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      <div class="TdmEntry">Overall Objectives<ul><li><a href="./uid3.html">Logic and Graph-based KRR</a></li><li><a href="./uid4.html">From Theory to Applications, and Vice-versa</a></li><li><a href="./uid8.html">Main Challenges</a></li><li><a href="./uid12.html">Scientific Directions</a></li></ul></div>
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        <h2>Section: 
      Research Program</h2>
        <h3 class="titre3">Ontology-based Query Answering</h3>
        <p>Querying knowledge bases has become a central problem in knowledge
representation and in databases. A knowledge base (KB) is classically
composed of a terminological part (metadata, ontology) and an assertional
part (facts, data). Queries are supposed to be at least as expressive as the
basic queries in databases, i.e.,
conjunctive queries, which can be seen as existentially closed conjunctions of atoms or as labelled graphs.
The challenge is to define good trade-offs between the expressivity of the
ontological language and the complexity of querying data in presence of
ontological knowledge. Classical ontogical languages, typically description
logics, were not designed for efficient querying. On the other hand, database
languages are able to process complex queries on huge databases, but without
taking the ontology into account. There is thus a need for new languages and
mechanisms, able to cope with the ever growing size of knowledge bases in the
Semantic Web or in scientific domains.</p>
        <p>This problem is related to two other problems identified as fundamental in KRR:</p>
        <ul>
          <li>
            <p class="notaparagraph"><a name="uid22"> </a><i>Query-answering with incomplete information.</i>
Incomplete information means that it might be unknown whether a given assertion
is true or false. Databases classically make the so-called
closed-world assumption: every fact that cannot be retrieved or
inferred from the base is assumed to be false. Knowledge bases
classically make the open-world assumption: if something cannot be
inferred from the base, and neither can its negation, then its truth
status is unknown. The need of coping with incomplete information
is a distinctive feature of querying knowledge
bases with respect to querying classical databases
(however, as explained above, this
distinction tends to disappear). The presence of incomplete
information makes the query answering task much more difficult.</p>
          </li>
          <li>
            <p class="notaparagraph"><a name="uid23"> </a><i>Reasoning with rules. </i>
Researching types of rules and adequate manners to process them is a
mainstream topic in the Semantic Web, and, more generally a crucial issue
for knowledge-based systems. For several years, we have been studying some
rules, both in their logical and their graph form, which are syntactically
very simple but also very expressive. These rules, known as existential
rules or Datalog<span class="math"><math xmlns="http://www.w3.org/1998/Math/MathML"><mo>+</mo></math></span>, can be seen as an abstraction of ontological knowledge
expressed in the main languages used in the context of KB querying. See
Section <a title="Ontology-Based Query Answering with Existential Rules" href="./uid56.html">
	7.1</a>  for details on the results
obtained.</p>
          </li>
        </ul>
        <p>A problem generalizing the above described problems, and particularly
relevant in the context of multiple data/metadata sources, is <i>querying
hybrid knowledge bases</i>. In a hybrid knowledge base, each component may have
its own formalism and its own reasoning mechanisms. There may be a common
ontology shared by all components, or each component may have its own
ontology, with mappings being defined among the ontologies. The question is
what kind of interactions between these components and/or what limitations on
the languages preserve the decidability of basic problems and if so, a
“reasonable”complexity. Note that there are strong connections with the
issue of data integration in databases.</p>
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