1 // This file is Copyright its original authors, visible in version control
4 // This file is licensed under the Apache License, Version 2.0 <LICENSE-APACHE
5 // or http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
6 // <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your option.
7 // You may not use this file except in accordance with one or both of these
10 //! Further functional tests which test blockchain reorganizations.
12 use ln::channelmonitor::ANTI_REORG_DELAY;
13 use ln::features::InitFeatures;
14 use ln::msgs::{ChannelMessageHandler, ErrorAction, HTLCFailChannelUpdate};
15 use util::events::{Event, EventsProvider, MessageSendEvent, MessageSendEventsProvider};
17 use bitcoin::blockdata::block::{Block, BlockHeader};
19 use std::default::Default;
21 use ln::functional_test_utils::*;
23 fn do_test_onchain_htlc_reorg(local_commitment: bool, claim: bool) {
24 // Our on-chain HTLC-claim learning has a few properties worth testing:
25 // * If an upstream HTLC is claimed with a preimage (both against our own commitment
26 // transaction our counterparty's), we claim it backwards immediately.
27 // * If an upstream HTLC is claimed with a timeout, we delay ANTI_REORG_DELAY before failing
28 // it backwards to ensure our counterparty can't claim with a preimage in a reorg.
30 // Here we test both properties in any combination based on the two bools passed in as
33 // If local_commitment is set, we first broadcast a local commitment containing an offered HTLC
34 // and an HTLC-Timeout tx, otherwise we broadcast a remote commitment containing a received
35 // HTLC and a local HTLC-Timeout tx spending it.
37 // We then either allow these transactions to confirm (if !claim) or we wait until one block
38 // before they otherwise would and reorg them out, confirming an HTLC-Success tx instead.
39 let chanmon_cfgs = create_chanmon_cfgs(3);
40 let node_cfgs = create_node_cfgs(3, &chanmon_cfgs);
41 let node_chanmgrs = create_node_chanmgrs(3, &node_cfgs, &[None, None, None]);
42 let nodes = create_network(3, &node_cfgs, &node_chanmgrs);
44 create_announced_chan_between_nodes(&nodes, 0, 1, InitFeatures::known(), InitFeatures::known());
45 let chan_2 = create_announced_chan_between_nodes(&nodes, 1, 2, InitFeatures::known(), InitFeatures::known());
47 let (our_payment_preimage, our_payment_hash) = route_payment(&nodes[0], &[&nodes[1], &nodes[2]], 1000000);
49 // Provide preimage to node 2 by claiming payment
50 nodes[2].node.claim_funds(our_payment_preimage, &None, 1000000);
51 check_added_monitors!(nodes[2], 1);
52 get_htlc_update_msgs!(nodes[2], nodes[1].node.get_our_node_id());
54 let header = BlockHeader { version: 0x2000_0000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
55 let claim_txn = if local_commitment {
56 // Broadcast node 1 commitment txn to broadcast the HTLC-Timeout
57 let node_1_commitment_txn = get_local_commitment_txn!(nodes[1], chan_2.2);
58 assert_eq!(node_1_commitment_txn.len(), 2); // 1 local commitment tx, 1 Outbound HTLC-Timeout
59 assert_eq!(node_1_commitment_txn[0].output.len(), 2); // to-self and Offered HTLC (to-remote/to-node-3 is dust)
60 check_spends!(node_1_commitment_txn[0], chan_2.3);
61 check_spends!(node_1_commitment_txn[1], node_1_commitment_txn[0]);
63 // Give node 2 node 1's transactions and get its response (claiming the HTLC instead).
64 connect_block(&nodes[2], &Block { header, txdata: node_1_commitment_txn.clone() }, CHAN_CONFIRM_DEPTH + 1);
65 check_added_monitors!(nodes[2], 1);
66 check_closed_broadcast!(nodes[2], false); // We should get a BroadcastChannelUpdate (and *only* a BroadcstChannelUpdate)
67 let node_2_commitment_txn = nodes[2].tx_broadcaster.txn_broadcasted.lock().unwrap();
68 assert_eq!(node_2_commitment_txn.len(), 3); // ChannelMonitor: 1 offered HTLC-Claim, ChannelManger: 1 local commitment tx, 1 Received HTLC-Claim
69 assert_eq!(node_2_commitment_txn[1].output.len(), 2); // to-remote and Received HTLC (to-self is dust)
70 check_spends!(node_2_commitment_txn[1], chan_2.3);
71 check_spends!(node_2_commitment_txn[2], node_2_commitment_txn[1]);
72 check_spends!(node_2_commitment_txn[0], node_1_commitment_txn[0]);
74 // Confirm node 1's commitment txn (and HTLC-Timeout) on node 1
75 connect_block(&nodes[1], &Block { header, txdata: node_1_commitment_txn.clone() }, CHAN_CONFIRM_DEPTH + 1);
77 // ...but return node 1's commitment tx in case claim is set and we're preparing to reorg
78 vec![node_1_commitment_txn[0].clone(), node_2_commitment_txn[0].clone()]
80 // Broadcast node 2 commitment txn
81 let node_2_commitment_txn = get_local_commitment_txn!(nodes[2], chan_2.2);
82 assert_eq!(node_2_commitment_txn.len(), 2); // 1 local commitment tx, 1 Received HTLC-Claim
83 assert_eq!(node_2_commitment_txn[0].output.len(), 2); // to-remote and Received HTLC (to-self is dust)
84 check_spends!(node_2_commitment_txn[0], chan_2.3);
85 check_spends!(node_2_commitment_txn[1], node_2_commitment_txn[0]);
87 // Give node 1 node 2's commitment transaction and get its response (timing the HTLC out)
88 connect_block(&nodes[1], &Block { header, txdata: vec![node_2_commitment_txn[0].clone()] }, CHAN_CONFIRM_DEPTH + 1);
89 let node_1_commitment_txn = nodes[1].tx_broadcaster.txn_broadcasted.lock().unwrap();
90 assert_eq!(node_1_commitment_txn.len(), 3); // ChannelMonitor: 1 offered HTLC-Timeout, ChannelManger: 1 local commitment tx, 1 Offered HTLC-Timeout
91 assert_eq!(node_1_commitment_txn[1].output.len(), 2); // to-local and Offered HTLC (to-remote is dust)
92 check_spends!(node_1_commitment_txn[1], chan_2.3);
93 check_spends!(node_1_commitment_txn[2], node_1_commitment_txn[1]);
94 check_spends!(node_1_commitment_txn[0], node_2_commitment_txn[0]);
96 // Confirm node 2's commitment txn (and node 1's HTLC-Timeout) on node 1
97 connect_block(&nodes[1], &Block { header, txdata: vec![node_2_commitment_txn[0].clone(), node_1_commitment_txn[0].clone()] }, CHAN_CONFIRM_DEPTH + 1);
98 // ...but return node 2's commitment tx (and claim) in case claim is set and we're preparing to reorg
101 check_added_monitors!(nodes[1], 1);
102 check_closed_broadcast!(nodes[1], false); // We should get a BroadcastChannelUpdate (and *only* a BroadcstChannelUpdate)
103 let mut block = Block { header, txdata: vec![] };
104 let mut blocks = Vec::new();
105 blocks.push(block.clone());
106 // At CHAN_CONFIRM_DEPTH + 1 we have a confirmation count of 1, so CHAN_CONFIRM_DEPTH +
107 // ANTI_REORG_DELAY - 1 will give us a confirmation count of ANTI_REORG_DELAY - 1.
108 for i in CHAN_CONFIRM_DEPTH + 2..CHAN_CONFIRM_DEPTH + ANTI_REORG_DELAY - 1 {
110 header: BlockHeader { version: 0x20000000, prev_blockhash: block.block_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 },
113 connect_block(&nodes[1], &block, i);
114 blocks.push(block.clone());
116 check_added_monitors!(nodes[1], 0);
117 assert_eq!(nodes[1].node.get_and_clear_pending_events().len(), 0);
120 // Now reorg back to CHAN_CONFIRM_DEPTH and confirm node 2's broadcasted transactions:
121 for (height, block) in (CHAN_CONFIRM_DEPTH + 1..CHAN_CONFIRM_DEPTH + ANTI_REORG_DELAY - 1).zip(blocks.iter()).rev() {
122 disconnect_block(&nodes[1], &block.header, height);
126 header: BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 },
129 connect_block(&nodes[1], &block, CHAN_CONFIRM_DEPTH + 1);
131 // ChannelManager only polls ManyChannelMonitor::get_and_clear_pending_monitor_events when we
132 // probe it for events, so we probe non-message events here (which should still end up empty):
133 assert_eq!(nodes[1].node.get_and_clear_pending_events().len(), 0);
135 // Confirm the timeout tx and check that we fail the HTLC backwards
137 header: BlockHeader { version: 0x20000000, prev_blockhash: block.block_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 },
140 connect_block(&nodes[1], &block, CHAN_CONFIRM_DEPTH + ANTI_REORG_DELAY);
141 expect_pending_htlcs_forwardable!(nodes[1]);
144 check_added_monitors!(nodes[1], 1);
145 // Which should result in an immediate claim/fail of the HTLC:
146 let htlc_updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
148 assert_eq!(htlc_updates.update_fulfill_htlcs.len(), 1);
149 nodes[0].node.handle_update_fulfill_htlc(&nodes[1].node.get_our_node_id(), &htlc_updates.update_fulfill_htlcs[0]);
151 assert_eq!(htlc_updates.update_fail_htlcs.len(), 1);
152 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &htlc_updates.update_fail_htlcs[0]);
154 commitment_signed_dance!(nodes[0], nodes[1], htlc_updates.commitment_signed, false, true);
156 expect_payment_sent!(nodes[0], our_payment_preimage);
158 let events = nodes[0].node.get_and_clear_pending_msg_events();
159 assert_eq!(events.len(), 1);
160 if let MessageSendEvent::PaymentFailureNetworkUpdate { update: HTLCFailChannelUpdate::ChannelClosed { ref is_permanent, .. } } = events[0] {
161 assert!(is_permanent);
162 } else { panic!("Unexpected event!"); }
163 expect_payment_failed!(nodes[0], our_payment_hash, false);
168 fn test_onchain_htlc_claim_reorg_local_commitment() {
169 do_test_onchain_htlc_reorg(true, true);
172 fn test_onchain_htlc_timeout_delay_local_commitment() {
173 do_test_onchain_htlc_reorg(true, false);
176 fn test_onchain_htlc_claim_reorg_remote_commitment() {
177 do_test_onchain_htlc_reorg(false, true);
180 fn test_onchain_htlc_timeout_delay_remote_commitment() {
181 do_test_onchain_htlc_reorg(false, false);