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相关概念视频

Interference: Path Lengths01:10

Interference: Path Lengths

1.3K
Consider two sources of sound, that may or may not be in phase, emitting waves at a single frequency, and consider the frequencies to be the same.
Two special sources may be considered when they are in phase. This can be easily achieved by feeding the two sources from the same source. An example would be synchronizing the two speakers by feeding them with the same source, such as the sound waves produced by a tuning fork. This setup ensures that the two sources have the same frequency and are...
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Propagation of Waves01:07

Propagation of Waves

2.3K
When a wave propagates from one medium to another, part of it may get reflected in the first medium, and part of it may get transmitted to the second medium. In such a case, the interface of the two mediums can be considered as a boundary that is neither fixed nor free.
Consider a scenario where a wave propagates from a string of low linear mass density to a string of high linear mass density. In such a case, the reflected wave is out of phase with respect to the incident wave, however the...
2.3K
Sound Waves: Interference00:53

Sound Waves: Interference

3.7K
Sound waves can be modeled either as longitudinal waves, wherein the molecules of the medium oscillate around an equilibrium position, or as pressure waves. When two identical waves from the same source superimpose on each other, the combination of two crests or two troughs results in amplitude reinforcement known as constructive interference. If two identical waves, that are initially in phase, become out of phase because of different path lengths, the combination of crests with troughs...
3.7K
Interference and Superposition of Waves01:07

Interference and Superposition of Waves

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When two waves of the same nature occur in the same region simultaneously, they result in interference. Interference of waves implies that the net effect of the waves is the sum of the individual waves' effects. However, it does not imply that the individual waves affect the propagation of other waves.
Interference occurs in mechanical waves, such as sound waves, waves on a string, and surface water waves. Mechanical waves correspond to the physical displacement of particles. Hence,...
5.2K
Reconstruction of Signal using Interpolation01:10

Reconstruction of Signal using Interpolation

194
Signal processing techniques are essential for accurately converting continuous signals to digital formats and vice versa. When a continuous signal is sampled with a period T, the resulting sampled signal exhibits replicas of the original spectrum in the frequency domain, spaced at intervals equal to the sampling frequency. To handle this sampled signal, a zero-order hold method can be applied, which creates a piecewise constant signal by retaining each sample's value until the next...
194
Echo01:06

Echo

505
The human ear cannot distinguish between two sources of sound if they happen to reach within a specific time interval, typically 0.1 seconds apart. More than this, and they are perceived as separate sources.
Imagine the sound is reflected back to the ears. Assuming that the source is very close to the human, the difference between hearing the two sounds—the emitted sound and the reflected sound—may be more than the minimum time for perceiving distinct sounds. If this is the case,...
505

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相关实验视频

Updated: Jun 24, 2025

Transmission of Multiple Signals through an Optical Fiber Using Wavefront Shaping
09:43

Transmission of Multiple Signals through an Optical Fiber Using Wavefront Shaping

Published on: March 20, 2017

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基于时间逆转预处理的全双重UOWC对反向散射干扰取消的实验调查.

Weijie Liu, Shuzhe Zhang, Nuo Huang

    Journal of the Optical Society of America. A, Optics, image science, and vision
    |June 10, 2024
    PubMed
    概括

    这项研究解决了全双重水下光学无线通信 (UOWC) 系统的自我干扰问题. 一个新的数字域反散干扰取消 (BIC) 算法在各种水下条件下显著提高了位误差率性能.

    科学领域:

    • 光学无线通信的无线通信.
    • 水下声学和光学研究
    • 信号处理 信号处理

    背景情况:

    • 全双重 (FD) 水下光学无线通信 (UOWC) 提供了增强的光谱效率和网络功能.
    • 水下反散的自我干扰降低了FD-UOWC系统的性能,这构成了重大挑战.

    研究的目的:

    • 实验研究水下反散通道的特征.
    • 为FD-UOWC系统提出和验证数字域反散干扰取消 (BIC) 算法.

    主要方法:

    • 实验探索水下反散通道的特性.
    • 开发一个数字域BIC算法,包括时间逆转预处理.
    • 在各种通道条件下对BIC算法的性能进行实验验证.

    主要成果:

    • 拟议的BIC算法有效地减轻了FD-UOWC系统中的自我干扰.
    • 在各种水下通道场景中观察到比特错误率 (BER) 性能的显著改善.
    • 通过实验调查验证了BIC算法的可行性.

    结论:

    • 开发的数字域BIC算法有效地提高了FD-UOWC系统的性能.

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  • 这项工作提供了一个可行的解决方案,以克服UOWC网络中的反向散射挑战.
  • 拟议的方法为水下强大的光通信系统提供了巨大的潜力.