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Specialised N-ary Constraint for the Stable Marriage Problem By Chris Unsworth and Patrick Prosser.

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Presentation on theme: "Specialised N-ary Constraint for the Stable Marriage Problem By Chris Unsworth and Patrick Prosser."— Presentation transcript:

1 Specialised N-ary Constraint for the Stable Marriage Problem By Chris Unsworth and Patrick Prosser

2 Contents The Stable Marriage Problem The Algorithm Previous Constraint Models Specialised N-ary Constraint Computational Comparison Conclusion Applause

3 Contents The Stable Marriage Problem The Algorithm Previous Constraint Models Specialised N-ary Constraint Computational Comparison Conclusion Applause

4 The Stable Marriage Problem Men Women Bob Ian Jon : Ian Jon Bob : Jon Ian Bob : Bob Jon Ian : Sue Jan Liz : Liz Jan Sue : Jan Sue Liz Jan Liz Sue We have n menand n women Each man ranks the n women And each woman ranks the n men Objective : To find a matching of men to women Such that the matching is Stable

5 The Stable Marriage Problem Men Women Bob Ian Jon : Ian Jon Bob : Jon Ian Bob : Bob Jon Ian : Sue Jan Liz : Liz Jan Sue : Jan Sue Liz Jan Liz Sue A Matching But not a stable one  Bob and Sue would rather be matched to each other than to there assigned partners In this matching Bob and Sue are a Blocking pair A matching is only stable iff it contains no Blocking pairs

6 The Stable Marriage Problem Men Women Bob Ian Jon : Ian Jon Bob : Jon Ian Bob : Bob Jon Ian : Sue Jan Liz : Liz Jan Sue : Jan Sue Liz Jan Liz Sue A Stable Matching And another Stable Match

7 Contents The Stable Marriage Problem The Algorithm Previous Constraint Models Specialised N-ary Constraint Computational Comparison Conclusion Applause

8 The Extended Gale Shapley Algorithm Cycles through a list of free men until there are no free men remaining The man proposes to his most preferred woman If the woman was engaged then the engagement is broken and her previous fiancé will be added to the free list The man and woman become engaged All men the woman likes less than her new fiancé will be removed from her preference list, and she will also be removed from theirs

9 assign each person to be free WHILE (some man m is free) DO BEGIN w := first woman on m's list IF (some man p is engaged to w) THEN assign p to be free assign m and w to be engaged to each other FOR (each successor p of m on w's list) DO BEGIN delete p from w's list delete w from p's list END The Extended Gale Shapley Algorithm

10 The reduced preference lists are the MGS-Lists The female version yields the WGS- Lists The intersection of these lists are known as the GS-Lists Contains all possible stable matchings If all men are match to there best match in the GS-Lists that matching will be the man optimal matching Likewise with the women

11 Contents The Stable Marriage Problem The Algorithm Previous Constraint Models Specialised N-ary Constraint Computational Comparison Conclusion Applause

12 Previous Constraint Models Two Constraint encodings presented by Ian Gent, Robert Irving, David Manlove, Patrick Prosser and Barbara Smith in CP01

13 Forbidden tuples model (CP01) 2n variables, one for each man and woman each with a domain (1.. N) n 2 table constraints One for each potential couple Set of pairs of values the constrained variables cannot simultaneously take Potentially O(n 2 ) pairs per constraint

14 Forbidden tuples model (CP01) When made arc consistent the variable domains are equivalent to the GS-Lists All stable matchings can be found in a failure free enumeration Space complexity O(n 4 ) Time complexity O(n 4 )

15 Boolean Encoding (CP01) 2n 2 variables with 0/1 domains m[i,j] = 1 means m[i] is married to a partner no better than j. m[i,j] = 0 means m[i] is married to a partner better than j O(n 2 ) constraints, mostly implication

16 Boolean Encoding (CP01) When made arc consistent the variable domains equal the bounds of the GS-lists All stable matchings can be found in a failure free enumeration Space complexity O(n 2 ) Time complexity O(n 2 )

17 Contents The Stable Marriage Problem The Algorithm Previous Constraint Models Specialised N-ary Constraint Computational Comparison Conclusion Applause

18 Justification A Linear time algorithm already exists for this problem (linear to the size of input i.e. O(n 2 )) Optimal Constraint models have been published So why do we need a specialised constraint for this problem? Performance gap between Constraint models and algorithm Inflexibility of the algorithm The Aim of the Specialised Constraint Is then to reduce the performance gap whilst retaining the flexibility of the constraint models

19 Specialised N-ary Constraint 2n variables, one for each man and woman each with a domain (1.. N) Domain values represent preferences e.g. if the man variable m[1] were assigned the value 3 then man 1 would be assigned to his third choice woman 1 Specialised n-ary Constraint

20 Specialised N-ary Constraint 5 methods associated with a constraint Initialisation of constraints Lower bound of a variable increases Upper bound of a variable decreases Interior value removal Variable instantiation Assume constraint is processed in an AC5-like environment when a variable loses a value, process the constraints incident on that variable

21 Specialised N-ary Constraint Constraint requirements Access to all variable domains x[i] = variable for man i y[j] = variable for woman j The inverse preference lists mpw[i] = man i’s inverse preference list mpw[i][j] = man i’s inverse preference for woman j mpw[i][j] = k iff mpl[i][k] = j wpm[j] = woman j’s inverse preference list

22 Lower bound increases Man m i ’s lower bound increases The Lower bound method is called Get man m i ’s new lower bound Find woman w j that a corresponds to Remove all men from woman w j ‘s domain she likes less than m i LowerBound(i) a = getMin(x[i]) j = mpw[i][a] setMax(y[j],wpm[j][j])

23 Upper bound decreases Woman w j ’s upper bound is reduced The upper bound method is called Loop for each value k removed form the tail of woman w j ’s domain Find man m i that k represents Remove woman w j from m i ’s domain upperBound(j) for (k = value removed from the tail of j[j]) i = wpm[j][k] remVal(x[i],mpw[i][j])

24 Initialisation, Interior Removal, Instantiation Initialisation simply calls the lower bound method The Interior Removal and Instantiation methods are required for search and side constraints Read paper for more detail

25 Complexity Space complexity O(n 2 ) Time complexity O(n 2 ) See paper for complexity argument

26 Contents The Stable Marriage Problem The Algorithm Previous Constraint Models Specialised N-ary Constraint Computational Comparison Conclusion Applause

27 Computational Comparison Compare forbidden tuples (FT), Boolean (Bool) and the specialised N-ary constraint (SMN) on random SMP Time to make arc-consistent Time to find all solutions All times include model creation time

28 Computational Comparison Size n model451002004006008001000 FT8.95------ Bool0.251.24.4---- SMN0.010.020.060.210.510.952.11 Size n model451002004006008001000 FT9.32------ Bool0.362.026.73---- SMN0.020.030.070.240.731.563.35 Time in seconds to produce the GS-Lists Time in seconds to find all solutions

29 Computational Comparison Size n problem100012001400160018002000 AC2.113.125.938.7111.5920.19 All3.355.098.812.9218.9626.81 Time in seconds to produce the GS-Lists and find all solutions with the SMN constraint

30 Computational Comparison Why is SMN dominating Bool? SMN is more space efficient Bool has 2n + 6n 2 constraints SMN has 1 constraint of size O(n 2 ) Bool has 2n 2 variables SMN has 2n variables Bool runs out of memory constructing the variable for n = 1300 SMN constructs the variables for n = 1300 in 0.25 seconds

31 Demonstration of Versatility The sex equal stable marriage problem Find the matching that is equally good for all Minimise the absolute difference between the sums of the preferences of the male and female assignment Minimise( ) Where P(m 1 ) gives m 1 ’s preference for his assigned partner This has been proven to be NP-hard

32 Demonstration of Versatility Implementation 2 summation constraints 1 over the male variable the other over the female 1 variable to hold the value of the absolute difference between the 2 summation constraints 1 minimising objective constraint Code needed : final IlcIntVar optVar = solver.intVar(0, n*n); solver.add(solver.eq(optVar, solver.abs( solver.diff(solver.sum(menVars), solver.sum(womenVars))))); solver.add(solver.minimize(optVar));

33 Demonstration of Versatility Time in seconds to find sex-equal optimal solution Size n problem100012001400160018002000 SE3.655.028.7314.4417.5922.44 All3.355.098.812.9218.9626.81

34 Conclusion A new specialised N-ary constraint for SM Outperforms optimal constraint model Because compact and simple Versatile 1 st computational study of SESMP (we think)

35 Applause & Questions Thank you

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