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Second Law: Motion under Same Acceleration01:14

Second Law: Motion under Same Acceleration

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Newton's second law of motion applies to bodies moving under the same acceleration. For example, when a baggage tractor pulls luggage carts, each cart moves at the same acceleration as that of the tractor.
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Relative Motion Analysis - Acceleration01:10

Relative Motion Analysis - Acceleration

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A slider-crank mechanism converts rotational motion from the crank into linear motion of the slider or vice versa. This mechanism consists of three main parts: the crank, the connecting rod, and the slider. The movement of the slider-crank is an example of general plane motion as the fluctuating angle between the crank and the connecting rod. Consider a segment AB where point A is at the end of the slider and point B is on the diametrically opposite end to point A, on a crack. The variance in...
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Relative Motion Analysis using Rotating Axes - Acceleration01:22

Relative Motion Analysis using Rotating Axes - Acceleration

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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. The absolute velocity of point B is determined by adding the absolute velocity of point A, the relative velocity of point B in the rotating frame, and the effects caused by the angular velocity within the rotating frame.
Time differentiation is...
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First Pass Effect01:12

First Pass Effect

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Presystemic elimination, or the first-pass effect, is the metabolism of drugs that reduces their effective concentration at the site of action. Apart from the first-pass effect, the systemic bioavailability of the drug is also reduced by other factors, including incomplete absorption or chemical degradation of drugs.
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Distance Corrections01:15

Distance Corrections

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To achieve precise distance measurements, especially in surveying and construction, certain corrections must be applied to account for potential sources of error like the standardization errors, temperature variations, and slope adjustments.Standardization error emerges when measurement equipment undergoes changes, such as wear, repairs, or weather impacts. To address this, surveyors compare the equipment’s readings to a standard. This process identifies any deviation that might lead to...
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Respiratory Regulation of Acid-Base Balance01:18

Respiratory Regulation of Acid-Base Balance

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Respiratory compensation is a vital physiological process that stabilizes blood plasma pH by regulating the partial pressure of carbon dioxide (PCO2), a key determinant of pH levels. Most carbon dioxide in the blood dissolves and converts into carbonic acid (H2CO3). It dissociates into hydrogen ions (H+) and bicarbonate ions (HCO3⁻). There is also an inverse relationship between PCO2​​ and pH.
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相关实验视频

Updated: Feb 11, 2026

Management of Respiratory Motion Artefacts in 18F-fluorodeoxyglucose Positron Emission Tomography using an Amplitude-Based Optimal Respiratory Gating Algorithm
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Management of Respiratory Motion Artefacts in 18F-fluorodeoxyglucose Positron Emission Tomography using an Amplitude-Based Optimal Respiratory Gating Algorithm

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K-CC-MoCo:一种基于k空间的快速呼吸运动校正,用于高度加速的第一通透 perfusion 心血管MR.

Elisa Moya-Sáez1,2, Rosa-María Menchón-Lara1,3, Javier Sánchez-González4

  • 1ETSI de Telecomunicación, Universidad de Valladolid, Valladolid, Spain.

Magnetic resonance in medicine
|February 10, 2026
PubMed
概括

K-CC-MoCo在k空间中纠正呼吸运动,以获得更快,更清晰的自由呼吸的第一通透 perfusion 心血管MRI (FPP-CMR) 扫描. 这种方法可以从高度加速的采集中获得高质量的图像,其性能优于传统的基于图像的校正.

关键词:
运动校正,运动校正.心肌第一次通透 perfusion 的方法.呼吸运动是呼吸的运动.严格的注册登记方式.

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相关实验视频

Last Updated: Feb 11, 2026

Management of Respiratory Motion Artefacts in 18F-fluorodeoxyglucose Positron Emission Tomography using an Amplitude-Based Optimal Respiratory Gating Algorithm
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3D Cine Magnetic Resonance Imaging of Respiratory Motion in Mechanically Ventilated Mice and Rats

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科学领域:

  • 心血管磁共振成像 - 心血管磁共振成像
  • 医学成像物理 医学成像物理
  • 生物医学工程 生物医学工程

背景情况:

  • 第一通 perfusion 心血管MR (FPP-CMR) 对于诊断微循环和冠状动脉疾病至关重要.
  • 当前的自由呼吸FPP-CMR运动校正发生在图像域中,限制了先进的重建技术.
  • 基于模型和深度学习的重建提供了来自加速扫描的高质量成像,但受到当前运动校正方法的阻碍.

研究的目的:

  • 开发和验证一种新的基于k空间的运动校正方法,用于自由呼吸的FPP-CMR.
  • 为了在k空间内直接实现运动校正,绕过初始图像重建.
  • 促进运动校正与基于先进模型和深度学习重建技术的集成,以加速FPP-CMR.

主要方法:

  • 提出K-CC-MoCo,一种基于k空间的刚性运动校正方法.
  • 采用了针对动态对比而调整的规范化交叉相关性目标函数.
  • 实施了基于ROI的线圈压缩,以专注于心脏区域.
  • 将K-CC-MoCo与使用数字幻象和真实收购的最新基于图像的注册进行了比较.

主要成果:

  • 根据K-CC-MoCo的研究结果,相对于基于图像的方法,K-CC-MoCo的速度提高了约2倍.
  • 在高加速度系数 (高达50倍) 上成功纠正呼吸运动,而基于图像的方法失败了.
  • 这导致时间平均图像的模糊度明显降低,并得到SSIM等定量指标的支持.

结论:

  • 在加速自由呼吸的FPP-CMR中,K-CC-MoCo显著优于基于图像的运动校正.
  • 能够在k空间中直接进行强大的呼吸运动估计和校正.
  • 使用基于模型和深度学习的重建,促进高质量,高度加速的FPP-CMR.