swarm/network: new saturation for implementation

This commit is contained in:
Fabio Barone 2019-02-05 19:36:22 -05:00
parent 7c60d0a6a2
commit 6f81df32bb
2 changed files with 125 additions and 33 deletions

View file

@ -626,6 +626,7 @@ func (k *Kademlia) string() string {
// TODO move to separate testing tools file // TODO move to separate testing tools file
type PeerPot struct { type PeerPot struct {
NNSet [][]byte NNSet [][]byte
PeersPerBin []int
} }
// NewPeerPotMap creates a map of pot record of *BzzAddr with keys // NewPeerPotMap creates a map of pot record of *BzzAddr with keys
@ -651,6 +652,7 @@ func NewPeerPotMap(neighbourhoodSize int, addrs [][]byte) map[string]*PeerPot {
// all nn-peers // all nn-peers
var nns [][]byte var nns [][]byte
peersPerBin := make([]int, depth)
// iterate through the neighbours, going from the deepest to the shallowest // iterate through the neighbours, going from the deepest to the shallowest
np.EachNeighbour(a, Pof, func(val pot.Val, po int) bool { np.EachNeighbour(a, Pof, func(val pot.Val, po int) bool {
@ -664,35 +666,54 @@ func NewPeerPotMap(neighbourhoodSize int, addrs [][]byte) map[string]*PeerPot {
// a neighbor is any peer in or deeper than the depth // a neighbor is any peer in or deeper than the depth
if po >= depth { if po >= depth {
nns = append(nns, addr) nns = append(nns, addr)
return true } else {
// for peers < depth, we just count the number in each bin
// the bin is the index of the slice
peersPerBin[po]++
} }
return false return true
}) })
log.Trace(fmt.Sprintf("%x PeerPotMap NNS: %s", addrs[i][:4], LogAddrs(nns))) log.Trace(fmt.Sprintf("%x PeerPotMap NNS: %s, peersPerBin", addrs[i][:4], LogAddrs(nns)))
ppmap[common.Bytes2Hex(a)] = &PeerPot{ ppmap[common.Bytes2Hex(a)] = &PeerPot{
NNSet: nns, NNSet: nns,
PeersPerBin: peersPerBin,
} }
} }
return ppmap return ppmap
} }
// saturation returns the smallest po value in which the node has less than MinBinSize peers // getUnsaturatedBins returns an array of ints; each item in that array corresponds
// if the iterator reaches neighbourhood radius, then the last bin + 1 is returned // to the bin which is unsaturated (number of connections < k.MinBinSize).
func (k *Kademlia) saturation() int { // The bin is considered unsaturated only if there are actual peers in that PeerPot's bin (peersPerBin)
prev := -1 // (if there is no peer for a given bin, then no connection could ever be established;
radius := neighbourhoodRadiusForPot(k.conns, k.NeighbourhoodSize, k.base) // in a God's view this is relevant as no more peers will ever appear on that bin)
func (k *Kademlia) getUnsaturatedBins(peersPerBin []int, depth int) []int {
// depth could be calculated from k but as this is called from `Healthy()`,
// the depth has already been calculated so we can require it as a parameter
connectedPeersPerBin := make([]int, depth)
k.conns.EachBin(k.base, Pof, 0, func(po, size int, f func(func(val pot.Val) bool) bool) bool { k.conns.EachBin(k.base, Pof, 0, func(po, size int, f func(func(val pot.Val) bool) bool) bool {
prev++
if po >= radius { if po >= depth {
return false return false
} }
return prev == po && size >= k.MinBinSize log.Trace("peers per bin", "peersPerBin[po]", peersPerBin[po], "po", po)
}) // if there are actually peers in the PeerPot who can fulfill k.MinBinSize
if prev < 0 { if peersPerBin[po] >= k.MinBinSize {
return 0 log.Trace("connections for po", "po", po, "size", size)
connectedPeersPerBin[po] += size
} }
return prev return true
})
unsaturatedBins := make([]int, 0)
for i := 0; i < len(connectedPeersPerBin); i++ {
if connectedPeersPerBin[i] > 0 && connectedPeersPerBin[i] < k.MinBinSize {
unsaturatedBins = append(unsaturatedBins, i)
}
}
log.Trace("list of unsaturated bins", "unsaturatedBins", unsaturatedBins)
return unsaturatedBins
} }
// knowNeighbours tests if all neighbours in the peerpot // knowNeighbours tests if all neighbours in the peerpot
@ -777,7 +798,9 @@ type Health struct {
ConnectNN bool // whether node is connected to all its neighbours ConnectNN bool // whether node is connected to all its neighbours
CountConnectNN int // amount of neighbours connected to CountConnectNN int // amount of neighbours connected to
MissingConnectNN [][]byte // which neighbours we should have been connected to but we're not MissingConnectNN [][]byte // which neighbours we should have been connected to but we're not
Saturated bool // whether we are connected to all the peers we would have liked to // Saturated: if in all bins < depth number of connections >= MinBinsize or,
// if number of connections < MinBinSize, to the number of available peers in that bin
Saturated bool
Hive string Hive string
} }
@ -798,7 +821,10 @@ func (k *Kademlia) Healthy(pp *PeerPot) *Health {
gotnn, countgotnn, culpritsgotnn := k.connectedNeighbours(pp.NNSet) gotnn, countgotnn, culpritsgotnn := k.connectedNeighbours(pp.NNSet)
knownn, countknownn, culpritsknownn := k.knowNeighbours(pp.NNSet) knownn, countknownn, culpritsknownn := k.knowNeighbours(pp.NNSet)
depth := depthForPot(k.conns, k.NeighbourhoodSize, k.base) depth := depthForPot(k.conns, k.NeighbourhoodSize, k.base)
saturated := k.saturation() < depth // check saturation
unsaturatedBins := k.getUnsaturatedBins(pp.PeersPerBin, depth)
saturated := len(unsaturatedBins) == 0
log.Trace(fmt.Sprintf("%08x: healthy: knowNNs: %v, gotNNs: %v, saturated: %v\n", k.base, knownn, gotnn, saturated)) log.Trace(fmt.Sprintf("%08x: healthy: knowNNs: %v, gotNNs: %v, saturated: %v\n", k.base, knownn, gotnn, saturated))
return &Health{ return &Health{
KnowNN: knownn, KnowNN: knownn,
@ -811,3 +837,13 @@ func (k *Kademlia) Healthy(pp *PeerPot) *Health {
Hive: k.string(), Hive: k.string(),
} }
} }
// IsHealthyStrict return the strict interpretation of `Healthy` given a `Health` struct
// definition of strict health: all conditions must be true:
// - we at least know one peer
// - we know all neighbors
// - we are connected to all known neighbors
// - it is saturated
func (h *Health) IsHealthyStrict() bool {
return h.KnowNN && h.ConnectNN && h.CountKnowNN > 0 && h.Saturated
}

View file

@ -176,60 +176,116 @@ func TestHealthStrict(t *testing.T) {
// no peers // no peers
// unhealthy (and lonely) // unhealthy (and lonely)
tk := newTestKademlia(t, "11111111") tk := newTestKademlia(t, "11111111")
tk.checkHealth(false, false) tk.checkHealth(false)
// know one peer but not connected // know one peer but not connected
// unhealthy // unhealthy
tk.Register("11100000") tk.Register("11100000")
tk.checkHealth(false, false) tk.checkHealth(false)
// know one peer and connected // know one peer and connected
// healthy // unhealthy: not saturated
tk.On("11100000") tk.On("11100000")
tk.checkHealth(true, false) tk.checkHealth(true)
// know two peers, only one connected // know two peers, only one connected
// unhealthy // unhealthy
tk.Register("11111100") tk.Register("11111100")
tk.checkHealth(false, false) tk.checkHealth(false)
// know two peers and connected to both // know two peers and connected to both
// healthy // healthy
tk.On("11111100") tk.On("11111100")
tk.checkHealth(true, false) tk.checkHealth(true)
// know three peers, connected to the two deepest // know three peers, connected to the two deepest
// healthy // healthy
tk.Register("00000000") tk.Register("00000000")
tk.checkHealth(true, false) tk.checkHealth(true)
// know three peers, connected to all three // know three peers, connected to all three
// healthy // healthy
tk.On("00000000") tk.On("00000000")
tk.checkHealth(true, false) tk.checkHealth(true)
// add fourth peer deeper than current depth // add fourth peer deeper than current depth
// unhealthy // unhealthy
tk.Register("11110000") tk.Register("11110000")
tk.checkHealth(false, false) tk.checkHealth(false)
// connected to three deepest peers // connected to three deepest peers
// healthy // healthy
tk.On("11110000") tk.On("11110000")
tk.checkHealth(true, false) tk.checkHealth(true)
// add additional peer in same bin as deepest peer // add additional peer in same bin as deepest peer
// unhealthy // unhealthy
tk.Register("11111101") tk.Register("11111101")
tk.checkHealth(false, false) tk.checkHealth(false)
// four deepest of five peers connected // four deepest of five peers connected
// healthy // healthy
tk.On("11111101") tk.On("11111101")
tk.checkHealth(true, false) tk.checkHealth(true)
// add additional peer in bin 0
// unhealthy: unsaturated bin 0, 2 known but 1 connected
tk.Register("00000001")
tk.checkHealth(false)
// Connect second in bin 0
// healthy
tk.On("00000001")
tk.checkHealth(true)
// add peer in bin 1
// healthy, as it is known but not connected
tk.Register("10000000")
tk.checkHealth(true)
// connect peer in bin 1
// depth change, is now 1
// healthy, 1 peer in bin 1 known and connected
tk.On("10000000")
tk.checkHealth(true)
// add second peer in bin 1
// unhealthy, as it is known but not connected
tk.Register("10000001")
tk.checkHealth(false)
// connect second peer in bin 1
// healthy,
tk.On("10000001")
tk.checkHealth(true)
// connect third peer in bin 1
// healthy,
tk.On("10000011")
tk.checkHealth(true)
// add peer in bin 2
// healthy, no depth change
tk.Register("11000000")
tk.checkHealth(true)
// connect peer in bin 2
// depth change - as we already have peers in bin 3 and 4,
// we have contiguous bins, no bin < po 5 is empty -> depth 5
// healthy, every bin < depth has the max available peers,
// even if they are < MinBinSize
tk.On("11000000")
tk.checkHealth(true)
// add peer in bin 2
// unhealthy, peer bin is below depth 5 but
// has more available peers (2) than connected ones (1)
// --> unsaturated
tk.Register("11000011")
tk.checkHealth(false)
} }
func (tk *testKademlia) checkHealth(expectHealthy bool, expectSaturation bool) { func (tk *testKademlia) checkHealth(expectHealthy bool) {
tk.t.Helper() tk.t.Helper()
kid := common.Bytes2Hex(tk.BaseAddr()) kid := common.Bytes2Hex(tk.BaseAddr())
addrs := [][]byte{tk.BaseAddr()} addrs := [][]byte{tk.BaseAddr()}
@ -245,7 +301,7 @@ func (tk *testKademlia) checkHealth(expectHealthy bool, expectSaturation bool) {
// - we at least know one peer // - we at least know one peer
// - we know all neighbors // - we know all neighbors
// - we are connected to all known neighbors // - we are connected to all known neighbors
health := healthParams.KnowNN && healthParams.ConnectNN && healthParams.CountKnowNN > 0 health := healthParams.IsHealthyStrict()
if expectHealthy != health { if expectHealthy != health {
tk.t.Fatalf("expected kademlia health %v, is %v\n%v", expectHealthy, health, tk.String()) tk.t.Fatalf("expected kademlia health %v, is %v\n%v", expectHealthy, health, tk.String())
} }