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 .
Diffraction-limited systemIn optics, any optical instrument or system a microscope, telescope, or camera has a principal limit to its resolution due to the physics of diffraction. An optical instrument is said to be diffraction-limited if it has reached this limit of resolution performance. Other factors may affect an optical system's performance, such as lens imperfections or aberrations, but these are caused by errors in the manufacture or calculation of a lens, whereas the diffraction limit is the maximum resolution possible for a theoretically perfect, or ideal, optical system.
Magnetic resonance angiographyMagnetic resonance angiography (MRA) is a group of techniques based on magnetic resonance imaging (MRI) to image blood vessels. Magnetic resonance angiography is used to generate images of arteries (and less commonly veins) in order to evaluate them for stenosis (abnormal narrowing), occlusions, aneurysms (vessel wall dilatations, at risk of rupture) or other abnormalities. MRA is often used to evaluate the arteries of the neck and brain, the thoracic and abdominal aorta, the renal arteries, and the legs (the latter exam is often referred to as a "run-off").
Medical image computingMedical image computing (MIC) is an interdisciplinary field at the intersection of computer science, information engineering, electrical engineering, physics, mathematics and medicine. This field develops computational and mathematical methods for solving problems pertaining to medical images and their use for biomedical research and clinical care. The main goal of MIC is to extract clinically relevant information or knowledge from medical images.
Facteur de bruitLe facteur de bruit (noise figure ou noise factor en anglais) d'un dispositif électronique quelconque, actif ou passif, quantifie la dégradation relative du rapport signal sur bruit entre sa sortie et son entrée, et ce en prenant comme hypothèse que la température ambiante est de , donc que le bruit de fond en entrée est un bruit thermique correspondant à cette température de référence de . Autrement dit, le facteur de bruit est défini comme le quotient des rapports signal sur bruit en entrée et en sortie de ce même dispositif quand le bruit en entrée est un bruit thermique à la température normalisée To=.
Back-illuminated sensorA back-illuminated sensor, also known as backside illumination (BI) sensor, is a type of digital that uses a novel arrangement of the imaging elements to increase the amount of light captured and thereby improve low-light performance. The technique was used for some time in specialized roles like low-light security cameras and astronomy sensors, but was complex to build and required further refinement to become widely used. Sony was the first to reduce these problems and their costs sufficiently to introduce a 5-megapixel 1.
Bayer filterA Bayer filter mosaic is a color filter array (CFA) for arranging RGB color filters on a square grid of photosensors. Its particular arrangement of color filters is used in most single-chip digital s used in digital cameras, camcorders, and scanners to create a color image. The filter pattern is half green, one quarter red and one quarter blue, hence is also called BGGR, RGBG, GRBG, or RGGB. It is named after its inventor, Bryce Bayer of Eastman Kodak. Bayer is also known for his recursively defined matrix used in ordered dithering.
Tomographie en cohérence optiquevignette|Image OCT d'un sarcome La tomographie en cohérence optique ou tomographie optique cohérente (TCO ou OCT) est une technique d' bien établie qui utilise une onde lumineuse pour capturer des images tridimensionnelles d'un matériau qui diffuse la lumière (par exemple un tissu biologique), avec une résolution de l'ordre du micromètre (1 μm). La tomographie en cohérence optique est basée sur une technique interférométrique à faible cohérence, utilisant habituellement une lumière dans l'infrarouge proche.
Tomographie par émission monophotoniquevignette|droite|Image dans le plan axial du cerveau obtenue par tomographie d'émission monophotonique utilisant le Tc-99. La tomographie par émission monophotonique, en abrégé TEMP, ou même SPECT (de l'Single photon emission computed tomography), aussi appelée tomoscintigraphie par émission monophotonique, est une technique qui repose sur le principe de la scintigraphie et qui permet d'effectuer des images ainsi que des reconstructions en trois dimensions d'organes et de leur métabolisme à l'aide d'un ensemble de gamma caméras tournant autour du patient.
TomodensitométrieLa tomodensitométrie (TDM), dite aussi scanographie, tomographie axiale calculée par ordinateur (TACO), CT-scan (CT : computed tomography), CAT-scan (CAT : computer-assisted tomography), ou simplement scanner ou scanneur pour l'appareil, est une technique d' qui consiste à mesurer l'absorption des rayons X par les tissus puis, par traitement informatique, à numériser et enfin reconstruire des images 2D ou 3D des structures anatomiques.