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相关概念视频

Boundary Layer Characteristics01:18

Boundary Layer Characteristics

28
When a fluid encounters a solid surface, a boundary layer forms due to the interaction between the fluid's motion and the stationary surface. This phenomenon is characterized by a thin region adjacent to the surface where viscous forces dominate, influencing the fluid's velocity profile. The development of the boundary layer begins at the leading edge of the surface and evolves as the fluid moves downstream.As the fluid flows over the surface, friction between the fluid and the wall slows down...
28
Uniform Depth Channel Flow: Problem Solving01:18

Uniform Depth Channel Flow: Problem Solving

55
To calculate the flow rate for a trapezoidal channel, first, identify the bottom width, side slope, and flow depth of the channel. The cross-sectional area (A) corresponding to the depth of flow (y), channel bottom width (B), and side slope (θ) is determined by:Next, calculate the wetted perimeter, which includes the bottom width and the sloped side lengths in contact with the water. Using the values of the cross-sectional area and the wetted perimeter, determine the hydraulic radius by...
55
Uniform Depth Channel Flow01:27

Uniform Depth Channel Flow

59
Uniform depth channel flow keeps fluid depth consistent along channels such as irrigation canals. In natural channels, such as rivers, approximate uniform flow is often assumed. This condition occurs when the channel’s bottom slope matches the energy slope, balancing potential energy lost from gravity with head loss due to shear stress. This balance prevents depth changes along the channel length, resulting in a steady, uniform flow.Uniform flow in open channels with a constant cross-section...
59
Influence of Earth's Curvature and Atmospheric Refraction on Leveling01:26

Influence of Earth's Curvature and Atmospheric Refraction on Leveling

50
During leveling, the Earth's curvature and atmospheric refraction introduce deviations in the line of sight from a true horizontal reference. When the line of sight is leveled, it remains perpendicular to the plumb line only at a single point. Beyond this, it deviates due to the Earth’s curvature, represented by the correction C. For a sight distance D, the deviation can be derived using the relationship:This relationship shows that the deviation increases quadratically with distance.
50
Variation of Atmospheric Pressure01:18

Variation of Atmospheric Pressure

2.0K
Change in atmospheric pressure with height is particularly interesting. The decrease in atmospheric pressure with increasing altitude is due to the decreasing gravitational force per unit area as we move away from the surface of the earth.
Assuming the air temperature is constant at a given altitude and that the ideal gas law of thermodynamics describes the atmosphere to a good approximation, one can find the variation of atmospheric pressure with height.
Let p(y) be the atmospheric pressure at...
2.0K
Turbulent Flow01:24

Turbulent Flow

125
Turbulent flow is characterized by unpredictable fluctuations in velocity and pressure, which result in a chaotic fluid movement distinct from the orderly patterns of laminar flow. While laminar flow is governed by smooth, parallel layers with minimal mixing, turbulent flow exhibits highly irregular, three-dimensional patterns. This behavior arises due to instabilities in the fluid's velocity profile, and amplifies as the flow velocity increases. Minor disturbances, known as turbulent...
125

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相关实验视频

Updated: May 29, 2025

Surface Mapping of Earth-like Exoplanets using Single Point Light Curves
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通过时间U-Net和云覆盖演变模拟的增强移除云.

Qingwei Tong1, Leiguang Wang2,3, Qinling Dai4

  • 1College of Big Data and Intelligent Engineering, Southwest Forestry University, Kunming, Yunnan, China.

Scientific reports
|February 6, 2025
PubMed
概括

这项研究介绍了一种使用云演变模拟来改善远程传感图像质量的新型云移除方法. 该方法增强了时间信息的利用,以便更准确地预测云和更好地监测环境.

关键词:
云覆盖演变 (CCE) 模块移除云的移除方式遥感图像 遥感图像 遥感图像剩余的学习学习.时间的U-Net.

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科学领域:

  • 地球观测 地球观测
  • 环境监测 环境监测
  • 图像处理 图像处理

背景情况:

  • 遥感图像中的云封闭会降低环境监测数据质量.
  • 现有的移除云的方法与文物,不完整的移除和色彩扭曲作斗争.
  • 有限的顺序数据阻碍了使用时间信息去除云.

研究的目的:

  • 开发一种先进的云去除方法,用于远程传感图像.
  • 为了有效地利用时间信息,尽管数据稀缺.
  • 提高无云遥感数据的准确性和质量.

主要方法:

  • 提出了一种基于云演变模拟的云移除方法.
  • 在没有实际时间数据的情况下,启用了云演变时间序列的构建.
  • 将时间信息嵌入到临时U-Net中,以进行增强的云预测.

主要成果:

  • 在峰值信号与噪声比率 (PSNR) 和结构相似性指数 (SSIM) 中显著改善.
  • 在广泛的实验中,超越了现有的移除云的技术.
  • 在RICE和T-CLOUD数据集上验证.

结论:

  • 拟议的云演变模拟方法有效地解决了遥感中的云封闭问题.
  • 时间信息集成提高了云移除的准确性.
  • 该方法为改善地球观测数据质量提供了强大的解决方案.