Constraint logic programmingConstraint logic programming is a form of constraint programming, in which logic programming is extended to include concepts from constraint satisfaction. A constraint logic program is a logic program that contains constraints in the body of clauses. An example of a clause including a constraint is . In this clause, is a constraint; A(X,Y), B(X), and C(Y) are literals as in regular logic programming. This clause states one condition under which the statement A(X,Y) holds: X+Y is greater than zero and both B(X) and C(Y) are true.
Système temps réelEn informatique, on parle d'un système temps réel lorsque ce système est capable de contrôler (ou piloter) un procédé physique à une vitesse adaptée à l'évolution du procédé contrôlé. Les systèmes informatiques temps réel se différencient des autres systèmes informatiques par la prise en compte de contraintes temporelles dont le respect est aussi important que l'exactitude du résultat, autrement dit le système ne doit pas simplement délivrer des résultats exacts, il doit les délivrer dans des délais imposés.
Computational complexityIn computer science, the computational complexity or simply complexity of an algorithm is the amount of resources required to run it. Particular focus is given to computation time (generally measured by the number of needed elementary operations) and memory storage requirements. The complexity of a problem is the complexity of the best algorithms that allow solving the problem. The study of the complexity of explicitly given algorithms is called analysis of algorithms, while the study of the complexity of problems is called computational complexity theory.
ComputationA computation is any type of arithmetic or non-arithmetic calculation that is well-defined. Common examples of computations are mathematical equations and computer algorithms. Mechanical or electronic devices (or, historically, people) that perform computations are known as computers. The study of computation is the field of computability, itself a sub-field of computer science. The notion that mathematical statements should be ‘well-defined’ had been argued by mathematicians since at least the 1600s, but agreement on a suitable definition proved elusive.
Linear time-invariant systemIn system analysis, among other fields of study, a linear time-invariant (LTI) system is a system that produces an output signal from any input signal subject to the constraints of linearity and time-invariance; these terms are briefly defined below. These properties apply (exactly or approximately) to many important physical systems, in which case the response y(t) of the system to an arbitrary input x(t) can be found directly using convolution: y(t) = (x ∗ h)(t) where h(t) is called the system's impulse response and ∗ represents convolution (not to be confused with multiplication).
Complexité en tempsEn algorithmique, la complexité en temps est une mesure du temps utilisé par un algorithme, exprimé comme fonction de la taille de l'entrée. Le temps compte le nombre d'étapes de calcul avant d'arriver à un résultat. Habituellement, le temps correspondant à des entrées de taille n est le temps le plus long parmi les temps d’exécution des entrées de cette taille ; on parle de complexité dans le pire cas. Les études de complexité portent dans la majorité des cas sur le comportement asymptotique, lorsque la taille des entrées tend vers l'infini, et l'on utilise couramment les notations grand O de Landau.
AutomatiqueL’automatique est une science qui traite de la modélisation, de l’analyse, de l’identification et de la commande des systèmes dynamiques. Elle inclut la cybernétique au sens étymologique du terme, et a pour fondements théoriques les mathématiques, la théorie du signal et l’informatique théorique. L’automatique permet de commander un système en respectant un cahier des charges (rapidité, précision, stabilité...). Les professionnels en automatique se nomment automaticiens.
Theory of computationIn theoretical computer science and mathematics, the theory of computation is the branch that deals with what problems can be solved on a model of computation, using an algorithm, how efficiently they can be solved or to what degree (e.g., approximate solutions versus precise ones). The field is divided into three major branches: automata theory and formal languages, computability theory, and computational complexity theory, which are linked by the question: "What are the fundamental capabilities and limitations of computers?".
Feed forward (control)A feed forward (sometimes written feedforward) is an element or pathway within a control system that passes a controlling signal from a source in its external environment to a load elsewhere in its external environment. This is often a command signal from an external operator. A control system which has only feed-forward behavior responds to its control signal in a pre-defined way without responding to the way the load reacts; it is in contrast with a system that also has feedback, which adjusts the input to take account of how it affects the load, and how the load itself may vary unpredictably; the load is considered to belong to the external environment of the system.
Constraint satisfactionIn artificial intelligence and operations research, constraint satisfaction is the process of finding a solution through a set of constraints that impose conditions that the variables must satisfy. A solution is therefore a set of values for the variables that satisfies all constraints—that is, a point in the feasible region. The techniques used in constraint satisfaction depend on the kind of constraints being considered.