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相关概念视频

Principle of Equivalence01:18

Principle of Equivalence

According to Albert Einstein (1897-1955), free-falling and feeling weightless are intrinsically linked. If a person were in free-fall under gravity, for example, diving towards the Earth from an airplane, they would feel completely weightless. Similarly, a person descending in a lift may feel partially weightless. Broadly speaking, it is assumed that an object in a uniform gravitational field and an object undergoing constant acceleration in the absence of gravity are under the same...
Space-Time Curvature and the General Theory of Relativity01:17

Space-Time Curvature and the General Theory of Relativity

In 1905, Albert Einstein published his special theory of relativity. According to this theory, no matter in the universe can attain a speed greater than the speed of light in a vacuum, which thus serves as the speed limit of the universe.
This has been verified in many experiments. However, space and time are no longer absolute. Two observers moving relative to one another do not agree on the length of objects or the passage of time. The mechanics of objects based on Newton's laws of motion,...
Related Rates01:18

Related Rates

When two or more physical quantities are linked by a single relationship, a change in one variable necessarily affects the others. This interdependence forms the basis of related rates analysis, which examines how different quantities change with respect to time. A classic physical example is an expanding balloon, where the size of the balloon changes continuously as air is added.For a hot air balloon, the inflated envelope is commonly idealized as a perfect sphere to simplify mathematical...
Space Curves01:25

Space Curves

A space curve describes the path followed by a particle moving through three-dimensional space. Unlike plane curves, which are confined to two coordinates, space curves require three coordinate functions. If t is a parameter, the position of the particle is represented by the vector function\begin{equation*}\mathbf{r}(t)=\langle x(t),y(t),z(t)\rangle,\end{equation*}where x(t), y(t), and z(t) are differentiable functions of t. As t varies over an interval, the endpoints of the position vectors...
Real-World Applications of Space Curves01:29

Real-World Applications of Space Curves

Modern aerospace navigation depends on the accurate prediction of motion in three-dimensional space. In defense applications, radar systems continuously track both interceptors and moving aerial targets to find whether their flight paths will result in a collision. These motions are modeled mathematically as space curves, which represent paths that change continuously with time. Each object’s position is described by a vector function that specifies its location in terms of time-dependent...
Arc Length of Space Curves01:21

Arc Length of Space Curves

Arc length represents the total distance traveled along a curve in space. For a moving object such as a helicopter, the path can be modeled by a vector-valued position function\begin{equation*}\mathbf{r}(t)=\langle x(t),y(t),z(t)\rangle\end{equation*}where t denotes time. Unlike displacement, which measures only the straight-line distance between two points, arc length accounts for every change in direction along the trajectory.To calculate arc length, the interval of motion is divided into...

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相关实验视频

Updated: Jun 20, 2026

Translaminar Autonomous System Model for the Modulation of Intraocular and Intracranial Pressure in Human Donor Posterior Segments
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冠状腺形态的空间和时间变化与长期太空飞行相关.

Charles Bélanger Nzakimuena1, Marissé Masís Solano1,2, Rémy Marcotte-Collard3

  • 1Centre de Recherche de l'Hôpital Maisonneuve-Rosemont, Montréal, Québec, Canada.

Investigative ophthalmology & visual science
|May 7, 2025
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概括

宇航员在太空飞行期间经历了状腺厚度和斑点血管度的增加. 这些发现揭示了状血管中的脉动性变化,为太空飞行相关的神经眼综合征提供了洞察力.

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科学领域:

  • 眼科医生 眼科 眼科
  • 太空医学 太空医学
  • 医疗成像医学成像

背景情况:

  • 太空飞行与神经眼部变化有关,包括太空飞行相关的神经眼部综合征 (SANS).
  • 准确量化胆道变化对于理解SANS至关重要.
  • 深度学习为分析眼睛结构提供先进的图像细分功能.

研究的目的:

  • 扩展深度学习用于光学连贯性断层扫描 (OCT) 斑点成像中的胆体量化.
  • 描述太空飞行期间黄斑冠状腺的脉动和拓变化.
  • 为了研究长时间暴露在微重力中后的胸腔变化.

主要方法:

  • 从宇航员在太空飞行前,期间和之后对OCT黄斑视频和卷进行分析.
  • 微调深度学习模型以实现精确的胆管细分.
  • 血管性的量化和时间依赖和空间平均变量的统计分析.

主要成果:

  • 观察到平均胆道厚度和光面积 (LA) 的显著增加.
  • 脉动性LA在太空飞行期间显著增加.
  • 在黄斑区域,胆体积,亮面体积和胆体血管度指数显著增加.

结论:

  • 长时间暴露在微重力中会诱导胆管中局部脉动性变化.
  • 冠状血管扩大,在黄斑区域内占据较大的相对空间.
  • 开发的方法为研究与太空飞行相关的眼睛风险和对策提供了新的工具.