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相关概念视频

Reconstruction of Signal using Interpolation01:10

Reconstruction of Signal using Interpolation

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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...
233
Upsampling01:22

Upsampling

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Managing signal sampling rates is essential in digital signal processing to maintain signal integrity. A decimated signal, characterized by a reduced frequency range due to its lower sampling rate, can be upsampled by inserting zeros between each sample. This upsampling process expands the original spectrum and introduces repeated spectral replicas at intervals dictated by the new Nyquist frequency. To refine this zero-inserted sequence, it is passed through a lowpass filter with a cutoff...
261
Aliasing01:18

Aliasing

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Accurate signal sampling and reconstruction are crucial in various signal-processing applications. A time-domain signal's spectrum can be revealed using its Fourier transform. When this signal is sampled at a specific frequency, it results in multiple scaled replicas of the original spectrum in the frequency domain. The spacing of these replicas is determined by the sampling frequency.
If the sampling frequency is below the Nyquist rate, these replicas overlap, preventing the original...
159
NMR Spectrometers: Radiofrequency Pulses and Pulse Sequences01:17

NMR Spectrometers: Radiofrequency Pulses and Pulse Sequences

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A pulse is a short burst of radio waves distributed over a range of frequencies that simultaneously excites all the nuclei in the sample. Upon passing a radio frequency pulse along the x-axis, the nuclei absorb energy corresponding to their Larmor frequencies and achieve resonance. This shifts the net magnetization vector from the z-axis toward the transverse plane. This angle of rotation of the magnetization vector, or the flip angle, is proportional to the duration and intensity of the pulse.
837
Raman Spectroscopy Instrumentation: Overview01:26

Raman Spectroscopy Instrumentation: Overview

450
A conventional Raman spectrophotometer includes a laser source, a sample holding system, a wavelength selector, and a detector.
The monochromatic laser source, typically using visible or near-infrared radiation, generates a highly focused beam of light. This light interacts with the molecules of the sample, scattering some of the light. Liquid and gaseous samples are usually tested in ordinary glass capillaries, while solids can be analyzed as powders packed in capillaries or as potassium...
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Design Example01:23

Design Example

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The innovation of touch-tone telephony revolutionized the telecommunications industry by replacing the traditional rotary dial with a dual-tone multi-frequency (DTMF) signaling system. This system uses a matrix-style keypad with buttons arranged in four rows and three columns, creating 12 distinct signals each assigned to a pair of frequencies. Each button press results in a simultaneous generation of two sinusoidal tones – one from a low-frequency group (697 to 941 Hz) and one from a...
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Generation and Coherent Control of Pulsed Quantum Frequency Combs
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高分辨率可重新配置的射频信号光谱处理器

Zikai Yin, Feifei Yin, Guchang Chen

    Optics express
    |September 15, 2023
    PubMed
    概括

    本研究介绍了一种可重新配置的射频 (RF) 信号光谱处理器. 它实现了大型即时带宽和高分辨率,用于先进的射频信号处理.

    科学领域:

    • 光子学和信号处理技术
    • 微波光子学 微波光子学
    • 光学信号处理 视觉信号处理

    背景情况:

    • 微波光子过器 (MPF) 提供先进的射频 (RF) 信号处理能力,包括大瞬间带宽,高分辨率和多功能形状.
    • 同时实现这些特性以满足复杂的电磁环境需求仍然是一个重大挑战.

    研究的目的:

    • 提出和演示一个可重新配置的射频信号光谱处理器,该处理器集成了具有高分辨率的大量即时带宽.
    • 克服当前的MPF在实现多个性能指标同时实现的局限性.

    主要方法:

    • 使用光学频率 (OFC) 来提供足够的水龙头来处理宽带射频信号,确保大量的瞬时带宽.
    • 采用光学光谱造型器 (OSS) 灵活操纵接系数,实现精确的重新配置和高分辨率响应造型.
    • 实现点击点击操纵,以微调光谱响应,以数百兆赫的分辨率范围.

    主要成果:

    • 证明了平顶频率响应,带宽为7.1 GHz.
    • 展示了可重新配置的功能,包括可调节的带宽,可调节的中心频率和各种响应形状.
    • 实现了96.5MHz的测量频率分辨率,证实了系统的精确配置能力.

    结论:

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    • 拟议的光谱处理器成功地集成了大瞬间带宽和高分辨率,解决了RF信号处理的关键挑战.
    • 证明的重构性和对光谱形状的精确控制为复杂的电磁环境提供了显著的优势.
    • 这项工作为使用微波光子技术的先进,可适应的射频信号处理系统铺平了道路.