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相关概念视频

Continuous -time Fourier Transform01:11

Continuous -time Fourier Transform

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The Fourier series is instrumental in representing periodic functions, offering a powerful method to decompose such functions into a sum of sinusoids. This technique, however, necessitates modification when applied to nonperiodic functions. Consider a pulse-train waveform consisting of a series of rectangular pulses. When these pulses have a finite period, they can be accurately represented by a Fourier series. Yet, as the period approaches infinity, resulting in a single, isolated pulse, the...
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Linear Approximation in Frequency Domain01:26

Linear Approximation in Frequency Domain

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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....
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Fast Fourier Transform01:10

Fast Fourier Transform

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The Fast Fourier Transform (FFT) is a computational algorithm designed to compute the Discrete Fourier Transform (DFT) efficiently. By breaking down the calculations into smaller, manageable sections, the FFT significantly reduces the computational complexity involved. Direct computation of an N-point DFT requires N2 complex multiplications, whereas the FFT algorithm needs only (N/2)log⁡2N multiplications, offering a much faster performance.
The computational efficiency of the FFT becomes...
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Basic signals of Fourier Transform01:07

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The Fourier Transform is a pivotal mathematical tool in signal processing, enabling the transformation of time-domain signals into their frequency-domain representations. Among the numerous elements within this domain, certain functions like the sinc function, delta function, and exponential signals hold significant importance due to their unique properties and implications.
The sinc function, defined as sinc(x) = sin(πx)/(πx), is particularly notable for its symmetry and behavior at...
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IR Frequency Region: Fingerprint Region01:03

IR Frequency Region: Fingerprint Region

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IR spectra are divided into two main regions: the diagnostic region and the fingerprint region. The diagnostic region of the spectrum lies above 1500 cm−1. The absorptions resulting from single-bond vibrations of the N–H, C–H, and O–H stretch at higher wavenumbers and appear on the left side of the spectrum. The stretching absorptions of the C≡C and C≡N occur between 2100–2300 cm−1. In contrast, those arising from stretching absorptions of the...
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Discrete Fourier Transform01:15

Discrete Fourier Transform

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The Discrete Fourier Transform (DFT) is a fundamental tool in signal processing, extending the discrete-time Fourier transform by evaluating discrete signals at uniformly spaced frequency intervals. This transformation converts a finite sequence of time-domain samples into frequency components, each representing complex sinusoids ordered by frequency. The DFT translates these sequences into the frequency domain, effectively indicating the magnitude and phase of each frequency component present...
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相关实验视频

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A Multimodal Wide-Field Fourier-Transform Raman Microscope
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通过里埃特征网络学习高度振荡的光学场.

Joshua R Jandrell, Mitchell A Cox

    Optics letters
    |March 13, 2026
    PubMed
    概括

    我们开发了一种数据效率高的机器学习模型,以准确预测物理扰动下的光学系统行为. 这种方法显著提高了多模光纤表征的相位精度.

    科学领域:

    • 光学和光学工程的光学和光学工程.
    • 机器学习应用程序 机器学习应用程序
    • 计算物理学的计算物理.

    背景情况:

    • 对光学系统中物理扰动的准确建模对于光子设备设计至关重要.
    • 目前的表征方法通常是计算密集型和耗时的.
    • 了解物理变化如何影响光传输是先进光学技术的关键.

    研究的目的:

    • 引入一个数据效率高的机器学习框架,用于模拟光学系统中的干扰依赖传输矩阵.
    • 克服标准神经网络在捕捉高频相变的光谱偏差限制.
    • 为了创建一个连续的,可差异化的光学系统的数字双胞胎,以进行强大的表征.

    主要方法:

    • 开发了一种机器学习框架,将扰动编码为富里埃特征的基础.
    • 利用一个紧的多层感知子,从稀疏的训练数据进行高准确度映射.
    • 采用机械变形多模纤维的实验数据进行模型训练和验证.

    主要成果:

    • 与实验基础真相数据实现了0.996的复杂相关性.
    • 与标准神经网络相比,相位精度提高了一级.
    • 在显著减少模型参数的情况下,证明了卓越的性能.

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    Interictal High Frequency Oscillations Detected with Simultaneous Magnetoencephalography and Electroencephalography as Biomarker of Pediatric Epilepsy
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    结论:

    • 拟议的框架为描述复杂光学介质提供了一种计算效率高和高度准确的方法.
    • 里埃特征编码成功地解决了光谱偏差,从而实现了精确的相变分辨率.
    • "数字双胞胎"方法为动态光学环境中的实时监控和设计提供了强大的工具.