/** @throws Exception If failed. */ public void testAffinityPut() throws Exception { Thread.sleep(2 * TOP_REFRESH_FREQ); assertEquals(NODES_CNT, client.compute().refreshTopology(false, false).size()); Map<UUID, Grid> gridsByLocNode = new HashMap<>(NODES_CNT); GridClientData partitioned = client.data(PARTITIONED_CACHE_NAME); GridClientCompute compute = client.compute(); for (int i = 0; i < NODES_CNT; i++) gridsByLocNode.put(grid(i).localNode().id(), grid(i)); for (int i = 0; i < 100; i++) { String key = "key" + i; UUID primaryNodeId = grid(0).mapKeyToNode(PARTITIONED_CACHE_NAME, key).id(); assertEquals("Affinity mismatch for key: " + key, primaryNodeId, partitioned.affinity(key)); assertEquals(primaryNodeId, partitioned.affinity(key)); // Must go to primary node only. Since backup count is 0, value must present on // primary node only. partitioned.put(key, "val" + key); for (Map.Entry<UUID, Grid> entry : gridsByLocNode.entrySet()) { Object val = entry.getValue().cache(PARTITIONED_CACHE_NAME).peek(key); if (primaryNodeId.equals(entry.getKey())) assertEquals("val" + key, val); else assertNull(val); } } // Now check that we will see value in near cache in pinned mode. for (int i = 100; i < 200; i++) { String pinnedKey = "key" + i; UUID primaryNodeId = grid(0).mapKeyToNode(PARTITIONED_CACHE_NAME, pinnedKey).id(); UUID pinnedNodeId = F.first(F.view(gridsByLocNode.keySet(), F.notEqualTo(primaryNodeId))); GridClientNode node = compute.node(pinnedNodeId); partitioned.pinNodes(node).put(pinnedKey, "val" + pinnedKey); for (Map.Entry<UUID, Grid> entry : gridsByLocNode.entrySet()) { Object val = entry.getValue().cache(PARTITIONED_CACHE_NAME).peek(pinnedKey); if (primaryNodeId.equals(entry.getKey()) || pinnedNodeId.equals(entry.getKey())) assertEquals("val" + pinnedKey, val); else assertNull(val); } } }
/** @throws Exception If failed. */ public void testTopologyListener() throws Exception { final Collection<UUID> added = new ArrayList<>(1); final Collection<UUID> rmvd = new ArrayList<>(1); final CountDownLatch addedLatch = new CountDownLatch(1); final CountDownLatch rmvLatch = new CountDownLatch(1); assertEquals(NODES_CNT, client.compute().refreshTopology(false, false).size()); GridClientTopologyListener lsnr = new GridClientTopologyListener() { @Override public void onNodeAdded(GridClientNode node) { added.add(node.nodeId()); addedLatch.countDown(); } @Override public void onNodeRemoved(GridClientNode node) { rmvd.add(node.nodeId()); rmvLatch.countDown(); } }; client.addTopologyListener(lsnr); try { Grid g = startGrid(NODES_CNT + 1); UUID id = g.localNode().id(); assertTrue(addedLatch.await(2 * TOP_REFRESH_FREQ, MILLISECONDS)); assertEquals(1, added.size()); assertEquals(id, F.first(added)); stopGrid(NODES_CNT + 1); assertTrue(rmvLatch.await(2 * TOP_REFRESH_FREQ, MILLISECONDS)); assertEquals(1, rmvd.size()); assertEquals(id, F.first(rmvd)); } finally { client.removeTopologyListener(lsnr); stopGrid(NODES_CNT + 1); } }
/** * This method is called to map or split grid task into multiple grid jobs. This is the first * method that gets called when task execution starts. * * @param data Task execution argument. Can be {@code null}. This is the same argument as the one * passed into {@code Grid#execute(...)} methods. * @param subgrid Nodes available for this task execution. Note that order of nodes is guaranteed * to be randomized by container. This ensures that every time you simply iterate through grid * nodes, the order of nodes will be random which over time should result into all nodes being * used equally. * @return Map of grid jobs assigned to subgrid node. Unless {@link * GridComputeTaskContinuousMapper} is injected into task, if {@code null} or empty map is * returned, exception will be thrown. * @throws GridException If mapping could not complete successfully. This exception will be thrown * out of {@link GridComputeTaskFuture#get()} method. */ @Override public Map<? extends GridComputeJob, GridNode> map( List<GridNode> subgrid, @Nullable final Collection<Integer> data) throws GridException { assert !subgrid.isEmpty(); // Give preference to wanted node. Otherwise, take the first one. GridNode targetNode = F.find( subgrid, subgrid.get(0), new GridPredicate<GridNode>() { @Override public boolean apply(GridNode e) { return preferredNode.equals(e.id()); } }); return Collections.singletonMap( new GridComputeJobAdapter() { @GridLoggerResource private GridLogger log; @GridInstanceResource private Grid grid; @Override public Object execute() throws GridException { log.info("Going to put data: " + data.size()); GridCache<Object, Object> cache = grid.cache(cacheName); assert cache != null; Map<Integer, T2<Integer, Collection<Integer>>> putMap = groupData(data); for (Map.Entry<Integer, T2<Integer, Collection<Integer>>> entry : putMap.entrySet()) { T2<Integer, Collection<Integer>> pair = entry.getValue(); Object affKey = pair.get1(); // Group lock partition. try (GridCacheTx tx = cache.txStartPartition( cache.affinity().partition(affKey), optimistic ? OPTIMISTIC : PESSIMISTIC, REPEATABLE_READ, 0, pair.get2().size())) { for (Integer val : pair.get2()) cache.put(val, val); tx.commit(); } } log.info("Finished put data: " + data.size()); return data; } /** * Groups values by partitions. * * @param data Data to put. * @return Grouped map. */ private Map<Integer, T2<Integer, Collection<Integer>>> groupData(Iterable<Integer> data) { GridCache<Object, Object> cache = grid.cache(cacheName); Map<Integer, T2<Integer, Collection<Integer>>> res = new HashMap<>(); for (Integer val : data) { int part = cache.affinity().partition(val); T2<Integer, Collection<Integer>> tup = res.get(part); if (tup == null) { tup = new T2<Integer, Collection<Integer>>(val, new LinkedList<Integer>()); res.put(part, tup); } tup.get2().add(val); } return res; } }, targetNode); }