Martin Odersky heads the programming research group at EPFL. His research interests cover fundamental as well as applied aspects of programming languages. They include semantics, type systems, programming language design, and compiler construction. The main focus if his work lies in the integration of object-oriented and functional programming. His research thesis is that the two paradigms are just two sides of the same coin and should be unified as much as possible. To prove this he has experimented a number of language designs, from Pizza to GJ to Functional Nets. He has also influenced the development of Java as a co-designer of Java generics and as the original author of the current javac reference compiler. His current work concentrates on the Scala programming language, which unifies FP and OOP, while staying completely interoperable with Java and .NET.Martin Odersky got his doctorate from ETHZ, in 1989. He held research positions at the IBM T.J. Watson Research Center from 1989 and at Yale University from 1991. He was then a professor at the University of Karlsruhe from 1993 and at the University of South Australia from 1997. He joined EPFL as full professor in 1999. He is associate editor of the Journal of Functional Programming and member of IFIP WG 2.8. He was conference chair for ICFP 2000, and program chair for ECOOP 2004 as well as ETAPS/CC 2007.
Viktor Kunčak joined EPFL in 2007, after receiving a PhD degree from MIT. Since then has been leading the Laboratory for Automated Reasoning and Analysis and supervised at least 12 completed PhD theses. His works on languages, algorithms and systems for verification and automated reasoning. He served as an initiator and one of the coordinators of a European network (COST action) in the area of automated reasoning, verification, and synthesis. In 2012 he received a 5-year single-investigator European Research Council (ERC) grant of 1.5M EUR. His invited talks include those at Lambda Days, Scala Days, NFM, LOPSTR, SYNT, ICALP, CSL, RV, VMCAI, and SMT. A paper on test generation he co-authored received an ACM SIGSOFT distinguished paper award at ICSE. A PLDI paper he co-authored was published in the Communications of the ACM as a Research Highlight article. His Google Scholar profile reports an over-approximate H-index of 38. He was an associate editor of ACM Transactions on Programming Languages and Systems (TOPLAS) and served as a co-chair of conferences on Computer-Aided Verification (CAV), Formal Methods in Computer Aided Design (FMCAD), Workshop on Synthesis (SYNT), and Verification, Model Checking, and Abstract Interpretation (VMCAI). At EPFL he teaches courses on functional and parallel programming, compilers, and verification. He has co-taught the MOOC "Parallel Programming" that was visited by over 100'000 learners and completed by thousands of students from all over the world.
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Learn how to design and implement reliable, maintainable, and efficient software using a mix of programming skills (declarative style, higher-order functions, inductive types, parallelism) and
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In computer programming, a type system is a logical system comprising a set of rules that assigns a property called a type (for example, integer, floating point, string) to every "term" (a word, phrase, or other set of symbols). Usually the terms are various constructs of a computer program, such as variables, expressions, functions, or modules. A type system dictates the operations that can be performed on a term. For variables, the type system determines the allowed values of that term.
In programming language theory, subtyping (also subtype polymorphism or inclusion polymorphism) is a form of type polymorphism in which a subtype is a datatype that is related to another datatype (the supertype) by some notion of substitutability, meaning that program elements, typically subroutines or functions, written to operate on elements of the supertype can also operate on elements of the subtype. If S is a subtype of T, the subtyping relation (written as S
vignette|Notation de l'ensemble vide. En mathématiques, l'ensemble vide est l'ensemble ne contenant aucun élément. L'ensemble vide peut être noté d'un O barré, à savoir ∅ ou simplement { }, qui est une paire d'accolades ne contenant qu'une espace, pour représenter un ensemble qui ne contient rien. La notation ∅ a été introduite par André Weil, dans le cadre de l'institution de notations par le groupe Bourbaki. Von Neumann dans son article de 1923, qui est l'une des premières références qui l'aborde, le note O.
vignette|Présentation des principaux types de données. En programmation informatique, un type de donnée, ou simplement un type, définit la nature des valeurs que peut prendre une donnée, ainsi que les opérateurs qui peuvent lui être appliqués. La plupart des langages de programmation de haut niveau offrent des types de base correspondant aux données qui peuvent être traitées directement — à savoir : sans conversion ou formatage préalable — par le processeur.
En mathématiques, logique et informatique, une théorie des types est une classe de systèmes formels, dont certains peuvent servir d'alternatives à la théorie des ensembles comme fondation des mathématiques. Ils ont été historiquement introduits pour résoudre le paradoxe d'un axiome de compréhension non restreint. En théorie des types, il existe des types de base et des constructeurs (comme celui des fonctions ou encore celui du produit cartésien) qui permettent de créer de nouveaux types à partir de types préexistant.
Explore la programmation fonctionnelle vérifiée, la vérification formelle, les résolveurs SMT, la vérification de type, les fonctionnalités Scala, l'automatisation et les types dépendants.
Explore les cartes, les opérateurs de type, l'équivalence, les types de première classe, System Fw, Coq, et les défis de la vérification de type dans les langages de programmation.