mirror of
https://github.com/ethereum/go-ethereum.git
synced 2026-08-20 10:52:25 +00:00
p2p/discutil: remove context from iterator interface
This commit is contained in:
parent
abc7dd8644
commit
5ee78b76b6
2 changed files with 129 additions and 157 deletions
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@ -18,7 +18,6 @@
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package discutil
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import (
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"context"
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"sync"
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"time"
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@ -27,33 +26,24 @@ import (
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// Iterator represents a sequence of nodes.
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//
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// The NextNode method returns the next node in the sequence. It may return nil when no
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// node could be found before the context was canceled. The isLive return value reports
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// The Next method returns the next node in the sequence. The isLive return value reports
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// whether the iterator is still open. Once closed, iterators should keep returning (nil, false).
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//
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// Implementations of NextNode are not required to be safe for concurrent use. It is
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// therefore unsafe to call NextNode from multiple goroutines at the same time.
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//
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// Close may be called concurrently with NextNode, and interrupts NextNode.
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// Close may be called concurrently with Next and Node, and interrupts Next if it is blocked.
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type Iterator interface {
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NextNode(ctx context.Context) (n *enode.Node, isLive bool)
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Close()
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Next() bool // moves to next node
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Node() *enode.Node // returns current node
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Close() // ends the iterator
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}
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// ReadNodes reads at most n nodes from the given iterator. The return value contains no
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// duplicates and no nil values. To prevent looping indefinitely for small repeating node
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// sequences, this function calls NextNode at most n times.
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func ReadNodes(ctx context.Context, it Iterator, n int) []*enode.Node {
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func ReadNodes(it Iterator, n int) []*enode.Node {
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seen := make(map[enode.ID]*enode.Node, n)
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for i := 0; i < n && ctx.Err() == nil; i++ {
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node, isLive := it.NextNode(ctx)
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if !isLive {
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break
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}
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if node == nil {
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continue
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}
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for i := 0; i < n && it.Next(); i++ {
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// Remove duplicates, keeping the node with higher seq.
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node := it.Node()
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prevNode, ok := seen[node.ID()]
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if ok && prevNode.Seq() > node.Seq() {
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continue
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@ -74,20 +64,17 @@ func Filter(it Iterator, check func(*enode.Node) bool) Iterator {
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}
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type filterIter struct {
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it Iterator
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Iterator
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check func(*enode.Node) bool
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}
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func (f *filterIter) NextNode(ctx context.Context) (*enode.Node, bool) {
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n, isLive := f.it.NextNode(ctx)
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if n != nil && !f.check(n) {
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n = nil
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func (f *filterIter) Next() bool {
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for f.Iterator.Next() {
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if f.check(f.Node()) {
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return true
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}
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}
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return n, isLive
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}
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func (f *filterIter) Close() {
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f.it.Close()
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return false
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}
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// FairMix aggregates multiple node iterators. The mixer itself is an iterator which ends
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@ -101,13 +88,13 @@ func (f *filterIter) Close() {
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//
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// It's safe to call AddSource and Close concurrently with NextNode.
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type FairMix struct {
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ctx context.Context
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cancelCtx func()
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wg sync.WaitGroup
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fromAny chan *enode.Node
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timeout time.Duration
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wg sync.WaitGroup
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fromAny chan *enode.Node
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timeout time.Duration
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cur *enode.Node
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mu sync.Mutex
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closed chan struct{}
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sources []*mixSource
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last int
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}
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@ -124,12 +111,10 @@ type mixSource struct {
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// is deciding how long you'd want to wait for a node on average. Passing a negative
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// timeout disables the mixer completely fair.
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func NewFairMix(timeout time.Duration) *FairMix {
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ctx, cancel := context.WithCancel(context.Background())
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m := &FairMix{
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ctx: ctx,
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cancelCtx: cancel,
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fromAny: make(chan *enode.Node),
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timeout: timeout,
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fromAny: make(chan *enode.Node),
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closed: make(chan struct{}),
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timeout: timeout,
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}
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return m
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}
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@ -139,32 +124,38 @@ func (m *FairMix) AddSource(it Iterator) {
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m.mu.Lock()
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defer m.mu.Unlock()
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if !m.isLive() {
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if m.closed == nil {
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return
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}
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m.wg.Add(1)
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source := &mixSource{it, make(chan *enode.Node)}
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m.sources = append(m.sources, source)
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go m.runSource(source)
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go m.runSource(m.closed, source)
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}
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// Close shuts down the mixer. Calling this is required to release resources
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// associated with the mixer.
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// Close shuts down the mixer and all current sources.
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// Calling this is required to release resources associated with the mixer.
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func (m *FairMix) Close() {
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m.mu.Lock()
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defer m.mu.Unlock()
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if !m.isLive() {
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if m.closed == nil {
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return
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}
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m.cancelCtx()
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for _, s := range m.sources {
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s.it.Close()
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}
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close(m.closed)
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m.wg.Wait()
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m.sources = nil
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close(m.fromAny)
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m.sources = nil
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m.closed = nil
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}
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// NextNode returns a node from a random source.
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func (m *FairMix) NextNode(ctx context.Context) (*enode.Node, bool) {
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func (m *FairMix) Next() bool {
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m.cur = nil
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var timeout <-chan time.Time
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if m.timeout >= 0 {
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timer := time.NewTimer(m.timeout)
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@ -174,37 +165,35 @@ func (m *FairMix) NextNode(ctx context.Context) (*enode.Node, bool) {
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for {
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source := m.pickSource()
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if source == nil {
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return m.nextFromAny(ctx)
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return m.nextFromAny()
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}
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select {
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case n, ok := <-source.next:
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if !ok {
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// This source has ended.
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m.deleteSource(source)
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continue
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if ok {
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m.cur = n
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return true
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}
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return n, m.isLive()
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// This source has ended.
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m.deleteSource(source)
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case <-timeout:
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return m.nextFromAny(ctx)
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case <-ctx.Done():
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return nil, m.isLive()
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return m.nextFromAny()
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}
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}
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}
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// Node returns the current node.
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func (m *FairMix) Node() *enode.Node {
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return m.cur
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}
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// nextFromAny is used when there are no sources or when the 'fair' choice
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// doesn't turn up a node quickly enough.
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func (m *FairMix) nextFromAny(ctx context.Context) (*enode.Node, bool) {
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select {
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case n, ok := <-m.fromAny:
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return n, ok
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case <-ctx.Done():
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return nil, m.isLive()
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func (m *FairMix) nextFromAny() bool {
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n, ok := <-m.fromAny
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if ok {
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m.cur = n
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}
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}
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func (m *FairMix) isLive() bool {
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return m.ctx.Err() == nil
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return ok
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}
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// pickSource chooses the next source to read from, cycling through them in order.
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@ -235,18 +224,15 @@ func (m *FairMix) deleteSource(s *mixSource) {
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}
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// runSource reads a single source in a loop.
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func (m *FairMix) runSource(s *mixSource) {
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func (m *FairMix) runSource(closed chan struct{}, s *mixSource) {
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defer m.wg.Done()
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defer close(s.next)
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for {
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n, isLive := s.it.NextNode(m.ctx)
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if !isLive {
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return
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}
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for s.it.Next() {
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n := s.it.Node()
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select {
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case s.next <- n:
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case m.fromAny <- n:
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case <-m.ctx.Done():
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case <-closed:
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return
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}
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}
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@ -17,9 +17,10 @@
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package discutil
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import (
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"context"
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"encoding/binary"
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"runtime"
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"sync"
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"sync/atomic"
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"testing"
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"time"
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@ -28,34 +29,24 @@ import (
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)
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func TestReadNodes(t *testing.T) {
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iter := new(genIter)
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nodes := ReadNodes(context.Background(), iter, 10)
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nodes := ReadNodes(new(genIter), 10)
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checkNodes(t, nodes, 10)
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}
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// This test verifies that ReadNodes checks for context cancelation.
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func TestReadNodesCancel(t *testing.T) {
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iter := &blockedIter{new(genIter), nil}
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ctx, cancel := context.WithCancel(context.Background())
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cancel()
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nodes := ReadNodes(ctx, iter, 10)
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checkNodes(t, nodes, 0)
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}
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// // This test checks that ReadNodes terminates when reading N nodes from an iterator
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// // which returns less than N nodes in an endless cycle.
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// This test checks that ReadNodes terminates when reading N nodes from an iterator
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// which returns less than N nodes in an endless cycle.
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func TestReadNodesCycle(t *testing.T) {
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iter := &callCountIter{
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child: cycleNodes{
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Iterator: cycleNodes(
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testNode(0, 0),
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testNode(1, 0),
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testNode(2, 0),
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},
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),
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}
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nodes := ReadNodes(context.Background(), iter, 10)
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nodes := ReadNodes(iter, 10)
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checkNodes(t, nodes, 3)
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if iter.count != 10 {
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t.Fatalf("%d calls to NextNode, want %d", iter.count, 100)
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t.Fatalf("%d calls to Next, want %d", iter.count, 100)
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}
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}
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@ -93,9 +84,7 @@ func testMixerFairness(t *testing.T) {
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mix.AddSource(&genIter{index: 3})
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defer mix.Close()
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ctx, cancel := context.WithTimeout(context.Background(), 2*time.Second)
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defer cancel()
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nodes := ReadNodes(ctx, mix, 500)
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nodes := ReadNodes(mix, 500)
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checkNodes(t, nodes, 500)
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// Verify that the nodes slice contains an approximately equal number of nodes
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@ -109,16 +98,14 @@ func testMixerFairness(t *testing.T) {
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}
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// This test checks that FairMix falls back to an alternative source when
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// the 'fair' choice doesn't return a node within the context's deadline.
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// the 'fair' choice doesn't return a node within the timeout.
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func TestFairMixNextFromAll(t *testing.T) {
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mix := NewFairMix(1 * time.Millisecond)
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mix.AddSource(&genIter{index: 1})
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mix.AddSource(&blockedIter{child: &genIter{index: 2}})
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mix.AddSource(cycleNodes())
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defer mix.Close()
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ctx, cancel := context.WithTimeout(context.Background(), 2*time.Second)
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defer cancel()
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nodes := ReadNodes(ctx, mix, 500)
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nodes := ReadNodes(mix, 500)
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checkNodes(t, nodes, 500)
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d := idPrefixDistribution(nodes)
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@ -127,7 +114,7 @@ func TestFairMixNextFromAll(t *testing.T) {
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}
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}
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// This test ensures FairMix works for NextNode with no sources.
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// This test ensures FairMix works for Next with no sources.
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func TestFairMixEmpty(t *testing.T) {
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var (
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mix = NewFairMix(1 * time.Second)
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@ -137,31 +124,25 @@ func TestFairMixEmpty(t *testing.T) {
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defer mix.Close()
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go func() {
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n, _ := mix.NextNode(context.Background())
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ch <- n
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mix.Next()
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ch <- mix.Node()
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}()
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mix.AddSource(cycleNodes{testN})
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mix.AddSource(cycleNodes(testN))
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if n := <-ch; n != testN {
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t.Errorf("got wrong node: %v", n)
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}
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}
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// This test checks closing a source while NextNode runs.
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// This test checks closing a source while Next runs.
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func TestFairMixRemoveSource(t *testing.T) {
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mix := NewFairMix(1 * time.Second)
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source := &blockedIter{child: &genIter{index: 1}, unblock: make(chan struct{})}
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close(source.unblock) // first NextNode call will return (nil, false)
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source := cycleNodes()
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source.Close()
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mix.AddSource(source)
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ctx, cancel := context.WithTimeout(context.Background(), 100*time.Millisecond)
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defer cancel()
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n, isLive := mix.NextNode(ctx)
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if n != nil {
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t.Fatal("NextNode returned a node but shouldn't")
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}
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if !isLive {
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t.Fatal("NextNode returned isLive == false")
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if mix.Next() {
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t.Fatal("Next should've returned false")
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}
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if len(mix.sources) != 0 {
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t.Fatalf("have %d sources, want zero", len(mix.sources))
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@ -176,14 +157,14 @@ func TestFairMixClose(t *testing.T) {
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func testMixerClose(t *testing.T) {
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mix := NewFairMix(-1)
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mix.AddSource(cycleNodes{})
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mix.AddSource(cycleNodes{})
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mix.AddSource(cycleNodes())
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mix.AddSource(cycleNodes())
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done := make(chan struct{})
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go func() {
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defer close(done)
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if _, isLive := mix.NextNode(context.Background()); isLive {
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t.Error("NextNode returned isLive == true")
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if mix.Next() {
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t.Error("Next returned true")
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}
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}()
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// This call is supposed to make it more likely that NextNode is
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@ -194,7 +175,7 @@ func testMixerClose(t *testing.T) {
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select {
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case <-done:
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case <-time.After(3 * time.Second):
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t.Fatal("NextNode didn't unblock on Close")
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t.Fatal("Next didn't unblock on Close")
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}
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mix.Close() // shouldn't crash
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@ -218,16 +199,28 @@ func approxEqual(x, y, ε int) bool {
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// genIter creates fake nodes with numbered IDs based on 'index' and 'gen'
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type genIter struct {
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node *enode.Node
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index, gen uint32
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}
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func (s *genIter) NextNode(ctx context.Context) (*enode.Node, bool) {
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n := testNode(uint64(s.index)<<32|uint64(s.gen), 0)
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func (s *genIter) Next() bool {
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index := atomic.LoadUint32(&s.index)
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if index == ^uint32(0) {
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s.node = nil
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return false
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}
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s.node = testNode(uint64(index)<<32|uint64(s.gen), 0)
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s.gen++
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return n, true
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return true
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}
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func (s *genIter) Close() { panic("called") }
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func (s *genIter) Node() *enode.Node {
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return s.node
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}
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func (s *genIter) Close() {
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s.index = ^uint32(0)
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}
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func testNode(id, seq uint64) *enode.Node {
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var nodeID enode.ID
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@ -237,53 +230,46 @@ func testNode(id, seq uint64) *enode.Node {
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return enode.SignNull(r, nodeID)
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}
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// blockedIter delays NextNodes until the unblock channel receives a value.
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type blockedIter struct {
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child Iterator
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unblock chan struct{}
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// cycleNodes is an interator that cycles through the given slice.
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func cycleNodes(nodes ...*enode.Node) Iterator {
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return &cycleIter{nodes: nodes}
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}
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func (s *blockedIter) NextNode(ctx context.Context) (*enode.Node, bool) {
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select {
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case _, ok := <-s.unblock:
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if !ok {
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return nil, false
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}
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return s.child.NextNode(ctx)
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case <-ctx.Done():
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return nil, true
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type cycleIter struct {
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cur *enode.Node
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mu sync.Mutex
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index int
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nodes []*enode.Node
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}
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func (s *cycleIter) Next() bool {
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s.mu.Lock()
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defer s.mu.Unlock()
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if len(s.nodes) == 0 {
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return false
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}
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s.cur = s.nodes[s.index]
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s.index = (s.index + 1) % len(s.nodes)
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return true
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}
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func (s *blockedIter) Close() { panic("called") }
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// cycleNodes is a never-ending interator that cycles through the given slice.
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type cycleNodes []*enode.Node
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func (s cycleNodes) NextNode(ctx context.Context) (*enode.Node, bool) {
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if len(s) == 0 {
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<-ctx.Done()
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return nil, true
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}
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n := s[0]
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copy(s[:], s[1:])
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s[len(s)-1] = n
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||||
return n, true
|
||||
func (s *cycleIter) Node() *enode.Node {
|
||||
return s.nodes[s.index]
|
||||
}
|
||||
|
||||
func (s cycleNodes) Close() { panic("called") }
|
||||
func (s *cycleIter) Close() {
|
||||
s.mu.Lock()
|
||||
s.nodes = nil
|
||||
s.mu.Unlock()
|
||||
}
|
||||
|
||||
// callCountIter counts calls to NextNode.
|
||||
type callCountIter struct {
|
||||
child Iterator
|
||||
Iterator
|
||||
count int
|
||||
}
|
||||
|
||||
func (it *callCountIter) NextNode(ctx context.Context) (*enode.Node, bool) {
|
||||
func (it *callCountIter) Next() bool {
|
||||
it.count++
|
||||
return it.child.NextNode(ctx)
|
||||
}
|
||||
|
||||
func (it *callCountIter) Close() {
|
||||
it.child.Close()
|
||||
return it.Iterator.Next()
|
||||
}
|
||||
|
|
|
|||
Loading…
Reference in a new issue