Energy–momentum relationIn physics, the energy–momentum relation, or relativistic dispersion relation, is the relativistic equation relating total energy (which is also called relativistic energy) to invariant mass (which is also called rest mass) and momentum. It is the extension of mass–energy equivalence for bodies or systems with non-zero momentum. It can be written as the following equation: This equation holds for a body or system, such as one or more particles, with total energy E, invariant mass m0, and momentum of magnitude p; the constant c is the speed of light.
Spatial resolutionIn physics and geosciences, the term spatial resolution refers to distance between independent measurements, or the physical dimension that represents a pixel of the image. While in some instruments, like cameras and telescopes, spatial resolution is directly connected to angular resolution, other instruments, like synthetic aperture radar or a network of weather stations, produce data whose spatial sampling layout is more related to the Earth's surface, such as in remote sensing and .
Image resolutionImage resolution is the level of detail an holds. The term applies to digital images, film images, and other types of images. "Higher resolution" means more image detail. Image resolution can be measured in various ways. Resolution quantifies how close lines can be to each other and still be visibly resolved. Resolution units can be tied to physical sizes (e.g. lines per mm, lines per inch), to the overall size of a picture (lines per picture height, also known simply as lines, TV lines, or TVL), or to angular subtense.
Scale (geography)In geography, scale is the level at which a geographical phenomenon occurs or is described. This concept is derived from the map scale in cartography. Geographers describe geographical phenomena and differences using different scales. From an epistemological perspective, scale is used to describe how detailed an observation is, while ontologically, scale is inherent in the complex interaction between society and nature. The concept of scale is central to geography.
CartographieLa cartographie est la réalisation et l'étude des cartes géographiques et géologiques. Elle est très dépendante de la géodésie, science qui s'efforce de décrire, mesurer et rendre compte de la forme et des dimensions de la Terre. Le principe majeur de la cartographie est la représentation de données sur un support réduit représentant un espace généralement tenu pour réel. L'objectif de la carte, c'est une représentation concise et efficace, la simplification de phénomènes complexes (politiques, économiques, sociaux, etc.
Pouvoir de résolutionLe pouvoir de résolution, ou pouvoir de séparation, pouvoir séparateur, résolution spatiale, résolution angulaire, exprime la capacité d'un système optique de mesure ou d'observation – les microscopes, les télescopes ou l'œil, mais aussi certains détecteurs, particulièrement ceux utilisés en – à distinguer les détails. Il peut être caractérisé par l'angle ou la distance minimal(e) qui doit séparer deux points contigus pour qu'ils soient correctement discernés.
Base de données spatialesUne base de données spatiales est une base de données optimisée pour stocker et interroger des données reliées à des objets référencés géographiquement, y compris des points, les lignes et des polygones. Alors que les bases de données classiques peuvent comprendre différents types de données numériques et caractères, des fonctions additionnelles ont besoin d'être ajoutées pour traiter les types de données spatiales. Celles-ci sont typiquement appelées géométrie ou caractère.
Optical resolutionOptical resolution describes the ability of an imaging system to resolve detail, in the object that is being imaged. An imaging system may have many individual components, including one or more lenses, and/or recording and display components. Each of these contributes (given suitable design, and adequate alignment) to the optical resolution of the system; the environment in which the imaging is done often is a further important factor. Resolution depends on the distance between two distinguishable radiating points.
Mass in special relativityThe word "mass" has two meanings in special relativity: invariant mass (also called rest mass) is an invariant quantity which is the same for all observers in all reference frames, while the relativistic mass is dependent on the velocity of the observer. According to the concept of mass–energy equivalence, invariant mass is equivalent to rest energy, while relativistic mass is equivalent to relativistic energy (also called total energy).