Performances (informatique)En informatique, les performances énoncent les indications chiffrées mesurant les possibilités maximales ou optimales d'un matériel, d'un logiciel, d'un système ou d'un procédé technique pour exécuter une tâche donnée. Selon le contexte, les performances incluent les mesures suivantes : Un faible temps de réponse pour effectuer une tâche donnée Un débit élevé (vitesse d'exécution d'une tâche) L'efficience : faible utilisation des ressources informatiques : processeur, mémoire, stockage, réseau, consommation électrique, etc.
Rendement (physique)En physique, le rendement est défini comme une grandeur sans dimension qui caractérise l'efficacité d'une transformation, physique ou chimique. En physique, la grandeur caractérise généralement la conversion d'une forme d'énergie en une autre. Pour un système réalisant une conversion d'énergie (transformateur, moteur, pompe à chaleur), le rendement est défini par certains auteurs comme étant le rapport entre l'énergie recueillie en sortie et l'énergie fournie en entrée, qui confond alors les termes d'efficacité thermodynamique et de rendement thermodynamique.
Performance engineeringPerformance engineering encompasses the techniques applied during a systems development life cycle to ensure the non-functional requirements for performance (such as throughput, latency, or memory usage) will be met. It may be alternatively referred to as systems performance engineering within systems engineering, and software performance engineering or application performance engineering within software engineering.
Electrical efficiencyThe efficiency of a system in electronics and electrical engineering is defined as useful power output divided by the total electrical power consumed (a fractional expression), typically denoted by the Greek small letter eta (η – ήτα). If energy output and input are expressed in the same units, efficiency is a dimensionless number. Where it is not customary or convenient to represent input and output energy in the same units, efficiency-like quantities have units associated with them.
Fuel efficiencyFuel efficiency is a form of thermal efficiency, meaning the ratio of effort to result of a process that converts chemical potential energy contained in a carrier (fuel) into kinetic energy or work. Overall fuel efficiency may vary per device, which in turn may vary per application, and this spectrum of variance is often illustrated as a continuous . Non-transportation applications, such as industry, benefit from increased fuel efficiency, especially fossil fuel power plants or industries dealing with combustion, such as ammonia production during the Haber process.
Energy transformationEnergy transformation, also known as energy conversion, is the process of changing energy from one form to another. In physics, energy is a quantity that provides the capacity to perform work or moving (e.g. lifting an object) or provides heat. In addition to being converted, according to the law of conservation of energy, energy is transferable to a different location or object, but it cannot be created or destroyed.