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相关概念视频

Upsampling01:22

Upsampling

204
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...
204
Downsampling01:20

Downsampling

131
When considering a sampled sequence with zero values between sampling instants, one can replace it by taking every N-th value of the sequence. At these integer multiples of N, the original and sampled sequences coincide. This process, known as decimation, involves extracting every N-th sample from a sequence, thereby creating a more efficient sequence.
The Fourier transform of the decimated sequence reveals a combination of scaled and shifted versions of the original spectrum. This...
131
Sampling Continuous Time Signal01:11

Sampling Continuous Time Signal

207
In signal processing, a continuous-time signal can be sampled using an impulse-train sampling technique, followed by the zero-order hold method. Impulse-train sampling involves the use of a periodic impulse train, which consists of a series of delta functions spaced at regular intervals determined by the sampling period. When a continuous-time signal is multiplied by this impulse train, it generates impulses with amplitudes corresponding to the signal's values at the sampling points.
In the...
207
Bandpass Sampling01:17

Bandpass Sampling

162
In signal processing, bandpass sampling is an effective technique for sampling signals that have most of their energy concentrated within a narrow frequency band. This type of signal is known as a bandpass signal. The key principle of bandpass sampling involves sampling the signal at a rate that is greater than twice the signal's bandwidth to prevent aliasing.
A bandpass signal has a spectrum with a lower frequency limit, denoted as ω1, and an upper frequency limit, denoted as ω2....
162
Linear Approximation in Frequency Domain01:26

Linear Approximation in Frequency Domain

85
Linear systems are characterized by two main properties: superposition and homogeneity. Superposition allows the response to multiple inputs to be the sum of the responses to each individual input. Homogeneity ensures that scaling an input by a scalar results in the response being scaled by the same scalar.
In contrast, nonlinear systems do not inherently possess these properties. However, for small deviations around an operating point, a nonlinear system can often be approximated as linear....
85
Reconstruction of Signal using Interpolation01:10

Reconstruction of Signal using Interpolation

174
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...
174

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相关实验视频

Updated: Jun 7, 2025

Gain-compensation Methodology for a Sinusoidal Scan of a Galvanometer Mirror in Proportional-Integral-Differential Control Using Pre-emphasis Techniques
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部分率采样,非整数分数间隔的Volterra非线性等效器用于IM/DD系统.

Jaeyoon Kim, Hoon Kim

    Optics express
    |November 14, 2024
    PubMed
    概括

    本研究介绍了用于光通信系统的Volterra非线性均衡器 (VNLE) 的分速采样. 这种新型均衡器通过消除对低成本高速系统至关重要的数字上采样来降低接收器的复杂性.

    科学领域:

    • 光学通信是指光学通信.
    • 数字信号处理 数字信号处理
    • 集成电路设计 集成电路设计

    背景情况:

    • 高速模拟数字转换器 (ADC) 在强度调制/直接检测 (IM/DD) 系统中是昂贵的.
    • 传统的非线性均等器需要数字上采样,从而增加了处理需求.
    • 当前的接收器设计面临着低速率ADC和高速率等级之间的不匹配.

    研究的目的:

    • 提出和演示一个采样的子率,非整数分数间隔的Volterra非线性均衡器 (VNLE).
    • 为了减少光学接收器中数字信号处理 (DSP) 的复杂性.
    • 为了使接收器DSP能够在ADC的次率采样频率上运行.

    主要方法:

    • 开发了一个分速采样的,非整数分数间隔的Volterra非线性均等器 (VNLE).
    • 消除了在接收器DSP链中需要数字上采样的需求.
    • 通过使用乘数计算评估了等效器性能和实现复杂性.
    • 在64Gb/s的4-ary脉冲振幅调制 (4-PAM) 链路上测试了VNLE.

    主要成果:

    • 拟议的VNLE以ADC的子率运行,与其采样频率相匹配.
    • 由于避免了数字上采样,实现复杂性的显著降低.

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  • 与传统VNLEs相比,观察到非常轻微的性能下降.
  • 在64Gb/s的4-PAM光学链路上证明了可行性.
  • 结论:

    • 采样的VNLE分速率有效地减少了接收器DSP的复杂性和成本.
    • 这种方法适用于未来的高速,成本敏感的光通信系统.
    • 减少复杂性和最小的性能损失之间的权衡是可以接受的.