c2003ed63b
This change - implements concurrent LES request serving even for a single peer. - replaces the request cost estimation method with a cost table based on benchmarks which gives much more consistent results. Until now the allowed number of light peers was just a guess which probably contributed a lot to the fluctuating quality of available service. Everything related to request cost is implemented in a single object, the 'cost tracker'. It uses a fixed cost table with a global 'correction factor'. Benchmark code is included and can be run at any time to adapt costs to low-level implementation changes. - reimplements flowcontrol.ClientManager in a cleaner and more efficient way, with added capabilities: There is now control over bandwidth, which allows using the flow control parameters for client prioritization. Target utilization over 100 percent is now supported to model concurrent request processing. Total serving bandwidth is reduced during block processing to prevent database contention. - implements an RPC API for the LES servers allowing server operators to assign priority bandwidth to certain clients and change prioritized status even while the client is connected. The new API is meant for cases where server operators charge for LES using an off-protocol mechanism. - adds a unit test for the new client manager. - adds an end-to-end test using the network simulator that tests bandwidth control functions through the new API.
186 lines
4.2 KiB
Go
186 lines
4.2 KiB
Go
// Copyright 2017 The go-ethereum Authors
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// This file is part of the go-ethereum library.
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//
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// The go-ethereum library is free software: you can redistribute it and/or modify
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// it under the terms of the GNU Lesser General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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//
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// The go-ethereum library is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU Lesser General Public License for more details.
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//
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// You should have received a copy of the GNU Lesser General Public License
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// along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
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package les
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import (
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"math/rand"
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"sync"
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"testing"
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"time"
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"github.com/ethereum/go-ethereum/common/mclock"
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)
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type testDistReq struct {
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cost, procTime, order uint64
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canSendTo map[*testDistPeer]struct{}
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}
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func (r *testDistReq) getCost(dp distPeer) uint64 {
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return r.cost
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}
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func (r *testDistReq) canSend(dp distPeer) bool {
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_, ok := r.canSendTo[dp.(*testDistPeer)]
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return ok
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}
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func (r *testDistReq) request(dp distPeer) func() {
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return func() { dp.(*testDistPeer).send(r) }
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}
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type testDistPeer struct {
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sent []*testDistReq
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sumCost uint64
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lock sync.RWMutex
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}
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func (p *testDistPeer) send(r *testDistReq) {
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p.lock.Lock()
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defer p.lock.Unlock()
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p.sent = append(p.sent, r)
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p.sumCost += r.cost
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}
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func (p *testDistPeer) worker(t *testing.T, checkOrder bool, stop chan struct{}) {
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var last uint64
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for {
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wait := time.Millisecond
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p.lock.Lock()
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if len(p.sent) > 0 {
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rq := p.sent[0]
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wait = time.Duration(rq.procTime)
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p.sumCost -= rq.cost
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if checkOrder {
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if rq.order <= last {
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t.Errorf("Requests processed in wrong order")
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}
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last = rq.order
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}
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p.sent = p.sent[1:]
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}
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p.lock.Unlock()
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select {
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case <-stop:
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return
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case <-time.After(wait):
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}
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}
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}
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const (
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testDistBufLimit = 10000000
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testDistMaxCost = 1000000
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testDistPeerCount = 5
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testDistReqCount = 5000
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testDistMaxResendCount = 3
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)
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func (p *testDistPeer) waitBefore(cost uint64) (time.Duration, float64) {
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p.lock.RLock()
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sumCost := p.sumCost + cost
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p.lock.RUnlock()
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if sumCost < testDistBufLimit {
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return 0, float64(testDistBufLimit-sumCost) / float64(testDistBufLimit)
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}
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return time.Duration(sumCost - testDistBufLimit), 0
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}
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func (p *testDistPeer) canQueue() bool {
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return true
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}
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func (p *testDistPeer) queueSend(f func()) {
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f()
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}
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func TestRequestDistributor(t *testing.T) {
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testRequestDistributor(t, false)
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}
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func TestRequestDistributorResend(t *testing.T) {
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testRequestDistributor(t, true)
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}
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func testRequestDistributor(t *testing.T, resend bool) {
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stop := make(chan struct{})
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defer close(stop)
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dist := newRequestDistributor(nil, stop, &mclock.System{})
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var peers [testDistPeerCount]*testDistPeer
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for i := range peers {
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peers[i] = &testDistPeer{}
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go peers[i].worker(t, !resend, stop)
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dist.registerTestPeer(peers[i])
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}
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var wg sync.WaitGroup
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for i := 1; i <= testDistReqCount; i++ {
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cost := uint64(rand.Int63n(testDistMaxCost))
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procTime := uint64(rand.Int63n(int64(cost + 1)))
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rq := &testDistReq{
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cost: cost,
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procTime: procTime,
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order: uint64(i),
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canSendTo: make(map[*testDistPeer]struct{}),
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}
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for _, peer := range peers {
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if rand.Intn(2) != 0 {
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rq.canSendTo[peer] = struct{}{}
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}
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}
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wg.Add(1)
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req := &distReq{
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getCost: rq.getCost,
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canSend: rq.canSend,
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request: rq.request,
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}
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chn := dist.queue(req)
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go func() {
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cnt := 1
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if resend && len(rq.canSendTo) != 0 {
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cnt = rand.Intn(testDistMaxResendCount) + 1
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}
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for i := 0; i < cnt; i++ {
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if i != 0 {
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chn = dist.queue(req)
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}
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p := <-chn
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if p == nil {
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if len(rq.canSendTo) != 0 {
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t.Errorf("Request that could have been sent was dropped")
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}
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} else {
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peer := p.(*testDistPeer)
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if _, ok := rq.canSendTo[peer]; !ok {
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t.Errorf("Request sent to wrong peer")
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}
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}
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}
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wg.Done()
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}()
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if rand.Intn(1000) == 0 {
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time.Sleep(time.Duration(rand.Intn(5000000)))
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}
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}
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wg.Wait()
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}
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