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相关概念视频

Tangent to a Curve01:30

Tangent to a Curve

254
The graph of a function where each output is the square of the input creates a smooth curve that bends upward, becoming steeper as one moves further from the center. At any chosen position along this curve, the curve reaches a certain height depending on the input value. This position can be a reference for analyzing how the curve behaves in its immediate vicinity.To understand the change in the curve near a particular position, imagine selecting another point slightly ahead along the curve.
254
Trigonometric Identities II01:28

Trigonometric Identities II

291
Double-angle and half-angle trigonometric identities are derived from the fundamental sum and difference formulas and serve as essential tools for simplifying expressions, solving equations, and evaluating integrals. These identities reduce the complexity of trigonometric functions by relating functions of a multiple or fractional angle to functions of a single angle. Their applications extend across mathematics, physics, and engineering, particularly in Fourier analysis, wave mechanics, and...
291
Introduction to Horizontal Curves01:19

Introduction to Horizontal Curves

535
Horizontal curves are essential in highway and railroad design, ensuring smooth and safe transitions between straight path segments, or tangents. These curves allow vehicles to maintain speed without abrupt changes, minimizing accidents and improving travel efficiency.A horizontal curve is typically defined by its geometric relationship to two tangents that meet at an intersection point (P.I.), where a simple curve is introduced to connect them. The back tangent refers to the initial tangent...
535
Circles01:18

Circles

153
A circle in the coordinate plane is defined as the set of all points that lie at a constant distance, known as the radius, from a fixed point called the center. This relationship is captured using the distance formula. For a point (x, y) on the circle and a center (h, k), the distance between them equals the radius r. By squaring both sides of the distance formula, the equation of the circle is written in standard form:Constructing the Equation from Geometric InformationIf the center and the...
153
Horizontal Curve: Problem Solving01:03

Horizontal Curve: Problem Solving

308
A horizontal curve is characterized by its radius, intersection angle, and stationing of key points. In this case, the radius is 400 meters, and the angle of intersection is 30 degrees, with the station of the point of curvature (P.C.) at 0 + 150 meters. The goal is to determine the station values at the point of intersection (P.I.), point of tangency (P.T.), and midpoint of the curve, as well as the length of the long chord.The process begins with calculating the tangent distance (T) and the...
308
Curve Equations01:17

Curve Equations

276
Curves are essential geometric elements characterized by tangent distance, chord length, middle ordinate, and total arc length. These measurements are crucial in understanding a curve's geometric and spatial properties and are defined by the relationship between its radius and its central angle.The tangent distance (T) refers to the straight-line measurement from the intersection point of two tangents to either the start or end of the curve. This distance is influenced by the curve's radius (R)...
276

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Updated: Jan 8, 2026

Detection of Architectural Distortion in Prior Mammograms via Analysis of Oriented Patterns
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基于触线方法的圆形数组.

Tsutomu Kaizuka1, Kaisei Koshiishi1

  • 1Department of Mechanical Science and Engineering, Kogakuin University, 2665-1 Nakano-machi, Hachioji-shi, Tokyo 192-0015, Japan.

The Journal of the Acoustical Society of America
|December 17, 2025
PubMed
概括

触线方法 (TLM) 使用圆形阵列用于声波束成形,克服线形阵列的限制. 这种方法可以精确地控制曲线声波束,以增强导向性和距离区分.

科学领域:

  • 声学 声学 在声学方面
  • 信号处理 信号处理
  • 阵列信号处理 阵列信号处理

背景情况:

  • 触线方法 (TLM) 使用阵列信号处理产生曲线声波束.
  • 之前的TLM研究集中在线阵列上,由于对称性,这些阵列受到不必要的后叶梁的影响.

研究的目的:

  • 研究TLM使用不对称的圆形数组来克服直线数组的局限性.
  • 为了制定阵列信号处理,以产生带有圆形阵列的圆形光束.

主要方法:

  • 开发了数组信号处理技术,用于使用圆形数组生成循环光束.
  • 通过计算模拟和实验测试验证了理论框架.

主要成果:

  • 圆形阵列有效地产生曲线声波束,而没有线形阵列的后叶问题.
  • 产生的光束的轨迹可以精确控制,以实现导向性和距离差别.

结论:

  • 圆形数组是TLM应用程序中线形数组的可行替代方案.
  • 开发的方法可以加强对各种应用的声波束成形的控制.

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