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Fabrizio Riguzzi be449b3aef updated cplint
2011-10-22 16:33:04 +02:00

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@article{BelRig11-IDA,
author = {Elena Bellodi and Fabrizio Riguzzi},
title = { Expectation {Maximization} over Binary Decision Diagrams for Probabilistic Logic Programs},
year = {2012},
volume={16},
number={6},
journal={Intel. Data Anal.},
}
@article{DBLP:journals/jmlr/ElidanF05,
author = {G. Elidan and
N. Friedman},
title = {Learning Hidden Variable Networks: The Information Bottleneck
Approach},
journal = {Journal of Machine Learning Research},
volume = {6},
year = {2005},
pages = {81-127},
ee = {http://www.jmlr.org/papers/v6/elidan05a.html},
bibsource = {DBLP, http://dblp.uni-trier.de}
}
@inproceedings{BraRig10-ILP10-IC,
author = {Stefano Bragaglia and Fabrizio Riguzzi},
title = {Approximate Inference for
Logic Programs with Annotated Disjunctions},
booktitle = {Inductive Logic Programming
20th International Conference, ILP 2010, Florence, Italy, June 27-30, 2010. Revised Papers },
volume={6489},
pages={30--37},
year = {2011},
series = {LNCS},
editor = {Frasconi, Paolo and Lisi, Francesca},
publisher = {Springer},
doi = {10.1007/978-3-642-21295-6_7},
url={http://www.ing.unife.it/docenti/FabrizioRiguzzi/Papers/BraRig-ILP10.pdf},
copyright={Springer},
}
@inproceedings{Rig11-CILC11-NC,
author = {Fabrizio Riguzzi},
title = {{MCINTYRE}: A {Monte Carlo} Algorithm for Probabilistic Logic Programming},
booktitle = {Proceedings of the 26th Italian Conference on Computational Logic ({CILC2011}),
Pescara, Italy, 31 August-2 September, 2011},
year = {2011},
abstract={
Probabilistic Logic Programming is receiving an increasing attention for its ability to model domains with complex and uncertain relations among entities.
In this paper we concentrate on the problem of approximate inference in probabilistic logic programming languages based on the distribution semantics.
A successful approximate approach is based on Monte Carlo sampling, that consists in verifying the truth of the query in a normal program sampled from the probabilistic program.
The ProbLog system includes such an algorithm and so does the \texttt{cplint} suite.
In this paper we propose an approach for Monte Carlo inference that is based on a program transformation that translates a probabilistic program into a normal program to which the query can be posed. In the transformation, auxiliary atoms are added to the body of rules for performing sampling and checking for the consistency of the sample. The current sample is stored in the internal database of the Yap Prolog engine.
The resulting algorithm, called MCINTYRE for Monte Carlo INference wiTh Yap REcord, is evaluated on various problems: biological networks, artificial datasets and a hidden Markov model. MCINTYRE is compared with the Monte Carlo algorithms of ProbLog and \texttt{cplint} and with the exact inference of the PITA system. The results show that MCINTYRE is faster than the other Monte Carlo algorithms.
},
url={http://www.ing.unife.it/docenti/FabrizioRiguzzi/Papers/Rig-CILC11.pdf},
copyright={by the author},
}
@inproceedings{BelRig11-CILC11-NC,
author = {Elena Bellodi and Fabrizio Riguzzi},
title = {{EM} over Binary Decision Diagrams for Probabilistic Logic Programs},
booktitle = {Proceedings of the 26th Italian Conference on Computational Logic ({CILC2011}),
Pescara, Italy, 31 August 31-2 September, 2011},
year = {2011},
abstract={
Recently much work in Machine Learning has concentrated on representation languages able to combine aspects of logic and probability, leading to the birth of a whole field called Statistical Relational Learning.
In this paper we present a technique for parameter learning targeted to a family of formalisms where uncertainty is represented using Logic Programming techniques - the so-called Probabilistic Logic Programs such as ICL, PRISM, ProbLog and LPAD.
Since their equivalent Bayesian networks contain hidden variables, an EM algorithm is adopted.
In order to speed the computation, expectations are computed directly on the Binary Decision Diagrams that are built for inference.
The resulting system, called EMBLEM for ``EM over Bdds for probabilistic Logic programs Efficient Mining'', has been applied to a number of datasets and showed good performances both in terms of speed and memory usage.
},
url={http://www.ing.unife.it/docenti/FabrizioRiguzzi/Papers/BelRig-CILC11.pdf},
copyright={by the authors},
}
@inproceedings{BelRig11-ILP11-IC,
author = {Elena Bellodi and Fabrizio Riguzzi},
title = {Learning the Structure of Probabilistic Logic Programs},
booktitle = {Inductive Logic Programming,
21th International Conference, ILP 2011, London, UK, 31 July-3 August, 2011 },
year = {2011},
url={http://ilp11.doc.ic.ac.uk/short_papers/ilp2011_submission_52.pdf},
}
@article{RigDiM11-ML-IJ,
author = {Fabrizio Riguzzi and Nicola Di Mauro},
title = {Applying the Information Bottleneck to Statistical Relational Learning},
year = {2011},
journal={Machine Learning},
pdf={http://www.ing.unife.it/docenti/FabrizioRiguzzi/Papers/RigDiM11-ML-IJ.pdf},
note={To appear},
doi = {10.1007/s10994-011-5247-6},
publisher={Springer},
copyright={Springer},
abstract={In this paper we propose to apply the Information Bottleneck (IB) approach to the sub-class of
Statistical Relational Learning (SRL) languages that are reducible to Bayesian networks. When the
resulting networks involve hidden variables, learning these languages requires the use of techniques
for learning from incomplete data such as the Expectation Maximization (EM) algorithm.
Recently, the IB approach was shown to be able to avoid some of the local maxima in which EM can get
trapped when learning with hidden variables. Here we present the algorithm Relational Information Bottleneck
(RIB)
that learns the parameters of SRL languages reducible
to Bayesian Networks.
In particular, we present the specialization of RIB to a language belonging to the family of languages based on the distribution semantics, Logic Programs with Annotated Disjunction (LPADs). This language is prototypical for such a family and its equivalent Bayesian networks contain hidden variables. RIB is evaluated on the IMDB, Cora and artificial datasets and compared with LeProbLog, EM, Alchemy and PRISM.
The experimental results show that RIB has good performances especially when some logical atoms are unobserved.
Moreover, it is particularly suitable when learning from interpretations that share the same Herbrand base.},
}
@techreport{BelRig11-TR,
author = {Elena Bellodi and Fabrizio Riguzzi},
title = { {EM} over Binary Decision Diagrams for Probabilistic Logic Programs},
year = {2011},
institution = {Dipartimento di Ingegneria, Universit\`a di Ferrara, Italy},
number={CS-2011-01},
url={http://www.unife.it/dipartimento/ingegneria/informazione/informatica/rapporti-tecnici-1/CS-2011-01.pdf/view}
}
@inproceedings{Rig-RCRA07-IC,
author={
Fabrizio Riguzzi },
title={A Top Down Interpreter for {LPAD} and {CP}\--logic},
booktitle={Proceedings of the 14th RCRA workshop
Experimental Evaluation of Algorithms for
Solving Problems with Combinatorial Explosion},
year={2007},
pdf={http://pst.istc.cnr.it/RCRA07/articoli/P19-riguzzi-RCRA07.pdf},
abstract={Logic Programs with Annotated Disjunctions and CP-logic are two different but related languages for expressing probabilistic information in logic programming.
The paper presents a top down interpreter for computing the probability of a query from a program in one of these two languages when the program is acyclic.
The algorithm is based on the one available for ProbLog.
The performances of the algorithm are compared with those of a Bayesian reasoner and with those of the ProbLog interpreter. On programs that have a small grounding, the Bayesian reasoner is more scalable, but programs with a large grounding require the top down interpreter. The comparison with ProbLog shows that, even if the added expressiveness effectively requires more computation resources, the top down interpreter can still solve
problem of significant size.
},
keywords={Probabilistic Logic Programming, Logic Programs with Annotated Disjunction, Probabilistic Reasoning},
}
@techreport{VenVer03-TR,
author = {J. Vennekens and S. Verbaeten},
title = {Logic Programs With Annotated Disjunctions},
year = {2003},
institution = {K. U. Leuven},
number = {CW386},
url = {http://www.cs.kuleuven.ac.be/\string~joost/techrep.ps},
}
@inProceedings{VenVer04-ICLP04-IC,
author = {J. Vennekens and S. Verbaeten and M. Bruynooghe},
title = {Logic Programs With Annotated Disjunctions},
booktitle = {International Conference on Logic Programming},
year = {2004},
series={LNCS},
volume={3131},
publisher={Springer},
pages={195-209}
}
@inproceedings{RigSwi10-ICLP10-IC,
author = {Fabrizio Riguzzi and Terrance Swift},
title = {{T}abling and {A}nswer {S}ubsumption for {R}easoning on {L}ogic {P}rograms with {A}nnotated {D}isjunctions},
booktitle = {Technical Communications of the International
Conference on Logic Programming},
volume = {7},
year = {2010},
publisher = {Schloss Dagstuhl--Leibniz-Zentrum fuer Informatik},
series = {Leibniz International Proceedings in
Informatics (LIPIcs)},
ISBN = {978-3-939897-17-0},
ISSN = {1868-8969},
pages = {162--171},
doi = {10.4230/LIPIcs.ICLP.2010.162}
}
@inproceedings{DBLP:conf/iclp/MantadelisJ10,
author = {Theofrastos Mantadelis and
Gerda Janssens},
title = {Dedicated Tabling for a Probabilistic Setting},
booktitle = {International Conference
on Logic Programming},
year = {2010},
pages = {124-133},
series = {LIPIcs},
volume = {7},
ee = {http://dx.doi.org/10.4230/LIPIcs.ICLP.2010.124},
publisher = {Schloss Dagstuhl - LZI},
}
booktitle = {ICLP (Technical Communications)},
editor = {Manuel V. Hermenegildo and
Torsten Schaub},
@inproceedings{CCIL08,
author = "F. Calimeri and S. Cozza and G. Ianni and N. Leone",
title = "Computable Functions in {ASP}: Theory and Implementation",
booktitle = ICLP,
publisher = {Springer},
series = {LNCS},
volume = {5366},
pages = "407-424",
year = 2008}
@article{BaBC09,
author = "S. Baselice and P. Bonatti and G. Criscuolo",
title = "On finitely recursive programs",
journal = TPLP,
Volume = 9,
Number = 2,
pages = "213-238",
year = 2009}
@article{Swif99a,
AUTHOR = "T. Swift",
TITLE = "Tabling for Non-Monotonic Programming",
Journal = {Annals of Mathematics and Artifial Intelligence},
publisher = {Baltzer Science Publishers},
volume = {25},
number = {3-4},
pages = "201-240",
year = {1999}
}
@article{ SaSW99,
AUTHOR = "K. Sagonas and T. Swift and D. S. Warren",
TITLE = "The Limits of Fixed-Order Computation",
Journal = "Theoretical Computer Science",
Volume = 254,
Number = "1-2",
Pages = "465-499",
Year = 2000 }
% only used in appendix.
@inproceedings{Swif99b,
AUTHOR = "T. Swift",
TITLE = "A New Formulation of Tabled Resolution with Delay",
Booktitle = "Portuguese Conference
on Artificial Intelligence",
Pages = "163-177",
Year = 1999,
Series = "LNAI",
volume = 1695,
Publisher = "Springer",
}
@inproceedings{Przy89d,
AUTHOR = "T. Przymusinski",
TITLE = "Every Logic Program has a Natural Stratification and an Iterated Least Fixed Point Model",
BOOKTITLE = "Symposium on Principles of Database Systems",
PAGES = "11-21",
YEAR = "1989",
publisher = {ACM Press},
}
@inproceedings{DBLP:conf/cl/KameyaS00,
author = {Yoshitaka Kameya and
Taisuke Sato},
title = "Efficient {EM} Learning with Tabulation for Parameterized
Logic Programs",
booktitle = {First International Conference on Computational Logic},
year = {2000},
pages = {269-284},
ee = {http://link.springer.de/link/service/series/0558/bibs/1861/18610269.htm},
publisher = {Springer},
series = {LNCS},
volume = {1861},
bibsource = {DBLP, http://dblp.uni-trier.de}
}
@inproceedings{DBLP:conf/iclp/KimmigCRDR08,
author = "Angelika Kimmig and
V\'{\i}tor {Santos Costa} and
Ricardo Rocha and
Bart Demoen and
Luc {De Raedt}",
title = "On the Efficient Execution of {ProbLog} Programs",
booktitle = {International Conference on Logic Programming},
year = {2008},
pages = {175-189},
ee = {http://dx.doi.org/10.1007/978-3-540-89982-2_22},
bibsource = {DBLP, http://dblp.uni-trier.de},
publisher = {Springer},
series = {LNCS},
volume = {5366}
}
@inproceedings{DeR-NIPS08,
author={De Raedt, L. and Demoen, B. and
Fierens, D. and
Gutmann, B. and Janssens, G. and
Kimmig, A. and Landwehr, N. and
Mantadelis, T. and
Meert, W. and
Rocha, R. and
Santos Costa, V. and
Thon, I. and
Vennekens, J.},
title={Towards digesting the alphabet-soup of statistical relational learning},
booktitle={{NIPS*2008} Workshop on Probabilistic Programming},
year={2008}
}
% TLS: took out address for space.
@inproceedings{KimGutSan-ILP09-IC,
author = "A. Kimmig and B. Gutmann and V. {Santos Costa}",
title= "Trading Memory for Answers: Towards Tabling {ProbLog}",
booktitle = {International Workshop on Statistical Relational Learning},
publisher = {KU Leuven},
year = {2009},
}
% address={Leuven, Belgium}
@book{pearl88,
title = {Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference},
author = {Judea Pearl},
publisher = {Morgan Kaufmann},
year = {1988},
isbn = {1558604790},
keywords = {imported intelligend probabilistic reasoning systems }
}
@article{DBLP:journals/tplp/VennekensDB09,
author = {J. Vennekens and
Marc Denecker and
Maurice Bruynooghe},
title = {{CP}-logic: A language of causal probabilistic events and
its relation to logic programming},
journal = {Theory Pract. Log. Program.},
volume = {9},
number = {3},
year = {2009},
pages = {245-308},
ee = {http://dx.doi.org/10.1017/S1471068409003767},
bibsource = {DBLP, http://dblp.uni-trier.de}
}
@article{NgSub-InfComp91,
author = {Ng, Raymond and Subrahmanian, V. S.},
title = {Probabilistic logic programming},
journal = {Inf. Comput.},
volume = {101},
number = {2},
year = {1992},
issn = {0890-5401},
pages = {150--201},
doi = {http://dx.doi.org/10.1016/0890-5401(92)90061-J},
publisher = {Academic Press, Inc.},
address = {Duluth, MN, USA},
}
@article{Emd-JLP86,
author = "{van Emden}, M H",
title = {Quantitative deduction and its fixpoint theory},
journal = {J. Log. Program.},
volume = {30},
number = {1},
year = {1986},
issn = {0743-1066},
pages = {37--53},
publisher = {Elsevier Science Inc.},
address = {New York, NY, USA},
}
@inproceedings{Sha-IJCAI83,
author = {Shapiro, Ehud Y.},
title = {Logic programs with uncertainties: a tool for implementing rule-based systems},
booktitle = IJCAI,
year = {1983},
pages = {529--532},
publisher = {Morgan Kaufmann Publishers Inc.},
}
location = {Karlsruhe, West Germany},
address = {San Francisco, CA, USA},
% booktitle = {International Joint conference on Artificial intelligence},
@inproceedings{Rig09-RCRA-IW,
author={F. Riguzzi},
title={The {SLGAD} Procedure for Inference on {Logic Programs with Annotated
Disjunctions}},
booktitle={Proceedings of the 15th {RCRA} workshop on Experimental Evaluation
of Algorithms for Solving Problems with Combinatorial Explosion
Udine, Italy, December 12-13, 2008},
editor={M. Gavanelli and T. Mancini},
url={http://ceur-ws.org/Vol-451/paper15riguzzi.pdf},
series={CEUR Workshop Proceedings},
publisher={Sun {SITE} Central Europe},
issn={1613-0073},
number={451},
year={2009},
address={Aachen, Germany},
}
@ARTICLE{DBLP:journals/jlp/ChenSW95,
author = {Weidong Chen and Terrance Swift and David Scott Warren},
title = {Efficient Top-Down Computation of Queries under the Well-Founded
Semantics},
journal = {J. Log. Program.},
year = {1995},
volume = {24},
pages = {161-199},
number = {3}
}
@inproceedings{MeeStrBlo08-ILP09-IC,
author = {W. Meert and J. Struyf and H. Blockeel},
title = {{CP-Logic} Theory Inference with Contextual Variable Elimination and Comparison to {BDD} Based Inference Methods},
booktitle = {International Conference on Inductive Logic Programming},
year = {2009},
publisher = {KU LEuven},
}
address={Leuven, Belgium},
@article{DBLP:journals/jacm/ChenW96,
author = {Weidong Chen and
David Scott Warren},
title = {Tabled Evaluation With Delaying for General Logic Programs},
journal = JACM,
volume = {43},
number = {1},
year = {1996},
pages = {20-74},
ee = {db/journals/jacm/ChenW96.html, http://doi.acm.org/10.1145/227595.227597},
bibsource = {DBLP, http://dblp.uni-trier.de}
}
@article{Rig09-LJIGPL-IJ,
author = {Fabrizio Riguzzi},
title = {Extended Semantics and Inference for the {Independent Choice Logic}},
journal = {Logic Journal of the IGPL},
publisher = {Oxford University Press},
volume = {17},
number = {6},
pages = {589--629},
address = {Oxford, \UK},
year = {2009},
abstract = {The Independent Choice Logic (ICL) is a language for expressing
probabilistic information in logic programming that adopts a distribution
semantics: an ICL theory defines a distribution over a set of possible worlds
that are normal logic programs. The probability of a query is then given by the
sum of the probabilities of worlds where the query is true.
The ICL semantics requires the theories to be acyclic. This is a strong
limitation that rules out many interesting programs.
In this paper we present an extension of the ICL semantics that allows theories
to be modularly acyclic.
Inference with ICL can be performed with the Cilog2 system that computes
explanations to queries and then makes them mutually incompatible by means of
an iterative algorithm.
We propose the system PICL (for Probabilistic inference with ICL) that computes
the explanations to queries by means of a modification of SLDNF\--resolution
and then makes them mutually incompatible by means of Binary Decision Diagrams.
PICL and Cilog2 are compared on problems that involve computing the probability
of a connection between two nodes in biological graphs and social networks.
PICL turned to be more efficient, handling larger networks/more complex queries
in a shorter time than Cilog2. This is true both for marginal and for
conditional queries.
},
doi = {10.1093/jigpal/jzp025},
url = {http://jigpal.oxfordjournals.org/cgi/reprint/jzp025?ijkey=picqzY6rpyU6emf&keytype=ref },
http = {http://jigpal.oxfordjournals.org/cgi/content/abstract/jzp025?ijkey=picqzY6rpyU6emf&keytype=ref },
keywords = {Probabilistic Logic Programming, Independent Choice Logic, Modularly acyclic programs, SLDNF-Resolution},
copyright = {Fabrizio Riguzzi, exclusively licensed to Oxford University Press}
}
@inproceedings{Rig08-ICLP08-IC,
author = {F. Riguzzi},
title = {Inference with Logic Programs with Annotated Disjunctions under the Well Founded Semantics},
booktitle = ICLP,
publisher = {Springer},
series = {LNCS},
year = {2008},
volume={5366},
pages={667-771},
pdf={http://www.ing.unife.it/docenti/FabrizioRiguzzi/Papers/Rig-ICLP08.pdf},
doi={10.1007/978-3-540-89982-2\string_54},
}
url={http://www.springerlink.com/content/247533616617llm8/}
@article{Rig09-JACIL-IJ,
author={F. Riguzzi},
title={{SLGAD} Resolution for Inference on {Logic Programs with Annotated
Disjunctions}},
journal={Journal of Algorithms in Logic, Informatics and Cognition },
publisher={Elsevier},
note={,\ in press},
year=2009,
abstract={Logic Programs with Annotated Disjunctions (LPADs) allow to express
probabilistic information in logic programming. The semantics of an LPAD is
given in terms of well\--founded models of the normal logic programs obtained
by selecting one disjunct from each ground LPAD clause.
Inference on LPADs can be performed using either the system Ailog2, that was
developed for the Independent Choice Logic, or SLDNFAD, an algorithm based on
SLDNF. However, both of these algorithms run the risk of going into infinite
loops and of performing redundant computations.
In order to avoid these problems, we present SLGAD resolution that computes
the (conditional) probability of a ground query from a range\--restricted LPAD
and is based on SLG resolution for normal logic programs. As SLG, it uses
tabling to avoid some infinite loops and to avoid redundant computations.
The performances of SLGAD are evaluated on classical benchmarks for normal logic
programs under the well\--founded semantics, namely a 2\--person game and the
ancestor relation, and on a game of dice.
SLGAD is compared with Ailog2 and SLDNFAD on the problems in which they do
not go into infinite loops, namely those that are described by a modularly
acyclic program.
On the 2\--person game and the ancestor relation, SLGAD is more expensive than
SLDNFAD on problems where SLDNFAD succeeds but is faster than Ailog2 when the
query is true in an exponential number of instances.
If the program requires the repeated computation of similar goals, as for the
dice game, then SLGAD outperforms both Ailog2 and SLDNFAD.},
}
year={2009},
year={in press},
@inproceedings{Rig09-RCRA-IW,
author={F. Riguzzi},
title={The {SLGAD} Procedure for Inference on {Logic Programs with Annotated
Disjunctions}},
booktitle={{RCRA} workshop on Experimental Evaluation
of Algorithms for Solving Problems with Combinatorial Explosion},
editor={Marco Gavanelli and Toni Mancini},
url={http://ceur-ws.org/Vol-451/paper15riguzzi.pdf},
series={CEUR Workshop Proceedings},
publisher={Sun {SITE} Central Europe},
issn={1613-0073},
number={451},
year={2009},
}
@BOOK{Pea00-book,
title = {Causality},
publisher = {Cambridge University Press},
year = {2000},
author = {Pearl, J.},
}
@article{DBLP:journals/tplp/BaralGR09,
author = {C.Baral and
M. Gelfond and
N. Rushton},
title = {Probabilistic reasoning with answer sets},
journal = {The. Pra. Log. Program.},
volume = {9},
number = {1},
year = {2009},
pages = {57-144},
doi = {10.1017/S1471068408003645},
bibsource = {DBLP, http://dblp.uni-trier.de}
}
@article{DBLP:journals/jlp/Poole00,
author = {David Poole},
title = {Abducing through negation as failure: stable models within
the independent choice logic},
journal = {Journal of Logic Programming},
volume = {44},
number = {1-3},
year = {2000},
pages = {5-35},
bibsource = {DBLP, http://dblp.uni-trier.de}
}
@article{DBLP:journals/jlp/AptD94,
author = {Krzysztof R. Apt and
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}
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year={1950},
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@article{DBLP:journals/jacm/Ross94,
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}
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publisher = {Springer},
year = {1987},
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bibsource = {DBLP, http://dblp.uni-trier.de}
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@article{DBLP:journals/jacm/AptE82,
author = {Krzysztof R. Apt and
Maarten H. van Emden},
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bibsource = {DBLP, http://dblp.uni-trier.de}
}
@inproceedings{DBLP:conf/iclp/GelfondL88,
author = {Michael Gelfond and
Vladimir Lifschitz},
title = {The Stable Model Semantics for Logic Programming},
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This file was created with JabRef 2.2.
Encoding: Cp1252
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pages = {222-243},
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ee = {http://dx.doi.org/10.1007/978-3-540-78652-8_8}
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year = {2004}
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isbn = {3-540-61286-6}
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title = {Logical Bayesian networks},
booktitle = {Multi-Relational Data Mining ({MRDM} 2004)},
year = {2004},
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month = {December}
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title = {{TildeCRF}: Conditional Random Fields for Logical Sequences.},
booktitle = {Machine Learning, ({ECML} 2006)},
year = {2006},
series = {LNCS},
publisher = {Springer}
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year = {2002},
number = {2479},
series = {LNCS},
pages = {205-221},
publisher = {Springer},
bibsource = {DBLP, http://dblp.uni-trier.de},
ee = {http://link.springer.de/link/service/series/0558/bibs/2479/24790205.htm}
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author = {Manfred Jaeger and Petr Lidman and Juan L. Mateo},
title = {Mining and Learning with Graphs, MLG 2007, Firence, Italy, August
1-3, 2007, Proceedings},
booktitle = {Comparative Evaluation of PL languages},
year = {2007},
editor = {Paolo Frasconi and Kristian Kersting and Koji Tsuda}
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title = {Fisher Kernels for Logical Sequences.},
booktitle = {Machine Learning, ({ECML} 2004)},
year = {2004},
number = {3201},
series = {LNCS},
pages = {205-216},
publisher = {Springer},
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ee = {http://springerlink.metapress.com/openurl.asp?genre=article{\&}issn=0302-9743{\&}volume=3201{\&}spage=205}
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title = {Logical Hidden Markov Models.},
journal = {Journal of Artificial Intelligence Research},
year = {2006},
volume = {25},
pages = {425-456}
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author = {K. Kersting and T. Raiko and S. Kramer and L. De Raedt},
title = {Towards Discovering Structural Signatures of Protein Folds Based
on Logical Hidden Markov Models.},
booktitle = {Pacific Symposium on Biocomputing},
year = {2003},
pages = {192-203},
bibsource = {DBLP, http://dblp.uni-trier.de},
ee = {http://helix-web.stanford.edu/psb03/kersting.pdf}
}
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author = {Daphne Koller},
title = {Probabilistic Relational Models},
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year = {1999},
volume = {1634},
series = {Lecture Notes in Computer Science},
pages = {3-13},
publisher = {Springer}
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Their Application to Expert Systems},
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title = {Link-based Classification},
booktitle = {International Conference
on Machine Learning},
year = {2003},
pages = {496-503},
publisher = {AAAI Press}
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Logic},
year = {2002},
publisher={IEEE Computer Society Press},
pages = {245-253}
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pages = {141-153},
number = {B},
bibsource = {DBLP, http://dblp.uni-trier.de},
ee = {http://www.ep.liu.se/ej/etai/2000/015/}
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Algorithm for Estimating Prior and Posterior Probabilities},
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year = {1993},
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author = {T. C. Przymusinski},
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year = {1988},
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author = {Matthew Richardson and Pedro Domingos},
title = {Markov logic networks},
journal = {Machine Learning},
year = {2006},
volume = {62},
pages = {107-136},
number = {1-2},
bibsource = {DBLP, http://dblp.uni-trier.de},
ee = {http://dx.doi.org/10.1007/s10994-006-5833-1}
}
@INPROCEEDINGS{Rig-AIIA07-IC,
author = { Fabrizio Riguzzi },
title = {A Top Down Interpreter for {LPAD} and {CP}\--logic},
booktitle = {Congress of the Italian Association for Artificial
Intelligence},
year = {2007},
volume = {4733},
series = {LNAI},
pages = {109--120},
publisher = {Springer},
abstract = {Logic Programs with Annotated Disjunctions and CP-logic are two different
but related languages for expressing probabilistic information in
logic programming. The paper presents a top down interpreter for
computing the probability of a query from a program in one of these
two languages. The algorithm is based on the one available for ProbLog.
The performances of the algorithm are compared with those of a Bayesian
reasoner and with those of the ProbLog interpreter. On programs that
have a small grounding, the Bayesian reasoner is more scalable, but
programs with a large grounding require the top down interpreter.
The comparison with ProbLog shows that the added expressiveness effectively
requires more computation resources.},
keywords = {Probabilistic Logic Programming, Logic Programs with Annotated Disjunction,
Probabilistic Reasoning},
pdf = {http://www.ing.unife.it/docenti/FabrizioRiguzzi/Papers/Rig-AIIA07.pdf},
doi = {10.1007/978-3-540-74782-6\string_11 },
}
url = {http://www.springerlink.com/content/v7m1k21607xhh365/},
@INPROCEEDINGS{Rig-ILP06,
author = {F. Riguzzi},
title = {{ALLPAD}: Approximate Learning of Logic Programs with Annotated Disjunctions},
booktitle = {Proceedings of the 16th International Conference on Inductive Logic
Programming},
year = {2007},
number = {4455},
series = {LNAI},
publisher = {Springer}
}
@TECHREPORT{Rig06-TR,
author = {F. Riguzzi},
title = {{ALLPAD}: Approximate Learning of Logic Programs With Annotated Disjunctions},
institution = {University of Ferrara},
year = {2006},
number = {CS-2006-01},
note = {http://www.ing.unife.it/aree\_ricerca/informazione/cs/technical\_reports/CS-2006-01.pdf}
}
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author = {F. Riguzzi},
title = {Learning Logic Programs with Annotated Disjunctions},
booktitle = {Inductive Logic Programming, ({ILP} 2004)},
year = {2004},
number = {3194},
series = {LNCS},
pages = {270--287},
month = {September},
publisher = {Springer},
doi = {10.1007/b10011},
isbn = {3-540-22941-8},
issn = {0302-9743},
url = {http://www.ing.unife.it/docenti/FabrizioRiguzzi/Papers/Rig-ILP04.pdf}
}
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address = {New York, NY, USA},
publisher = {ACM},
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isbn = {0-89791-430-9},
location = {Denver, Colorado, United States}
}
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title = {PRISM: A Language for Symbolic-Statistical Modeling},
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year = {1997},
pages = {1330-1339},
bibsource = {DBLP, http://dblp.uni-trier.de}
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publisher = {Springer},
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ee = {http://dx.doi.org/10.1007/11799511_5}
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note = {http://web.comlab.ox.ac.uk/oucl/research/ areas/machlearn/Aleph/aleph\_toc.html}
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ee = {http://dx.doi.org/10.1007/11563983_31}
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% address = {Los Alamitos, CA, USA},
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publisher = {Springer}
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title = {Probabilistic Inductive Logic Programming - Theory and Applications},
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editor = { De Raedt, Luc and Paolo Frasconi and Kristian Kersting and Stephen
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volume = {4911},
series = {LNCS},
publisher = {Springer},
bibsource = {DBLP, http://dblp.uni-trier.de},
booktitle = {Probabilistic Inductive Logic Programming},
isbn = {978-3-540-78651-1}
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YEAR = 1989 }
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note = {http://web.comlab.ox.ac.uk/oucl/research/areas/machlearn/Aleph/aleph_toc.html},
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