHiveParams creates default params
func NewDefaultHiveParams() *HiveParams {
kad := kademlia.NewDefaultKadParams()
// kad.BucketSize = bucketSize
@ -124,7 +124,7 @@ func (hive *Hive) BlockNetworkWrite(on bool) {
hive.blockWrite = on
}
// public accessor to the hive base address
// Addr is the public accessor to the hive base address
func (hive *Hive) Addr() kademlia.Address {
return hive.addr
}
@ -196,57 +196,57 @@ func (hive *Hive) Start(id discover.NodeID, listenAddr func() string, connectPee
// by writing to hive.more until Kademlia Table is saturated
// wake state is toggled by writing to hive.toggle
// it restarts if the table becomes non-full again due to disconnections
func (self *Hive) keepAlive() {
alarm := time.NewTicker(time.Duration(self.callInterval)).C
func (hive *Hive) keepAlive() {
alarm := time.NewTicker(time.Duration(hive.callInterval)).C
for {
peersNumGauge.Update(int64(self.kad.Count()))
peersNumGauge.Update(int64(hive.kad.Count()))
select {
case <-alarm:
if self.kad.DBCount() > 0 {
if hive.kad.DBCount() > 0 {
select {
case self.more <- true:
case hive.more <- true:
log.Debug(fmt.Sprintf("buzz wakeup"))
default:
}
}
case need := <-self.toggle:
case need := <-hive.toggle:
if alarm == nil && need {
alarm = time.NewTicker(time.Duration(self.callInterval)).C
alarm = time.NewTicker(time.Duration(hive.callInterval)).C
}
if alarm != nil && !need {
alarm = nil
}
case <-self.quit:
case <-hive.quit:
return
}
}
}
func (self *Hive) Stop() error {
func (hive *Hive) Stop() error {
// closing toggle channel quits the updateloop
close(self.quit)
return self.kad.Save(self.path, saveSync)
close(hive.quit)
return hive.kad.Save(hive.path, saveSync)
}
// called at the end of a successful protocol handshake
func (self *Hive) addPeer(p *peer) error {
func (hive *Hive) addPeer(p *peer) error {
addPeerCounter.Inc(1)
defer func() {
select {
case self.more <- true:
case hive.more <- true:
default:
}
}()
log.Trace(fmt.Sprintf("hi new bee %v", p))
err := self.kad.On(p, loadSync)
err := hive.kad.On(p, loadSync)
if err != nil {
return err
}
// self lookup (can be encoded as nil/zero key since peers addr known) + no id ()
// hive lookup (can be encoded as nil/zero key since peers addr known) + no id ()
// the most common way of saying hi in bzz is initiation of gossip
// let me know about anyone new from my hood , here is the storageradius
// to send the 6 byte self lookup
// to send the 6 byte hive lookup
// we do not record as request or forward it, just reply with peers
p.retrieve(&retrieveRequestMsgData{})
log.Trace(fmt.Sprintf("'whatsup wheresdaparty' sent to %v", p))
@ -255,33 +255,33 @@ func (self *Hive) addPeer(p *peer) error {
}
// called after peer disconnected
func (self *Hive) removePeer(p *peer) {
func (hive *Hive) removePeer(p *peer) {
removePeerCounter.Inc(1)
log.Debug(fmt.Sprintf("bee %v removed", p))
self.kad.Off(p, saveSync)
hive.kad.Off(p, saveSync)
select {
case self.more <- true:
case hive.more <- true:
default:
}
if self.kad.Count() == 0 {
if hive.kad.Count() == 0 {
log.Debug(fmt.Sprintf("empty, all bees gone"))
}
}
// Retrieve a list of live peers that are closer to target than us
func (self *Hive) getPeers(target storage.Key, max int) (peers []*peer) {
func (hive *Hive) getPeers(target storage.Key, max int) (peers []*peer) {
var addr kademlia.Address
copy(addr[:], target[:])
for _, node := range self.kad.FindClosest(addr, max) {
for _, node := range hive.kad.FindClosest(addr, max) {
peers = append(peers, node.(*peer))
}
return
}
// disconnects all the peers
func (self *Hive) DropAll() {
// DropAll disconnects all the peers
func (hive *Hive) DropAll() {
log.Info(fmt.Sprintf("dropping all bees"))
for _, node := range self.kad.FindClosest(kademlia.Address{}, 0) {
for _, node := range hive.kad.FindClosest(kademlia.Address{}, 0) {
node.Drop()
}
}
@ -298,10 +298,10 @@ func newNodeRecord(addr *peerAddr) *kademlia.NodeRecord {
}
}
// called by the protocol when receiving peerset (for target address)
// HandlePeersMsg called by the protocol when receiving peerset (for target address)
// peersMsgData is converted to a slice of NodeRecords for Kademlia
// this is to store all thats needed
func (self *Hive) HandlePeersMsg(req *peersMsgData, from *peer) {
func (hive *Hive) HandlePeersMsg(req *peersMsgData, from *peer) {
var nrs []*kademlia.NodeRecord
for _, p := range req.Peers {
if err := netutil.CheckRelayIP(from.remoteAddr.IP, p.IP); err != nil {
@ -310,7 +310,7 @@ func (self *Hive) HandlePeersMsg(req *peersMsgData, from *peer) {
}
nrs = append(nrs, newNodeRecord(p))
}
self.kad.Add(nrs)
hive.kad.Add(nrs)
}
// peer wraps the protocol instance to represent a connected peer
@ -320,17 +320,17 @@ type peer struct {
}
// protocol instance implements kademlia.Node interface (embedded peer)
func (self *peer) Addr() kademlia.Address {
return self.remoteAddr.Addr
func (p *peer) Addr() kademlia.Address {
return p.remoteAddr.Addr
}
func (self *peer) Url() string {
return self.remoteAddr.String()
func (p *peer) Url() string {
return p.remoteAddr.String()
}
// TODO take into account traffic
func (self *peer) LastActive() time.Time {
return self.lastActive
func (p *peer) LastActive() time.Time {
return p.lastActive
}
// reads the serialised form of sync state persisted as the 'Meta' attribute
@ -370,19 +370,19 @@ func saveSync(record *kademlia.NodeRecord, node kademlia.Node) {
// the immediate response to a retrieve request,
// sends relevant peer data given by the kademlia hive to the requester
// TODO: remember peers sent for duration of the session, only new peers sent
func (self *Hive) peers(req *retrieveRequestMsgData) {
func (hive *Hive) peers(req *retrieveRequestMsgData) {
if req != nil {
var addrs []*peerAddr
if req.timeout == nil || time.Now().Before(*(req.timeout)) {
key := req.Key
// self lookup from remote peer
// hive lookup from remote peer
if storage.IsZeroKey(key) {
addr := req.from.Addr()
key = storage.Key(addr[:])
req.Key = nil
}
// get peer addresses from hive
for _, peer := range self.getPeers(key, int(req.MaxPeers)) {
for _, peer := range hive.getPeers(key, int(req.MaxPeers)) {
addrs = append(addrs, peer.remoteAddr)
}
log.Debug(fmt.Sprintf("Hive sending %d peer addresses to %v. req.Id: %v, req.Key: %v", len(addrs), req.from, req.Id, req.Key.Log()))
@ -398,6 +398,6 @@ func (self *Hive) peers(req *retrieveRequestMsgData) {
}
}
func (self *Hive) String() string {
return self.kad.String()
func (hive *Hive) String() string {
return hive.kad.String()
}

View file

@ -64,8 +64,8 @@ type statusMsgData struct {
NetworkId uint64
}
func (self *statusMsgData) String() string {
return fmt.Sprintf("Status: Version: %v, ID: %v, Addr: %v, Swap: %v, NetworkId: %v", self.Version, self.ID, self.Addr, self.Swap, self.NetworkId)
func (data *statusMsgData) String() string {
return fmt.Sprintf("Status: Version: %v, ID: %v, Addr: %v, Swap: %v, NetworkId: %v", data.Version, data.ID, data.Addr, data.Swap, data.NetworkId)
}
/*
@ -86,18 +86,18 @@ type storeRequestMsgData struct {
from *peer // [not serialised] protocol registers the requester
}
func (self storeRequestMsgData) String() string {
func (data storeRequestMsgData) String() string {
var from string
if self.from == nil {
from = "self"
if data.from == nil {
from = "data"
} else {
from = self.from.Addr().String()
from = data.from.Addr().String()
}
end := len(self.SData)
if len(self.SData) > 10 {
end := len(data.SData)
if len(data.SData) > 10 {
end = 10
}
return fmt.Sprintf("from: %v, Key: %v; ID: %v, requestTimeout: %v, storageTimeout: %v, SData %x", from, self.Key, self.Id, self.requestTimeout, self.storageTimeout, self.SData[:end])
return fmt.Sprintf("from: %v, Key: %v; ID: %v, requestTimeout: %v, storageTimeout: %v, SData %x", from, data.Key, data.Id, data.requestTimeout, data.storageTimeout, data.SData[:end])
}
/*
@ -118,7 +118,7 @@ prompting a peers response but not launching a search. Lookup requests are meant
to be used to bootstrap kademlia tables.
In the special case that the key is the zero value as well, the remote peer's
address is assumed (the message is to be handled as a self lookup request).
address is assumed (the message is to be handled as a data lookup request).
The response is a PeersMsg with the peers in the kademlia proximity bin
corresponding to the address.
*/
@ -133,40 +133,40 @@ type retrieveRequestMsgData struct {
from *peer //
}
func (self *retrieveRequestMsgData) String() string {
func (data *retrieveRequestMsgData) String() string {
var from string
if self.from == nil {
if data.from == nil {
from = "ourselves"
} else {
from = self.from.Addr().String()
from = data.from.Addr().String()
}
var target []byte
if len(self.Key) > 3 {
target = self.Key[:4]
if len(data.Key) > 3 {
target = data.Key[:4]
}
return fmt.Sprintf("from: %v, Key: %x; ID: %v, MaxSize: %v, MaxPeers: %d", from, target, self.Id, self.MaxSize, self.MaxPeers)
return fmt.Sprintf("from: %v, Key: %x; ID: %v, MaxSize: %v, MaxPeers: %d", from, target, data.Id, data.MaxSize, data.MaxPeers)
}
// lookups are encoded by missing request ID
func (self *retrieveRequestMsgData) isLookup() bool {
return self.Id == 0
func (data *retrieveRequestMsgData) isLookup() bool {
return data.Id == 0
}
// sets timeout fields
func (self *retrieveRequestMsgData) setTimeout(t *time.Time) {
self.timeout = t
func (data *retrieveRequestMsgData) setTimeout(t *time.Time) {
data.timeout = t
if t != nil {
self.Timeout = uint64(t.UnixNano())
data.Timeout = uint64(t.UnixNano())
} else {
self.Timeout = 0
data.Timeout = 0
}
}
func (self *retrieveRequestMsgData) getTimeout() (t *time.Time) {
if self.Timeout > 0 && self.timeout == nil {
timeout := time.Unix(int64(self.Timeout), 0)
func (data *retrieveRequestMsgData) getTimeout() (t *time.Time) {
if data.Timeout > 0 && data.timeout == nil {
timeout := time.Unix(int64(data.Timeout), 0)
t = &timeout
self.timeout = t
data.timeout = t
}
return
}
@ -180,10 +180,10 @@ type peerAddr struct {
}
// peerAddr pretty prints as enode
func (self *peerAddr) String() string {
func (addr *peerAddr) String() string {
var nodeid discover.NodeID
copy(nodeid[:], self.ID)
return discover.NewNode(nodeid, self.IP, 0, self.Port).String()
copy(nodeid[:], addr.ID)
return discover.NewNode(nodeid, addr.IP, 0, addr.Port).String()
}
/*
@ -199,7 +199,7 @@ the timeout or not.
NodeID serves as the owner of payment contracts and signer of proofs of transfer.
The Key is the target (if response to a retrieval request) or missing (zero value)
peers address (hash of NodeID) if retrieval request was a self lookup.
peers address (hash of NodeID) if retrieval request was a data lookup.
Peers message is requested by retrieval requests with a missing or zero value request ID
*/
@ -213,26 +213,26 @@ type peersMsgData struct {
}
// peers msg pretty printer
func (self *peersMsgData) String() string {
func (data *peersMsgData) String() string {
var from string
if self.from == nil {
if data.from == nil {
from = "ourselves"
} else {
from = self.from.Addr().String()
from = data.from.Addr().String()
}
var target []byte
if len(self.Key) > 3 {
target = self.Key[:4]
if len(data.Key) > 3 {
target = data.Key[:4]
}
return fmt.Sprintf("from: %v, Key: %x; ID: %v, Peers: %v", from, target, self.Id, self.Peers)
return fmt.Sprintf("from: %v, Key: %x; ID: %v, Peers: %v", from, target, data.Id, data.Peers)
}
func (self *peersMsgData) setTimeout(t *time.Time) {
self.timeout = t
func (data *peersMsgData) setTimeout(t *time.Time) {
data.timeout = t
if t != nil {
self.Timeout = uint64(t.UnixNano())
data.Timeout = uint64(t.UnixNano())
} else {
self.Timeout = 0
data.Timeout = 0
}
}
@ -248,8 +248,8 @@ type syncRequestMsgData struct {
SyncState *syncState `rlp:"nil"`
}
func (self *syncRequestMsgData) String() string {
return fmt.Sprintf("%v", self.SyncState)
func (data *syncRequestMsgData) String() string {
return fmt.Sprintf("%v", data.SyncState)
}
/*
@ -265,8 +265,8 @@ type deliveryRequestMsgData struct {
Deliver []*syncRequest
}
func (self *deliveryRequestMsgData) String() string {
return fmt.Sprintf("sync request for new chunks\ndelivery request for %v chunks", len(self.Deliver))
func (data *deliveryRequestMsgData) String() string {
return fmt.Sprintf("sync request for new chunks\ndelivery request for %v chunks", len(data.Deliver))
}
/*
@ -287,8 +287,8 @@ type unsyncedKeysMsgData struct {
State *syncState
}
func (self *unsyncedKeysMsgData) String() string {
return fmt.Sprintf("sync: keys of %d new chunks (state %v) => synced: %v", len(self.Unsynced), self.State, self.State.Synced)
func (data *unsyncedKeysMsgData) String() string {
return fmt.Sprintf("sync: keys of %d new chunks (state %v) => synced: %v", len(data.Unsynced), data.State, data.State.Synced)
}
/*
@ -303,6 +303,6 @@ type paymentMsgData struct {
Promise *chequebook.Cheque // payment with cheque
}
func (self *paymentMsgData) String() string {
return fmt.Sprintf("payment for %d units: %v", self.Units, self.Promise)
func (data *paymentMsgData) String() string {
return fmt.Sprintf("payment for %d units: %v", data.Units, data.Promise)
}

View file

@ -193,13 +193,13 @@ func run(requestDb *storage.LDBDatabase, depo StorageHandler, backend chequebook
// TODO: may need to implement protocol drop only? don't want to kick off the peer
// if they are useful for other protocols
func (self *bzz) Drop() {
self.peer.Disconnect(p2p.DiscSubprotocolError)
func (bzz *bzz) Drop() {
bzz.peer.Disconnect(p2p.DiscSubprotocolError)
}
// one cycle of the main forever loop that handles and dispatches incoming messages
func (self *bzz) handle() error {
msg, err := self.rw.ReadMsg()
func (bzz *bzz) handle() error {
msg, err := bzz.rw.ReadMsg()
log.Debug(fmt.Sprintf("<- %v", msg))
if err != nil {
return err
@ -232,7 +232,7 @@ func (self *bzz) handle() error {
self.lastActive = time.Now()
log.Trace(fmt.Sprintf("incoming store request: %s", req.String()))
// swap accounting is done within forwarding
self.storage.HandleStoreRequestMsg(&req, &peer{bzz: self})
bzz.storage.HandleStoreRequestMsg(&req, &peer{bzz: bzz})
case retrieveRequestMsg:
// retrieve Requests are dispatched to netStore
@ -241,7 +241,7 @@ func (self *bzz) handle() error {
if err := msg.Decode(&req); err != nil {
return fmt.Errorf("<- %v: %v", msg, err)
}
req.from = &peer{bzz: self}
req.from = &peer{bzz: bzz}
// if request is lookup and not to be delivered
if req.isLookup() {
log.Trace(fmt.Sprintf("self lookup for %v: responding with peers only...", req.from))
@ -249,10 +249,10 @@ func (self *bzz) handle() error {
return fmt.Errorf("protocol handler: req.Key == nil || req.Timeout == nil")
} else {
// swap accounting is done within netStore
self.storage.HandleRetrieveRequestMsg(&req, &peer{bzz: self})
bzz.storage.HandleRetrieveRequestMsg(&req, &peer{bzz: bzz})
}
// direct response with peers, TODO: sort this out
self.hive.peers(&req)
bzz.hive.peers(&req)
case peersMsg:
// response to lookups and immediate response to retrieve requests
@ -262,9 +262,9 @@ func (self *bzz) handle() error {
if err := msg.Decode(&req); err != nil {
return fmt.Errorf("<- %v: %v", msg, err)
}
req.from = &peer{bzz: self}
req.from = &peer{bzz: bzz}
log.Trace(fmt.Sprintf("<- peer addresses: %v", req))
self.hive.HandlePeersMsg(&req, &peer{bzz: self})
bzz.hive.HandlePeersMsg(&req, &peer{bzz: bzz})
case syncRequestMsg:
syncRequestMsgCounter.Inc(1)
@ -273,8 +273,8 @@ func (self *bzz) handle() error {
return fmt.Errorf("<- %v: %v", msg, err)
}
log.Debug(fmt.Sprintf("<- sync request: %v", req))
self.lastActive = time.Now()
self.sync(req.SyncState)
bzz.lastActive = time.Now()
bzz.sync(req.SyncState)
case unsyncedKeysMsg:
// coming from parent node offering
@ -284,8 +284,8 @@ func (self *bzz) handle() error {
return fmt.Errorf("<- %v: %v", msg, err)
}
log.Debug(fmt.Sprintf("<- unsynced keys : %s", req.String()))
err := self.storage.HandleUnsyncedKeysMsg(&req, &peer{bzz: self})
self.lastActive = time.Now()
err := bzz.storage.HandleUnsyncedKeysMsg(&req, &peer{bzz: bzz})
bzz.lastActive = time.Now()
if err != nil {
return fmt.Errorf("<- %v: %v", msg, err)
}
@ -299,8 +299,8 @@ func (self *bzz) handle() error {
return fmt.Errorf("<-msg %v: %v", msg, err)
}
log.Debug(fmt.Sprintf("<- delivery request: %s", req.String()))
err := self.storage.HandleDeliveryRequestMsg(&req, &peer{bzz: self})
self.lastActive = time.Now()
err := bzz.storage.HandleDeliveryRequestMsg(&req, &peer{bzz: bzz})
bzz.lastActive = time.Now()
if err != nil {
return fmt.Errorf("<- %v: %v", msg, err)
}
@ -308,13 +308,13 @@ func (self *bzz) handle() error {
case paymentMsg:
// swap protocol message for payment, Units paid for, Cheque paid with
paymentMsgCounter.Inc(1)
if self.swapEnabled {
if bzz.swapEnabled {
var req paymentMsgData
if err := msg.Decode(&req); err != nil {
return fmt.Errorf("<- %v: %v", msg, err)
}
log.Debug(fmt.Sprintf("<- payment: %s", req.String()))
self.swap.Receive(int(req.Units), req.Promise)
bzz.swap.Receive(int(req.Units), req.Promise)
}
default:
@ -325,27 +325,27 @@ func (self *bzz) handle() error {
return nil
}
func (self *bzz) handleStatus() (err error) {
func (bzz *bzz) handleStatus() (err error) {
handshake := &statusMsgData{
Version: uint64(Version),
ID: "honey",
Addr: self.selfAddr(),
NetworkId: self.NetworkId,
Addr: bzz.selfAddr(),
NetworkId: bzz.NetworkId,
Swap: &bzzswap.SwapProfile{
Profile: self.swapParams.Profile,
PayProfile: self.swapParams.PayProfile,
Profile: bzz.swapParams.Profile,
PayProfile: bzz.swapParams.PayProfile,
},
}
err = p2p.Send(self.rw, statusMsg, handshake)
err = p2p.Send(bzz.rw, statusMsg, handshake)
if err != nil {
return err
}
// read and handle remote status
var msg p2p.Msg
msg, err = self.rw.ReadMsg()
msg, err = bzz.rw.ReadMsg()
if err != nil {
return err
}
@ -365,52 +365,52 @@ func (self *bzz) handleStatus() (err error) {
return fmt.Errorf("<- %v: %v", msg, err)
}
if status.NetworkId != self.NetworkId {
return fmt.Errorf("network id mismatch: %d (!= %d)", status.NetworkId, self.NetworkId)
if status.NetworkId != bzz.NetworkId {
return fmt.Errorf("network id mismatch: %d (!= %d)", status.NetworkId, bzz.NetworkId)
}
if Version != status.Version {
return fmt.Errorf("protocol version mismatch: %d (!= %d)", status.Version, Version)
}
self.remoteAddr = self.peerAddr(status.Addr)
log.Trace(fmt.Sprintf("self: advertised IP: %v, peer advertised: %v, local address: %v\npeer: advertised IP: %v, remote address: %v\n", self.selfAddr(), self.remoteAddr, self.peer.LocalAddr(), status.Addr.IP, self.peer.RemoteAddr()))
bzz.remoteAddr = bzz.peerAddr(status.Addr)
log.Trace(fmt.Sprintf("bzz: advertised IP: %v, peer advertised: %v, local address: %v\npeer: advertised IP: %v, remote address: %v\n", bzz.selfAddr(), bzz.remoteAddr, bzz.peer.LocalAddr(), status.Addr.IP, bzz.peer.RemoteAddr()))
if self.swapEnabled {
if bzz.swapEnabled {
// set remote profile for accounting
self.swap, err = bzzswap.NewSwap(self.swapParams, status.Swap, self.backend, self)
bzz.swap, err = bzzswap.NewSwap(bzz.swapParams, status.Swap, bzz.backend, bzz)
if err != nil {
return err
}
}
log.Info(fmt.Sprintf("Peer %08x is capable (%d/%d)", self.remoteAddr.Addr[:4], status.Version, status.NetworkId))
err = self.hive.addPeer(&peer{bzz: self})
log.Info(fmt.Sprintf("Peer %08x is capable (%d/%d)", bzz.remoteAddr.Addr[:4], status.Version, status.NetworkId))
err = bzz.hive.addPeer(&peer{bzz: bzz})
if err != nil {
return err
}
// hive sets syncstate so sync should start after node added
log.Info(fmt.Sprintf("syncronisation request sent with %v", self.syncState))
self.syncRequest()
log.Info(fmt.Sprintf("syncronisation request sent with %v", bzz.syncState))
bzz.syncRequest()
return nil
}
func (self *bzz) sync(state *syncState) error {
func (bzz *bzz) sync(state *syncState) error {
// syncer setup
if self.syncer != nil {
if bzz.syncer != nil {
return errors.New("sync request can only be sent once")
}
cnt := self.dbAccess.counter()
remoteaddr := self.remoteAddr.Addr
start, stop := self.hive.kad.KeyRange(remoteaddr)
cnt := bzz.dbAccess.counter()
remoteaddr := bzz.remoteAddr.Addr
start, stop := bzz.hive.kad.KeyRange(remoteaddr)
// an explicitly received nil syncstate disables syncronisation
if state == nil {
self.syncEnabled = false
log.Warn(fmt.Sprintf("syncronisation disabled for peer %v", self))
bzz.syncEnabled = false
log.Warn(fmt.Sprintf("syncronisation disabled for peer %v", bzz))
state = &syncState{DbSyncState: &storage.DbSyncState{}, Synced: true}
} else {
state.synced = make(chan bool)
@ -419,31 +419,31 @@ func (self *bzz) sync(state *syncState) error {
state.Start = storage.Key(start[:])
state.Stop = storage.Key(stop[:])
}
log.Debug(fmt.Sprintf("syncronisation requested by peer %v at state %v", self, state))
log.Debug(fmt.Sprintf("syncronisation requested by peer %v at state %v", bzz, state))
}
var err error
self.syncer, err = newSyncer(
self.requestDb,
bzz.syncer, err = newSyncer(
bzz.requestDb,
storage.Key(remoteaddr[:]),
self.dbAccess,
self.unsyncedKeys, self.store,
self.syncParams, state, func() bool { return self.syncEnabled },
bzz.dbAccess,
bzz.unsyncedKeys, bzz.store,
bzz.syncParams, state, func() bool { return bzz.syncEnabled },
)
if err != nil {
return nil
}
log.Trace(fmt.Sprintf("syncer set for peer %v", self))
log.Trace(fmt.Sprintf("syncer set for peer %v", bzz))
return nil
}
func (self *bzz) String() string {
return self.remoteAddr.String()
func (bzz *bzz) String() string {
return bzz.remoteAddr.String()
}
// repair reported address if IP missing
func (self *bzz) peerAddr(base *peerAddr) *peerAddr {
func (bzz *bzz) peerAddr(base *peerAddr) *peerAddr {
if base.IP.IsUnspecified() {
host, _, _ := net.SplitHostPort(self.peer.RemoteAddr().String())
host, _, _ := net.SplitHostPort(bzz.peer.RemoteAddr().String())
base.IP = net.ParseIP(host)
}
return base
@ -452,12 +452,12 @@ func (self *bzz) peerAddr(base *peerAddr) *peerAddr {
// returns self advertised node connection info (listening address w enodes)
// IP will get repaired on the other end if missing
// or resolved via ID by discovery at dialout
func (self *bzz) selfAddr() *peerAddr {
id := self.hive.id
host, port, _ := net.SplitHostPort(self.hive.listenAddr())
func (bzz *bzz) selfAddr() *peerAddr {
id := bzz.hive.id
host, port, _ := net.SplitHostPort(bzz.hive.listenAddr())
intport, _ := strconv.Atoi(port)
addr := &peerAddr{
Addr: self.hive.addr,
Addr: bzz.hive.addr,
ID: id[:],
IP: net.ParseIP(host),
Port: uint16(intport),
@ -467,68 +467,68 @@ func (self *bzz) selfAddr() *peerAddr {
// outgoing messages
// send retrieveRequestMsg
func (self *bzz) retrieve(req *retrieveRequestMsgData) error {
return self.send(retrieveRequestMsg, req)
func (bzz *bzz) retrieve(req *retrieveRequestMsgData) error {
return bzz.send(retrieveRequestMsg, req)
}
// send storeRequestMsg
func (self *bzz) store(req *storeRequestMsgData) error {
return self.send(storeRequestMsg, req)
func (bzz *bzz) store(req *storeRequestMsgData) error {
return bzz.send(storeRequestMsg, req)
}
func (self *bzz) syncRequest() error {
func (bzz *bzz) syncRequest() error {
req := &syncRequestMsgData{}
if self.hive.syncEnabled {
log.Debug(fmt.Sprintf("syncronisation request to peer %v at state %v", self, self.syncState))
req.SyncState = self.syncState
if bzz.hive.syncEnabled {
log.Debug(fmt.Sprintf("syncronisation request to peer %v at state %v", bzz, bzz.syncState))
req.SyncState = bzz.syncState
}
if self.syncState == nil {
log.Warn(fmt.Sprintf("syncronisation disabled for peer %v at state %v", self, self.syncState))
if bzz.syncState == nil {
log.Warn(fmt.Sprintf("syncronisation disabled for peer %v at state %v", bzz, bzz.syncState))
}
return self.send(syncRequestMsg, req)
return bzz.send(syncRequestMsg, req)
}
// queue storeRequestMsg in request db
func (self *bzz) deliveryRequest(reqs []*syncRequest) error {
func (bzz *bzz) deliveryRequest(reqs []*syncRequest) error {
req := &deliveryRequestMsgData{
Deliver: reqs,
}
return self.send(deliveryRequestMsg, req)
return bzz.send(deliveryRequestMsg, req)
}
// batch of syncRequests to send off
func (self *bzz) unsyncedKeys(reqs []*syncRequest, state *syncState) error {
func (bzz *bzz) unsyncedKeys(reqs []*syncRequest, state *syncState) error {
req := &unsyncedKeysMsgData{
Unsynced: reqs,
State: state,
}
return self.send(unsyncedKeysMsg, req)
return bzz.send(unsyncedKeysMsg, req)
}
// send paymentMsg
func (self *bzz) Pay(units int, promise swap.Promise) {
func (bzz *bzz) Pay(units int, promise swap.Promise) {
req := &paymentMsgData{uint(units), promise.(*chequebook.Cheque)}
self.payment(req)
bzz.payment(req)
}
// send paymentMsg
func (self *bzz) payment(req *paymentMsgData) error {
return self.send(paymentMsg, req)
func (bzz *bzz) payment(req *paymentMsgData) error {
return bzz.send(paymentMsg, req)
}
// sends peersMsg
func (self *bzz) peers(req *peersMsgData) error {
return self.send(peersMsg, req)
func (bzz *bzz) peers(req *peersMsgData) error {
return bzz.send(peersMsg, req)
}
func (self *bzz) send(msg uint64, data interface{}) error {
if self.hive.blockWrite {
func (bzz *bzz) send(msg uint64, data interface{}) error {
if bzz.hive.blockWrite {
return fmt.Errorf("network write blocked")
}
log.Trace(fmt.Sprintf("-> %v: %v (%T) to %v", msg, data, data, self))
err := p2p.Send(self.rw, msg, data)
log.Trace(fmt.Sprintf("-> %v: %v (%T) to %v", msg, data, data, bzz))
err := p2p.Send(bzz.rw, msg, data)
if err != nil {
self.Drop()
bzz.Drop()
}
return err
}

View file

@ -108,7 +108,7 @@ It is automatically started when syncdb is initialised.
It saves the buffer to db upon receiving quit signal. syncDb#stop()
*/
func (self *syncDb) bufferRead(deliver func(interface{}, chan bool) bool) {
func (db *syncDb) bufferRead(deliver func(interface{}, chan bool) bool) {
var buffer, db chan interface{} // channels representing the two read modes
var more bool
var req interface{}
@ -116,18 +116,18 @@ func (self *syncDb) bufferRead(deliver func(interface{}, chan bool) bool) {
var inBatch, inDb int
batch := new(leveldb.Batch)
var dbSize chan int
quit := self.quit
quit := db.quit
counterValue := make([]byte, 8)
// counter is used for keeping the items in order, persisted to db
// start counter where db was at, 0 if not found
data, err := self.db.Get(self.counterKey)
data, err := db.db.Get(db.counterKey)
var counter uint64
if err == nil {
counter = binary.BigEndian.Uint64(data)
log.Trace(fmt.Sprintf("syncDb[%v/%v] - counter read from db at %v", self.key.Log(), self.priority, counter))
log.Trace(fmt.Sprintf("syncDb[%v/%v] - counter read from db at %v", db.key.Log(), db.priority, counter))
} else {
log.Trace(fmt.Sprintf("syncDb[%v/%v] - counter starts at %v", self.key.Log(), self.priority, counter))
log.Trace(fmt.Sprintf("syncDb[%v/%v] - counter starts at %v", db.key.Log(), db.priority, counter))
}
LOOP:
@ -139,26 +139,26 @@ LOOP:
// deliver request : this is blocking on network write so
// it is passed the quit channel as argument, so that it returns
// if syncdb is stopped. In this case we need to save the item to the db
more = deliver(req, self.quit)
more = deliver(req, db.quit)
if !more {
log.Debug(fmt.Sprintf("syncDb[%v/%v] quit: switching to db. session tally (db/total): %v/%v", self.key.Log(), self.priority, self.dbTotal, self.total))
log.Debug(fmt.Sprintf("syncDb[%v/%v] quit: switching to db. session tally (db/total): %v/%v", db.key.Log(), db.priority, db.dbTotal, db.total))
// received quit signal, save request currently waiting delivery
// by switching to db mode and closing the buffer
buffer = nil
db = self.buffer
db = db.buffer
close(db)
quit = nil // needs to block the quit case in select
break // break from select, this item will be written to the db
}
self.total++
log.Trace(fmt.Sprintf("syncDb[%v/%v] deliver (db/total): %v/%v", self.key.Log(), self.priority, self.dbTotal, self.total))
db.total++
log.Trace(fmt.Sprintf("syncDb[%v/%v] deliver (db/total): %v/%v", db.key.Log(), db.priority, db.dbTotal, db.total))
// by the time deliver returns, there were new writes to the buffer
// if buffer contention is detected, switch to db mode which drains
// the buffer so no process will block on pushing store requests
if len(buffer) == cap(buffer) {
log.Debug(fmt.Sprintf("syncDb[%v/%v] buffer full %v: switching to db. session tally (db/total): %v/%v", self.key.Log(), self.priority, cap(buffer), self.dbTotal, self.total))
log.Debug(fmt.Sprintf("syncDb[%v/%v] buffer full %v: switching to db. session tally (db/total): %v/%v", db.key.Log(), db.priority, cap(buffer), db.dbTotal, db.total))
buffer = nil
db = self.buffer
db = db.buffer
}
continue LOOP
@ -167,30 +167,30 @@ LOOP:
if !more {
// only if quit is called, saved all the buffer
binary.BigEndian.PutUint64(counterValue, counter)
batch.Put(self.counterKey, counterValue) // persist counter in batch
self.writeSyncBatch(batch) // save batch
log.Trace(fmt.Sprintf("syncDb[%v/%v] quitting: save current batch to db", self.key.Log(), self.priority))
batch.Put(db.counterKey, counterValue) // persist counter in batch
db.writeSyncBatch(batch) // save batch
log.Trace(fmt.Sprintf("syncDb[%v/%v] quitting: save current batch to db", db.key.Log(), db.priority))
break LOOP
}
self.dbTotal++
self.total++
db.dbTotal++
db.total++
// otherwise break after select
case dbSize = <-self.batch:
case dbSize = <-db.batch:
// explicit request for batch
if inBatch == 0 && quit != nil {
// there was no writes since the last batch so db depleted
// switch to buffer mode
log.Debug(fmt.Sprintf("syncDb[%v/%v] empty db: switching to buffer", self.key.Log(), self.priority))
log.Debug(fmt.Sprintf("syncDb[%v/%v] empty db: switching to buffer", db.key.Log(), db.priority))
db = nil
buffer = self.buffer
buffer = db.buffer
dbSize <- 0 // indicates to 'caller' that batch has been written
inDb = 0
continue LOOP
}
binary.BigEndian.PutUint64(counterValue, counter)
batch.Put(self.counterKey, counterValue)
log.Debug(fmt.Sprintf("syncDb[%v/%v] write batch %v/%v - %x - %x", self.key.Log(), self.priority, inBatch, counter, self.counterKey, counterValue))
batch = self.writeSyncBatch(batch)
batch.Put(db.counterKey, counterValue)
log.Debug(fmt.Sprintf("syncDb[%v/%v] write batch %v/%v - %x - %x", db.key.Log(), db.priority, inBatch, counter, db.counterKey, counterValue))
batch = db.writeSyncBatch(batch)
dbSize <- inBatch // indicates to 'caller' that batch has been written
inBatch = 0
continue LOOP
@ -198,45 +198,45 @@ LOOP:
// closing syncDb#quit channel is used to signal to all goroutines to quit
case <-quit:
// need to save backlog, so switch to db mode
db = self.buffer
db = db.buffer
buffer = nil
quit = nil
log.Trace(fmt.Sprintf("syncDb[%v/%v] quitting: save buffer to db", self.key.Log(), self.priority))
log.Trace(fmt.Sprintf("syncDb[%v/%v] quitting: save buffer to db", db.key.Log(), db.priority))
close(db)
continue LOOP
}
// only get here if we put req into db
entry, err = self.newSyncDbEntry(req, counter)
entry, err = db.newSyncDbEntry(req, counter)
if err != nil {
log.Warn(fmt.Sprintf("syncDb[%v/%v] saving request %v (#%v/%v) failed: %v", self.key.Log(), self.priority, req, inBatch, inDb, err))
log.Warn(fmt.Sprintf("syncDb[%v/%v] saving request %v (#%v/%v) failed: %v", db.key.Log(), db.priority, req, inBatch, inDb, err))
continue LOOP
}
batch.Put(entry.key, entry.val)
log.Trace(fmt.Sprintf("syncDb[%v/%v] to batch %v '%v' (#%v/%v/%v)", self.key.Log(), self.priority, req, entry, inBatch, inDb, counter))
log.Trace(fmt.Sprintf("syncDb[%v/%v] to batch %v '%v' (#%v/%v/%v)", db.key.Log(), db.priority, req, entry, inBatch, inDb, counter))
// if just switched to db mode and not quitting, then launch dbRead
// in a parallel go routine to send deliveries from db
if inDb == 0 && quit != nil {
log.Trace(fmt.Sprintf("syncDb[%v/%v] start dbRead", self.key.Log(), self.priority))
go self.dbRead(true, counter, deliver)
log.Trace(fmt.Sprintf("syncDb[%v/%v] start dbRead", db.key.Log(), db.priority))
go db.dbRead(true, counter, deliver)
}
inDb++
inBatch++
counter++
// need to save the batch if it gets too large (== dbBatchSize)
if inBatch%int(self.dbBatchSize) == 0 {
batch = self.writeSyncBatch(batch)
if inBatch%int(db.dbBatchSize) == 0 {
batch = db.writeSyncBatch(batch)
}
}
log.Info(fmt.Sprintf("syncDb[%v:%v]: saved %v keys (saved counter at %v)", self.key.Log(), self.priority, inBatch, counter))
close(self.done)
log.Info(fmt.Sprintf("syncDb[%v:%v]: saved %v keys (saved counter at %v)", db.key.Log(), db.priority, inBatch, counter))
close(db.done)
}
// writes the batch to the db and returns a new batch object
func (self *syncDb) writeSyncBatch(batch *leveldb.Batch) *leveldb.Batch {
err := self.db.Write(batch)
func (db *syncDb) writeSyncBatch(batch *leveldb.Batch) *leveldb.Batch {
err := db.db.Write(batch)
if err != nil {
log.Warn(fmt.Sprintf("syncDb[%v/%v] saving batch to db failed: %v", self.key.Log(), self.priority, err))
log.Warn(fmt.Sprintf("syncDb[%v/%v] saving batch to db failed: %v", db.key.Log(), db.priority, err))
return batch
}
return new(leveldb.Batch)
@ -247,8 +247,8 @@ type syncDbEntry struct {
key, val []byte
}
func (self syncDbEntry) String() string {
return fmt.Sprintf("key: %x, value: %x", self.key, self.val)
func (entry syncDbEntry) String() string {
return fmt.Sprintf("key: %x, value: %x", entry.key, entry.val)
}
/*
@ -272,9 +272,9 @@ dbRead needs a boolean to indicate if on first round all the historical
record is synced. Second argument to indicate current db counter
The third is the function to apply
*/
func (self *syncDb) dbRead(useBatches bool, counter uint64, fun func(interface{}, chan bool) bool) {
func (db *syncDb) dbRead(useBatches bool, counter uint64, fun func(interface{}, chan bool) bool) {
key := make([]byte, 42)
copy(key, self.start)
copy(key, db.start)
binary.BigEndian.PutUint64(key[34:], counter)
var batches, n, cnt, total int
var more bool
@ -290,8 +290,8 @@ func (self *syncDb) dbRead(useBatches bool, counter uint64, fun func(interface{}
// so that loop is not blocking while delivering
// only relevant if cnt is large
select {
case self.batch <- batchSizes:
case <-self.quit:
case db.batch <- batchSizes:
case <-db.quit:
return
}
// wait for the write to finish and get the item count in the next batch
@ -302,31 +302,31 @@ func (self *syncDb) dbRead(useBatches bool, counter uint64, fun func(interface{}
return
}
}
it = self.db.NewIterator()
it = db.db.NewIterator()
it.Seek(key)
if !it.Valid() {
copy(key, self.start)
copy(key, db.start)
useBatches = true
continue
}
del = new(leveldb.Batch)
log.Trace(fmt.Sprintf("syncDb[%v/%v]: new iterator: %x (batch %v, count %v)", self.key.Log(), self.priority, key, batches, cnt))
log.Trace(fmt.Sprintf("syncDb[%v/%v]: new iterator: %x (batch %v, count %v)", db.key.Log(), db.priority, key, batches, cnt))
for n = 0; !useBatches || n < cnt; it.Next() {
copy(key, it.Key())
if len(key) == 0 || key[0] != 0 {
copy(key, self.start)
copy(key, db.start)
useBatches = true
break
}
val := make([]byte, 40)
copy(val, it.Value())
entry = &syncDbEntry{key, val}
// log.Trace(fmt.Sprintf("syncDb[%v/%v] - %v, batches: %v, total: %v, session total from db: %v/%v", self.key.Log(), self.priority, self.key.Log(), batches, total, self.dbTotal, self.total))
more = fun(entry, self.quit)
// log.Trace(fmt.Sprintf("syncDb[%v/%v] - %v, batches: %v, total: %v, session total from db: %v/%v", db.key.Log(), db.priority, db.key.Log(), batches, total, db.dbTotal, db.total))
more = fun(entry, db.quit)
if !more {
// quit received when waiting to deliver entry, the entry will not be deleted
log.Trace(fmt.Sprintf("syncDb[%v/%v] batch %v quit after %v/%v items", self.key.Log(), self.priority, batches, n, cnt))
log.Trace(fmt.Sprintf("syncDb[%v/%v] batch %v quit after %v/%v items", db.key.Log(), db.priority, batches, n, cnt))
break
}
// since subsequent batches of the same db session are indexed incrementally
@ -336,22 +336,22 @@ func (self *syncDb) dbRead(useBatches bool, counter uint64, fun func(interface{}
n++
total++
}
log.Debug(fmt.Sprintf("syncDb[%v/%v] - db session closed, batches: %v, total: %v, session total from db: %v/%v", self.key.Log(), self.priority, batches, total, self.dbTotal, self.total))
self.db.Write(del) // this could be async called only when db is idle
log.Debug(fmt.Sprintf("syncDb[%v/%v] - db session closed, batches: %v, total: %v, session total from db: %v/%v", db.key.Log(), db.priority, batches, total, db.dbTotal, db.total))
db.db.Write(del) // this could be async called only when db is idle
it.Release()
}
}
//
func (self *syncDb) stop() {
close(self.quit)
<-self.done
func (db *syncDb) stop() {
close(db.quit)
<-db.done
}
// calculate a dbkey for the request, for the db to work
// see syncdb for db key structure
// polimorphic: accepted types, see syncer#addRequest
func (self *syncDb) newSyncDbEntry(req interface{}, counter uint64) (entry *syncDbEntry, err error) {
func (db *syncDb) newSyncDbEntry(req interface{}, counter uint64) (entry *syncDbEntry, err error) {
var key storage.Key
var chunk *storage.Chunk
var id uint64
@ -377,7 +377,7 @@ func (self *syncDb) newSyncDbEntry(req interface{}, counter uint64) (entry *sync
dbval := make([]byte, 40)
// encode key
copy(dbkey[:], self.start[:34]) // db peer
copy(dbkey[:], db.start[:34]) // db peer
binary.BigEndian.PutUint64(dbkey[34:], counter)
// encode value
copy(dbval, key[:])

View file

@ -71,25 +71,25 @@ func newTestSyncDb(priority, bufferSize, batchSize int, dbdir string, t *testing
}
func (self *testSyncDb) close() {
self.db.Close()
os.RemoveAll(self.dbdir)
func (db *testSyncDb) close() {
db.db.Close()
os.RemoveAll(db.dbdir)
}
func (self *testSyncDb) push(n int) {
func (db *testSyncDb) push(n int) {
for i := 0; i < n; i++ {
self.buffer <- storage.Key(crypto.Keccak256([]byte{byte(self.c)}))
self.sent = append(self.sent, self.c)
self.c++
db.buffer <- storage.Key(crypto.Keccak256([]byte{byte(db.c)}))
db.sent = append(db.sent, db.c)
db.c++
}
log.Debug(fmt.Sprintf("pushed %v requests", n))
}
func (self *testSyncDb) draindb() {
it := self.db.NewIterator()
func (db *testSyncDb) draindb() {
it := db.db.NewIterator()
defer it.Release()
for {
it.Seek(self.start)
it.Seek(db.start)
if !it.Valid() {
return
}
@ -98,44 +98,44 @@ func (self *testSyncDb) draindb() {
return
}
it.Release()
it = self.db.NewIterator()
it = db.db.NewIterator()
}
}
func (self *testSyncDb) deliver(req interface{}, quit chan bool) bool {
func (db *testSyncDb) deliver(req interface{}, quit chan bool) bool {
_, db := req.(*syncDbEntry)
key, _, _, _, err := parseRequest(req)
if err != nil {
self.t.Fatalf("unexpected error of key %v: %v", key, err)
db.t.Fatalf("unexpected error of key %v: %v", key, err)
}
self.delivered = append(self.delivered, key)
db.delivered = append(db.delivered, key)
select {
case self.fromDb <- db:
case db.fromDb <- db:
return true
case <-quit:
return false
}
}
func (self *testSyncDb) expect(n int, db bool) {
func (db *testSyncDb) expect(n int, db bool) {
var ok bool
// for n items
for i := 0; i < n; i++ {
ok = <-self.fromDb
if self.at+1 > len(self.delivered) {
self.t.Fatalf("expected %v, got %v", self.at+1, len(self.delivered))
ok = <-db.fromDb
if db.at+1 > len(db.delivered) {
db.t.Fatalf("expected %v, got %v", db.at+1, len(db.delivered))
}
if len(self.sent) > self.at && !bytes.Equal(crypto.Keccak256([]byte{byte(self.sent[self.at])}), self.delivered[self.at]) {
self.t.Fatalf("expected delivery %v/%v/%v to be hash of %v, from db: %v = %v", i, n, self.at, self.sent[self.at], ok, db)
log.Debug(fmt.Sprintf("%v/%v/%v to be hash of %v, from db: %v = %v", i, n, self.at, self.sent[self.at], ok, db))
if len(db.sent) > db.at && !bytes.Equal(crypto.Keccak256([]byte{byte(db.sent[db.at])}), db.delivered[db.at]) {
db.t.Fatalf("expected delivery %v/%v/%v to be hash of %v, from db: %v = %v", i, n, db.at, db.sent[db.at], ok, db)
log.Debug(fmt.Sprintf("%v/%v/%v to be hash of %v, from db: %v = %v", i, n, db.at, db.sent[db.at], ok, db))
}
if !ok && db {
self.t.Fatalf("expected delivery %v/%v/%v from db", i, n, self.at)
db.t.Fatalf("expected delivery %v/%v/%v from db", i, n, db.at)
}
if ok && !db {
self.t.Fatalf("expected delivery %v/%v/%v from cache", i, n, self.at)
db.t.Fatalf("expected delivery %v/%v/%v from cache", i, n, db.at)
}
self.at++
db.at++
}
}

View file

@ -77,13 +77,13 @@ func NewDbAccess(loc *storage.LocalStore) *DbAccess {
}
// to obtain the chunks from key or request db entry only
func (self *DbAccess) get(key storage.Key) (*storage.Chunk, error) {
return self.loc.Get(key)
func (dba *DbAccess) get(key storage.Key) (*storage.Chunk, error) {
return dba.loc.Get(key)
}
// current storage counter of chunk db
func (self *DbAccess) counter() uint64 {
return self.db.Counter()
func (dba *DbAccess) counter() uint64 {
return dba.db.Counter()
}
// implemented by dbStoreSyncIterator
@ -92,30 +92,29 @@ type keyIterator interface {
}
// generator function for iteration by address range and storage counter
func (self *DbAccess) iterator(s *syncState) keyIterator {
it, err := self.db.NewSyncIterator(*(s.DbSyncState))
func (dba *DbAccess) iterator(s *syncState) keyIterator {
it, err := dba.db.NewSyncIterator(*(s.DbSyncState))
if err != nil {
return nil
}
return keyIterator(it)
}
func (self syncState) String() string {
if self.Synced {
func (state syncState) String() string {
if state.Synced {
return fmt.Sprintf(
"session started at: %v, last seen at: %v, latest key: %v",
self.SessionAt, self.LastSeenAt,
self.Latest.Log(),
)
} else {
return fmt.Sprintf(
"address: %v-%v, index: %v-%v, session started at: %v, last seen at: %v, latest key: %v",
self.Start.Log(), self.Stop.Log(),
self.First, self.Last,
self.SessionAt, self.LastSeenAt,
self.Latest.Log(),
state.SessionAt, state.LastSeenAt,
state.Latest.Log(),
)
}
return fmt.Sprintf(
"address: %v-%v, index: %v-%v, session started at: %v, last seen at: %v, latest key: %v",
state.Start.Log(), state.Stop.Log(),
state.First, state.Last,
state.SessionAt, state.LastSeenAt,
state.Latest.Log(),
)
}
// syncer parameters (global, not peer specific)
@ -145,8 +144,8 @@ func NewDefaultSyncParams() *SyncParams {
//this can only finally be set after all config options (file, cmd line, env vars)
//have been evaluated
func (self *SyncParams) Init(path string) {
self.RequestDbPath = filepath.Join(path, "requests")
func (params *SyncParams) Init(path string) {
params.RequestDbPath = filepath.Join(path, "requests")
}
// syncer is the agent that manages content distribution/storage replication/chunk storeRequest forwarding
@ -266,21 +265,21 @@ func decodeSync(meta *json.RawMessage) (*syncState, error) {
sync is called from the syncer constructor and is not supposed to be used externally
*/
func (self *syncer) sync() {
state := self.state
func (sync *syncer) sync() {
state := sync.state
// sync finished
defer close(self.syncStates)
defer close(sync.syncStates)
// 0. first replay stale requests from request db
if state.SessionAt == 0 {
log.Debug(fmt.Sprintf("syncer[%v]: nothing to sync", self.key.Log()))
log.Debug(fmt.Sprintf("syncer[%v]: nothing to sync", sync.key.Log()))
return
}
log.Debug(fmt.Sprintf("syncer[%v]: start replaying stale requests from request db", self.key.Log()))
log.Debug(fmt.Sprintf("syncer[%v]: start replaying stale requests from request db", sync.key.Log()))
for p := priorities - 1; p >= 0; p-- {
self.queues[p].dbRead(false, 0, self.replay())
sync.queues[p].dbRead(false, 0, sync.replay())
}
log.Debug(fmt.Sprintf("syncer[%v]: done replaying stale requests from request db", self.key.Log()))
log.Debug(fmt.Sprintf("syncer[%v]: done replaying stale requests from request db", sync.key.Log()))
// unless peer is synced sync unfinished history beginning on
if !state.Synced {
@ -289,9 +288,9 @@ func (self *syncer) sync() {
if !storage.IsZeroKey(state.Latest) {
// 1. there is unfinished earlier sync
state.Start = state.Latest
log.Debug(fmt.Sprintf("syncer[%v]: start syncronising backlog (unfinished sync: %v)", self.key.Log(), state))
log.Debug(fmt.Sprintf("syncer[%v]: start syncronising backlog (unfinished sync: %v)", sync.key.Log(), state))
// blocks while the entire history upto state is synced
self.syncState(state)
sync.syncState(state)
if state.Last < state.SessionAt {
state.First = state.Last + 1
}
@ -301,8 +300,8 @@ func (self *syncer) sync() {
// 2. sync up to last disconnect1
if state.First < state.LastSeenAt {
state.Last = state.LastSeenAt
log.Debug(fmt.Sprintf("syncer[%v]: start syncronising history upto last disconnect at %v: %v", self.key.Log(), state.LastSeenAt, state))
self.syncState(state)
log.Debug(fmt.Sprintf("syncer[%v]: start syncronising history upto last disconnect at %v: %v", sync.key.Log(), state.LastSeenAt, state))
sync.syncState(state)
state.First = state.LastSeenAt
}
state.Latest = storage.ZeroKey
@ -316,28 +315,28 @@ func (self *syncer) sync() {
// if there have been new chunks since last session
if state.LastSeenAt < state.SessionAt {
state.Last = state.SessionAt
log.Debug(fmt.Sprintf("syncer[%v]: start syncronising history since last disconnect at %v up until session start at %v: %v", self.key.Log(), state.LastSeenAt, state.SessionAt, state))
log.Debug(fmt.Sprintf("syncer[%v]: start syncronising history since last disconnect at %v up until session start at %v: %v", sync.key.Log(), state.LastSeenAt, state.SessionAt, state))
// blocks until state syncing is finished
self.syncState(state)
sync.syncState(state)
}
log.Info(fmt.Sprintf("syncer[%v]: syncing all history complete", self.key.Log()))
log.Info(fmt.Sprintf("syncer[%v]: syncing all history complete", sync.key.Log()))
}
// wait till syncronised block uptil state is synced
func (self *syncer) syncState(state *syncState) {
self.syncStates <- state
func (sync *syncer) syncState(state *syncState) {
sync.syncStates <- state
select {
case <-state.synced:
case <-self.quit:
case <-sync.quit:
}
}
// stop quits both request processor and saves the request cache to disk
func (self *syncer) stop() {
close(self.quit)
log.Trace(fmt.Sprintf("syncer[%v]: stop and save sync request db backlog", self.key.Log()))
for _, db := range self.queues {
func (sync *syncer) stop() {
close(sync.quit)
log.Trace(fmt.Sprintf("syncer[%v]: stop and save sync request db backlog", sync.key.Log()))
for _, db := range sync.queues {
db.stop()
}
}
@ -348,11 +347,11 @@ type syncRequest struct {
Priority uint
}
func (self *syncRequest) String() string {
return fmt.Sprintf("<Key: %v, Priority: %v>", self.Key.Log(), self.Priority)
func (req *syncRequest) String() string {
return fmt.Sprintf("<Key: %v, Priority: %v>", req.Key.Log(), req.Priority)
}
func (self *syncer) newSyncRequest(req interface{}, p int) (*syncRequest, error) {
func (sync *syncer) newSyncRequest(req interface{}, p int) (*syncRequest, error) {
key, _, _, _, err := parseRequest(req)
// TODO: if req has chunk, it should be put in a cache
// create
@ -366,11 +365,11 @@ func (self *syncer) newSyncRequest(req interface{}, p int) (*syncRequest, error)
// * read is on demand, blocking unless history channel is read
// * accepts sync requests (syncStates) to create new db iterator
// * closes the channel one iteration finishes
func (self *syncer) syncHistory(state *syncState) chan interface{} {
func (sync *syncer) syncHistory(state *syncState) chan interface{} {
var n uint
history := make(chan interface{})
log.Debug(fmt.Sprintf("syncer[%v]: syncing history between %v - %v for chunk addresses %v - %v", self.key.Log(), state.First, state.Last, state.Start, state.Stop))
it := self.dbAccess.iterator(state)
log.Debug(fmt.Sprintf("syncer[%v]: syncing history between %v - %v for chunk addresses %v - %v", sync.key.Log(), state.First, state.Last, state.Start, state.Stop))
it := sync.dbAccess.iterator(state)
if it != nil {
go func() {
// signal end of the iteration ended
@ -385,22 +384,22 @@ func (self *syncer) syncHistory(state *syncState) chan interface{} {
// blocking until history channel is read from
case history <- key:
n++
log.Trace(fmt.Sprintf("syncer[%v]: history: %v (%v keys)", self.key.Log(), key.Log(), n))
log.Trace(fmt.Sprintf("syncer[%v]: history: %v (%v keys)", sync.key.Log(), key.Log(), n))
state.Latest = key
case <-self.quit:
case <-sync.quit:
return
}
}
log.Debug(fmt.Sprintf("syncer[%v]: finished syncing history between %v - %v for chunk addresses %v - %v (at %v) (chunks = %v)", self.key.Log(), state.First, state.Last, state.Start, state.Stop, state.Latest, n))
log.Debug(fmt.Sprintf("syncer[%v]: finished syncing history between %v - %v for chunk addresses %v - %v (at %v) (chunks = %v)", sync.key.Log(), state.First, state.Last, state.Start, state.Stop, state.Latest, n))
}()
}
return history
}
// triggers key syncronisation
func (self *syncer) sendUnsyncedKeys() {
func (sync *syncer) sendUnsyncedKeys() {
select {
case self.deliveryRequest <- true:
case sync.deliveryRequest <- true:
default:
}
}
@ -411,7 +410,7 @@ func (self *syncer) sendUnsyncedKeys() {
// historical data is used so historical items are lower priority within
// their priority group.
// * Order of historical data is unspecified
func (self *syncer) syncUnsyncedKeys() {
func (sync *syncer) syncUnsyncedKeys() {
// send out new
var unsynced []*syncRequest
var more, justSynced bool
@ -419,12 +418,12 @@ func (self *syncer) syncUnsyncedKeys() {
var history chan interface{}
priority := High
keys := self.keys[priority]
keys := sync.keys[priority]
var newUnsyncedKeys, deliveryRequest chan bool
keyCounts := make([]int, priorities)
histPrior := self.SyncPriorities[HistoryReq]
syncStates := self.syncStates
state := self.state
histPrior := sync.SyncPriorities[HistoryReq]
syncStates := sync.syncStates
state := sync.state
LOOP:
for {
@ -440,15 +439,15 @@ LOOP:
PRIORITIES:
for priority = High; priority >= 0; priority-- {
// the first priority channel that is non-empty will be assigned to keys
if len(self.keys[priority]) > 0 {
log.Trace(fmt.Sprintf("syncer[%v]: reading request with priority %v", self.key.Log(), priority))
keys = self.keys[priority]
if len(sync.keys[priority]) > 0 {
log.Trace(fmt.Sprintf("syncer[%v]: reading request with priority %v", sync.key.Log(), priority))
keys = sync.keys[priority]
break PRIORITIES
}
log.Trace(fmt.Sprintf("syncer[%v/%v]: queue: [%v, %v, %v]", self.key.Log(), priority, len(self.keys[High]), len(self.keys[Medium]), len(self.keys[Low])))
log.Trace(fmt.Sprintf("syncer[%v/%v]: queue: [%v, %v, %v]", sync.key.Log(), priority, len(sync.keys[High]), len(sync.keys[Medium]), len(sync.keys[Low])))
// if the input queue is empty on this level, resort to history if there is any
if uint(priority) == histPrior && history != nil {
log.Trace(fmt.Sprintf("syncer[%v]: reading history for %v", self.key.Log(), self.key))
log.Trace(fmt.Sprintf("syncer[%v]: reading history for %v", sync.key.Log(), sync.key))
keys = history
break PRIORITIES
}
@ -458,8 +457,8 @@ LOOP:
// if peer ready to receive but nothing to send
if keys == nil && deliveryRequest == nil {
// if no items left and switch to waiting mode
log.Trace(fmt.Sprintf("syncer[%v]: buffers consumed. Waiting", self.key.Log()))
newUnsyncedKeys = self.newUnsyncedKeys
log.Trace(fmt.Sprintf("syncer[%v]: buffers consumed. Waiting", sync.key.Log()))
newUnsyncedKeys = sync.newUnsyncedKeys
}
// send msg iff
@ -470,48 +469,48 @@ LOOP:
if deliveryRequest == nil &&
(justSynced ||
len(unsynced) > 0 && keys == nil ||
len(unsynced) == int(self.SyncBatchSize)) {
len(unsynced) == int(sync.SyncBatchSize)) {
justSynced = false
// listen to requests
deliveryRequest = self.deliveryRequest
deliveryRequest = sync.deliveryRequest
newUnsyncedKeys = nil // not care about data until next req comes in
// set sync to current counter
// (all nonhistorical outgoing traffic sheduled and persisted
state.LastSeenAt = self.dbAccess.counter()
state.LastSeenAt = sync.dbAccess.counter()
state.Latest = storage.ZeroKey
log.Trace(fmt.Sprintf("syncer[%v]: sending %v", self.key.Log(), unsynced))
// send the unsynced keys
log.Trace(fmt.Sprintf("syncer[%v]: sending %v", sync.key.Log(), unsynced))
// send the unsynced keyssync
stateCopy := *state
err := self.unsyncedKeys(unsynced, &stateCopy)
err := sync.unsyncedKeys(unsynced, &stateCopy)
if err != nil {
log.Warn(fmt.Sprintf("syncer[%v]: unable to send unsynced keys: %v", self.key.Log(), err))
log.Warn(fmt.Sprintf("syncer[%v]: unable to send unsynced keys: %v", sync.key.Log(), err))
}
self.state = state
log.Debug(fmt.Sprintf("syncer[%v]: --> %v keys sent: (total: %v (%v), history: %v), sent sync state: %v", self.key.Log(), len(unsynced), keyCounts, keyCount, historyCnt, stateCopy))
sync.state = state
log.Debug(fmt.Sprintf("syncer[%v]: --> %v keys sent: (total: %v (%v), history: %v), sent sync state: %v", sync.key.Log(), len(unsynced), keyCounts, keyCount, historyCnt, stateCopy))
unsynced = nil
keys = nil
}
// process item and add it to the batch
select {
case <-self.quit:
case <-sync.quit:
break LOOP
case req, more = <-keys:
if keys == history && !more {
log.Trace(fmt.Sprintf("syncer[%v]: syncing history segment complete", self.key.Log()))
log.Trace(fmt.Sprintf("syncer[%v]: syncing history segment complete", sync.key.Log()))
// history channel is closed, waiting for new state (called from sync())
syncStates = self.syncStates
syncStates = sync.syncStates
state.Synced = true // this signals that the current segment is complete
select {
case state.synced <- false:
case <-self.quit:
case <-sync.quit:
break LOOP
}
justSynced = true
history = nil
}
case <-deliveryRequest:
log.Trace(fmt.Sprintf("syncer[%v]: peer ready to receive", self.key.Log()))
log.Trace(fmt.Sprintf("syncer[%v]: peer ready to receive", sync.key.Log()))
// this 1 cap channel can wake up the loop
// signaling that peer is ready to receive unsynced Keys
@ -519,23 +518,23 @@ LOOP:
deliveryRequest = nil
case <-newUnsyncedKeys:
log.Trace(fmt.Sprintf("syncer[%v]: new unsynced keys available", self.key.Log()))
log.Trace(fmt.Sprintf("syncer[%v]: new unsynced keys available", sync.key.Log()))
// this 1 cap channel can wake up the loop
// signals that data is available to send if peer is ready to receive
newUnsyncedKeys = nil
keys = self.keys[High]
keys = sync.keys[High]
case state, more = <-syncStates:
// this resets the state
if !more {
state = self.state
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) syncing complete upto %v)", self.key.Log(), priority, state))
state = sync.state
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) syncing complete upto %v)", sync.key.Log(), priority, state))
state.Synced = true
syncStates = nil
} else {
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) syncing history upto %v priority %v)", self.key.Log(), priority, state, histPrior))
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) syncing history upto %v priority %v)", sync.key.Log(), priority, state, histPrior))
state.Synced = false
history = self.syncHistory(state)
history = sync.syncHistory(state)
// only one history at a time, only allow another one once the
// history channel is closed
syncStates = nil
@ -545,19 +544,19 @@ LOOP:
continue LOOP
}
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) added to unsynced keys: %v", self.key.Log(), priority, req))
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) added to unsynced keys: %v", sync.key.Log(), priority, req))
keyCounts[priority]++
keyCount++
if keys == history {
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) history item %v (synced = %v)", self.key.Log(), priority, req, state.Synced))
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v) history item %v (synced = %v)", sync.key.Log(), priority, req, state.Synced))
historyCnt++
}
if sreq, err := self.newSyncRequest(req, priority); err == nil {
if sreq, err := sync.newSyncRequest(req, priority); err == nil {
// extract key from req
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v): request %v (synced = %v)", self.key.Log(), priority, req, state.Synced))
log.Trace(fmt.Sprintf("syncer[%v]: (priority %v): request %v (synced = %v)", sync.key.Log(), priority, req, state.Synced))
unsynced = append(unsynced, sreq)
} else {
log.Warn(fmt.Sprintf("syncer[%v]: (priority %v): error creating request for %v: %v)", self.key.Log(), priority, req, err))
log.Warn(fmt.Sprintf("syncer[%v]: (priority %v): error creating request for %v: %v)", sync.key.Log(), priority, req, err))
}
}
@ -566,7 +565,7 @@ LOOP:
// delivery loop
// takes into account priority, send store Requests with chunk (delivery)
// idle blocking if no new deliveries in any of the queues
func (self *syncer) syncDeliveries() {
func (sync *syncer) syncDeliveries() {
var req *storeRequestMsgData
p := High
var deliveries chan *storeRequestMsgData
@ -577,7 +576,7 @@ func (self *syncer) syncDeliveries() {
var total, success uint
for {
deliveries = self.deliveries[p]
deliveries = sync.deliveries[p]
select {
case req = <-deliveries:
n[p]++
@ -586,13 +585,13 @@ func (self *syncer) syncDeliveries() {
if p == Low {
// blocking, depletion on all channels, no preference for priority
select {
case req = <-self.deliveries[High]:
case req = <-sync.deliveries[High]:
n[High]++
case req = <-self.deliveries[Medium]:
case req = <-sync.deliveries[Medium]:
n[Medium]++
case req = <-self.deliveries[Low]:
case req = <-sync.deliveries[Low]:
n[Low]++
case <-self.quit:
case <-sync.quit:
return
}
p = High
@ -602,20 +601,20 @@ func (self *syncer) syncDeliveries() {
}
}
total++
msg, err = self.newStoreRequestMsgData(req)
msg, err = sync.newStoreRequestMsgData(req)
if err != nil {
log.Warn(fmt.Sprintf("syncer[%v]: failed to create store request for %v: %v", self.key.Log(), req, err))
log.Warn(fmt.Sprintf("syncer[%v]: failed to create store request for %v: %v", sync.key.Log(), req, err))
} else {
err = self.store(msg)
err = sync.store(msg)
if err != nil {
log.Warn(fmt.Sprintf("syncer[%v]: failed to deliver %v: %v", self.key.Log(), req, err))
log.Warn(fmt.Sprintf("syncer[%v]: failed to deliver %v: %v", sync.key.Log(), req, err))
} else {
success++
log.Trace(fmt.Sprintf("syncer[%v]: %v successfully delivered", self.key.Log(), req))
log.Trace(fmt.Sprintf("syncer[%v]: %v successfully delivered", sync.key.Log(), req))
}
}
if total%self.SyncBatchSize == 0 {
log.Debug(fmt.Sprintf("syncer[%v]: deliver Total: %v, Success: %v, High: %v/%v, Medium: %v/%v, Low %v/%v", self.key.Log(), total, success, c[High], n[High], c[Medium], n[Medium], c[Low], n[Low]))
if total%sync.SyncBatchSize == 0 {
log.Debug(fmt.Sprintf("syncer[%v]: deliver Total: %v, Success: %v, High: %v/%v, Medium: %v/%v, Low %v/%v", sync.key.Log(), total, success, c[High], n[High], c[Medium], n[Medium], c[Low], n[Low]))
}
}
}
@ -635,28 +634,28 @@ func (self *syncer) syncDeliveries() {
If sync mode is off then, requests are directly sent to deliveries
*/
func (self *syncer) addRequest(req interface{}, ty int) {
func (sync *syncer) addRequest(req interface{}, ty int) {
// retrieve priority for request type name int8
priority := self.SyncPriorities[ty]
priority := sync.SyncPriorities[ty]
// sync mode for this type ON
if self.syncF() || ty == DeliverReq {
if self.SyncModes[ty] {
self.addKey(req, priority, self.quit)
if sync.syncF() || ty == DeliverReq {
if sync.SyncModes[ty] {
sync.addKey(req, priority, sync.quit)
} else {
self.addDelivery(req, priority, self.quit)
sync.addDelivery(req, priority, sync.quit)
}
}
}
// addKey queues sync request for sync confirmation with given priority
// ie the key will go out in an unsyncedKeys message
func (self *syncer) addKey(req interface{}, priority uint, quit chan bool) bool {
func (sync *syncer) addKey(req interface{}, priority uint, quit chan bool) bool {
select {
case self.keys[priority] <- req:
case sync.keys[priority] <- req:
// this wakes up the unsynced keys loop if idle
select {
case self.newUnsyncedKeys <- true:
case sync.newUnsyncedKeys <- true:
default:
}
return true
@ -668,9 +667,9 @@ func (self *syncer) addKey(req interface{}, priority uint, quit chan bool) bool
// addDelivery queues delivery request for with given priority
// ie the chunk will be delivered ASAP mod priority queueing handled by syncdb
// requests are persisted across sessions for correct sync
func (self *syncer) addDelivery(req interface{}, priority uint, quit chan bool) bool {
func (sync *syncer) addDelivery(req interface{}, priority uint, quit chan bool) bool {
select {
case self.queues[priority].buffer <- req:
case sync.queues[priority].buffer <- req:
return true
case <-quit:
return false
@ -679,14 +678,14 @@ func (self *syncer) addDelivery(req interface{}, priority uint, quit chan bool)
// doDelivery delivers the chunk for the request with given priority
// without queuing
func (self *syncer) doDelivery(req interface{}, priority uint, quit chan bool) bool {
msgdata, err := self.newStoreRequestMsgData(req)
func (sync *syncer) doDelivery(req interface{}, priority uint, quit chan bool) bool {
msgdata, err := sync.newStoreRequestMsgData(req)
if err != nil {
log.Warn(fmt.Sprintf("unable to deliver request %v: %v", msgdata, err))
return false
}
select {
case self.deliveries[priority] <- msgdata:
case sync.deliveries[priority] <- msgdata:
return true
case <-quit:
return false
@ -695,9 +694,9 @@ func (self *syncer) doDelivery(req interface{}, priority uint, quit chan bool) b
// returns the delivery function for given priority
// passed on to syncDb
func (self *syncer) deliver(priority uint) func(req interface{}, quit chan bool) bool {
func (sync *syncer) deliver(priority uint) func(req interface{}, quit chan bool) bool {
return func(req interface{}, quit chan bool) bool {
return self.doDelivery(req, priority, quit)
return sync.doDelivery(req, priority, quit)
}
}
@ -705,25 +704,23 @@ func (self *syncer) deliver(priority uint) func(req interface{}, quit chan bool)
// depending on sync mode settings for BacklogReq,
// re play of request db backlog sends items via confirmation
// or directly delivers
func (self *syncer) replay() func(req interface{}, quit chan bool) bool {
sync := self.SyncModes[BacklogReq]
priority := self.SyncPriorities[BacklogReq]
func (sync *syncer) replay() func(req interface{}, quit chan bool) bool {
sync := sync.SyncModes[BacklogReq]
priority := sync.SyncPriorities[BacklogReq]
// sync mode for this type ON
if sync {
return func(req interface{}, quit chan bool) bool {
return self.addKey(req, priority, quit)
return sync.addKey(req, priority, quit)
}
}
} else {
return func(req interface{}, quit chan bool) bool {
return self.doDelivery(req, priority, quit)
}
return sync.doDelivery(req, priority, quit)
}
}
// given a request, extends it to a full storeRequestMsgData
// polimorphic: see addRequest for the types accepted
func (self *syncer) newStoreRequestMsgData(req interface{}) (*storeRequestMsgData, error) {
func (sync *syncer) newStoreRequestMsgData(req interface{}) (*storeRequestMsgData, error) {
key, id, chunk, sreq, err := parseRequest(req)
if err != nil {
@ -733,7 +730,7 @@ func (self *syncer) newStoreRequestMsgData(req interface{}) (*storeRequestMsgDat
if sreq == nil {
if chunk == nil {
var err error
chunk, err = self.dbAccess.get(key)
chunk, err = sync.dbAccess.get(key)
if err != nil {
return nil, err
}

View file

@ -80,7 +80,7 @@ type PayProfile struct {
lock sync.RWMutex
}
//create params with default values
// NewDefaultSwapParams creates params with default values
func NewDefaultSwapParams() *SwapParams {
return &SwapParams{
PayProfile: &PayProfile{},
@ -104,10 +104,10 @@ func NewDefaultSwapParams() *SwapParams {
//this can only finally be set after all config options (file, cmd line, env vars)
//have been evaluated
func (self *SwapParams) Init(contract common.Address, prvkey *ecdsa.PrivateKey) {
func (params *SwapParams) Init(contract common.Address, prvkey *ecdsa.PrivateKey) {
pubkey := &prvkey.PublicKey
self.PayProfile = &PayProfile{
params.PayProfile = &PayProfile{
PublicKey: common.ToHex(crypto.FromECDSAPub(pubkey)),
Contract: contract,
Beneficiary: crypto.PubkeyToAddress(*pubkey),
@ -184,44 +184,44 @@ func NewSwap(local *SwapParams, remote *SwapProfile, backend chequebook.Backend,
return
}
func (self *SwapParams) Chequebook() *chequebook.Chequebook {
defer self.lock.Unlock()
self.lock.Lock()
return self.chbook
func (params *SwapParams) Chequebook() *chequebook.Chequebook {
defer params.lock.Unlock()
params.lock.Lock()
return params.chbook
}
func (self *SwapParams) PrivateKey() *ecdsa.PrivateKey {
return self.privateKey
func (params *SwapParams) PrivateKey() *ecdsa.PrivateKey {
return params.privateKey
}
// func (self *SwapParams) PublicKey() *ecdsa.PublicKey {
// return self.publicKey
// func (params *SwapParams) PublicKey() *ecdsa.PublicKey {
// return params.publicKey
// }
func (self *SwapParams) SetKey(prvkey *ecdsa.PrivateKey) {
self.privateKey = prvkey
self.publicKey = &prvkey.PublicKey
func (params *SwapParams) SetKey(prvkey *ecdsa.PrivateKey) {
params.privateKey = prvkey
params.publicKey = &prvkey.PublicKey
}
// setChequebook(path, backend) wraps the
// SetChequebook wraps the
// chequebook initialiser and sets up autoDeposit to cover spending.
func (self *SwapParams) SetChequebook(ctx context.Context, backend chequebook.Backend, path string) error {
self.lock.Lock()
contract := self.Contract
self.lock.Unlock()
func (params *SwapParams) SetChequebook(ctx context.Context, backend chequebook.Backend, path string) error {
params.lock.Lock()
contract := params.Contract
params.lock.Unlock()
valid, err := chequebook.ValidateCode(ctx, backend, contract)
if err != nil {
return err
} else if valid {
return self.newChequebookFromContract(path, backend)
return params.newChequebookFromContract(path, backend)
}
return self.deployChequebook(ctx, backend, path)
return params.deployChequebook(ctx, backend, path)
}
func (self *SwapParams) deployChequebook(ctx context.Context, backend chequebook.Backend, path string) error {
opts := bind.NewKeyedTransactor(self.privateKey)
opts.Value = self.AutoDepositBuffer
func (params *SwapParams) deployChequebook(ctx context.Context, backend chequebook.Backend, path string) error {
opts := bind.NewKeyedTransactor(params.privateKey)
opts.Value = params.AutoDepositBuffer
opts.Context = ctx
log.Info(fmt.Sprintf("Deploying new chequebook (owner: %v)", opts.From.Hex()))
@ -233,10 +233,10 @@ func (self *SwapParams) deployChequebook(ctx context.Context, backend chequebook
log.Info(fmt.Sprintf("new chequebook deployed at %v (owner: %v)", contract.Hex(), opts.From.Hex()))
// need to save config at this point
self.lock.Lock()
self.Contract = contract
err = self.newChequebookFromContract(path, backend)
self.lock.Unlock()
params.lock.Lock()
params.Contract = contract
err = params.newChequebookFromContract(path, backend)
params.lock.Unlock()
if err != nil {
log.Warn(fmt.Sprintf("error initialising cheque book (owner: %v): %v", opts.From.Hex(), err))
}
@ -265,26 +265,26 @@ func deployChequebookLoop(opts *bind.TransactOpts, backend chequebook.Backend) (
// initialise the chequebook from a persisted json file or create a new one
// caller holds the lock
func (self *SwapParams) newChequebookFromContract(path string, backend chequebook.Backend) error {
hexkey := common.Bytes2Hex(self.Contract.Bytes())
func (params *SwapParams) newChequebookFromContract(path string, backend chequebook.Backend) error {
hexkey := common.Bytes2Hex(params.Contract.Bytes())
err := os.MkdirAll(filepath.Join(path, "chequebooks"), os.ModePerm)
if err != nil {
return fmt.Errorf("unable to create directory for chequebooks: %v", err)
}
chbookpath := filepath.Join(path, "chequebooks", hexkey+".json")
self.chbook, err = chequebook.LoadChequebook(chbookpath, self.privateKey, backend, true)
params.chbook, err = chequebook.LoadChequebook(chbookpath, params.privateKey, backend, true)
if err != nil {
self.chbook, err = chequebook.NewChequebook(chbookpath, self.Contract, self.privateKey, backend)
params.chbook, err = chequebook.NewChequebook(chbookpath, params.Contract, params.privateKey, backend)
if err != nil {
log.Warn(fmt.Sprintf("unable to initialise chequebook (owner: %v): %v", self.owner.Hex(), err))
return fmt.Errorf("unable to initialise chequebook (owner: %v): %v", self.owner.Hex(), err)
log.Warn(fmt.Sprintf("unable to initialise chequebook (owner: %v): %v", params.owner.Hex(), err))
return fmt.Errorf("unable to initialise chequebook (owner: %v): %v", params.owner.Hex(), err)
}
}
self.chbook.AutoDeposit(self.AutoDepositInterval, self.AutoDepositThreshold, self.AutoDepositBuffer)
log.Info(fmt.Sprintf("auto deposit ON for %v -> %v: interval = %v, threshold = %v, buffer = %v)", crypto.PubkeyToAddress(*(self.publicKey)).Hex()[:8], self.Contract.Hex()[:8], self.AutoDepositInterval, self.AutoDepositThreshold, self.AutoDepositBuffer))
params.chbook.AutoDeposit(params.AutoDepositInterval, params.AutoDepositThreshold, params.AutoDepositBuffer)
log.Info(fmt.Sprintf("auto deposit ON for %v -> %v: interval = %v, threshold = %v, buffer = %v)", crypto.PubkeyToAddress(*(params.publicKey)).Hex()[:8], params.Contract.Hex()[:8], params.AutoDepositInterval, params.AutoDepositThreshold, params.AutoDepositBuffer))
return nil
}

View file

@ -82,7 +82,7 @@ type InPayment interface {
Stop()
}
// swap is the swarm accounting protocol instance
// Swap is the swarm accounting protocol instance
// * pairwise accounting and payments
type Swap struct {
lock sync.Mutex // mutex for balance access
@ -114,139 +114,139 @@ func New(local *Params, pm Payment, proto Protocol) (self *Swap, err error) {
}
// entry point for setting remote swap profile (e.g from handshake or other message)
func (self *Swap) SetRemote(remote *Profile) {
defer self.lock.Unlock()
self.lock.Lock()
func (swap *Swap) SetRemote(remote *Profile) {
defer swap.lock.Unlock()
swap.lock.Lock()
self.remote = remote
if self.Sells && (remote.BuyAt.Sign() <= 0 || self.local.SellAt.Sign() <= 0 || remote.BuyAt.Cmp(self.local.SellAt) < 0) {
self.Out.Stop()
self.Sells = false
swap.remote = remote
if swap.Sells && (remote.BuyAt.Sign() <= 0 || swap.local.SellAt.Sign() <= 0 || remote.BuyAt.Cmp(swap.local.SellAt) < 0) {
swap.Out.Stop()
swap.Sells = false
}
if self.Buys && (remote.SellAt.Sign() <= 0 || self.local.BuyAt.Sign() <= 0 || self.local.BuyAt.Cmp(self.remote.SellAt) < 0) {
self.In.Stop()
self.Buys = false
if swap.Buys && (remote.SellAt.Sign() <= 0 || swap.local.BuyAt.Sign() <= 0 || swap.local.BuyAt.Cmp(swap.remote.SellAt) < 0) {
swap.In.Stop()
swap.Buys = false
}
log.Debug(fmt.Sprintf("<%v> remote profile set: pay at: %v, drop at: %v, buy at: %v, sell at: %v", self.proto, remote.PayAt, remote.DropAt, remote.BuyAt, remote.SellAt))
log.Debug(fmt.Sprintf("<%v> remote profile set: pay at: %v, drop at: %v, buy at: %v, sell at: %v", swap.proto, remote.PayAt, remote.DropAt, remote.BuyAt, remote.SellAt))
}
// to set strategy dynamically
func (self *Swap) SetParams(local *Params) {
defer self.lock.Unlock()
self.lock.Lock()
self.local = local
self.setParams(local)
func (swap *Swap) SetParams(local *Params) {
defer swap.lock.Unlock()
swap.lock.Lock()
swap.local = local
swap.setParams(local)
}
// caller holds the lock
func (self *Swap) setParams(local *Params) {
func (swap *Swap) setParams(local *Params) {
if self.Sells {
self.In.AutoCash(local.AutoCashInterval, local.AutoCashThreshold)
log.Info(fmt.Sprintf("<%v> set autocash to every %v, max uncashed limit: %v", self.proto, local.AutoCashInterval, local.AutoCashThreshold))
if swap.Sells {
swap.In.AutoCash(local.AutoCashInterval, local.AutoCashThreshold)
log.Info(fmt.Sprintf("<%v> set autocash to every %v, max uncashed limit: %v", swap.proto, local.AutoCashInterval, local.AutoCashThreshold))
} else {
log.Info(fmt.Sprintf("<%v> autocash off (not selling)", self.proto))
log.Info(fmt.Sprintf("<%v> autocash off (not selling)", swap.proto))
}
if self.Buys {
self.Out.AutoDeposit(local.AutoDepositInterval, local.AutoDepositThreshold, local.AutoDepositBuffer)
log.Info(fmt.Sprintf("<%v> set autodeposit to every %v, pay at: %v, buffer: %v", self.proto, local.AutoDepositInterval, local.AutoDepositThreshold, local.AutoDepositBuffer))
if swap.Buys {
swap.Out.AutoDeposit(local.AutoDepositInterval, local.AutoDepositThreshold, local.AutoDepositBuffer)
log.Info(fmt.Sprintf("<%v> set autodeposit to every %v, pay at: %v, buffer: %v", swap.proto, local.AutoDepositInterval, local.AutoDepositThreshold, local.AutoDepositBuffer))
} else {
log.Info(fmt.Sprintf("<%v> autodeposit off (not buying)", self.proto))
log.Info(fmt.Sprintf("<%v> autodeposit off (not buying)", swap.proto))
}
}
// Add(n)
// n > 0 called when promised/provided n units of service
// n < 0 called when used/requested n units of service
func (self *Swap) Add(n int) error {
defer self.lock.Unlock()
self.lock.Lock()
self.balance += n
if !self.Sells && self.balance > 0 {
log.Trace(fmt.Sprintf("<%v> remote peer cannot have debt (balance: %v)", self.proto, self.balance))
self.proto.Drop()
return fmt.Errorf("[SWAP] <%v> remote peer cannot have debt (balance: %v)", self.proto, self.balance)
func (swap *Swap) Add(n int) error {
defer swap.lock.Unlock()
swap.lock.Lock()
swap.balance += n
if !swap.Sells && swap.balance > 0 {
log.Trace(fmt.Sprintf("<%v> remote peer cannot have debt (balance: %v)", swap.proto, swap.balance))
swap.proto.Drop()
return fmt.Errorf("[SWAP] <%v> remote peer cannot have debt (balance: %v)", swap.proto, swap.balance)
}
if !self.Buys && self.balance < 0 {
log.Trace(fmt.Sprintf("<%v> we cannot have debt (balance: %v)", self.proto, self.balance))
return fmt.Errorf("[SWAP] <%v> we cannot have debt (balance: %v)", self.proto, self.balance)
if !swap.Buys && swap.balance < 0 {
log.Trace(fmt.Sprintf("<%v> we cannot have debt (balance: %v)", swap.proto, swap.balance))
return fmt.Errorf("[SWAP] <%v> we cannot have debt (balance: %v)", swap.proto, swap.balance)
}
if self.balance >= int(self.local.DropAt) {
log.Trace(fmt.Sprintf("<%v> remote peer has too much debt (balance: %v, disconnect threshold: %v)", self.proto, self.balance, self.local.DropAt))
self.proto.Drop()
return fmt.Errorf("[SWAP] <%v> remote peer has too much debt (balance: %v, disconnect threshold: %v)", self.proto, self.balance, self.local.DropAt)
} else if self.balance <= -int(self.remote.PayAt) {
self.send()
if swap.balance >= int(swap.local.DropAt) {
log.Trace(fmt.Sprintf("<%v> remote peer has too much debt (balance: %v, disconnect threshold: %v)", swap.proto, swap.balance, swap.local.DropAt))
swap.proto.Drop()
return fmt.Errorf("[SWAP] <%v> remote peer has too much debt (balance: %v, disconnect threshold: %v)", swap.proto, swap.balance, swap.local.DropAt)
} else if swap.balance <= -int(swap.remote.PayAt) {
swap.send()
}
return nil
}
func (self *Swap) Balance() int {
defer self.lock.Unlock()
self.lock.Lock()
return self.balance
func (swap *Swap) Balance() int {
defer swap.lock.Unlock()
swap.lock.Lock()
return swap.balance
}
// send(units) is called when payment is due
// In case of insolvency no promise is issued and sent, safe against fraud
// No return value: no error = payment is opportunistic = hang in till dropped
func (self *Swap) send() {
if self.local.BuyAt != nil && self.balance < 0 {
amount := big.NewInt(int64(-self.balance))
amount.Mul(amount, self.remote.SellAt)
promise, err := self.Out.Issue(amount)
func (swap *Swap) send() {
if swap.local.BuyAt != nil && swap.balance < 0 {
amount := big.NewInt(int64(-swap.balance))
amount.Mul(amount, swap.remote.SellAt)
promise, err := swap.Out.Issue(amount)
if err != nil {
log.Warn(fmt.Sprintf("<%v> cannot issue cheque (amount: %v, channel: %v): %v", self.proto, amount, self.Out, err))
log.Warn(fmt.Sprintf("<%v> cannot issue cheque (amount: %v, channel: %v): %v", swap.proto, amount, swap.Out, err))
} else {
log.Warn(fmt.Sprintf("<%v> cheque issued (amount: %v, channel: %v)", self.proto, amount, self.Out))
self.proto.Pay(-self.balance, promise)
self.balance = 0
log.Warn(fmt.Sprintf("<%v> cheque issued (amount: %v, channel: %v)", swap.proto, amount, swap.Out))
swap.proto.Pay(-swap.balance, promise)
swap.balance = 0
}
}
}
// receive(units, promise) is called by the protocol when a payment msg is received
// returns error if promise is invalid.
func (self *Swap) Receive(units int, promise Promise) error {
func (swap *Swap) Receive(units int, promise Promise) error {
if units <= 0 {
return fmt.Errorf("invalid units: %v <= 0", units)
}
price := new(big.Int).SetInt64(int64(units))
price.Mul(price, self.local.SellAt)
price.Mul(price, swap.local.SellAt)
amount, err := self.In.Receive(promise)
amount, err := swap.In.Receive(promise)
if err != nil {
err = fmt.Errorf("invalid promise: %v", err)
} else if price.Cmp(amount) != 0 {
// verify amount = units * unit sale price
return fmt.Errorf("invalid amount: %v = %v * %v (units sent in msg * agreed sale unit price) != %v (signed in cheque)", price, units, self.local.SellAt, amount)
return fmt.Errorf("invalid amount: %v = %v * %v (units sent in msg * agreed sale unit price) != %v (signed in cheque)", price, units, swap.local.SellAt, amount)
}
if err != nil {
log.Trace(fmt.Sprintf("<%v> invalid promise (amount: %v, channel: %v): %v", self.proto, amount, self.In, err))
log.Trace(fmt.Sprintf("<%v> invalid promise (amount: %v, channel: %v): %v", swap.proto, amount, swap.In, err))
return err
}
// credit remote peer with units
self.Add(-units)
log.Trace(fmt.Sprintf("<%v> received promise (amount: %v, channel: %v): %v", self.proto, amount, self.In, promise))
swap.Add(-units)
log.Trace(fmt.Sprintf("<%v> received promise (amount: %v, channel: %v): %v", swap.proto, amount, swap.In, promise))
return nil
}
// stop() causes autocash loop to terminate.
// Called after protocol handle loop terminates.
func (self *Swap) Stop() {
defer self.lock.Unlock()
self.lock.Lock()
if self.Buys {
self.Out.Stop()
func (swap *Swap) Stop() {
defer swap.lock.Unlock()
swap.lock.Lock()
if swap.Buys {
swap.Out.Stop()
}
if self.Sells {
self.In.Stop()
if swap.Sells {
swap.In.Stop()
}
}

View file

@ -34,20 +34,20 @@ type testPromise struct {
amount *big.Int
}
func (self *testInPayment) Receive(promise Promise) (*big.Int, error) {
func (test *testInPayment) Receive(promise Promise) (*big.Int, error) {
p := promise.(*testPromise)
self.received = append(self.received, p)
test.received = append(test.received, p)
return p.amount, nil
}
func (self *testInPayment) AutoCash(interval time.Duration, limit *big.Int) {
self.autocashInterval = interval
self.autocashLimit = limit
func (test *testInPayment) AutoCash(interval time.Duration, limit *big.Int) {
test.autocashInterval = interval
test.autocashLimit = limit
}
func (self *testInPayment) Cash() (string, error) { return "", nil }
func (test *testInPayment) Cash() (string, error) { return "", nil }
func (self *testInPayment) Stop() {}
func (test *testInPayment) Stop() {}
type testOutPayment struct {
deposits []*big.Int
@ -56,22 +56,22 @@ type testOutPayment struct {
autodepositBuffer *big.Int
}
func (self *testOutPayment) Issue(amount *big.Int) (promise Promise, err error) {
func (test *testOutPayment) Issue(amount *big.Int) (promise Promise, err error) {
return &testPromise{amount}, nil
}
func (self *testOutPayment) Deposit(amount *big.Int) (string, error) {
self.deposits = append(self.deposits, amount)
func (test *testOutPayment) Deposit(amount *big.Int) (string, error) {
test.deposits = append(test.deposits, amount)
return "", nil
}
func (self *testOutPayment) AutoDeposit(interval time.Duration, threshold, buffer *big.Int) {
self.autodepositInterval = interval
self.autodepositThreshold = threshold
self.autodepositBuffer = buffer
func (test *testOutPayment) AutoDeposit(interval time.Duration, threshold, buffer *big.Int) {
test.autodepositInterval = interval
test.autodepositThreshold = threshold
test.autodepositBuffer = buffer
}
func (self *testOutPayment) Stop() {}
func (test *testOutPayment) Stop() {}
type testProtocol struct {
drop bool
@ -79,18 +79,18 @@ type testProtocol struct {
promises []*testPromise
}
func (self *testProtocol) Drop() {
self.drop = true
func (test *testProtocol) Drop() {
test.drop = true
}
func (self *testProtocol) String() string {
func (test *testProtocol) String() string {
return ""
}
func (self *testProtocol) Pay(amount int, promise Promise) {
func (test *testProtocol) Pay(amount int, promise Promise) {
p := promise.(*testPromise)
self.promises = append(self.promises, p)
self.amounts = append(self.amounts, amount)
test.promises = append(test.promises, p)
test.amounts = append(test.amounts, amount)
}
func TestSwap(t *testing.T) {

View file

@ -91,13 +91,13 @@ func NewTreeChunker(params *ChunkerParams) (self *TreeChunker) {
return
}
// func (self *TreeChunker) KeySize() int64 {
// return self.hashSize
// func (tc *TreeChunker) KeySize() int64 {
// return tc.hashSize
// }
// String() for pretty printing
func (self *Chunk) String() string {
return fmt.Sprintf("Key: %v TreeSize: %v Chunksize: %v", self.Key.Log(), self.Size, len(self.SData))
func (c *Chunk) String() string {
return fmt.Sprintf("Key: %v TreeSize: %v Chunksize: %v", c.Key.Log(), c.Size, len(c.SData))
}
type hashJob struct {
@ -107,26 +107,26 @@ type hashJob struct {
parentWg *sync.WaitGroup
}
func (self *TreeChunker) incrementWorkerCount() {
self.workerLock.Lock()
defer self.workerLock.Unlock()
self.workerCount += 1
func (tc *TreeChunker) incrementWorkerCount() {
tc.workerLock.Lock()
defer tc.workerLock.Unlock()
tc.workerCount++
}
func (self *TreeChunker) getWorkerCount() int64 {
self.workerLock.RLock()
defer self.workerLock.RUnlock()
return self.workerCount
func (tc *TreeChunker) getWorkerCount() int64 {
tc.workerLock.RLock()
defer tc.workerLock.RUnlock()
return tc.workerCount
}
func (self *TreeChunker) decrementWorkerCount() {
self.workerLock.Lock()
defer self.workerLock.Unlock()
self.workerCount -= 1
func (tc *TreeChunker) decrementWorkerCount() {
tc.workerLock.Lock()
defer tc.workerLock.Unlock()
tc.workerCount--
}
func (self *TreeChunker) Split(data io.Reader, size int64, chunkC chan *Chunk, swg, wwg *sync.WaitGroup) (Key, error) {
if self.chunkSize <= 0 {
func (tc *TreeChunker) Split(data io.Reader, size int64, chunkC chan *Chunk, swg, wwg *sync.WaitGroup) (Key, error) {
if tc.chunkSize <= 0 {
panic("chunker must be initialised")
}
@ -140,23 +140,23 @@ func (self *TreeChunker) Split(data io.Reader, size int64, chunkC chan *Chunk, s
wwg.Add(1)
}
self.incrementWorkerCount()
go self.hashWorker(jobC, chunkC, errC, quitC, swg, wwg)
tc.incrementWorkerCount()
go tc.hashWorker(jobC, chunkC, errC, quitC, swg, wwg)
depth := 0
treeSize := self.chunkSize
treeSize := tc.chunkSize
// takes lowest depth such that chunksize*HashCount^(depth+1) > size
// power series, will find the order of magnitude of the data size in base hashCount or numbers of levels of branching in the resulting tree.
for ; treeSize < size; treeSize *= self.branches {
for ; treeSize < size; treeSize *= tc.branches {
depth++
}
key := make([]byte, self.hashFunc().Size())
key := make([]byte, tc.hashFunc().Size())
// this waitgroup member is released after the root hash is calculated
wg.Add(1)
//launch actual recursive function passing the waitgroups
go self.split(depth, treeSize/self.branches, key, data, size, jobC, chunkC, errC, quitC, wg, swg, wwg)
go tc.split(depth, treeSize/tc.branches, key, data, size, jobC, chunkC, errC, quitC, wg, swg, wwg)
// closes internal error channel if all subprocesses in the workgroup finished
go func() {
@ -182,12 +182,12 @@ func (self *TreeChunker) Split(data io.Reader, size int64, chunkC chan *Chunk, s
return key, nil
}
func (self *TreeChunker) split(depth int, treeSize int64, key Key, data io.Reader, size int64, jobC chan *hashJob, chunkC chan *Chunk, errC chan error, quitC chan bool, parentWg, swg, wwg *sync.WaitGroup) {
func (tc *TreeChunker) split(depth int, treeSize int64, key Key, data io.Reader, size int64, jobC chan *hashJob, chunkC chan *Chunk, errC chan error, quitC chan bool, parentWg, swg, wwg *sync.WaitGroup) {
//
for depth > 0 && size < treeSize {
treeSize /= self.branches
treeSize /= tc.branches
depth--
}
@ -214,7 +214,7 @@ func (self *TreeChunker) split(depth int, treeSize int64, key Key, data io.Reade
// intermediate chunk containing child nodes hashes
branchCnt := (size + treeSize - 1) / treeSize
var chunk = make([]byte, branchCnt*self.hashSize+8)
var chunk = make([]byte, branchCnt*tc.hashSize+8)
var pos, i int64
binary.LittleEndian.PutUint64(chunk[0:8], uint64(size))
@ -229,10 +229,10 @@ func (self *TreeChunker) split(depth int, treeSize int64, key Key, data io.Reade
secSize = treeSize
}
// the hash of that data
subTreeKey := chunk[8+i*self.hashSize : 8+(i+1)*self.hashSize]
subTreeKey := chunk[8+i*tc.hashSize : 8+(i+1)*tc.hashSize]
childrenWg.Add(1)
self.split(depth-1, treeSize/self.branches, subTreeKey, data, secSize, jobC, chunkC, errC, quitC, childrenWg, swg, wwg)
tc.split(depth-1, treeSize/tc.branches, subTreeKey, data, secSize, jobC, chunkC, errC, quitC, childrenWg, swg, wwg)
i++
pos += treeSize
@ -242,13 +242,13 @@ func (self *TreeChunker) split(depth int, treeSize int64, key Key, data io.Reade
// go func() {
childrenWg.Wait()
worker := self.getWorkerCount()
worker := tc.getWorkerCount()
if int64(len(jobC)) > worker && worker < ChunkProcessors {
if wwg != nil {
wwg.Add(1)
}
self.incrementWorkerCount()
go self.hashWorker(jobC, chunkC, errC, quitC, swg, wwg)
tc.incrementWorkerCount()
go tc.hashWorker(jobC, chunkC, errC, quitC, swg, wwg)
}
select {
@ -257,10 +257,10 @@ func (self *TreeChunker) split(depth int, treeSize int64, key Key, data io.Reade
}
}
func (self *TreeChunker) hashWorker(jobC chan *hashJob, chunkC chan *Chunk, errC chan error, quitC chan bool, swg, wwg *sync.WaitGroup) {
defer self.decrementWorkerCount()
func (tc *TreeChunker) hashWorker(jobC chan *hashJob, chunkC chan *Chunk, errC chan error, quitC chan bool, swg, wwg *sync.WaitGroup) {
defer tc.decrementWorkerCount()
hasher := self.hashFunc()
hasher := tc.hashFunc()
if wwg != nil {
defer wwg.Done()
}
@ -272,7 +272,7 @@ func (self *TreeChunker) hashWorker(jobC chan *hashJob, chunkC chan *Chunk, errC
return
}
// now we got the hashes in the chunk, then hash the chunks
self.hashChunk(hasher, job, chunkC, swg)
tc.hashChunk(hasher, job, chunkC, swg)
case <-quitC:
return
}
@ -282,7 +282,7 @@ func (self *TreeChunker) hashWorker(jobC chan *hashJob, chunkC chan *Chunk, errC
// The treeChunkers own Hash hashes together
// - the size (of the subtree encoded in the Chunk)
// - the Chunk, ie. the contents read from the input reader
func (self *TreeChunker) hashChunk(hasher SwarmHash, job *hashJob, chunkC chan *Chunk, swg *sync.WaitGroup) {
func (tc *TreeChunker) hashChunk(hasher SwarmHash, job *hashJob, chunkC chan *Chunk, swg *sync.WaitGroup) {
hasher.ResetWithLength(job.chunk[:8]) // 8 bytes of length
hasher.Write(job.chunk[8:]) // minus 8 []byte length
h := hasher.Sum(nil)
@ -316,7 +316,7 @@ func (self *TreeChunker) hashChunk(hasher SwarmHash, job *hashJob, chunkC chan *
}
}
func (self *TreeChunker) Append(key Key, data io.Reader, chunkC chan *Chunk, swg, wwg *sync.WaitGroup) (Key, error) {
func (tc *TreeChunker) Append(key Key, data io.Reader, chunkC chan *Chunk, swg, wwg *sync.WaitGroup) (Key, error) {
return nil, errAppendOppNotSuported
}
@ -331,45 +331,45 @@ type LazyChunkReader struct {
hashSize int64 // inherit from chunker
}
// implements the Joiner interface
func (self *TreeChunker) Join(key Key, chunkC chan *Chunk) LazySectionReader {
// Join implements the Joiner interface
func (tc *TreeChunker) Join(key Key, chunkC chan *Chunk) LazySectionReader {
return &LazyChunkReader{
key: key,
chunkC: chunkC,
chunkSize: self.chunkSize,
branches: self.branches,
hashSize: self.hashSize,
chunkSize: tc.chunkSize,
branches: tc.branches,
hashSize: tc.hashSize,
}
}
// Size is meant to be called on the LazySectionReader
func (self *LazyChunkReader) Size(quitC chan bool) (n int64, err error) {
if self.chunk != nil {
return self.chunk.Size, nil
func (reader *LazyChunkReader) Size(quitC chan bool) (n int64, err error) {
if reader.chunk != nil {
return reader.chunk.Size, nil
}
chunk := retrieve(self.key, self.chunkC, quitC)
chunk := retrieve(reader.key, reader.chunkC, quitC)
if chunk == nil {
select {
case <-quitC:
return 0, errors.New("aborted")
default:
return 0, fmt.Errorf("root chunk not found for %v", self.key.Hex())
return 0, fmt.Errorf("root chunk not found for %v", reader.key.Hex())
}
}
self.chunk = chunk
reader.chunk = chunk
return chunk.Size, nil
}
// read at can be called numerous times
// ReadAt can be called numerous times
// concurrent reads are allowed
// Size() needs to be called synchronously on the LazyChunkReader first
func (self *LazyChunkReader) ReadAt(b []byte, off int64) (read int, err error) {
func (reader *LazyChunkReader) ReadAt(b []byte, off int64) (read int, err error) {
// this is correct, a swarm doc cannot be zero length, so no EOF is expected
if len(b) == 0 {
return 0, nil
}
quitC := make(chan bool)
size, err := self.Size(quitC)
size, err := reader.Size(quitC)
if err != nil {
return 0, err
}
@ -380,13 +380,13 @@ func (self *LazyChunkReader) ReadAt(b []byte, off int64) (read int, err error) {
var treeSize int64
var depth int
// calculate depth and max treeSize
treeSize = self.chunkSize
for ; treeSize < size; treeSize *= self.branches {
treeSize = reader.chunkSize
for ; treeSize < size; treeSize *= reader.branches {
depth++
}
wg := sync.WaitGroup{}
wg.Add(1)
go self.join(b, off, off+int64(len(b)), depth, treeSize/self.branches, self.chunk, &wg, errC, quitC)
go reader.join(b, off, off+int64(len(b)), depth, treeSize/reader.branches, reader.chunk, &wg, errC, quitC)
go func() {
wg.Wait()
close(errC)
@ -404,7 +404,7 @@ func (self *LazyChunkReader) ReadAt(b []byte, off int64) (read int, err error) {
return len(b), nil
}
func (self *LazyChunkReader) join(b []byte, off int64, eoff int64, depth int, treeSize int64, chunk *Chunk, parentWg *sync.WaitGroup, errC chan error, quitC chan bool) {
func (reader *LazyChunkReader) join(b []byte, off int64, eoff int64, depth int, treeSize int64, chunk *Chunk, parentWg *sync.WaitGroup, errC chan error, quitC chan bool) {
defer parentWg.Done()
// return NewDPA(&LocalStore{})
@ -412,7 +412,7 @@ func (self *LazyChunkReader) join(b []byte, off int64, eoff int64, depth int, tr
// find appropriate block level
for chunk.Size < treeSize && depth > 0 {
treeSize /= self.branches
treeSize /= reader.branches
depth--
}
@ -449,8 +449,8 @@ func (self *LazyChunkReader) join(b []byte, off int64, eoff int64, depth int, tr
}
wg.Add(1)
go func(j int64) {
childKey := chunk.SData[8+j*self.hashSize : 8+(j+1)*self.hashSize]
chunk := retrieve(childKey, self.chunkC, quitC)
childKey := chunk.SData[8+j*reader.hashSize : 8+(j+1)*reader.hashSize]
chunk := retrieve(childKey, reader.chunkC, quitC)
if chunk == nil {
select {
case errC <- fmt.Errorf("chunk %v-%v not found", off, off+treeSize):
@ -461,7 +461,7 @@ func (self *LazyChunkReader) join(b []byte, off int64, eoff int64, depth int, tr
if soff < off {
soff = off
}
self.join(b[soff-off:seoff-off], soff-roff, seoff-roff, depth-1, treeSize/self.branches, chunk, wg, errC, quitC)
reader.join(b[soff-off:seoff-off], soff-roff, seoff-roff, depth-1, treeSize/reader.branches, chunk, wg, errC, quitC)
}(i)
} //for
}
@ -496,10 +496,10 @@ func retrieve(key Key, chunkC chan *Chunk, quitC chan bool) *Chunk {
}
// Read keeps a cursor so cannot be called simulateously, see ReadAt
func (self *LazyChunkReader) Read(b []byte) (read int, err error) {
read, err = self.ReadAt(b, self.off)
func (reader *LazyChunkReader) Read(b []byte) (read int, err error) {
read, err = reader.ReadAt(b, reader.off)
self.off += int64(read)
reader.off += int64(read)
return
}
@ -507,27 +507,27 @@ func (self *LazyChunkReader) Read(b []byte) (read int, err error) {
var errWhence = errors.New("Seek: invalid whence")
var errOffset = errors.New("Seek: invalid offset")
func (s *LazyChunkReader) Seek(offset int64, whence int) (int64, error) {
func (reader *LazyChunkReader) Seek(offset int64, whence int) (int64, error) {
switch whence {
default:
return 0, errWhence
case 0:
offset += 0
case 1:
offset += s.off
offset += reader.off
case 2:
if s.chunk == nil { //seek from the end requires rootchunk for size. call Size first
_, err := s.Size(nil)
if reader.chunk == nil { //seek from the end requires rootchunk for size. call Size first
_, err := reader.Size(nil)
if err != nil {
return 0, fmt.Errorf("can't get size: %v", err)
}
}
offset += s.chunk.Size
offset += reader.chunk.Size
}
if offset < 0 {
return 0, errOffset
}
s.off = offset
reader.off = offset
return offset, nil
}

View file

@ -45,12 +45,12 @@ type chunkerTester struct {
t test
}
func (self *chunkerTester) Split(chunker Splitter, data io.Reader, size int64, chunkC chan *Chunk, swg *sync.WaitGroup, expectedError error) (key Key, err error) {
func (tester *chunkerTester) Split(chunker Splitter, data io.Reader, size int64, chunkC chan *Chunk, swg *sync.WaitGroup, expectedError error) (key Key, err error) {
// reset
self.chunks = make(map[string]*Chunk)
tester.chunks = make(map[string]*Chunk)
if self.inputs == nil {
self.inputs = make(map[uint64][]byte)
if tester.inputs == nil {
tester.inputs = make(map[uint64][]byte)
}
quitC := make(chan bool)
@ -64,8 +64,8 @@ func (self *chunkerTester) Split(chunker Splitter, data io.Reader, size int64, c
case <-quitC:
return nil
case chunk := <-chunkC:
// self.chunks = append(self.chunks, chunk)
self.chunks[chunk.Key.String()] = chunk
// tester.chunks = append(tester.chunks, chunk)
tester.chunks[chunk.Key.String()] = chunk
if chunk.wg != nil {
chunk.wg.Done()
}
@ -89,7 +89,7 @@ func (self *chunkerTester) Split(chunker Splitter, data io.Reader, size int64, c
return key, err
}
func (self *chunkerTester) Append(chunker Splitter, rootKey Key, data io.Reader, chunkC chan *Chunk, swg *sync.WaitGroup, expectedError error) (key Key, err error) {
func (tester *chunkerTester) Append(chunker Splitter, rootKey Key, data io.Reader, chunkC chan *Chunk, swg *sync.WaitGroup, expectedError error) (key Key, err error) {
quitC := make(chan bool)
timeout := time.After(60 * time.Second)
if chunkC != nil {
@ -102,10 +102,10 @@ func (self *chunkerTester) Append(chunker Splitter, rootKey Key, data io.Reader,
return nil
case chunk := <-chunkC:
if chunk != nil {
stored, success := self.chunks[chunk.Key.String()]
stored, success := tester.chunks[chunk.Key.String()]
if !success {
// Requesting data
self.chunks[chunk.Key.String()] = chunk
tester.chunks[chunk.Key.String()] = chunk
if chunk.wg != nil {
chunk.wg.Done()
}
@ -135,7 +135,7 @@ func (self *chunkerTester) Append(chunker Splitter, rootKey Key, data io.Reader,
return key, err
}
func (self *chunkerTester) Join(chunker Chunker, key Key, c int, chunkC chan *Chunk, quitC chan bool) LazySectionReader {
func (tester *chunkerTester) Join(chunker Chunker, key Key, c int, chunkC chan *Chunk, quitC chan bool) LazySectionReader {
// reset but not the chunks
reader := chunker.Join(key, chunkC)
@ -153,7 +153,7 @@ func (self *chunkerTester) Join(chunker Chunker, key Key, c int, chunkC chan *Ch
return nil
}
// this just mocks the behaviour of a chunk store retrieval
stored, success := self.chunks[chunk.Key.String()]
stored, success := tester.chunks[chunk.Key.String()]
if !success {
return errors.New("Not found")
}

View file

@ -46,12 +46,12 @@ func testDataReader(l int) (r io.Reader) {
return io.LimitReader(rand.Reader, int64(l))
}
func (self *brokenLimitedReader) Read(buf []byte) (int, error) {
if self.off+len(buf) > self.errAt {
func (reader *brokenLimitedReader) Read(buf []byte) (int, error) {
if reader.off+len(buf) > reader.errAt {
return 0, fmt.Errorf("Broken reader")
}
self.off += len(buf)
return self.lr.Read(buf)
reader.off += len(buf)
return reader.lr.Read(buf)
}
func testDataReaderAndSlice(l int) (r io.Reader, slice []byte) {

View file

@ -45,27 +45,27 @@ func NewLDBDatabase(file string) (*LDBDatabase, error) {
return database, nil
}
func (self *LDBDatabase) Put(key []byte, value []byte) {
err := self.db.Put(key, value, nil)
func (db *LDBDatabase) Put(key []byte, value []byte) {
err := db.db.Put(key, value, nil)
if err != nil {
fmt.Println("Error put", err)
}
}
func (self *LDBDatabase) Get(key []byte) ([]byte, error) {
dat, err := self.db.Get(key, nil)
func (db *LDBDatabase) Get(key []byte) ([]byte, error) {
dat, err := db.db.Get(key, nil)
if err != nil {
return nil, err
}
return dat, nil
}
func (self *LDBDatabase) Delete(key []byte) error {
return self.db.Delete(key, nil)
func (db *LDBDatabase) Delete(key []byte) error {
return db.db.Delete(key, nil)
}
func (self *LDBDatabase) LastKnownTD() []byte {
data, _ := self.Get([]byte("LTD"))
func (db *LDBDatabase) LastKnownTD() []byte {
data, _ := db.Get([]byte("LTD"))
if len(data) == 0 {
data = []byte{0x0}
@ -74,15 +74,15 @@ func (self *LDBDatabase) LastKnownTD() []byte {
return data
}
func (self *LDBDatabase) NewIterator() iterator.Iterator {
return self.db.NewIterator(nil, nil)
func (db *LDBDatabase) NewIterator() iterator.Iterator {
return db.db.NewIterator(nil, nil)
}
func (self *LDBDatabase) Write(batch *leveldb.Batch) error {
return self.db.Write(batch, nil)
func (db *LDBDatabase) Write(batch *leveldb.Batch) error {
return db.db.Write(batch, nil)
}
func (self *LDBDatabase) Close() {
func (db *LDBDatabase) Close() {
// Close the leveldb database
self.db.Close()
db.db.Close()
}

View file

@ -201,14 +201,12 @@ func gcListSelect(list []*gcItem, left int, right int, n int) int {
pivotIndex = gcListPartition(list, left, right, pivotIndex)
if n == pivotIndex {
return n
} else {
if n < pivotIndex {
} else if n < pivotIndex {
return gcListSelect(list, left, pivotIndex-1, n)
} else {
return gcListSelect(list, pivotIndex+1, right, n)
}
}
}
func (s *DbStore) collectGarbage(ratio float32) {
it := s.db.NewIterator()
@ -539,7 +537,7 @@ func (s *DbStore) Close() {
s.db.Close()
}
// describes a section of the DbStore representing the unsynced
// DbSyncState describes a section of the DbStore representing the unsynced
// domain relevant to a peer
// Start - Stop designate a continuous area Keys in an address space
// typically the addresses closer to us than to the peer but not closer
@ -558,13 +556,13 @@ type dbSyncIterator struct {
DbSyncState
}
// initialises a sync iterator from a syncToken (passed in with the handshake)
func (self *DbStore) NewSyncIterator(state DbSyncState) (si *dbSyncIterator, err error) {
// NewSyncIterator initialises a sync iterator from a syncToken (passed in with the handshake)
func (s *DbStore) NewSyncIterator(state DbSyncState) (si *dbSyncIterator, err error) {
if state.First > state.Last {
return nil, fmt.Errorf("no entries found")
}
si = &dbSyncIterator{
it: self.db.NewIterator(),
it: s.db.NewIterator(),
DbSyncState: state,
}
si.it.Seek(getIndexKey(state.Start))
@ -573,28 +571,28 @@ func (self *DbStore) NewSyncIterator(state DbSyncState) (si *dbSyncIterator, err
// walk the area from Start to Stop and returns items within time interval
// First to Last
func (self *dbSyncIterator) Next() (key Key) {
for self.it.Valid() {
dbkey := self.it.Key()
func (itr *dbSyncIterator) Next() (key Key) {
for itr.it.Valid() {
dbkey := itr.it.Key()
if dbkey[0] != 0 {
break
}
key = Key(make([]byte, len(dbkey)-1))
copy(key[:], dbkey[1:])
if bytes.Compare(key[:], self.Start) <= 0 {
self.it.Next()
if bytes.Compare(key[:], itr.Start) <= 0 {
itr.it.Next()
continue
}
if bytes.Compare(key[:], self.Stop) > 0 {
if bytes.Compare(key[:], itr.Stop) > 0 {
break
}
var index dpaDBIndex
decodeIndex(self.it.Value(), &index)
self.it.Next()
if (index.Idx >= self.First) && (index.Idx < self.Last) {
decodeIndex(itr.it.Value(), &index)
itr.it.Next()
if (index.Idx >= itr.First) && (index.Idx < itr.Last) {
return
}
}
self.it.Release()
itr.it.Release()
return nil
}

View file

@ -62,7 +62,7 @@ type DPA struct {
quitC chan bool
}
// for testing locally
// NewLocalDPA used for testing locally
func NewLocalDPA(datadir string) (*DPA, error) {
hash := MakeHashFunc("SHA256")
@ -90,53 +90,53 @@ func NewDPA(store ChunkStore, params *ChunkerParams) *DPA {
// FS-aware API and httpaccess
// Chunk retrieval blocks on netStore requests with a timeout so reader will
// report error if retrieval of chunks within requested range time out.
func (self *DPA) Retrieve(key Key) LazySectionReader {
return self.Chunker.Join(key, self.retrieveC)
func (dpa *DPA) Retrieve(key Key) LazySectionReader {
return dpa.Chunker.Join(key, dpa.retrieveC)
}
// Public API. Main entry point for document storage directly. Used by the
// FS-aware API and httpaccess
func (self *DPA) Store(data io.Reader, size int64, swg *sync.WaitGroup, wwg *sync.WaitGroup) (key Key, err error) {
return self.Chunker.Split(data, size, self.storeC, swg, wwg)
func (dpa *DPA) Store(data io.Reader, size int64, swg *sync.WaitGroup, wwg *sync.WaitGroup) (key Key, err error) {
return dpa.Chunker.Split(data, size, dpa.storeC, swg, wwg)
}
func (self *DPA) Start() {
self.lock.Lock()
defer self.lock.Unlock()
if self.running {
func (dpa *DPA) Start() {
dpa.lock.Lock()
defer dpa.lock.Unlock()
if dpa.running {
return
}
self.running = true
self.retrieveC = make(chan *Chunk, retrieveChanCapacity)
self.storeC = make(chan *Chunk, storeChanCapacity)
self.quitC = make(chan bool)
self.storeLoop()
self.retrieveLoop()
dpa.running = true
dpa.retrieveC = make(chan *Chunk, retrieveChanCapacity)
dpa.storeC = make(chan *Chunk, storeChanCapacity)
dpa.quitC = make(chan bool)
dpa.storeLoop()
dpa.retrieveLoop()
}
func (self *DPA) Stop() {
self.lock.Lock()
defer self.lock.Unlock()
if !self.running {
func (dpa *DPA) Stop() {
dpa.lock.Lock()
defer dpa.lock.Unlock()
if !dpa.running {
return
}
self.running = false
close(self.quitC)
dpa.running = false
close(dpa.quitC)
}
// retrieveLoop dispatches the parallel chunk retrieval requests received on the
// retrieve channel to its ChunkStore (NetStore or LocalStore)
func (self *DPA) retrieveLoop() {
func (dpa *DPA) retrieveLoop() {
for i := 0; i < maxRetrieveProcesses; i++ {
go self.retrieveWorker()
go dpa.retrieveWorker()
}
log.Trace(fmt.Sprintf("dpa: retrieve loop spawning %v workers", maxRetrieveProcesses))
}
func (self *DPA) retrieveWorker() {
for chunk := range self.retrieveC {
func (dpa *DPA) retrieveWorker() {
for chunk := range dpa.retrieveC {
log.Trace(fmt.Sprintf("dpa: retrieve loop : chunk %v", chunk.Key.Log()))
storedChunk, err := self.Get(chunk.Key)
storedChunk, err := dpa.Get(chunk.Key)
if err == notFound {
log.Trace(fmt.Sprintf("chunk %v not found", chunk.Key.Log()))
} else if err != nil {
@ -148,7 +148,7 @@ func (self *DPA) retrieveWorker() {
close(chunk.C)
select {
case <-self.quitC:
case <-dpa.quitC:
return
default:
}
@ -157,24 +157,24 @@ func (self *DPA) retrieveWorker() {
// storeLoop dispatches the parallel chunk store request processors
// received on the store channel to its ChunkStore (NetStore or LocalStore)
func (self *DPA) storeLoop() {
func (dpa *DPA) storeLoop() {
for i := 0; i < maxStoreProcesses; i++ {
go self.storeWorker()
go dpa.storeWorker()
}
log.Trace(fmt.Sprintf("dpa: store spawning %v workers", maxStoreProcesses))
}
func (self *DPA) storeWorker() {
func (dpa *DPA) storeWorker() {
for chunk := range self.storeC {
self.Put(chunk)
for chunk := range dpa.storeC {
dpa.Put(chunk)
if chunk.wg != nil {
log.Trace(fmt.Sprintf("dpa: store processor %v", chunk.Key.Log()))
chunk.wg.Done()
}
select {
case <-self.quitC:
case <-dpa.quitC:
return
default:
}
@ -198,14 +198,14 @@ func NewDpaChunkStore(localStore, netStore ChunkStore) *dpaChunkStore {
// Get is the entrypoint for local retrieve requests
// waits for response or times out
func (self *dpaChunkStore) Get(key Key) (chunk *Chunk, err error) {
chunk, err = self.netStore.Get(key)
func (s *dpaChunkStore) Get(key Key) (chunk *Chunk, err error) {
chunk, err = s.netStore.Get(key)
// timeout := time.Now().Add(searchTimeout)
if chunk.SData != nil {
log.Trace(fmt.Sprintf("DPA.Get: %v found locally, %d bytes", key.Log(), len(chunk.SData)))
return
}
// TODO: use self.timer time.Timer and reset with defer disableTimer
// TODO: use s.timer time.Timer and reset with defer disableTimer
timer := time.After(searchTimeout)
select {
case <-timer:
@ -218,8 +218,8 @@ func (self *dpaChunkStore) Get(key Key) (chunk *Chunk, err error) {
}
// Put is the entrypoint for local store requests coming from storeLoop
func (self *dpaChunkStore) Put(entry *Chunk) {
chunk, err := self.localStore.Get(entry.Key)
func (s *dpaChunkStore) Put(entry *Chunk) {
chunk, err := s.localStore.Get(entry.Key)
if err != nil {
log.Trace(fmt.Sprintf("DPA.Put: %v new chunk. call netStore.Put", entry.Key.Log()))
chunk = entry
@ -232,10 +232,10 @@ func (self *dpaChunkStore) Put(entry *Chunk) {
return
}
// from this point on the storage logic is the same with network storage requests
log.Trace(fmt.Sprintf("DPA.Put %v: %v", self.n, chunk.Key.Log()))
self.n++
self.netStore.Put(chunk)
log.Trace(fmt.Sprintf("DPA.Put %v: %v", s.n, chunk.Key.Log()))
s.n++
s.netStore.Put(chunk)
}
// Close chunk store
func (self *dpaChunkStore) Close() {}
func (s *dpaChunkStore) Close() {}

View file

@ -34,7 +34,7 @@ type LocalStore struct {
DbStore ChunkStore
}
// This constructor uses MemStore and DbStore as components
// NewLocalStore constructor uses MemStore and DbStore as components
func NewLocalStore(hash SwarmHasher, params *StoreParams) (*LocalStore, error) {
dbStore, err := NewDbStore(params.ChunkDbPath, hash, params.DbCapacity, params.Radius)
if err != nil {
@ -46,48 +46,48 @@ func NewLocalStore(hash SwarmHasher, params *StoreParams) (*LocalStore, error) {
}, nil
}
func (self *LocalStore) CacheCounter() uint64 {
return uint64(self.memStore.(*MemStore).Counter())
func (s *LocalStore) CacheCounter() uint64 {
return uint64(s.memStore.(*MemStore).Counter())
}
func (self *LocalStore) DbCounter() uint64 {
return self.DbStore.(*DbStore).Counter()
func (s *LocalStore) DbCounter() uint64 {
return s.DbStore.(*DbStore).Counter()
}
// LocalStore is itself a chunk store
// unsafe, in that the data is not integrity checked
func (self *LocalStore) Put(chunk *Chunk) {
func (s *LocalStore) Put(chunk *Chunk) {
chunk.dbStored = make(chan bool)
self.memStore.Put(chunk)
s.memStore.Put(chunk)
if chunk.wg != nil {
chunk.wg.Add(1)
}
go func() {
dbStorePutCounter.Inc(1)
self.DbStore.Put(chunk)
s.DbStore.Put(chunk)
if chunk.wg != nil {
chunk.wg.Done()
}
}()
}
// Get(chunk *Chunk) looks up a chunk in the local stores
// Get looks up a chunk in the local stores
// This method is blocking until the chunk is retrieved
// so additional timeout may be needed to wrap this call if
// ChunkStores are remote and can have long latency
func (self *LocalStore) Get(key Key) (chunk *Chunk, err error) {
chunk, err = self.memStore.Get(key)
func (s *LocalStore) Get(key Key) (chunk *Chunk, err error) {
chunk, err = s.memStore.Get(key)
if err == nil {
return
}
chunk, err = self.DbStore.Get(key)
chunk, err = s.DbStore.Get(key)
if err != nil {
return
}
chunk.Size = int64(binary.LittleEndian.Uint64(chunk.SData[0:8]))
self.memStore.Put(chunk)
s.memStore.Put(chunk)
return
}
// Close local store
func (self *LocalStore) Close() {}
func (s *LocalStore) Close() {}

View file

@ -41,7 +41,7 @@ type NetStore struct {
cloud CloudStore
}
// backend engine for cloud store
// CloudStore backend engine
// It can be aggregate dispatching to several parallel implementations:
// bzz/network/forwarder. forwarder or IPFS or IPΞS
type CloudStore interface {
@ -58,7 +58,7 @@ type StoreParams struct {
}
//create params with default values
func NewDefaultStoreParams() (self *StoreParams) {
func NewDefaultStoreParams() (params *StoreParams) {
return &StoreParams{
DbCapacity: defaultDbCapacity,
CacheCapacity: defaultCacheCapacity,
@ -68,11 +68,11 @@ func NewDefaultStoreParams() (self *StoreParams) {
//this can only finally be set after all config options (file, cmd line, env vars)
//have been evaluated
func (self *StoreParams) Init(path string) {
self.ChunkDbPath = filepath.Join(path, "chunks")
func (params *StoreParams) Init(path string) {
params.ChunkDbPath = filepath.Join(path, "chunks")
}
// netstore contructor, takes path argument that is used to initialise dbStore,
// NewNetStore contructs NetStore, takes path argument that is used to initialise dbStore,
// the persistent (disk) storage component of LocalStore
// the second argument is the hive, the connection/logistics manager for the node
func NewNetStore(hash SwarmHasher, lstore *LocalStore, cloud CloudStore, params *StoreParams) *NetStore {
@ -92,8 +92,8 @@ var (
// ~ unsafe put in localdb no check if exists no extra copy no hash validation
// the chunk is forced to propagate (Cloud.Store) even if locally found!
// caller needs to make sure if that is wanted
func (self *NetStore) Put(entry *Chunk) {
self.localStore.Put(entry)
func (s *NetStore) Put(entry *Chunk) {
s.localStore.Put(entry)
// handle deliveries
if entry.Req != nil {
@ -102,19 +102,19 @@ func (self *NetStore) Put(entry *Chunk) {
// that the chunk is has been retrieved
close(entry.Req.C)
// deliver the chunk to requesters upstream
go self.cloud.Deliver(entry)
go s.cloud.Deliver(entry)
} else {
log.Trace(fmt.Sprintf("NetStore.Put: localStore.Put %v stored locally", entry.Key.Log()))
// handle propagating store requests
// go self.cloud.Store(entry)
go self.cloud.Store(entry)
// go s.cloud.Store(entry)
go s.cloud.Store(entry)
}
}
// retrieve logic common for local and network chunk retrieval requests
func (self *NetStore) Get(key Key) (*Chunk, error) {
// Get logic common for local and network chunk retrieval requests
func (s *NetStore) Get(key Key) (*Chunk, error) {
var err error
chunk, err := self.localStore.Get(key)
chunk, err := s.localStore.Get(key)
if err == nil {
if chunk.Req == nil {
log.Trace(fmt.Sprintf("NetStore.Get: %v found locally", key))
@ -127,10 +127,10 @@ func (self *NetStore) Get(key Key) (*Chunk, error) {
// no data and no request status
log.Trace(fmt.Sprintf("NetStore.Get: %v not found locally. open new request", key))
chunk = NewChunk(key, newRequestStatus(key))
self.localStore.memStore.Put(chunk)
go self.cloud.Retrieve(chunk)
s.localStore.memStore.Put(chunk)
go s.cloud.Retrieve(chunk)
return chunk, nil
}
// Close netstore
func (self *NetStore) Close() {}
func (s *NetStore) Close() {}

View file

@ -136,44 +136,44 @@ func NewPyramidChunker(params *ChunkerParams) (self *PyramidChunker) {
return
}
func (self *PyramidChunker) Join(key Key, chunkC chan *Chunk) LazySectionReader {
func (c *PyramidChunker) Join(key Key, chunkC chan *Chunk) LazySectionReader {
return &LazyChunkReader{
key: key,
chunkC: chunkC,
chunkSize: self.chunkSize,
branches: self.branches,
hashSize: self.hashSize,
chunkSize: c.chunkSize,
branches: c.branches,
hashSize: c.hashSize,
}
}
func (self *PyramidChunker) incrementWorkerCount() {
self.workerLock.Lock()
defer self.workerLock.Unlock()
self.workerCount += 1
func (c *PyramidChunker) incrementWorkerCount() {
c.workerLock.Lock()
defer c.workerLock.Unlock()
c.workerCount++
}
func (self *PyramidChunker) getWorkerCount() int64 {
self.workerLock.Lock()
defer self.workerLock.Unlock()
return self.workerCount
func (c *PyramidChunker) getWorkerCount() int64 {
c.workerLock.Lock()
defer c.workerLock.Unlock()
return c.workerCount
}
func (self *PyramidChunker) decrementWorkerCount() {
self.workerLock.Lock()
defer self.workerLock.Unlock()
self.workerCount -= 1
func (c *PyramidChunker) decrementWorkerCount() {
c.workerLock.Lock()
defer c.workerLock.Unlock()
c.workerCount--
}
func (self *PyramidChunker) Split(data io.Reader, size int64, chunkC chan *Chunk, storageWG, processorWG *sync.WaitGroup) (Key, error) {
func (c *PyramidChunker) Split(data io.Reader, size int64, chunkC chan *Chunk, storageWG, processorWG *sync.WaitGroup) (Key, error) {
jobC := make(chan *chunkJob, 2*ChunkProcessors)
wg := &sync.WaitGroup{}
errC := make(chan error)
quitC := make(chan bool)
rootKey := make([]byte, self.hashSize)
chunkLevel := make([][]*TreeEntry, self.branches)
rootKey := make([]byte, c.hashSize)
chunkLevel := make([][]*TreeEntry, c.branches)
wg.Add(1)
go self.prepareChunks(false, chunkLevel, data, rootKey, quitC, wg, jobC, processorWG, chunkC, errC, storageWG)
go c.prepareChunks(false, chunkLevel, data, rootKey, quitC, wg, jobC, processorWG, chunkC, errC, storageWG)
// closes internal error channel if all subprocesses in the workgroup finished
go func() {
@ -204,20 +204,20 @@ func (self *PyramidChunker) Split(data io.Reader, size int64, chunkC chan *Chunk
}
func (self *PyramidChunker) Append(key Key, data io.Reader, chunkC chan *Chunk, storageWG, processorWG *sync.WaitGroup) (Key, error) {
func (c *PyramidChunker) Append(key Key, data io.Reader, chunkC chan *Chunk, storageWG, processorWG *sync.WaitGroup) (Key, error) {
quitC := make(chan bool)
rootKey := make([]byte, self.hashSize)
chunkLevel := make([][]*TreeEntry, self.branches)
rootKey := make([]byte, c.hashSize)
chunkLevel := make([][]*TreeEntry, c.branches)
// Load the right most unfinished tree chunks in every level
self.loadTree(chunkLevel, key, chunkC, quitC)
c.loadTree(chunkLevel, key, chunkC, quitC)
jobC := make(chan *chunkJob, 2*ChunkProcessors)
wg := &sync.WaitGroup{}
errC := make(chan error)
wg.Add(1)
go self.prepareChunks(true, chunkLevel, data, rootKey, quitC, wg, jobC, processorWG, chunkC, errC, storageWG)
go c.prepareChunks(true, chunkLevel, data, rootKey, quitC, wg, jobC, processorWG, chunkC, errC, storageWG)
// closes internal error channel if all subprocesses in the workgroup finished
go func() {
@ -245,10 +245,10 @@ func (self *PyramidChunker) Append(key Key, data io.Reader, chunkC chan *Chunk,
}
func (self *PyramidChunker) processor(id int64, jobC chan *chunkJob, chunkC chan *Chunk, errC chan error, quitC chan bool, swg, wwg *sync.WaitGroup) {
defer self.decrementWorkerCount()
func (c *PyramidChunker) processor(id int64, jobC chan *chunkJob, chunkC chan *Chunk, errC chan error, quitC chan bool, swg, wwg *sync.WaitGroup) {
defer c.decrementWorkerCount()
hasher := self.hashFunc()
hasher := c.hashFunc()
if wwg != nil {
defer wwg.Done()
}
@ -259,14 +259,14 @@ func (self *PyramidChunker) processor(id int64, jobC chan *chunkJob, chunkC chan
if !ok {
return
}
self.processChunk(id, hasher, job, chunkC, swg)
c.processChunk(id, hasher, job, chunkC, swg)
case <-quitC:
return
}
}
}
func (self *PyramidChunker) processChunk(id int64, hasher SwarmHash, job *chunkJob, chunkC chan *Chunk, swg *sync.WaitGroup) {
func (c *PyramidChunker) processChunk(id int64, hasher SwarmHash, job *chunkJob, chunkC chan *Chunk, swg *sync.WaitGroup) {
hasher.ResetWithLength(job.chunk[:8]) // 8 bytes of length
hasher.Write(job.chunk[8:]) // minus 8 []byte length
h := hasher.Sum(nil)
@ -294,7 +294,7 @@ func (self *PyramidChunker) processChunk(id int64, hasher SwarmHash, job *chunkJ
}
}
func (self *PyramidChunker) loadTree(chunkLevel [][]*TreeEntry, key Key, chunkC chan *Chunk, quitC chan bool) error {
func (c *PyramidChunker) loadTree(chunkLevel [][]*TreeEntry, key Key, chunkC chan *Chunk, quitC chan bool) error {
// Get the root chunk to get the total size
chunk := retrieve(key, chunkC, quitC)
if chunk == nil {
@ -302,13 +302,13 @@ func (self *PyramidChunker) loadTree(chunkLevel [][]*TreeEntry, key Key, chunkC
}
//if data size is less than a chunk... add a parent with update as pending
if chunk.Size <= self.chunkSize {
if chunk.Size <= c.chunkSize {
newEntry := &TreeEntry{
level: 0,
branchCount: 1,
subtreeSize: uint64(chunk.Size),
chunk: make([]byte, self.chunkSize+8),
key: make([]byte, self.hashSize),
chunk: make([]byte, c.chunkSize+8),
key: make([]byte, c.hashSize),
index: 0,
updatePending: true,
}
@ -319,13 +319,13 @@ func (self *PyramidChunker) loadTree(chunkLevel [][]*TreeEntry, key Key, chunkC
var treeSize int64
var depth int
treeSize = self.chunkSize
for ; treeSize < chunk.Size; treeSize *= self.branches {
treeSize = c.chunkSize
for ; treeSize < chunk.Size; treeSize *= c.branches {
depth++
}
// Add the root chunk entry
branchCount := int64(len(chunk.SData)-8) / self.hashSize
branchCount := int64(len(chunk.SData)-8) / c.hashSize
newEntry := &TreeEntry{
level: depth - 1,
branchCount: branchCount,
@ -343,14 +343,14 @@ func (self *PyramidChunker) loadTree(chunkLevel [][]*TreeEntry, key Key, chunkC
//TODO(jmozah): instead of loading finished branches and then trim in the end,
//avoid loading them in the first place
for _, ent := range chunkLevel[lvl] {
branchCount = int64(len(ent.chunk)-8) / self.hashSize
branchCount = int64(len(ent.chunk)-8) / c.hashSize
for i := int64(0); i < branchCount; i++ {
key := ent.chunk[8+(i*self.hashSize) : 8+((i+1)*self.hashSize)]
key := ent.chunk[8+(i*c.hashSize) : 8+((i+1)*c.hashSize)]
newChunk := retrieve(key, chunkC, quitC)
if newChunk == nil {
return errLoadingTreeChunk
}
bewBranchCount := int64(len(newChunk.SData)-8) / self.hashSize
bewBranchCount := int64(len(newChunk.SData)-8) / c.hashSize
newEntry := &TreeEntry{
level: lvl - 1,
branchCount: bewBranchCount,
@ -365,7 +365,7 @@ func (self *PyramidChunker) loadTree(chunkLevel [][]*TreeEntry, key Key, chunkC
}
// We need to get only the right most unfinished branch.. so trim all finished branches
if int64(len(chunkLevel[lvl-1])) >= self.branches {
if int64(len(chunkLevel[lvl-1])) >= c.branches {
chunkLevel[lvl-1] = nil
}
}
@ -374,7 +374,7 @@ func (self *PyramidChunker) loadTree(chunkLevel [][]*TreeEntry, key Key, chunkC
return nil
}
func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEntry, data io.Reader, rootKey []byte, quitC chan bool, wg *sync.WaitGroup, jobC chan *chunkJob, processorWG *sync.WaitGroup, chunkC chan *Chunk, errC chan error, storageWG *sync.WaitGroup) {
func (c *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEntry, data io.Reader, rootKey []byte, quitC chan bool, wg *sync.WaitGroup, jobC chan *chunkJob, processorWG *sync.WaitGroup, chunkC chan *Chunk, errC chan error, storageWG *sync.WaitGroup) {
defer wg.Done()
chunkWG := &sync.WaitGroup{}
@ -385,10 +385,10 @@ func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEnt
processorWG.Add(1)
}
self.incrementWorkerCount()
go self.processor(self.workerCount, jobC, chunkC, errC, quitC, storageWG, processorWG)
c.incrementWorkerCount()
go c.processor(c.workerCount, jobC, chunkC, errC, quitC, storageWG, processorWG)
parent := NewTreeEntry(self)
parent := NewTreeEntry(c)
var unFinishedChunk *Chunk
if isAppend && len(chunkLevel[0]) != 0 {
@ -396,7 +396,7 @@ func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEnt
lastIndex := len(chunkLevel[0]) - 1
ent := chunkLevel[0][lastIndex]
if ent.branchCount < self.branches {
if ent.branchCount < c.branches {
parent = &TreeEntry{
level: 0,
branchCount: ent.branchCount,
@ -408,10 +408,10 @@ func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEnt
}
lastBranch := parent.branchCount - 1
lastKey := parent.chunk[8+lastBranch*self.hashSize : 8+(lastBranch+1)*self.hashSize]
lastKey := parent.chunk[8+lastBranch*c.hashSize : 8+(lastBranch+1)*c.hashSize]
unFinishedChunk = retrieve(lastKey, chunkC, quitC)
if unFinishedChunk.Size < self.chunkSize {
if unFinishedChunk.Size < c.chunkSize {
parent.subtreeSize = parent.subtreeSize - uint64(unFinishedChunk.Size)
parent.branchCount = parent.branchCount - 1
@ -425,7 +425,7 @@ func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEnt
var n int
var err error
chunkData := make([]byte, self.chunkSize+8)
chunkData := make([]byte, c.chunkSize+8)
if unFinishedChunk != nil {
copy(chunkData, unFinishedChunk.SData)
n, err = data.Read(chunkData[8+unFinishedChunk.Size:])
@ -441,7 +441,7 @@ func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEnt
if parent.branchCount == 1 {
// Data is exactly one chunk.. pick the last chunk key as root
chunkWG.Wait()
lastChunksKey := parent.chunk[8 : 8+self.hashSize]
lastChunksKey := parent.chunk[8 : 8+c.hashSize]
copy(rootKey, lastChunksKey)
break
}
@ -453,18 +453,18 @@ func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEnt
// Data ended in chunk boundary.. just signal to start bulding tree
if n == 0 {
self.buildTree(isAppend, chunkLevel, parent, chunkWG, jobC, quitC, true, rootKey)
c.buildTree(isAppend, chunkLevel, parent, chunkWG, jobC, quitC, true, rootKey)
break
} else {
pkey := self.enqueueDataChunk(chunkData, uint64(n), parent, chunkWG, jobC, quitC)
pkey := c.enqueueDataChunk(chunkData, uint64(n), parent, chunkWG, jobC, quitC)
// update tree related parent data structures
parent.subtreeSize += uint64(n)
parent.branchCount++
// Data got exhausted... signal to send any parent tree related chunks
if int64(n) < self.chunkSize {
if int64(n) < c.chunkSize {
// only one data chunk .. so dont add any parent chunk
if parent.branchCount <= 1 {
@ -473,39 +473,39 @@ func (self *PyramidChunker) prepareChunks(isAppend bool, chunkLevel [][]*TreeEnt
break
}
self.buildTree(isAppend, chunkLevel, parent, chunkWG, jobC, quitC, true, rootKey)
c.buildTree(isAppend, chunkLevel, parent, chunkWG, jobC, quitC, true, rootKey)
break
}
if parent.branchCount == self.branches {
self.buildTree(isAppend, chunkLevel, parent, chunkWG, jobC, quitC, false, rootKey)
parent = NewTreeEntry(self)
if parent.branchCount == c.branches {
c.buildTree(isAppend, chunkLevel, parent, chunkWG, jobC, quitC, false, rootKey)
parent = NewTreeEntry(c)
}
}
workers := self.getWorkerCount()
workers := c.getWorkerCount()
if int64(len(jobC)) > workers && workers < ChunkProcessors {
if processorWG != nil {
processorWG.Add(1)
}
self.incrementWorkerCount()
go self.processor(self.workerCount, jobC, chunkC, errC, quitC, storageWG, processorWG)
c.incrementWorkerCount()
go c.processor(c.workerCount, jobC, chunkC, errC, quitC, storageWG, processorWG)
}
}
}
func (self *PyramidChunker) buildTree(isAppend bool, chunkLevel [][]*TreeEntry, ent *TreeEntry, chunkWG *sync.WaitGroup, jobC chan *chunkJob, quitC chan bool, last bool, rootKey []byte) {
func (c *PyramidChunker) buildTree(isAppend bool, chunkLevel [][]*TreeEntry, ent *TreeEntry, chunkWG *sync.WaitGroup, jobC chan *chunkJob, quitC chan bool, last bool, rootKey []byte) {
chunkWG.Wait()
self.enqueueTreeChunk(chunkLevel, ent, chunkWG, jobC, quitC, last)
c.enqueueTreeChunk(chunkLevel, ent, chunkWG, jobC, quitC, last)
compress := false
endLvl := self.branches
for lvl := int64(0); lvl < self.branches; lvl++ {
endLvl := c.branches
for lvl := int64(0); lvl < c.branches; lvl++ {
lvlCount := int64(len(chunkLevel[lvl]))
if lvlCount >= self.branches {
if lvlCount >= c.branches {
endLvl = lvl + 1
compress = true
break
@ -527,9 +527,9 @@ func (self *PyramidChunker) buildTree(isAppend bool, chunkLevel [][]*TreeEntry,
return
}
for startCount := int64(0); startCount < lvlCount; startCount += self.branches {
for startCount := int64(0); startCount < lvlCount; startCount += c.branches {
endCount := startCount + self.branches
endCount := startCount + c.branches
if endCount > lvlCount {
endCount = lvlCount
}
@ -545,18 +545,18 @@ func (self *PyramidChunker) buildTree(isAppend bool, chunkLevel [][]*TreeEntry,
level: int(lvl + 1),
branchCount: 0,
subtreeSize: 0,
chunk: make([]byte, self.chunkSize+8),
key: make([]byte, self.hashSize),
chunk: make([]byte, c.chunkSize+8),
key: make([]byte, c.hashSize),
index: int(nextLvlCount),
updatePending: true,
}
for index := int64(0); index < lvlCount; index++ {
updateEntry.branchCount++
updateEntry.subtreeSize += chunkLevel[lvl][index].subtreeSize
copy(updateEntry.chunk[8+(index*self.hashSize):8+((index+1)*self.hashSize)], chunkLevel[lvl][index].key[:self.hashSize])
copy(updateEntry.chunk[8+(index*c.hashSize):8+((index+1)*c.hashSize)], chunkLevel[lvl][index].key[:c.hashSize])
}
self.enqueueTreeChunk(chunkLevel, updateEntry, chunkWG, jobC, quitC, last)
c.enqueueTreeChunk(chunkLevel, updateEntry, chunkWG, jobC, quitC, last)
} else {
@ -565,8 +565,8 @@ func (self *PyramidChunker) buildTree(isAppend bool, chunkLevel [][]*TreeEntry,
level: int(lvl + 1),
branchCount: noOfBranches,
subtreeSize: 0,
chunk: make([]byte, (noOfBranches*self.hashSize)+8),
key: make([]byte, self.hashSize),
chunk: make([]byte, (noOfBranches*c.hashSize)+8),
key: make([]byte, c.hashSize),
index: int(nextLvlCount),
updatePending: false,
}
@ -575,11 +575,11 @@ func (self *PyramidChunker) buildTree(isAppend bool, chunkLevel [][]*TreeEntry,
for i := startCount; i < endCount; i++ {
entry := chunkLevel[lvl][i]
newEntry.subtreeSize += entry.subtreeSize
copy(newEntry.chunk[8+(index*self.hashSize):8+((index+1)*self.hashSize)], entry.key[:self.hashSize])
copy(newEntry.chunk[8+(index*c.hashSize):8+((index+1)*c.hashSize)], entry.key[:c.hashSize])
index++
}
self.enqueueTreeChunk(chunkLevel, newEntry, chunkWG, jobC, quitC, last)
c.enqueueTreeChunk(chunkLevel, newEntry, chunkWG, jobC, quitC, last)
}
@ -595,7 +595,7 @@ func (self *PyramidChunker) buildTree(isAppend bool, chunkLevel [][]*TreeEntry,
}
func (self *PyramidChunker) enqueueTreeChunk(chunkLevel [][]*TreeEntry, ent *TreeEntry, chunkWG *sync.WaitGroup, jobC chan *chunkJob, quitC chan bool, last bool) {
func (c *PyramidChunker) enqueueTreeChunk(chunkLevel [][]*TreeEntry, ent *TreeEntry, chunkWG *sync.WaitGroup, jobC chan *chunkJob, quitC chan bool, last bool) {
if ent != nil {
// wait for data chunks to get over before processing the tree chunk
@ -604,10 +604,10 @@ func (self *PyramidChunker) enqueueTreeChunk(chunkLevel [][]*TreeEntry, ent *Tre
}
binary.LittleEndian.PutUint64(ent.chunk[:8], ent.subtreeSize)
ent.key = make([]byte, self.hashSize)
ent.key = make([]byte, c.hashSize)
chunkWG.Add(1)
select {
case jobC <- &chunkJob{ent.key, ent.chunk[:ent.branchCount*self.hashSize+8], int64(ent.subtreeSize), chunkWG, TreeChunk, 0}:
case jobC <- &chunkJob{ent.key, ent.chunk[:ent.branchCount*c.hashSize+8], int64(ent.subtreeSize), chunkWG, TreeChunk, 0}:
case <-quitC:
}
@ -622,9 +622,9 @@ func (self *PyramidChunker) enqueueTreeChunk(chunkLevel [][]*TreeEntry, ent *Tre
}
}
func (self *PyramidChunker) enqueueDataChunk(chunkData []byte, size uint64, parent *TreeEntry, chunkWG *sync.WaitGroup, jobC chan *chunkJob, quitC chan bool) Key {
func (c *PyramidChunker) enqueueDataChunk(chunkData []byte, size uint64, parent *TreeEntry, chunkWG *sync.WaitGroup, jobC chan *chunkJob, quitC chan bool) Key {
binary.LittleEndian.PutUint64(chunkData[:8], size)
pkey := parent.chunk[8+parent.branchCount*self.hashSize : 8+(parent.branchCount+1)*self.hashSize]
pkey := parent.chunk[8+parent.branchCount*c.hashSize : 8+(parent.branchCount+1)*c.hashSize]
chunkWG.Add(1)
select {

View file

@ -34,7 +34,7 @@ type HashWithLength struct {
hash.Hash
}
func (self *HashWithLength) ResetWithLength(length []byte) {
self.Reset()
self.Write(length)
func (len *HashWithLength) ResetWithLength(length []byte) {
len.Reset()
len.Write(length)
}

View file

@ -243,6 +243,6 @@ type LazyTestSectionReader struct {
*io.SectionReader
}
func (self *LazyTestSectionReader) Size(chan bool) (int64, error) {
return self.SectionReader.Size(), nil
func (r *LazyTestSectionReader) Size(chan bool) (int64, error) {
return r.SectionReader.Size(), nil
}

View file

@ -57,7 +57,7 @@ var (
cacheSizeGauge = metrics.NewRegisteredGauge("storage.db.cache.size", nil)
)
// the swarm stack
// Swarm stack
type Swarm struct {
config *api.Config // swarm configuration
api *api.Api // high level api layer (fs/manifest)
@ -82,15 +82,15 @@ type SwarmAPI struct {
PrvKey *ecdsa.PrivateKey
}
func (self *Swarm) API() *SwarmAPI {
func (s *Swarm) API() *SwarmAPI {
return &SwarmAPI{
Api: self.api,
Backend: self.backend,
PrvKey: self.privateKey,
Api: s.api,
Backend: s.backend,
PrvKey: s.privateKey,
}
}
// creates a new swarm service instance
// NewSwarm creates a new swarm service instance
// implements node.Service
func NewSwarm(ctx *node.ServiceContext, backend chequebook.Backend, config *api.Config) (self *Swarm, err error) {
if bytes.Equal(common.FromHex(config.PublicKey), storage.ZeroKey) {
@ -272,7 +272,7 @@ Start is called when the stack is started
* TODO: start subservices like sword, swear, swarmdns
*/
// implements the node.Service interface
func (self *Swarm) Start(srv *p2p.Server) error {
func (s *Swarm) Start(srv *p2p.Server) error {
startTime = time.Now()
connectPeer := func(url string) error {
node, err := discover.ParseNode(url)
@ -283,119 +283,120 @@ func (self *Swarm) Start(srv *p2p.Server) error {
return nil
}
// set chequebook
if self.swapEnabled {
if s.swapEnabled {
ctx := context.Background() // The initial setup has no deadline.
err := self.SetChequebook(ctx)
err := s.SetChequebook(ctx)
if err != nil {
return fmt.Errorf("Unable to set chequebook for SWAP: %v", err)
}
log.Debug(fmt.Sprintf("-> cheque book for SWAP: %v", self.config.Swap.Chequebook()))
log.Debug(fmt.Sprintf("-> cheque book for SWAP: %v", s.config.Swap.Chequebook()))
} else {
log.Debug(fmt.Sprintf("SWAP disabled: no cheque book set"))
}
log.Warn(fmt.Sprintf("Starting Swarm service"))
self.hive.Start(
s.hive.Start(
discover.PubkeyID(&srv.PrivateKey.PublicKey),
func() string { return srv.ListenAddr },
connectPeer,
)
log.Info(fmt.Sprintf("Swarm network started on bzz address: %v", self.hive.Addr()))
log.Info(fmt.Sprintf("Swarm network started on bzz address: %v", s.hive.Addr()))
self.dpa.Start()
s.dpa.Start()
log.Debug(fmt.Sprintf("Swarm DPA started"))
// start swarm http proxy server
if self.config.Port != "" {
addr := net.JoinHostPort(self.config.ListenAddr, self.config.Port)
go httpapi.StartHttpServer(self.api, &httpapi.ServerConfig{
if s.config.Port != "" {
addr := net.JoinHostPort(s.config.ListenAddr, s.config.Port)
go httpapi.StartHttpServer(s.api, &httpapi.ServerConfig{
Addr: addr,
CorsString: self.corsString,
CorsString: s.corsString,
})
log.Info(fmt.Sprintf("Swarm http proxy started on %v", addr))
if self.corsString != "" {
log.Debug(fmt.Sprintf("Swarm http proxy started with corsdomain: %v", self.corsString))
if s.corsString != "" {
log.Debug(fmt.Sprintf("Swarm http proxy started with corsdomain: %v", s.corsString))
}
}
self.periodicallyUpdateGauges()
s.periodicallyUpdateGauges()
startCounter.Inc(1)
return nil
}
func (self *Swarm) periodicallyUpdateGauges() {
func (s *Swarm) periodicallyUpdateGauges() {
ticker := time.NewTicker(updateGaugesPeriod)
go func() {
for range ticker.C {
self.updateGauges()
s.updateGauges()
}
}()
}
func (self *Swarm) updateGauges() {
dbSizeGauge.Update(int64(self.lstore.DbCounter()))
cacheSizeGauge.Update(int64(self.lstore.CacheCounter()))
func (s *Swarm) updateGauges() {
dbSizeGauge.Update(int64(s.lstore.DbCounter()))
cacheSizeGauge.Update(int64(s.lstore.CacheCounter()))
uptimeGauge.Update(time.Since(startTime).Nanoseconds())
}
// implements the node.Service interface
// Stop implements the node.Service interface
// stops all component services.
func (self *Swarm) Stop() error {
self.dpa.Stop()
err := self.hive.Stop()
if ch := self.config.Swap.Chequebook(); ch != nil {
func (s *Swarm) Stop() error {
s.dpa.Stop()
err := s.hive.Stop()
if ch := s.config.Swap.Chequebook(); ch != nil {
ch.Stop()
ch.Save()
}
if self.lstore != nil {
self.lstore.DbStore.Close()
if s.lstore != nil {
s.lstore.DbStore.Close()
}
self.sfs.Stop()
s.sfs.Stop()
stopCounter.Inc(1)
return err
}
// implements the node.Service interface
func (self *Swarm) Protocols() []p2p.Protocol {
proto, err := network.Bzz(self.depo, self.backend, self.hive, self.dbAccess, self.config.Swap, self.config.SyncParams, self.config.NetworkId)
// Protocols implements the node.Service interface
func (s *Swarm) Protocols() []p2p.Protocol {
proto, err := network.Bzz(s.depo, s.backend, s.hive, s.dbAccess, s.config.Swap, s.config.SyncParams, s.config.NetworkId)
if err != nil {
return nil
}
return []p2p.Protocol{proto}
}
// APIs returns the RPC Api descriptors the Swarm implementation offers
// implements node.Service
// Apis returns the RPC Api descriptors the Swarm implementation offers
func (self *Swarm) APIs() []rpc.API {
func (s *Swarm) APIs() []rpc.API {
return []rpc.API{
// public APIs
{
Namespace: "bzz",
Version: "0.1",
Service: &Info{self.config, chequebook.ContractParams},
Service: &Info{s.config, chequebook.ContractParams},
Public: true,
},
// admin APIs
{
Namespace: "bzz",
Version: "0.1",
Service: api.NewControl(self.api, self.hive),
Service: api.NewControl(s.api, s.hive),
Public: false,
},
{
Namespace: "chequebook",
Version: chequebook.Version,
Service: chequebook.NewApi(self.config.Swap.Chequebook),
Service: chequebook.NewApi(s.config.Swap.Chequebook),
Public: false,
},
{
Namespace: "swarmfs",
Version: fuse.Swarmfs_Version,
Service: self.sfs,
Service: s.sfs,
Public: false,
},
// storage APIs
@ -403,35 +404,35 @@ func (self *Swarm) APIs() []rpc.API {
{
Namespace: "bzz",
Version: "0.1",
Service: api.NewStorage(self.api),
Service: api.NewStorage(s.api),
Public: true,
},
{
Namespace: "bzz",
Version: "0.1",
Service: api.NewFileSystem(self.api),
Service: api.NewFileSystem(s.api),
Public: false,
},
// {Namespace, Version, api.NewAdmin(self), false},
// {Namespace, Version, api.NewAdmin(s), false},
}
}
func (self *Swarm) Api() *api.Api {
return self.api
func (s *Swarm) Api() *api.Api {
return s.api
}
// SetChequebook ensures that the local checquebook is set up on chain.
func (self *Swarm) SetChequebook(ctx context.Context) error {
err := self.config.Swap.SetChequebook(ctx, self.backend, self.config.Path)
func (s *Swarm) SetChequebook(ctx context.Context) error {
err := s.config.Swap.SetChequebook(ctx, s.backend, s.config.Path)
if err != nil {
return err
}
log.Info(fmt.Sprintf("new chequebook set (%v): saving config file, resetting all connections in the hive", self.config.Swap.Contract.Hex()))
self.hive.DropAll()
log.Info(fmt.Sprintf("new chequebook set (%v): saving config file, resetting all connections in the hive", s.config.Swap.Contract.Hex()))
s.hive.DropAll()
return nil
}
// Local swarm without netStore
// NewLocalSwarm without netStore
func NewLocalSwarm(datadir, port string) (self *Swarm, err error) {
prvKey, err := crypto.GenerateKey()
@ -463,6 +464,6 @@ type Info struct {
*chequebook.Params
}
func (self *Info) Info() *Info {
return self
func (info *Info) Info() *Info {
return info
}