Entropy productionEntropy production (or generation) is the amount of entropy which is produced during heat process to evaluate the efficiency of the process. Entropy is produced in irreversible processes. The importance of avoiding irreversible processes (hence reducing the entropy production) was recognized as early as 1824 by Carnot. In 1865 Rudolf Clausius expanded his previous work from 1854 on the concept of "unkompensierte Verwandlungen" (uncompensated transformations), which, in our modern nomenclature, would be called the entropy production.
Entropy (statistical thermodynamics)The concept entropy was first developed by German physicist Rudolf Clausius in the mid-nineteenth century as a thermodynamic property that predicts that certain spontaneous processes are irreversible or impossible. In statistical mechanics, entropy is formulated as a statistical property using probability theory. The statistical entropy perspective was introduced in 1870 by Austrian physicist Ludwig Boltzmann, who established a new field of physics that provided the descriptive linkage between the macroscopic observation of nature and the microscopic view based on the rigorous treatment of large ensembles of microstates that constitute thermodynamic systems.
Codage entropiqueLe codage entropique (ou codage statistique à longueur variable) est une méthode de codage de source sans pertes, dont le but est de transformer la représentation d'une source de données pour sa compression ou sa transmission sur un canal de communication. Les principaux types de codage entropique sont le codage de Huffman et le codage arithmétique. Le codage entropique utilise des statistiques sur la source pour construire un code, c'est-à-dire une application qui associe à une partie de la source un mot de code, dont la longueur dépend des propriétés statistiques de la source.
Fonction de Wignervignette| Fonction de Wigner d'un état du type du "chat de Schrödinger" (mélange de 2 états opposés) La fonction de Wigner (également appelée distribution de quasi-probabilité de Wigner) a été introduite par Eugene Wigner en 1932 pour étudier les corrections quantiques à la mécanique statistique classique. L'objectif était de lier la fonction d'onde qui apparaît dans l'équation de Schrödinger à une distribution de probabilité dans l'espace des phases.
Entropy and lifeResearch concerning the relationship between the thermodynamic quantity entropy and both the origin and evolution of life began around the turn of the 20th century. In 1910, American historian Henry Adams printed and distributed to university libraries and history professors the small volume A Letter to American Teachers of History proposing a theory of history based on the second law of thermodynamics and on the principle of entropy. The 1944 book What is Life? by Nobel-laureate physicist Erwin Schrödinger stimulated further research in the field.
Entropy (computing)In computing, entropy is the randomness collected by an operating system or application for use in cryptography or other uses that require random data. This randomness is often collected from hardware sources (variance in fan noise or HDD), either pre-existing ones such as mouse movements or specially provided randomness generators. A lack of entropy can have a negative impact on performance and security.
Modality (linguistics)In linguistics and philosophy, modality refers to the ways language can express various relationships to reality or truth. For instance, a modal expression may convey that something is likely, desirable, or permissible. Quintessential modal expressions include modal auxiliaries such as "could", "should", or "must"; modal adverbs such as "possibly" or "necessarily"; and modal adjectives such as "conceivable" or "probable".
Entropy as an arrow of timeEntropy is one of the few quantities in the physical sciences that require a particular direction for time, sometimes called an arrow of time. As one goes "forward" in time, the second law of thermodynamics says, the entropy of an isolated system can increase, but not decrease. Thus, entropy measurement is a way of distinguishing the past from the future. In thermodynamic systems that are not isolated, local entropy can decrease over time, accompanied by a compensating entropy increase in the surroundings; examples include objects undergoing cooling, living systems, and the formation of typical crystals.
Concordance inter-jugesIn statistics, inter-rater reliability (also called by various similar names, such as inter-rater agreement, inter-rater concordance, inter-observer reliability, inter-coder reliability, and so on) is the degree of agreement among independent observers who rate, code, or assess the same phenomenon. Assessment tools that rely on ratings must exhibit good inter-rater reliability, otherwise they are not valid tests. There are a number of statistics that can be used to determine inter-rater reliability.
Divergence de Kullback-LeiblerEn théorie des probabilités et en théorie de l'information, la divergence de Kullback-Leibler (ou divergence K-L ou encore entropie relative) est une mesure de dissimilarité entre deux distributions de probabilités. Elle doit son nom à Solomon Kullback et Richard Leibler, deux cryptanalystes américains. Selon la NSA, c'est durant les années 1950, alors qu'ils travaillaient pour cette agence, que Kullback et Leibler ont inventé cette mesure. Elle aurait d'ailleurs servi à la NSA dans son effort de cryptanalyse pour le projet Venona.