Simulateur logiqueLogic simulation is the use of simulation software to predict the behavior of digital circuits and hardware description languages. Simulation can be performed at varying degrees of physical abstraction, such as at the transistor level, gate level, register-transfer level (RTL), electronic system-level (ESL), or behavioral level. Logic simulation may be used as part of the verification process in designing hardware. Simulations have the advantage of providing a familiar look and feel to the user in that it is constructed from the same language and symbols used in design.
Langage de description de matérielUn langage de description de matériel, ou du matériel (ou HDL pour hardware description language en anglais) est un langage informatique permettant la description d'un circuit électronique au niveau des transferts de registres (RTL). Celui-ci peut décrire les fonctions réalisées par le circuit (description comportementale) ou les portes logiques utilisées par le circuit (description structurelle). Il est possible d'observer le fonctionnement d'un circuit électronique modélisé dans un langage de description grâce à la simulation.
Hardware emulationIn integrated circuit design, hardware emulation is the process of imitating the behavior of one or more pieces of hardware (typically a system under design) with another piece of hardware, typically a special purpose emulation system. The emulation model is usually based on a hardware description language (e.g. Verilog) source code, which is compiled into the format used by emulation system. The goal is normally debugging and functional verification of the system being designed.
Microprocesseur multi-cœurvignette|Un processeur quad-core AMD Opteron. vignette|L’Intel Core 2 Duo E6300 est un processeur double cœur. Un microprocesseur multi-cœur (multi-core en anglais) est un microprocesseur possédant plusieurs cœurs physiques fonctionnant simultanément. Il se distingue d'architectures plus anciennes (360/91) où un processeur unique commandait plusieurs circuits de calcul simultanés. Un cœur (en anglais, core) est un ensemble de circuits capables d’exécuter des programmes de façon autonome.
Central processing unitA central processing unit (CPU)—also called a central processor or main processor—is the most important processor in a given computer. Its electronic circuitry executes instructions of a computer program, such as arithmetic, logic, controlling, and input/output (I/O) operations. This role contrasts with that of external components, such as main memory and I/O circuitry, and specialized coprocessors such as graphics processing units (GPUs). The form, design, and implementation of CPUs have changed over time, but their fundamental operation remains almost unchanged.
Parallélisme (informatique)vignette|upright=1|Un des éléments de Blue Gene L cabinet, un des supercalculateurs massivement parallèles les plus rapides des années 2000. En informatique, le parallélisme consiste à mettre en œuvre des architectures d'électronique numérique permettant de traiter des informations de manière simultanée, ainsi que les algorithmes spécialisés pour celles-ci. Ces techniques ont pour but de réaliser le plus grand nombre d'opérations en un temps le plus petit possible.
Parallel algorithmIn computer science, a parallel algorithm, as opposed to a traditional serial algorithm, is an algorithm which can do multiple operations in a given time. It has been a tradition of computer science to describe serial algorithms in abstract machine models, often the one known as random-access machine. Similarly, many computer science researchers have used a so-called parallel random-access machine (PRAM) as a parallel abstract machine (shared-memory).
Système sur une pucethumb|Puce ARM Exynos sur le smartphone Nexus S de Samsung. Un système sur une puce, souvent désigné dans la littérature scientifique par le terme anglais (d'où son abréviation SoC), est un système complet embarqué sur un seul circuit intégré (« puce »), pouvant comprendre de la mémoire, un ou plusieurs microprocesseurs, des périphériques d'interface, ou tout autre composant nécessaire à la réalisation de la fonction attendue.
Field-programmable gate arrayA field-programmable gate array (FPGA) is an integrated circuit designed to be configured after manufacturing. The FPGA configuration is generally specified using a hardware description language (HDL), similar to that used for an application-specific integrated circuit (ASIC). Circuit diagrams were previously used to specify the configuration, but this is increasingly rare due to the advent of electronic design automation tools. FPGAs contain an array of programmable logic blocks, and a hierarchy of reconfigurable interconnects allowing blocks to be wired together.
Standard cellIn semiconductor design, standard-cell methodology is a method of designing application-specific integrated circuits (ASICs) with mostly digital-logic features. Standard-cell methodology is an example of design abstraction, whereby a low-level very-large-scale integration (VLSI) layout is encapsulated into an abstract logic representation (such as a NAND gate). Cell-based methodology – the general class to which standard cells belong – makes it possible for one designer to focus on the high-level (logical function) aspect of digital design, while another designer focuses on the implementation (physical) aspect.