OASIS LegalRuleML ICAIL2013, Rome 12th June Monica Palmirani.

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Presentation transcript:

OASIS LegalRuleML ICAIL2013, Rome 12th June Monica Palmirani

LegalRuleML TC Monica Palmirani, CIRSFID, UniBO Guido Governatori, NICTA, Australia Harold Boley, NRC Tara Athan, Athan Services Adrian Paschke, Uni. Berlin Adam Wyner Uni. Aberdeen Chair Secretary

Outline Introduction to LegalRuleML  Motivations, Goals, Principles  Design principles  LegalRuleML Syntax Use Case: “Section 29 Consumer Code of Australia”

Motivations Legal texts are the privileged sources for norms, guidelines and rules that often feed different concrete Web applications.  Legislative documents, Contracts, Judgements  Guidelines (Soft Law) in eGovernment, eJustice, eLegislation, eHealth, banks, assurances, credit card organizations, Cloud Computing, eCommerce, aviation and security domainm etc. The ability to have proper and expressive conceptual, machine readable models of the various and multifaceted aspects of norms, guidelines, and general legal knowledge is a key factor for the development and deployment of successful applications.

Goal The LegalRuleML TC, set up inside of OASIS at Jan 12, 2012 ( with 25 members, aims to produce a rule language for the legal domain:  Based on the legal textual norms  Oriented to legal people  Compact in the syntax annotation  Neutral respect any logic  Flexible and extensible

State of the art and background RuleML  RuleML doesn’t manage temporal metadata, penality- reparation, temporal defesibility LKIF-rule [Gordon 2008]  LKIF-rule doesn’t implement the temporal metadata, specific deontic operators, temporal defeasibility, penalty-reparations RIF  RIF does not provide direct support for adequate representation of legal rules and legal reasoning. The current RIF dialects are not expressive enough, since they do not support e.g. logic-based negation, non- monotonic reasoning, events and temporal metadata etc.

7 LegalRuleML RuleML Family of Sublanguages

Requirements Support for modelling different types of rules:  Constitutive rules (e.g. definitions)  Prescriptive rules (e.g. obbligation, permission, etc.) Implement isomorphism [Bench-Capon and Coenen, 1992] Implement defeasibility [Gordon, 1995, Prakken and Sartor, 1996, Sartor, 2005] Model legal procedural rules

Design Principles (1/2) Multiple Semantic Annotations:  A legal rule may have multiple semantic annotations where each annotation can represent a different legal interpretation.  Each such annotation can appear in a separate annotation block as internal or external metadata. Tracking the LegalRuleML Creators:  As part of the provenance information, a LegalRuleML document or any of its fragments can be associated with its creators. Linking Rules and Provisions: LegalRuleML includes a mechanism, based on IRI, that allows N:M relationships among the rules and the textual provisions avoiding redundancy in the IRI definition and errors in the associations LegalRuleML is independent respect any Legal Document XML standard, IRI naming convention

Design Principles (2/2) Temporal Management: Provisions, references, rules, applications of rules and physical entities change in time, and their histories interact in complicated ways. LegalRuleML must represent these temporal issues in unambiguous fashion Formal Ontology Reference: LegalRuleML is independent from any legal ontology and logic framework. It includes a mechanism, based on IRIs, for pointing to reusable classes of a specified external ontology. LegalRuleML is based on RuleML: LegalRuleML reuses and extends concepts and syntax of RuleML wherever possible, and also adds novel annotations. RuleML includes also Reaction RuleML. Mapping: Investigate the mapping of LegalRuleML metadata to RDF triples for favouring Linked Data reuse.

Open Document, Open Rules, Open Data Logic Rules Linked Open Data Legal document in XML Legal Ontology Combine rules with other dataset Interoperability and interchange Retrieve rules and documents ENGINE

Metadata of Context LegalRulML Approach Digital Millennium Copyright Act... … … … … … … Metadata of Context Metadata of Context T2 Metadata of Context Digital Millennium Copyright Act NEW VERSION 2013 Rules as interpretation of the text

LegalRuleML main blocks Context association of metadata with rules Context association of metadata with rules Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role Context different author association of metadata with rules Context different author association of metadata with rules Context different time and jurisdiction association of metadata with rules Context different time and jurisdiction association of metadata with rules

Document Structure: Metadata, Contexts, Rulebases Textual References Rule Context parameters like agents, times, sources Association between Text and Rules N:M relationship Rules

Normal and Compact version Meta-model is built on the RDF principles Nodes and Edges define the relationships among NORMAL COMPACT

LegalRuleML main blocks Context association of metadata with rules Context association of metadata with rules Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role

Legal Statements and References (2/2) URI Non-URI

Agents and Authorities <lrml:Agent key="aut1" sameAs="&unibo;/person.owl#m.palmirani"/> <lrml:Agent key="aut2" sameAs="&unibo;/person.owl#g.governatori"/> <lrml:Authority key="congress" sameAs="&unibo;/org.owl#congress"> Agent - an entity that acts or has the capability to act. Authority - any body with the power to create, endorse, or enforce legal norms.

Temporal Events and Temporal Situations Type of event: In force Efficacy Event that define the validity of the rules

LegalRuleML main blocks Context association of metadata with rules Context association of metadata with rules Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role

Association Structure The Association construct implements the association between metadata and rules N-arity relationship without redundancy Fine granularity CURIE IRI

applies relationship: Jurisdiction and Role

Context

LegalRuleML main blocks Context association of metadata with rules Context association of metadata with rules Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role Metadata Legal Sources References Agents Authority Time Instants Temporal Characteristics Jurisdiction Role

Deontic operators Obligation, Right, Permission, Prohibition, etc. Penalty, Reparation, Behaviors

Deontic operators X Y X book Bearer - an entity that to which the deontic specification is primarily directed. AuxiliaryParty - a entity in addition to the bearer of a deontic specification.

Penalty …… …… Obligation101 Obligation102 Obligation103 (¬A =>B) (¬B=>C) (¬C=>D) Set of obligations/rights

Reparation Penalty PrescriptiveStatement Reparation

Defeasibility body always head body -> head strict body sometimes head body => head defeasible body not complement head body > head defeater R2 > R1

Defeasibility qualification 1 2 inline in the Rule in the Context block

Facts

Example National Consumer Credit Protection Act 2009: Section 29 (Prohibition on engaging in credit activities without a licence) (1) A person must not engage in a credit activity if the person does not hold a licence authorising the person to engage in the credit activity. Civil penalty: 2,000 penalty units. omissis Criminal penalty: 200 penalty units, or 2 years imprisonment, or both. P2P3 P4 P1 R1 R2

LegalRuleML modelling In a giving time t=2009, the author Guido, the authority “Consumer Credit Agency”, in the jurisdiction “Australia”, source text sec29 ps1: Person(x) => [FORB]EngageCreditActivity(x) ps2: HasLicence(x) => [PERM]EngageCreditActivity(x) ps2 > ps1 pen1: [OBL] PayCivilUnits(x,2000) pen2:  [OBL] PayPenalUnits(x,200),  [OBL] Imprisonment(x,2y),  [OBL] PayPenaltyUnitsPlusImprisonment(x,200,2y) rep1: [Violation]ps1, pen1 rep2: [Vioaltion]ps1, pen2

Conclusion and Future plans LegalRuleML is an emerging XML standard for modelling legal rules oriented to the legal expert, that provides a compact and expressive syntax RDF approach helps to foster the Open Rules in Linked Data and in Semantic Web Future work:  complex event modelling inside of the norms  meta-rules (if R1 then R2)  case-law management  extensibility of the schema  good documentation and pilot cases

Where to find material of the tutorial Examples SVN: open.org/version- control/browse/wsvn/legalruleml/trunk/exampl es/draft/?rev=47&sc=1#_trunk_examples_dra ft_https://tools.oasis- open.org/version- control/browse/wsvn/legalruleml/trunk/exampl es/draft/?rev=47&sc=1#_trunk_examples_dra ft_ Documentation of the LegalRuleML TC: open.org/committees/tc_home.php?wg_abbr ev=legalruleml open.org/committees/tc_home.php?wg_abbr ev=legalruleml

Thank you for your attention! and joint to LegalRuleML TC Questions?