Partitioned global address spaceIn computer science, partitioned global address space (PGAS) is a parallel programming model paradigm. PGAS is typified by communication operations involving a global memory address space abstraction that is logically partitioned, where a portion is local to each process, thread, or processing element. The novelty of PGAS is that the portions of the shared memory space may have an affinity for a particular process, thereby exploiting locality of reference in order to improve performance.
MicrokernelIn computer science, a microkernel (often abbreviated as μ-kernel) is the near-minimum amount of software that can provide the mechanisms needed to implement an operating system (OS). These mechanisms include low-level address space management, thread management, and inter-process communication (IPC). If the hardware provides multiple rings or CPU modes, the microkernel may be the only software executing at the most privileged level, which is generally referred to as supervisor or kernel mode.
Granularity (parallel computing)In parallel computing, granularity (or grain size) of a task is a measure of the amount of work (or computation) which is performed by that task. Another definition of granularity takes into account the communication overhead between multiple processors or processing elements. It defines granularity as the ratio of computation time to communication time, wherein computation time is the time required to perform the computation of a task and communication time is the time required to exchange data between processors.
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.
Instruction-level parallelismInstruction-level parallelism (ILP) is the parallel or simultaneous execution of a sequence of instructions in a computer program. More specifically ILP refers to the average number of instructions run per step of this parallel execution. ILP must not be confused with concurrency. In ILP there is a single specific thread of execution of a process. On the other hand, concurrency involves the assignment of multiple threads to a CPU's core in a strict alternation, or in true parallelism if there are enough CPU cores, ideally one core for each runnable thread.
Address spaceIn computing, an address space defines a range of discrete addresses, each of which may correspond to a network host, peripheral device, disk sector, a memory cell or other logical or physical entity. For software programs to save and retrieve stored data, each datum must have an address where it can be located. The number of address spaces available depends on the underlying address structure, which is usually limited by the computer architecture being used.
Green threadIn computer programming, a green thread (virtual thread) is a thread that is scheduled by a runtime library or virtual machine (VM) instead of natively by the underlying operating system (OS). Green threads emulate multithreaded environments without relying on any native OS abilities, and they are managed in user space instead of kernel space, enabling them to work in environments that do not have native thread support. Green threads refers to the name of the original thread library for the programming language Java (that was released in version 1.
Adresse virtuelleEn informatique, une adresse virtuelle est une adresse de la mémoire virtuelle qu'un système d'exploitation met à disposition de ses processus pour qu'ils puissent s'exécuter. L'expression est souvent employée par opposition à l'adresse physique dans laquelle elle est convertie par l'unité de gestion mémoire (MMU). Une adresse virtuelle en architecture 32 bits comprend trois parties : De 0 à 11 : index du mot dans la page. De 12 à 21: index de la page dans le répertoire. De 22 à 31 : index du répertoire dans la mémoire.
Modèle de cohérenceEn Informatique, les modèles de cohérence sont utilisés dans les systèmes répartis comme les systèmes de mémoire partagée distribuée (DSM) ou les magasins de données distribuées (tels que les système de fichiers, les bases de données, les systèmes de réplication optimiste ou la mise en cache web). On dit que le système supporte un modèle donné si les opérations sur la mémoire suivent des règles spécifiques.
High-availability clusterHigh-availability clusters (also known as HA clusters, fail-over clusters) are groups of computers that support server applications that can be reliably utilized with a minimum amount of down-time. They operate by using high availability software to harness redundant computers in groups or clusters that provide continued service when system components fail. Without clustering, if a server running a particular application crashes, the application will be unavailable until the crashed server is fixed.