Metamaterial absorberA metamaterial absorber is a type of metamaterial intended to efficiently absorb electromagnetic radiation such as light. Furthermore, metamaterials are an advance in materials science. Hence, those metamaterials that are designed to be absorbers offer benefits over conventional absorbers such as further miniaturization, wider adaptability, and increased effectiveness. Intended applications for the metamaterial absorber include emitters, photodetectors, sensors, spatial light modulators, infrared camouflage, wireless communication, and use in solar photovoltaics and thermophotovoltaics.
Numerical methods for ordinary differential equationsNumerical methods for ordinary differential equations are methods used to find numerical approximations to the solutions of ordinary differential equations (ODEs). Their use is also known as "numerical integration", although this term can also refer to the computation of integrals. Many differential equations cannot be solved exactly. For practical purposes, however – such as in engineering – a numeric approximation to the solution is often sufficient. The algorithms studied here can be used to compute such an approximation.
Photonic metamaterialA photonic metamaterial (PM), also known as an optical metamaterial, is a type of electromagnetic metamaterial, that interacts with light, covering terahertz (THz), infrared (IR) or visible wavelengths. The materials employ a periodic, cellular structure. The subwavelength periodicity distinguishes photonic metamaterials from photonic band gap or photonic crystal structures. The cells are on a scale that is magnitudes larger than the atom, yet much smaller than the radiated wavelength, are on the order of nanometers.
Terahertz metamaterialA terahertz metamaterial is a class of composite metamaterials designed to interact at terahertz (THz) frequencies. The terahertz frequency range used in materials research is usually defined as 0.1 to 10 THz. This bandwidth is also known as the terahertz gap because it is noticeably underutilized. This is because terahertz waves are electromagnetic waves with frequencies higher than microwaves but lower than infrared radiation and visible light.
Numerical methods for linear least squaresNumerical methods for linear least squares entails the numerical analysis of linear least squares problems. A general approach to the least squares problem can be described as follows. Suppose that we can find an n by m matrix S such that XS is an orthogonal projection onto the image of X. Then a solution to our minimization problem is given by simply because is exactly a sought for orthogonal projection of onto an image of X (see the picture below and note that as explained in the next section the image of X is just a subspace generated by column vectors of X).
Arithmétique multiprécisionL'arithmétique multiprécision désigne l'ensemble des techniques mises en œuvre pour manipuler dans un programme informatique des nombres (entiers, rationnels, ou flottants principalement) de taille arbitraire. Il s'agit d'une branche de l'arithmétique des ordinateurs. On oppose l'arithmétique multi-précision à l'arithmétique en simple ou double précision, comme celle spécifiée par le standard IEEE 754 pour les nombres flottants.
Metamaterial cloakingMetamaterial cloaking is the usage of metamaterials in an invisibility cloak. This is accomplished by manipulating the paths traversed by light through a novel optical material. Metamaterials direct and control the propagation and transmission of specified parts of the light spectrum and demonstrate the potential to render an object seemingly invisible. Metamaterial cloaking, based on transformation optics, describes the process of shielding something from view by controlling electromagnetic radiation.
Exactitude et précisionvignette|Schéma de l'exactitude et la précision appliquée à des lancers de fléchettes. Dans la mesure d'un ensemble, l'exactitude est la proximité des mesures à une valeur spécifique, tandis que la précision est la proximité des mesures les unes par rapport aux autres. L'exactitude a deux définitions : Plus communément, il s'agit d'une description des erreurs systématiques, une mesure du biais statistique ; une faible précision entraîne une différence entre un résultat et une valeur « vraie ».
Précision et rappelvignette|350px|Précision et rappel (« recall »). La précision compte la proportion d'items pertinents parmi les items sélectionnés alors que le rappel compte la proportion d'items pertinents sélectionnés parmi tous les items pertinents sélectionnables. Dans les domaines de la reconnaissance de formes, de la recherche d'information et de la classification automatique, la précision (ou valeur prédictive positive) est la proportion des items pertinents parmi l'ensemble des items proposés ; le rappel (ou sensibilité) est la proportion des items pertinents proposés parmi l'ensemble des items pertinents.
Quadruple-precision floating-point formatIn computing, quadruple precision (or quad precision) is a binary floating point–based computer number format that occupies 16 bytes (128 bits) with precision at least twice the 53-bit double precision. This 128-bit quadruple precision is designed not only for applications requiring results in higher than double precision, but also, as a primary function, to allow the computation of double precision results more reliably and accurately by minimising overflow and round-off errors in intermediate calculations and scratch variables.