Spin quantum numberIn physics, the spin quantum number is a quantum number (designated s) that describes the intrinsic angular momentum (or spin angular momentum, or simply spin) of an electron or other particle. It has the same value for all particles of the same type, such as s = 1/2 for all electrons. It is an integer for all bosons, such as photons, and a half-odd-integer for all fermions, such as electrons and protons. The component of the spin along a specified axis is given by the spin magnetic quantum number, conventionally written ms.
État quantiqueL'état d'un système physique décrit tous les aspects de ce système, dans le but de prévoir les résultats des expériences que l'on peut réaliser. Le fait que la mécanique quantique soit non déterministe entraîne une différence fondamentale par rapport à la description faite en mécanique classique : alors qu'en physique classique, l'état du système détermine de manière absolue les résultats de mesure des grandeurs physiques, une telle chose est impossible en physique quantique et la connaissance de l'état permet seulement de prévoir, de façon toutefois parfaitement reproductible, les probabilités respectives des différents résultats qui peuvent être obtenus à la suite de la réduction du paquet d'onde lors de la mesure d'un système quantique.
Nuclear magnetic resonance spectroscopy of proteinsNuclear magnetic resonance spectroscopy of proteins (usually abbreviated protein NMR) is a field of structural biology in which NMR spectroscopy is used to obtain information about the structure and dynamics of proteins, and also nucleic acids, and their complexes. The field was pioneered by Richard R. Ernst and Kurt Wüthrich at the ETH, and by Ad Bax, Marius Clore, Angela Gronenborn at the NIH, and Gerhard Wagner at Harvard University, among others.
Scaled correlationIn statistics, scaled correlation is a form of a coefficient of correlation applicable to data that have a temporal component such as time series. It is the average short-term correlation. If the signals have multiple components (slow and fast), scaled coefficient of correlation can be computed only for the fast components of the signals, ignoring the contributions of the slow components. This filtering-like operation has the advantages of not having to make assumptions about the sinusoidal nature of the signals.
Weyl equationIn physics, particularly in quantum field theory, the Weyl equation is a relativistic wave equation for describing massless spin-1/2 particles called Weyl fermions. The equation is named after Hermann Weyl. The Weyl fermions are one of the three possible types of elementary fermions, the other two being the Dirac and the Majorana fermions. None of the elementary particles in the Standard Model are Weyl fermions. Previous to the confirmation of the neutrino oscillations, it was considered possible that the neutrino might be a Weyl fermion (it is now expected to be either a Dirac or a Majorana fermion).
Intraclass correlationIn statistics, the intraclass correlation, or the intraclass correlation coefficient (ICC), is a descriptive statistic that can be used when quantitative measurements are made on units that are organized into groups. It describes how strongly units in the same group resemble each other. While it is viewed as a type of correlation, unlike most other correlation measures, it operates on data structured as groups rather than data structured as paired observations.
Structure spinorielleEn géométrie différentielle, il est possible de définir sur certaines variétés riemanniennes la notion de structure spinorielle (qui se décline en structures Spin ou Spinc), étendant ainsi les considérations algébriques sur le groupe spinoriel et les spineurs. En termes imagés, il s'agit de trouver, dans le cadre des « espaces courbes », une géométrie « cachée » à l’œuvre derrière les concepts géométriques ordinaires. On peut aussi y voir une généralisation de la notion d'orientabilité et de changement d'orientation à une forme d'« orientabilité d'ordre supérieur ».
Symmetry in quantum mechanicsSymmetries in quantum mechanics describe features of spacetime and particles which are unchanged under some transformation, in the context of quantum mechanics, relativistic quantum mechanics and quantum field theory, and with applications in the mathematical formulation of the standard model and condensed matter physics. In general, symmetry in physics, invariance, and conservation laws, are fundamentally important constraints for formulating physical theories and models.
Interaction de YukawaEn physique des particules, l'interaction de Yukawa est une interaction entre un champ scalaire φ et un champ de Dirac ψ de type : (scalaire) ou (pseudoscalaire). Cette interaction porte le nom du physicien japonais Hideki Yukawa. Cette interaction s'effectue entre les nucléons d'un atome et permet de maintenir le noyau atomique en place. Cette interaction consiste pour les nucléons de s'échanger des pion (particule) qui peuvent transformer des neutrons en protons et vice-versa.
Pearson correlation coefficientIn statistics, the Pearson correlation coefficient (PCC) is a correlation coefficient that measures linear correlation between two sets of data. It is the ratio between the covariance of two variables and the product of their standard deviations; thus, it is essentially a normalized measurement of the covariance, such that the result always has a value between −1 and 1. As with covariance itself, the measure can only reflect a linear correlation of variables, and ignores many other types of relationships or correlations.