452 lines
15 KiB
Rust
452 lines
15 KiB
Rust
//! Behavioral tests for the cluster registry.
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//!
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//! Tests gossip-propagated naming via LWW-Register CRDT, using the shared
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//! `TestCluster` harness from `common`.
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mod common;
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use swactor::actor::ActorAddress;
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use common::{test_config, TestCluster};
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use distribution::node::DistributedNode;
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use distribution::registry::{ClusterRegistry, RegistryConfig, RegistryEntry, RegistryEvent};
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use distribution::types::NodeId;
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// ─── Test 1: register and resolve ───────────────────────────────────────────
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#[test]
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fn register_and_resolve() {
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let mut node = DistributedNode::new(test_config());
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let actor = ActorAddress::new_random();
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let node_id = node.node_id();
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node.register_name("my-actor".into(), actor);
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let result = node.resolve_name("my-actor");
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assert_eq!(result, Some((actor, node_id)));
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}
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// ─── Test 2: unregistered name returns None ─────────────────────────────────
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#[test]
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fn unregistered_name_returns_none() {
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let node = DistributedNode::new(test_config());
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assert_eq!(node.resolve_name("nonexistent"), None);
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}
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// ─── Test 3: unregister tombstones name ─────────────────────────────────────
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#[test]
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fn unregister_tombstones_name() {
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let mut node = DistributedNode::new(test_config());
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let actor = ActorAddress::new_random();
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node.register_name("service".into(), actor);
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assert!(node.resolve_name("service").is_some());
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node.unregister_name("service");
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assert_eq!(node.resolve_name("service"), None);
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}
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// ─── Test 4: re-registration updates binding ────────────────────────────────
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#[test]
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fn re_registration_updates_binding() {
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let mut node = DistributedNode::new(test_config());
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let actor_a = ActorAddress::new_random();
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let actor_b = ActorAddress::new_random();
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let node_id = node.node_id();
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node.register_name("foo".into(), actor_a);
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assert_eq!(node.resolve_name("foo"), Some((actor_a, node_id)));
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node.register_name("foo".into(), actor_b);
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assert_eq!(node.resolve_name("foo"), Some((actor_b, node_id)));
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}
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// ─── Test 5: LWW conflict — higher timestamp wins ──────────────────────────
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#[test]
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fn lww_conflict_higher_timestamp_wins() {
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let mut reg = ClusterRegistry::new(RegistryConfig::default());
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let addr_old = ActorAddress::new_random();
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let addr_new = ActorAddress::new_random();
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let node_id = NodeId([1; 32]);
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let old_entry = RegistryEntry {
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name: "svc".into(),
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actor_addr: addr_old,
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node_id,
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timestamp: 1,
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generation: 1,
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tombstone: false,
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};
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let new_entry = RegistryEntry {
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name: "svc".into(),
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actor_addr: addr_new,
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node_id,
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timestamp: 5,
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generation: 2,
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tombstone: false,
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};
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// Merge in either order — newer timestamp wins.
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reg.merge(new_entry.clone());
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reg.merge(old_entry.clone());
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assert_eq!(reg.resolve("svc"), Some((addr_new, node_id)));
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}
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// ─── Test 6: LWW tiebreak — generation then node_id ────────────────────────
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#[test]
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fn lww_tiebreak_generation_then_node_id() {
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let mut reg = ClusterRegistry::new(RegistryConfig::default());
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let addr_a = ActorAddress::new_random();
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let addr_b = ActorAddress::new_random();
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let node_low = NodeId([0; 32]);
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let node_high = NodeId([255; 32]);
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// Same timestamp, same generation — node_id breaks the tie.
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let entry_low = RegistryEntry {
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name: "x".into(),
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actor_addr: addr_a,
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node_id: node_low,
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timestamp: 10,
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generation: 1,
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tombstone: false,
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};
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let entry_high = RegistryEntry {
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name: "x".into(),
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actor_addr: addr_b,
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node_id: node_high,
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timestamp: 10,
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generation: 1,
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tombstone: false,
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};
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reg.merge(entry_low);
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reg.merge(entry_high);
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// Higher node_id wins.
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assert_eq!(reg.resolve("x"), Some((addr_b, node_high)));
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// And same-timestamp, different-generation: higher generation wins.
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let mut reg2 = ClusterRegistry::new(RegistryConfig::default());
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let entry_gen1 = RegistryEntry {
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name: "y".into(),
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actor_addr: addr_a,
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node_id: node_low,
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timestamp: 10,
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generation: 1,
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tombstone: false,
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};
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let entry_gen2 = RegistryEntry {
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name: "y".into(),
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actor_addr: addr_b,
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node_id: node_low,
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timestamp: 10,
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generation: 2,
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tombstone: false,
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};
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reg2.merge(entry_gen1);
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reg2.merge(entry_gen2);
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assert_eq!(reg2.resolve("y"), Some((addr_b, node_low)));
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}
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// ─── Test 7: gossip propagates registration ─────────────────────────────────
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#[test]
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fn gossip_propagates_registration() {
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let mut cluster = TestCluster::new(2);
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let actor = ActorAddress::new_random();
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cluster[0].register_name("greeter".into(), actor);
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// B doesn't know about "greeter" yet.
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assert_eq!(cluster[1].resolve_name("greeter"), None);
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// Run gossip rounds — registry entries piggyback on SWIM messages.
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cluster.gossip_rounds(5);
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// Now B should resolve "greeter" to A's actor.
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let a_id = cluster.node_id(0);
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assert_eq!(cluster[1].resolve_name("greeter"), Some((actor, a_id)));
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}
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// ─── Test 8: tombstone propagation via gossip ───────────────────────────────
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#[test]
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fn tombstone_propagation_via_gossip() {
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let mut cluster = TestCluster::new(2);
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let actor = ActorAddress::new_random();
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cluster[0].register_name("ephemeral".into(), actor);
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// Propagate the registration.
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cluster.gossip_rounds(5);
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let a_id = cluster.node_id(0);
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assert_eq!(cluster[1].resolve_name("ephemeral"), Some((actor, a_id)));
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// Now unregister on A.
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cluster[0].unregister_name("ephemeral");
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// Propagate the tombstone.
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cluster.gossip_rounds(5);
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assert_eq!(cluster[1].resolve_name("ephemeral"), None);
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}
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// ─── Test 9: node death tombstones entries ──────────────────────────────────
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#[test]
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fn node_death_tombstones_entries() {
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// Set up a 3-node cluster: A(0), B(1), C(2)
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let mut cluster = TestCluster::new(3);
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let b_id = cluster.node_id(1);
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// B registers a name.
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let actor = ActorAddress::new_random();
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cluster[1].register_name("b-service".into(), actor);
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// Propagate B's registration to A and C via mesh gossip.
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cluster.gossip_rounds(5);
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assert_eq!(cluster[0].resolve_name("b-service"), Some((actor, b_id)));
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assert_eq!(cluster[2].resolve_name("b-service"), Some((actor, b_id)));
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// B dies — SWIM detects via timeout. We simulate by running rounds
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// without B participating, until suspicion_timeout expires.
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cluster.gossip_rounds_excluding(&[1], 20);
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// After enough ticks, A should declare B dead, which tombstones "b-service".
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assert_eq!(
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cluster[0].resolve_name("b-service"),
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None,
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"A must tombstone b-service after declaring B dead"
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);
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// Propagate tombstone from A to C.
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cluster.gossip_rounds_excluding(&[1], 5);
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assert_eq!(
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cluster[2].resolve_name("b-service"),
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None,
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"C should see tombstone after B's death propagates"
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);
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}
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// ─── Test 10: registry events emitted on change ─────────────────────────────
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#[test]
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fn registry_events_emitted_on_change() {
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let mut node = DistributedNode::new(test_config());
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let actor = ActorAddress::new_random();
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let node_id = node.node_id();
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node.register_name("evt-test".into(), actor);
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node.unregister_name("evt-test");
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let events = node.registry_events();
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assert_eq!(events.len(), 2);
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assert_eq!(
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events[0],
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RegistryEvent::Registered {
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name: "evt-test".into(),
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actor_addr: actor,
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node_id,
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}
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);
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assert!(matches!(
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&events[1],
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RegistryEvent::Unregistered { name, previous_addr }
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if name == "evt-test" && *previous_addr == actor
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));
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}
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// ─── Test 11: tombstone GC removes old tombstones ──────────────────────────
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#[test]
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fn tombstone_gc_removes_old_tombstones() {
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let mut reg = ClusterRegistry::new(RegistryConfig {
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tombstone_ttl: 10,
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gc_interval: 1,
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..RegistryConfig::default()
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});
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let actor = ActorAddress::new_random();
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let node_id = NodeId([1; 32]);
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reg.register("gc-me".into(), actor, node_id, 1);
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reg.unregister("gc-me", node_id, 1);
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// Tombstone exists.
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assert_eq!(reg.resolve("gc-me"), None);
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assert_eq!(reg.tombstone_count(), 1);
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// Advance the clock past TTL by registering enough other things.
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for i in 0..15 {
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let a = ActorAddress::new_random();
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reg.register(format!("filler-{i}"), a, node_id, 1);
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}
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// Need to drain dissemination for "gc-me" tombstone so GC can remove it.
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for _ in 0..20 {
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reg.take_pending(100);
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}
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// Now run GC.
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reg.gc_tick();
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// The tombstone should be gone.
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assert_eq!(reg.tombstone_count(), 0, "tombstone should be GC'd after TTL");
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}
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// ─── Test 12: gossip convergence with five nodes ────────────────────────────
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#[test]
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fn gossip_convergence_five_nodes() {
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let mut cluster = TestCluster::new(5);
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// Each node registers a unique name.
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let actors: Vec<ActorAddress> = (0..5).map(|_| ActorAddress::new_random()).collect();
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for i in 0..5 {
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cluster[i].register_name(format!("service-{i}"), actors[i]);
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}
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// Run many gossip rounds.
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cluster.gossip_rounds(15);
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// All 5 names should be resolvable on all 5 nodes.
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for i in 0..5 {
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for j in 0..5 {
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let result = cluster[i].resolve_name(&format!("service-{j}"));
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assert_eq!(
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result,
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Some((actors[j], cluster.node_id(j))),
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"node {i} should resolve service-{j}"
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);
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}
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}
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}
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// ─── Diagnostic snapshot view ──────────────────────────────────────────────
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//
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// The local name registry feeds a Tier2Registry view into every
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// diagnostic snapshot (`Aggregator::set_registry_introspector`). The
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// contract that matters to the bundle reader is "if I can resolve_name
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// it on a node, that name appears in the node's snapshot registry view
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// with the right owner." These tests pin that contract down so the
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// post-processor can rely on registry presence to answer "did this
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// node ever publish `pp-entry`?" without re-deriving it from gossip
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// events.
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/// A name visible to resolve_name on a node is also visible in that
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/// node's snapshot registry view, with the same owner and address.
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#[test]
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fn snapshot_view_matches_local_resolve_after_register() {
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let mut node = DistributedNode::new(test_config());
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let actor = ActorAddress::new_random();
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node.register_name("pp-entry".into(), actor);
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let view = node.registry().capture();
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// The local resolve is the contract every consumer trusts.
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let (resolved_addr, resolved_owner) = node
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.resolve_name("pp-entry")
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.expect("locally registered name resolves");
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let entry = view
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.entries
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.iter()
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.find(|e| e.name == "pp-entry")
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.expect("snapshot view contains the registered name");
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assert!(!entry.is_tombstone);
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let want_actor = hex(&resolved_addr.0);
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let want_owner = hex(&resolved_owner.0);
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assert_eq!(entry.actor_addr_hex, want_actor);
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assert_eq!(entry.owner_node_id_hex, want_owner);
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}
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/// After unregister, the snapshot view distinguishes the tombstone
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/// from a never-registered name. This lets the post-processor render
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/// "seen and revoked" vs "never seen."
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#[test]
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fn snapshot_view_marks_unregistered_names_as_tombstones() {
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let mut node = DistributedNode::new(test_config());
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let actor = ActorAddress::new_random();
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node.register_name("worker".into(), actor);
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node.unregister_name("worker");
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let view = node.registry().capture();
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let entry = view
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.entries
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.iter()
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.find(|e| e.name == "worker")
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.expect("tombstone entry is still present in the view");
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assert!(entry.is_tombstone);
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assert_eq!(view.tombstone_count, 1);
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// resolve_name agrees: revoked name is unresolvable.
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assert!(node.resolve_name("worker").is_none());
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}
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/// After cluster gossip propagates, every node's snapshot view
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/// contains the registered name with the correct owner — including
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/// peers that did not originate the registration. Mirrors
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/// `gossip_propagates_registration` but at the snapshot layer, which
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/// is the surface the diagnostic bundle reader actually sees.
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#[test]
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fn snapshot_view_reflects_gossip_propagated_registrations() {
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let mut cluster = TestCluster::new(3);
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let actor = ActorAddress::new_random();
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cluster[0].register_name("pp-entry".into(), actor);
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cluster.gossip_rounds(10);
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let owner_hex = hex(&cluster.node_id(0).0);
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let actor_hex = hex(&actor.0);
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for i in 0..3 {
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let view = cluster[i].registry().capture();
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let entry = view
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.entries
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.iter()
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.find(|e| e.name == "pp-entry")
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.unwrap_or_else(|| panic!("node {i} snapshot view contains pp-entry"));
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assert!(!entry.is_tombstone, "pp-entry must not be tombstoned on node {i}");
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assert_eq!(entry.owner_node_id_hex, owner_hex, "node {i} sees node 0 as owner");
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assert_eq!(entry.actor_addr_hex, actor_hex, "node {i} sees the original address");
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}
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}
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/// Captured snapshot view round-trips through JSON unchanged. The
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/// bundle ships as JSON so the post-processor relies on this.
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#[test]
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fn snapshot_view_roundtrips_through_json() {
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let mut node = DistributedNode::new(test_config());
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let actor = ActorAddress::new_random();
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node.register_name("alpha".into(), actor);
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node.register_name("beta".into(), ActorAddress::new_random());
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node.unregister_name("beta");
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let view = node.registry().capture();
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let s = serde_json::to_string(&view).unwrap();
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let back: distribution::diagnostics::Tier2Registry =
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serde_json::from_str(&s).unwrap();
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assert_eq!(back.entries.len(), view.entries.len());
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assert_eq!(back.tombstone_count, view.tombstone_count);
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assert_eq!(back.clock, view.clock);
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// Names survive the round-trip.
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let names: Vec<&str> = back.entries.iter().map(|e| e.name.as_str()).collect();
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assert!(names.contains(&"alpha"));
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assert!(names.contains(&"beta"));
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}
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fn hex(bytes: &[u8]) -> String {
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const H: &[u8; 16] = b"0123456789abcdef";
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let mut s = String::with_capacity(bytes.len() * 2);
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for b in bytes {
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s.push(H[(*b >> 4) as usize] as char);
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s.push(H[(*b & 0xf) as usize] as char);
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}
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s
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}
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