249 lines
5.9 KiB
Plaintext
249 lines
5.9 KiB
Plaintext
# Similarity Clustering as in paper + balancing slots over workers.
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# Database must be open.
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# Distributed array T with attribute Pos of type point must be present.
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# Workers relation must be present.
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# Variable myPort must be set below to an exclusively used port.
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# Parameter k below may be adapted (default 50)
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# sample size in step 1 may be adapted
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restore Workers from WorkersNewton;
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let S = 'S' ffeed5 consume;
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# 4:60 min
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let T = S feed ddistribute3["T", 160, TRUE, Workers];
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# 1:37 min
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# prepare cost measurements
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let ControlWorkers = createintdarray("ControlWorkers", Workers, Workers count)
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@%Scripts/DistCost.sec
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let myPort = ... ;
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# Step 1
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let sizeT = size(T);
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query share("sizeT", TRUE, Workers)
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let SS = T dmap["", . feed some[10000 div sizeT]] dsummarize consume
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# Step 2
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let k = 50;
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@&Scripts/SimilarityPartitioning.sec;
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let n = PC count;
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let MinPts = 10;
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let Eps = 100.0;
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let wgs84 = create_geoid("WGS1984");
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# Step 3
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query share("PC", TRUE, Workers);
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query share("MinPts", TRUE, Workers);
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query share("Eps", TRUE, Workers);
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query share("wgs84", TRUE, Workers);
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query share("n", TRUE, Workers);
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# Step 4
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query memclear();
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query T dcommand['query meminit(3600)'] consume;
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query T dlet["PCm", 'PC feed mconsume'] consume;
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query T dlet["PCm_Pos_mtree", 'PCm mcreatemtree[Pos, wgs84]'] consume
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let Va = T
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dmap["", . feed
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loopjoin[fun(t: TUPLE) PCm_Pos_mtree PCm mdistScan[attr(t, Pos)] head[1]
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projectextend[N; Dist: distance(attr(t, Pos), .Pos, wgs84)]]
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loopjoin[fun(u: TUPLE) PCm_Pos_mtree PCm mdistRange[attr(u, Pos),
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attr(u, Dist) + (2 * Eps)] projectextend[; N2: .N]]
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]
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partition["Va", .N2, n]
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let Vb = Va
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collect2["Vb", myPort]
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# Step 4b Load Balancing
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let wc = Workers count;
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let reserve = ((wc - 1) div 20) + 1;
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let W = intstream(0, wc - 1) namedtransformstream[Worker] extend[Load: 0.0] consume
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let Sizes = Vb dmap["", . feed count] dsummarize namedtransformstream[Size] addcounter[Slot, 0] consume
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let Slots = Sizes feed replaceAttr[Size: .Size * 1.0] sortby[Size desc] consume
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let TargetSize = (Slots feed sum[Size]) / wc;
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query memclear();
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let PQ = W feed head[wc - reserve] mcreatepqueue[Load];
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let Assignment = PQ mfeedpq
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Slots feed obojoin
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extend[Ok: PQ minserttuplepqprojectU[., .Load + .Size, Load; Worker, Load]]
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consume
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delete PQ;
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let PQ = W feed tail[reserve] mcreatepqueue[Load];
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query PQ mfeedpq
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Assignment feed addid extend[LoadAfter: .Load + .Size] sortby[LoadAfter desc]
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project[TID]
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Assignment deletebyid2[TID]
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project[Size, Slot]
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obojoin
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extend[Ok: PQ minserttuplepqprojectU[., .Load + .Size, Load; Worker, Load]]
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Assignment insert
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cancel[(.Load + (2 * .Size)) > (TargetSize * 1.03)]
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count
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let AssignmentV = Assignment feed sortby[Slot] project[Worker] transformstream collect_vector
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let V = Va collectC["V", myPort, AssignmentV]
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# Step 5
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update LastCommand := distCostReset(ControlWorkers)
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let X = V
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dmap["X", $1 feed extend[Pos2: gk(.Pos)] dbscanM[Pos2, CID0, Eps, MinPts]
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extend[CID: (.CID0 * n) + $2] consume
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]
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let Cost1 = distCostSave(ControlWorkers);
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update LastCommand := distCostReset(ControlWorkers)
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# Step 6
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query T dcommand['query memclear()'] filter[.Ok] count;
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let Wm = X dmap["Wm", . feed filter[.N = .N2] mconsume];
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let Wm_Pos_mtree = Wm dmap["Wm_Pos_mtree", . mcreatemtree[Pos, wgs84]];
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let Neighbors = X Wm_Pos_mtree Wm
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dmap3["Neighbors", $1 feed filter[.N # .N2]
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loopsel[fun(t: TUPLE) $2 $3 mdistRange[attr(t, Pos), Eps]
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projectextend[; P: .Osm_id, PosP: .Pos, CID0: .CID0, CIDp: .CID,
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IsCoreP: .IsCore, Np: .N, Q: attr(t, Osm_id), QPos: attr(t, Pos)]]
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, myPort
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]
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let Cost2 = distCostSave(ControlWorkers);
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update LastCommand := distCostReset(ControlWorkers)
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query T dcommand['query memclear()'] filter[.Ok] count;
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let NeighborsByP = Neighbors partition["", hashvalue(.P, 999997), 0]
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collect2["NeighborsByP", myPort];
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let NeighborsByQ = Neighbors partition["", hashvalue(.Q, 999997), 0]
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collect2["NeighborsByQ", myPort];
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let Cost3 = distCostSave(ControlWorkers);
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update LastCommand := distCostReset(ControlWorkers)
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# Step 7
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let Merge = NeighborsByQ NeighborsByP
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dmap2["Merge", . feed {n1} .. feed {n2} itHashJoin[Q_n1, P_n2]
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filter[.IsCoreP_n1 and .IsCoreP_n2]
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project[CIDp_n1, CIDp_n2] sort rdup, myPort
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]
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let Cost4 = distCostSave(ControlWorkers);
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update LastCommand := distCostReset(ControlWorkers)
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let Assignments = NeighborsByQ NeighborsByP
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dmap2["", . feed {n1} .. feed {n2} itHashJoin[Q_n1, P_n2], myPort]
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dmap["",
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. feed filter[.IsCoreP_n1 and not(.IsCoreP_n2)]
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projectextend[; P: .P_n2, N: .Np_n2, CID: .CIDp_n1]
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. feed filter[.IsCoreP_n2 and not(.IsCoreP_n1)]
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projectextend[; P: .P_n1, N: .Np_n1, CID: .CIDp_n2]
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concat sort krdup[P]
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]
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partition["", .N, 0]
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collect2["Assignments", myPort]
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let Cost5 = distCostSave(ControlWorkers);
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update LastCommand := distCostReset(ControlWorkers)
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# Step 8
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let MergeM = Merge dsummarize sort rdup createmgraph2[CIDp_n1, CIDp_n2, 1.0];
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let MaxCN = X dmap["", . feed max[CID] feed transformstream] dsummarize max[Elem];
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# Step 9
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let Renumber = MergeM mg2connectedcomponents projectextend[; CID: .CIDp_n1,
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CIDnew: .CompNo + MaxCN] sort rdup consume
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# Step 10
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query share("Renumber", TRUE, Workers);
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# Step 11
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update LastCommand := distCostReset(ControlWorkers)
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query X Assignments
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dmap2["", $1 feed addid filter[.N = .N2] $2 feed sort krdup[P] {a}
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itHashJoin[Osm_id, P_a] $1 updatedirect2[TID; CID: .CID_a] count, myPort
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]
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getValue tie[. + ..]
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let Cost6 = distCostSave(ControlWorkers);
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update LastCommand := distCostReset(ControlWorkers)
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query X
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dmap["", $1 feed addid filter[.N = .N2] Renumber feed sort krdup[CID] {a}
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itHashJoin[CID, CID_a] $1 updatedirect2[TID; CID: .CIDnew_a] count
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]
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getValue tie[. + ..]
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let Cost7 = distCostSave(ControlWorkers);
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update LastCommand := distCostReset(ControlWorkers)
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let Commands = SEC2COMMANDS feed consume
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