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269 lines
10 KiB
Python
Executable file
269 lines
10 KiB
Python
Executable file
#!/usr/bin/env python3
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import codecs
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from test_framework.test_framework import BitcoinTestFramework
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from test_framework.util import assert_equal
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from test_framework import (
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address,
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key,
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)
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from test_framework.messages import (
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CBlock,
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from_hex,
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)
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from test_framework.script import (
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OP_NOP,
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OP_RETURN,
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CScript
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)
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# Generate wallet import format from private key.
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def wif(pk):
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# Base58Check version for regtest WIF keys is 0xef = 239
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pk_compressed = pk + bytes([0x1])
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return address.byte_to_base58(pk_compressed, 239)
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# The signblockscript is a Bitcoin Script k-of-n multisig script.
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def make_signblockscript(num_nodes, required_signers, keys):
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assert num_nodes >= required_signers
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script = "{}".format(50 + required_signers)
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for i in range(num_nodes):
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k = keys[i]
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script += "21"
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script += codecs.encode(k.get_pubkey().get_bytes(), 'hex_codec').decode("utf-8")
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script += "{}".format(50 + num_nodes) # num keys
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script += "ae" # OP_CHECKMULTISIG
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return script
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class TrimHeadersTest(BitcoinTestFramework):
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def skip_test_if_missing_module(self):
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self.skip_if_no_wallet()
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self.skip_if_no_bdb()
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def add_options(self, parser):
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self.add_wallet_options(parser)
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# Dynamically generate N keys to be used for block signing.
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def init_keys(self, num_keys):
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self.keys = []
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self.wifs = []
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for i in range(num_keys):
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k = key.ECKey()
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k.generate()
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w = wif(k.get_bytes())
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self.keys.append(k)
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self.wifs.append(w)
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def set_test_params(self):
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self.num_nodes = 3
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self.num_keys = 1
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self.required_signers = 1
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self.setup_clean_chain = True
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self.init_keys(self.num_keys)
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signblockscript = make_signblockscript(self.num_keys, self.required_signers, self.keys)
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self.witnessScript = signblockscript # post-dynafed this becomes witnessScript
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args = [
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"-signblockscript={}".format(signblockscript),
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"-con_max_block_sig_size={}".format(self.required_signers * 74 + self.num_nodes * 33),
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"-anyonecanspendaremine=1",
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"-evbparams=dynafed:0:::",
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"-con_dyna_deploy_signal=1",
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]
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self.trim_args = args + ["-trim_headers=1"]
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self.prune_args = self.trim_args + ["-prune=1"]
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self.extra_args = [
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args,
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self.trim_args,
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self.prune_args,
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]
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def setup_network(self):
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self.setup_nodes()
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self.connect_nodes(0, 1)
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self.connect_nodes(0, 2)
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def check_height(self, expected_height, all=False, verbose=True):
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if verbose:
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self.log.info(f"Check height {expected_height}")
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if all:
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for n in self.nodes:
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assert_equal(n.getblockcount(), expected_height)
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else:
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assert_equal(self.nodes[0].getblockcount(), expected_height)
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def mine_block(self, make_transactions):
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# alternate mining between the signing nodes
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mineridx = self.nodes[0].getblockcount() % self.required_signers # assuming in sync
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mineridx_next = (self.nodes[0].getblockcount() + 1) % self.required_signers
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miner = self.nodes[mineridx]
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miner_next = self.nodes[mineridx_next]
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# If dynafed is enabled, this means signblockscript has been WSH-wrapped
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blockchain_info = self.nodes[0].getblockchaininfo()
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deployment_info = self.nodes[0].getdeploymentinfo()
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dynafed_active = deployment_info['deployments']['dynafed']['bip9']['status'] == "active"
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if dynafed_active:
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wsh_wrap = self.nodes[0].decodescript(self.witnessScript)['segwit']['hex']
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assert_equal(wsh_wrap, blockchain_info['current_signblock_hex'])
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# Make a few transactions to make non-empty blocks for compact transmission
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if make_transactions:
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for i in range(10):
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miner.sendtoaddress(miner_next.getnewaddress(), 1, "", "", True)
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# miner makes a block
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block = miner.getnewblockhex()
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block_struct = from_hex(CBlock(), block)
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# make another block with the commitment field filled out
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dummy_block = miner.getnewblockhex(commit_data="deadbeef")
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dummy_struct = from_hex(CBlock(), dummy_block)
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assert_equal(len(dummy_struct.vtx[0].vout), len(block_struct.vtx[0].vout) + 1)
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# OP_RETURN deadbeef
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assert_equal(CScript(dummy_struct.vtx[0].vout[0].scriptPubKey).hex(), '6a04deadbeef')
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# All nodes get compact blocks, first node may get complete
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# block in 0.5 RTT even with transactions thanks to p2p connection
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# with non-signing node being miner
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for i in range(self.num_keys):
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sketch = miner.getcompactsketch(block)
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compact_response = self.nodes[i].consumecompactsketch(sketch)
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if "block_tx_req" in compact_response:
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block_txn = self.nodes[i].consumegetblocktxn(block, compact_response["block_tx_req"])
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final_block = self.nodes[i].finalizecompactblock(sketch, block_txn, compact_response["found_transactions"])
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else:
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# If there's only coinbase, it should succeed immediately
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final_block = compact_response["blockhex"]
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# Block should be complete, sans signatures
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self.nodes[i].testproposedblock(final_block)
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# collect num_keys signatures from signers, reduce to required_signers sigs during combine
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sigs = []
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for i in range(self.num_keys):
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result = miner.combineblocksigs(block, sigs, self.witnessScript)
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sigs = sigs + self.nodes[i].signblock(block, self.witnessScript)
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assert_equal(result["complete"], i >= self.required_signers)
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# submitting should have no effect pre-threshhold
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if i < self.required_signers:
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miner.submitblock(result["hex"])
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result = miner.combineblocksigs(block, sigs, self.witnessScript)
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assert_equal(result["complete"], True)
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self.nodes[0].submitblock(result["hex"])
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def mine_blocks(self, num_blocks, transactions):
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for _ in range(num_blocks):
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self.mine_block(transactions)
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def mine_large_blocks(self, n):
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big_script = CScript([OP_RETURN] + [OP_NOP] * 950000)
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node = self.nodes[0]
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for _ in range(n):
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hex = node.getnewblockhex()
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block = from_hex(CBlock(), hex)
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tx = block.vtx[0]
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tx.vout[0].scriptPubKey = big_script
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tx.rehash()
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block.vtx[0] = tx
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block.hashMerkleRoot = block.calc_merkle_root()
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block.solve()
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h = block.serialize().hex()
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sigs = node.signblock(h, self.witnessScript)
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result = node.combineblocksigs(h, sigs, self.witnessScript)
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assert_equal(result["complete"], True)
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node.submitblock(result["hex"])
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def run_test(self):
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for i in range(self.num_keys):
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self.nodes[i].importprivkey(self.wifs[i])
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expected_height = 0
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self.check_height(expected_height, all=True)
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self.log.info("Mining and signing 101 blocks to unlock funds")
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expected_height += 101
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self.mine_blocks(101, False)
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self.sync_all()
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self.check_height(expected_height, all=True)
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# check the new field in getblockchaininfo
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assert not self.nodes[0].getblockchaininfo()["trim_headers"]
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assert self.nodes[1].getblockchaininfo()["trim_headers"]
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assert self.nodes[2].getblockchaininfo()["trim_headers"]
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self.log.info("Shut down trimmed nodes")
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self.stop_node(1)
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self.stop_node(2)
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self.log.info("Mining and signing non-empty blocks")
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expected_height += 10
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self.mine_blocks(10, True)
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self.check_height(expected_height)
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# signblock rpc field stuff
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tip = self.nodes[0].getblockhash(self.nodes[0].getblockcount())
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header = self.nodes[0].getblockheader(tip)
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block = self.nodes[0].getblock(tip)
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assert 'signblock_witness_asm' in header
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assert 'signblock_witness_hex' in header
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assert 'signblock_witness_asm' in block
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assert 'signblock_witness_hex' in block
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assert_equal(self.nodes[0].getdeploymentinfo()['deployments']['dynafed']['bip9']['status'], "defined")
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# activate dynafed
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blocks_til_dynafed = 431 - self.nodes[0].getblockcount()
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self.log.info("Activating dynafed")
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self.mine_blocks(blocks_til_dynafed, False)
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expected_height += blocks_til_dynafed
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self.check_height(expected_height)
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assert_equal(self.nodes[0].getdeploymentinfo()['deployments']['dynafed']['bip9']['status'], "locked_in")
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num = 3000
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self.log.info(f"Mine {num} dynamic federation blocks without txns")
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self.mine_blocks(num, False)
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expected_height += num
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self.check_height(expected_height)
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num = 10
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self.log.info(f"Mine {num} dynamic federation blocks with txns")
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self.mine_blocks(num, True)
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expected_height += num
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self.check_height(expected_height)
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num = 777
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self.log.info(f"Mine {num} large blocks")
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expected_height += num
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self.mine_large_blocks(num)
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self.log.info("Restart the trimmed nodes")
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self.start_node(1, extra_args=self.trim_args)
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self.start_node(2, extra_args=self.prune_args)
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self.connect_nodes(0, 1)
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self.connect_nodes(0, 2)
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self.sync_all(timeout1=360)
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self.check_height(expected_height, all=True)
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self.log.info("Prune the pruned node")
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self.nodes[2].pruneblockchain(4000)
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hash = self.nodes[0].getblockhash(expected_height)
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block = self.nodes[0].getblock(hash)
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for i in range(1, self.num_nodes):
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assert_equal(hash, self.nodes[i].getblockhash(expected_height))
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assert_equal(block, self.nodes[i].getblock(hash))
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self.log.info(f"All nodes at height {expected_height} with block hash {hash}")
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if __name__ == '__main__':
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TrimHeadersTest().main()
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