Add adapted version of maglev for multi-dc
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@ -60,7 +60,7 @@ def method1(nodes):
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def method2(nodes):
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def method2(nodes):
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partition_bits = 10
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partition_bits = 8
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partitions = list(range(2**partition_bits))
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partitions = list(range(2**partition_bits))
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def partition_node(i):
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def partition_node(i):
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h, hn, hndc = None, None, None
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h, hn, hndc = None, None, None
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@ -92,7 +92,7 @@ def method2(nodes):
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def method3(nodes):
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def method3(nodes):
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partition_bits = 10
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partition_bits = 8
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queues = []
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queues = []
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for (node_id, node_dc, n_tokens) in nodes:
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for (node_id, node_dc, n_tokens) in nodes:
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@ -130,6 +130,62 @@ def method3(nodes):
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return walk_ring
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return walk_ring
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def method4(nodes):
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partition_bits = 8
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max_replicas = 3
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partitions = [[] for _ in range(2**partition_bits)]
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dcs = list(set(node_dc for _, node_dc, _ in nodes))
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# Maglev, improved for several replicas on several DCs
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for ri in range(max_replicas):
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queues = []
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for (node_id, node_dc, n_tokens) in nodes:
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que = [(i, hash_str(f"{node_id} {i}")) for i in range(2**partition_bits)]
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que.sort(key=lambda x: x[1])
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que = [x[0] for x in que]
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queues.append((node_id, node_dc, n_tokens, que))
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queues.sort(key=lambda x: hash_str("{} {}".format(ri, x[0])))
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remaining = 2**partition_bits
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while remaining > 0:
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for toktok in range(100):
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for iq in range(len(queues)):
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node_id, node_dc, n_tokens, node_queue = queues[iq]
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if toktok >= n_tokens:
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continue
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for qi, qv in enumerate(node_queue):
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if len(partitions[qv]) != ri:
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continue
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p_dcs = set([x[0] for x in partitions[qv]])
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p_nodes = [x[1] for x in partitions[qv]]
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if node_dc not in p_dcs or (len(p_dcs) == len(dcs) and node_id not in p_nodes):
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partitions[qv].append((node_dc, node_id))
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remaining -= 1
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queues[iq] = (node_id, node_dc, n_tokens, node_queue[qi+1:])
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break
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# count
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tokens_of_node = {}
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for nodelist in partitions:
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for node_dc, node_id in nodelist:
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if node_id not in tokens_of_node:
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tokens_of_node[node_id] = 0
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tokens_of_node[node_id] += 1
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print("#tokens per node:")
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for node, ntok in sorted(list(tokens_of_node.items())):
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print(node, ": ", ntok)
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def walk_ring(v, rep):
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vh = hashlib.sha256(v.encode('ascii')).digest()
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i = (vh[0]<<8 | vh[1]) % (2**partition_bits)
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assert len(set([node_dc for node_dc, _ in partitions[i]])) == min(max_replicas, len(dcs))
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return [node_id for _, node_id in partitions[i]]
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return walk_ring
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def evaluate_method(walk_ring):
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def evaluate_method(walk_ring):
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node_data_counts = {}
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node_data_counts = {}
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for i in range(100000):
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for i in range(100000):
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@ -175,3 +231,21 @@ if __name__ == "__main__":
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]
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]
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method3_walk_ring = method3(nodes)
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method3_walk_ring = method3(nodes)
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evaluate_method(method3_walk_ring)
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evaluate_method(method3_walk_ring)
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print("------")
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print("method 4 (maglev, multi-dc twist)")
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nodes = [('digitale', 'atuin', 8),
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('drosera', 'atuin', 8),
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('datura', 'atuin', 8),
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('io', 'jupiter', 16),
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('mini', 'grog', 4),
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('mixi', 'grog', 4),
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('moxi', 'grog', 4),
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('modi', 'grog', 4),
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('geant', 'grisou', 16),
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('gipsie', 'grisou', 16),
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#('isou', 'jupiter', 8),
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]
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method4_walk_ring = method4(nodes)
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evaluate_method(method4_walk_ring)
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