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相关概念视频

Curvilinear Motion: Polar Coordinates01:27

Curvilinear Motion: Polar Coordinates

370
In polar coordinates, the motion of a particle follows a curvilinear path. The radial coordinate symbolized as 'r,' extends outward from a fixed origin to the particle, while the angular coordinate, 'θ,' measured in radians, represents the counterclockwise angle between a fixed reference line and the radial line connecting the origin to the particle.
The particle's location is described using a unit vector along the radial direction. Deriving the particle's position...
370
Relative Motion Analysis using Rotating Axes01:25

Relative Motion Analysis using Rotating Axes

469
Consider a component AB undergoing a linear motion. Along with a linear motion, point B also rotates around point A. To comprehend this complex movement, position vectors for both points A and B are established using a stationary reference frame.
However, to express the relative position of point B relative to point A, an additional frame of reference, denoted as x'y', is necessary. This additional frame not only translates but also rotates relative to the fixed frame, making it...
469
Curvilinear Motion: Rectangular Components01:23

Curvilinear Motion: Rectangular Components

462
Curvilinear motion characterizes the movement of a particle or object along a curved path, notably evident when envisioning a car navigating a winding road. If the car starts at point A, its position vector is established within a fixed frame of reference, where the ratio of the position vector to its magnitude signifies the unit vector pointing in the position vector's direction.
As the car advances, its position evolves over time. Quantifying the car's velocity involves computing the...
462
Rotation with Constant Angular Acceleration - II01:16

Rotation with Constant Angular Acceleration - II

6.0K
Kinematics is the description of motion. The kinematics of rotational motion discusses the relationships between rotation angle, angular velocity, angular acceleration, and time. One can describe many things with great precision using kinematics, but kinematics does not consider causes. For example, a large angular acceleration describes a very rapid change in angular velocity without any consideration of its cause. Thus, rotational kinematics does not represent the laws of nature.
The first...
6.0K
Angular Momentum about an Arbitrary Axis01:11

Angular Momentum about an Arbitrary Axis

199
Imagine a rigid body with a mass denoted as 'm', which has its center of mass at point G and is rotating around an inertial reference frame. The angular momentum at an arbitrary point P can be calculated by taking the cross product of the position vector and linear momentum vector for each individual mass element.
The velocity of a mass element comprises its translational velocity and the relative velocity instigated by the body's rotation. Substituting the velocity equation into...
199
Relating Angular And Linear Quantities - I01:09

Relating Angular And Linear Quantities - I

6.6K
If the rotational definitions are compared with the definitions of linear kinematic variables from motion along a straight line and motion in two and three dimensions, we can observe a mapping of the linear variables to the rotational ones.
When comparing the linear and rotational variables individually, the linear variable of position has physical units of meters, whereas the angular position variable has dimensionless units of radians, as it is the ratio of two lengths. The linear velocity...
6.6K

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相关实验视频

Updated: Jul 9, 2025

High-resolution, High-speed, Three-dimensional Video Imaging with Digital Fringe Projection Techniques
11:34

High-resolution, High-speed, Three-dimensional Video Imaging with Digital Fringe Projection Techniques

Published on: December 3, 2013

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一个基于辐射基础功能的二维角插值,用于高速超快速成像.

Sajjad Afrakhteh1, Giovanni Iacca1, Libertario Demi1

  • 1Department of Information Engineering and Computer Science, University of Trento, Trento, Italy.

The Journal of the Acoustical Society of America
|November 28, 2023
PubMed
概括

这项研究引入了一种用于平面波成像 (PWI) 的新方法,以提高超声波率. 通过使用2D插值,研究人员在保持图像质量的同时实现了3x-4x的速提升.

科学领域:

  • 医疗成像医学成像
  • 超声波技术 超声波技术 超声波技术
  • 信号处理 信号处理

背景情况:

  • 平面波成像 (PWI) 对于超声波至关重要,但在图像质量和率方面存在局限性.
  • 一致平面波组合 (CPWC) 通过从多个角度组合PWI数据来提高图像质量,但需要更多的数据,降低率.
  • 在CPWC中,图像质量和可实现的率之间存在一个权衡.

研究的目的:

  • 为了减少CPWC中图像质量和率之间的权衡.
  • 通过优化数据采集和重建来提高PWI的性能.
  • 为了提高医疗应用中的超声波成像效率.

主要方法:

  • 开发了一种基于辐射基函数的新2D插值技术.
  • 构建了一个3D空间角度数据结构,以整合空间和角度信息.
  • 减少了所需的平面波传输的数量,并使用插值来重建缺失的角度信息.

主要成果:

  • 在率方面实现了3x到4x的改进.
  • 与传统的CPWC方法相比,保持了可接受的图像质量.
  • 在医学超声波数据集上证明了该技术的有效性.

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结论:

  • 拟议的2D插值方法显著提高了CPWC中的率.
  • 这种技术提供了一个可行的解决方案,以平面波超声成像中平衡图像质量和速度.
  • 该方法显示了改善医学超声波诊断能力的前景.