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Merge #9274: [qa] Use cached utxo set to fix performance regression
fab1af3
[qa] maxuploadtarget: Use cached utxo set (MarcoFalke)fa2ecc4
[qa] pruning: Use cached utxo set to run faster (MarcoFalke)
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commit
919db037f1
@ -86,6 +86,9 @@ class MaxUploadTest(BitcoinTestFramework):
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self.setup_clean_chain = True
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self.num_nodes = 1
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# Cache for utxos, as the listunspent may take a long time later in the test
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self.utxo_cache = []
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def setup_network(self):
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# Start a node with maxuploadtarget of 200 MB (/24h)
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self.nodes = []
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@ -118,7 +121,7 @@ class MaxUploadTest(BitcoinTestFramework):
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# Test logic begins here
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# Now mine a big block
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mine_large_block(self.nodes[0])
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mine_large_block(self.nodes[0], self.utxo_cache)
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# Store the hash; we'll request this later
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big_old_block = self.nodes[0].getbestblockhash()
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@ -129,7 +132,7 @@ class MaxUploadTest(BitcoinTestFramework):
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self.nodes[0].setmocktime(int(time.time()) - 2*60*60*24)
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# Mine one more block, so that the prior block looks old
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mine_large_block(self.nodes[0])
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mine_large_block(self.nodes[0], self.utxo_cache)
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# We'll be requesting this new block too
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big_new_block = self.nodes[0].getbestblockhash()
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@ -26,7 +26,7 @@ class MempoolLimitTest(BitcoinTestFramework):
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def run_test(self):
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txids = []
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utxos = create_confirmed_utxos(self.relayfee, self.nodes[0], 90)
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utxos = create_confirmed_utxos(self.relayfee, self.nodes[0], 91)
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#create a mempool tx that will be evicted
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us0 = utxos.pop()
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@ -41,9 +41,9 @@ class MempoolLimitTest(BitcoinTestFramework):
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relayfee = self.nodes[0].getnetworkinfo()['relayfee']
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base_fee = relayfee*100
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for i in range (4):
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for i in range (3):
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txids.append([])
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txids[i] = create_lots_of_big_transactions(self.nodes[0], self.txouts, utxos[30*i:30*i+30], (i+1)*base_fee)
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txids[i] = create_lots_of_big_transactions(self.nodes[0], self.txouts, utxos[30*i:30*i+30], 30, (i+1)*base_fee)
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# by now, the tx should be evicted, check confirmation state
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assert(txid not in self.nodes[0].getrawmempool())
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@ -39,7 +39,7 @@ class PrioritiseTransactionTest(BitcoinTestFramework):
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txids.append([])
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start_range = i * range_size
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end_range = start_range + range_size
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txids[i] = create_lots_of_big_transactions(self.nodes[0], self.txouts, utxos[start_range:end_range], (i+1)*base_fee)
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txids[i] = create_lots_of_big_transactions(self.nodes[0], self.txouts, utxos[start_range:end_range], end_range - start_range, (i+1)*base_fee)
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# Make sure that the size of each group of transactions exceeds
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# MAX_BLOCK_BASE_SIZE -- otherwise the test needs to be revised to create
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@ -13,6 +13,9 @@
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from test_framework.test_framework import BitcoinTestFramework
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from test_framework.util import *
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import time
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import os
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def calc_usage(blockdir):
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return sum(os.path.getsize(blockdir+f) for f in os.listdir(blockdir) if os.path.isfile(blockdir+f)) / (1024. * 1024.)
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@ -24,6 +27,10 @@ class PruneTest(BitcoinTestFramework):
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self.setup_clean_chain = True
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self.num_nodes = 3
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# Cache for utxos, as the listunspent may take a long time later in the test
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self.utxo_cache_0 = []
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self.utxo_cache_1 = []
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def setup_network(self):
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self.nodes = []
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self.is_network_split = False
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@ -48,7 +55,7 @@ class PruneTest(BitcoinTestFramework):
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self.nodes[0].generate(150)
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# Then mine enough full blocks to create more than 550MiB of data
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for i in range(645):
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mine_large_block(self.nodes[0])
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mine_large_block(self.nodes[0], self.utxo_cache_0)
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sync_blocks(self.nodes[0:3])
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@ -60,7 +67,7 @@ class PruneTest(BitcoinTestFramework):
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print("Mining 25 more blocks should cause the first block file to be pruned")
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# Pruning doesn't run until we're allocating another chunk, 20 full blocks past the height cutoff will ensure this
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for i in range(25):
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mine_large_block(self.nodes[0])
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mine_large_block(self.nodes[0], self.utxo_cache_0)
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waitstart = time.time()
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while os.path.isfile(self.prunedir+"blk00000.dat"):
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@ -87,13 +94,13 @@ class PruneTest(BitcoinTestFramework):
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# Mine 24 blocks in node 1
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for i in range(24):
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if j == 0:
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mine_large_block(self.nodes[1])
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mine_large_block(self.nodes[1], self.utxo_cache_1)
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else:
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self.nodes[1].generate(1) #tx's already in mempool from previous disconnects
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# Reorg back with 25 block chain from node 0
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for i in range(25):
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mine_large_block(self.nodes[0])
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mine_large_block(self.nodes[0], self.utxo_cache_0)
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# Create connections in the order so both nodes can see the reorg at the same time
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connect_nodes(self.nodes[1], 0)
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@ -654,10 +654,10 @@ def create_tx(node, coinbase, to_address, amount):
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# Create a spend of each passed-in utxo, splicing in "txouts" to each raw
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# transaction to make it large. See gen_return_txouts() above.
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def create_lots_of_big_transactions(node, txouts, utxos, fee):
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def create_lots_of_big_transactions(node, txouts, utxos, num, fee):
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addr = node.getnewaddress()
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txids = []
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for _ in range(len(utxos)):
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for _ in range(num):
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t = utxos.pop()
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inputs=[{ "txid" : t["txid"], "vout" : t["vout"]}]
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outputs = {}
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@ -672,13 +672,17 @@ def create_lots_of_big_transactions(node, txouts, utxos, fee):
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txids.append(txid)
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return txids
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def mine_large_block(node):
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def mine_large_block(node, utxos=None):
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# generate a 66k transaction,
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# and 14 of them is close to the 1MB block limit
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num = 14
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txouts = gen_return_txouts()
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utxos = node.listunspent()[:14]
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utxos = utxos if utxos is not None else []
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if len(utxos) < num:
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utxos.clear()
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utxos.extend(node.listunspent())
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fee = 100 * node.getnetworkinfo()["relayfee"]
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create_lots_of_big_transactions(node, txouts, utxos, fee=fee)
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create_lots_of_big_transactions(node, txouts, utxos, num, fee=fee)
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node.generate(1)
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def get_bip9_status(node, key):
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