range of measurement - tradução para russo
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range of measurement - tradução para russo

IN QUANTUM MECHANICS, THE PROBLEM OF HOW OR WHETHER WAVE FUNCTION COLLAPSE OCCURS DURING MEASUREMENT
Measurement (quantum mechanics); Quantum measurement problem; Problem of measurement

range of measurement      

общая лексика

диапазон измерений

interval of uncertainty         
PARAMETER CHARACTERIZING THE DISPERSION OF QUANTITY VALUES OF A MEASURAND
Measurement Uncertainty; Measuring uncertainty; Uncertainty of measurement; Type B evaluation of uncertainty; Type A evaluation of uncertainty; Interval of uncertainty; Measurement uncertainties
интервал неуверенности.
measurement uncertainty         
PARAMETER CHARACTERIZING THE DISPERSION OF QUANTITY VALUES OF A MEASURAND
Measurement Uncertainty; Measuring uncertainty; Uncertainty of measurement; Type B evaluation of uncertainty; Type A evaluation of uncertainty; Interval of uncertainty; Measurement uncertainties

общая лексика

погрешность измерения

Definição

Брукса хребет
(Brooks Range)

горный хребет на С. Аляски. Длина около 1000 км, ширина до 200 км. Преобладающие высоты 1500-2000 м, наибольшая высота 2816 м (г. Майклсон). Сложен породами преимущественно нижнепалеозойского возраста (известняки, кварциты, сланцы, песчаники). Глубоко расчленён долинами рек. Широко распространены древние ледниковые формы. Небольшие современные ледники. Служит водоразделом между реками арктического склона и бассейном р. Юкон. Растительность - горная тундра; характерны каменистые россыпи и обнажённые скалы.

Wikipédia

Measurement problem

In quantum mechanics, the measurement problem is the problem of how, or whether, wave function collapse occurs. The inability to observe such a collapse directly has given rise to different interpretations of quantum mechanics and poses a key set of questions that each interpretation must answer.

The wave function in quantum mechanics evolves deterministically according to the Schrödinger equation as a linear superposition of different states. However, actual measurements always find the physical system in a definite state. Any future evolution of the wave function is based on the state the system was discovered to be in when the measurement was made, meaning that the measurement "did something" to the system that is not obviously a consequence of Schrödinger evolution. The measurement problem is describing what that "something" is, how a superposition of many possible values becomes a single measured value.

To express matters differently (paraphrasing Steven Weinberg), the Schrödinger wave equation determines the wave function at any later time. If observers and their measuring apparatus are themselves described by a deterministic wave function, why can we not predict precise results for measurements, but only probabilities? As a general question: How can one establish a correspondence between quantum reality and classical reality?

Como se diz range of measurement em Russo? Tradução de &#39range of measurement&#39 em Russo