1. Introductions/5. Writing code vs. using toolboxesprograms.mp4
53.11MB
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1. Introductions/3. Using Octave-online in this course.mp4
33.55MB
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1. Introductions/1. Signal processing = decision-making + tools.mp4
33.2MB
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1. Introductions/6. Using the Q&A forum.mp4
26.82MB
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1. Introductions/2. Using MATLAB in this course.mp4
24.34MB
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1. Introductions/4. Using Python in this course.mp4
23.7MB
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1. Introductions/5. Writing code vs. using toolboxesprograms.vtt
8.45KB
1. Introductions/6. Using the Q&A forum.vtt
6.36KB
1. Introductions/3. Using Octave-online in this course.vtt
6.3KB
1. Introductions/1. Signal processing = decision-making + tools.vtt
5.09KB
1. Introductions/2. Using MATLAB in this course.vtt
4.6KB
1. Introductions/4. Using Python in this course.vtt
4.38KB
1. Introductions/ReadMe.txt
241B
10. Feature detection/6. Application Detect muscle movements from EMG recordings.mp4
151.47MB
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10. Feature detection/4. Wavelet convolution for feature extraction.mp4
135.76MB
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10. Feature detection/7. Full width at half-maximum.mp4
131.28MB
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10. Feature detection/2. Local maxima and minima.mp4
126.65MB
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10. Feature detection/3. Recover signal from noise amplitude.mp4
104.34MB
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10. Feature detection/5. Area under the curve.mp4
91.16MB
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10. Feature detection/8. Code challenge find the features!.mp4
24.01MB
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10. Feature detection/1.1 sigprocMXC_featuredet.zip.zip
1.73MB
10. Feature detection/7. Full width at half-maximum.vtt
21.48KB
10. Feature detection/6. Application Detect muscle movements from EMG recordings.vtt
21.38KB
10. Feature detection/2. Local maxima and minima.vtt
18.66KB
10. Feature detection/4. Wavelet convolution for feature extraction.vtt
17.26KB
10. Feature detection/5. Area under the curve.vtt
15.25KB
10. Feature detection/3. Recover signal from noise amplitude.vtt
14.72KB
10. Feature detection/8. Code challenge find the features!.vtt
4.06KB
10. Feature detection/1. MATLAB and Python code for this section.html
73B
11. Variability/3. Signal-to-noise ratio (SNR).mp4
132.79MB
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11. Variability/5. Entropy.mp4
112.3MB
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11. Variability/2. Total and windowed variance and RMS.mp4
75.57MB
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11. Variability/4. Coefficient of variation (CV).mp4
28.8MB
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11. Variability/6. Code challenge.mp4
23.53MB
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11. Variability/1.1 sigprocMXC_variability.zip.zip
22.16MB
11. Variability/5. Entropy.vtt
19.75KB
11. Variability/3. Signal-to-noise ratio (SNR).vtt
17.85KB
11. Variability/2. Total and windowed variance and RMS.vtt
12.95KB
11. Variability/4. Coefficient of variation (CV).vtt
6.08KB
11. Variability/6. Code challenge.vtt
3.7KB
11. Variability/1. MATLAB and Python code for this section.html
47B
12. Discounts on related courses/2. Bonus Coupons for related courses.html
2.53KB
12. Discounts on related courses/1. Join the community!.html
553B
2. Time series denoising/8. Remove nonlinear trend with polynomials.mp4
109.31MB
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2. Time series denoising/3. Gaussian-smooth a time series.mp4
96.15MB
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84.98MB
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77.1MB
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57.17MB
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49.75MB
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42.2MB
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12.85MB
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11.78MB
2. Time series denoising/11. Code challenge Denoise these signals!.mp4
7.5MB
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2. Time series denoising/8. Remove nonlinear trend with polynomials.vtt
18.17KB
2. Time series denoising/3. Gaussian-smooth a time series.vtt
16.44KB
2. Time series denoising/10. Remove artifact via least-squares template-matching.vtt
12.34KB
2. Time series denoising/6. Median filter to remove spike noise.vtt
12.23KB
2. Time series denoising/2. Mean-smooth a time series.vtt
10.21KB
2. Time series denoising/5. Denoising EMG signals via TKEO.vtt
9.73KB
2. Time series denoising/9. Averaging multiple repetitions (time-synchronous averaging).vtt
6.48KB
2. Time series denoising/4. Gaussian-smooth a spike time series.vtt
6.43KB
2. Time series denoising/7. Remove linear trend (detrending).vtt
2.62KB
2. Time series denoising/11. Code challenge Denoise these signals!.vtt
1.32KB
2. Time series denoising/1. MATLAB and Python code for this section.html
84B
3. Spectral and rhythmicity analyses/3. Fourier transform for spectral analyses.mp4
173.98MB
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121.88MB
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116.86MB
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76.15MB
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3. Spectral and rhythmicity analyses/6. Code challenge Compute a spectrogram!.mp4
15.22MB
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2.29MB
3. Spectral and rhythmicity analyses/3. Fourier transform for spectral analyses.vtt
22.96KB
3. Spectral and rhythmicity analyses/2. Crash course on the Fourier transform.vtt
18.65KB
3. Spectral and rhythmicity analyses/4. Welch's method and windowing.vtt
18.48KB
3. Spectral and rhythmicity analyses/5. Spectrogram of birdsong.vtt
9.6KB
3. Spectral and rhythmicity analyses/6. Code challenge Compute a spectrogram!.vtt
3.14KB
3. Spectral and rhythmicity analyses/1. MATLAB and Python code for this section.html
99B
4. Working with complex numbers/2. From the number line to the complex number plane.mp4
55.24MB
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48.31MB
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4. Working with complex numbers/4. Multiplication with complex numbers.mp4
38.96MB
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4. Working with complex numbers/5. The complex conjugate.mp4
23.08MB
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4. Working with complex numbers/3. Addition and subtraction with complex numbers.mp4
19.89MB
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4. Working with complex numbers/6. Division with complex numbers.mp4
18.76MB
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4. Working with complex numbers/1.1 sigprocMXC_complex.zip.zip
38.08KB
4. Working with complex numbers/2. From the number line to the complex number plane.vtt
12.42KB
4. Working with complex numbers/7. Magnitude and phase of complex numbers.vtt
9.4KB
4. Working with complex numbers/4. Multiplication with complex numbers.vtt
7.97KB
4. Working with complex numbers/5. The complex conjugate.vtt
5.35KB
4. Working with complex numbers/6. Division with complex numbers.vtt
4.49KB
4. Working with complex numbers/3. Addition and subtraction with complex numbers.vtt
4.46KB
4. Working with complex numbers/1. MATLAB and Python code for this section.html
46B
5. Filtering/3. FIR filters with firls.mp4
119.83MB
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5. Filtering/2. Filtering Intuition, goals, and types.mp4
115.25MB
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5. Filtering/7. Avoid edge effects with reflection.mp4
99.3MB
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5. Filtering/15. Remove electrical line noise and its harmonics.mp4
91.1MB
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5. Filtering/10. Windowed-sinc filters.mp4
87.7MB
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5. Filtering/14. Quantifying roll-off characteristics.mp4
87.08MB
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5. Filtering/6. Causal and zero-phase-shift filters.mp4
82.47MB
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5. Filtering/5. IIR Butterworth filters.mp4
80.32MB
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5. Filtering/16. Use filtering to separate birds in a recording.mp4
74.66MB
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5. Filtering/8. Data length and filter kernel length.mp4
65.02MB
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5. Filtering/9. Low-pass filters.mp4
64.01MB
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5. Filtering/12. Narrow-band filters.mp4
55.9MB
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5. Filtering/11. High-pass filters.mp4
52.42MB
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5. Filtering/4. FIR filters with fir1.mp4
47.24MB
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5. Filtering/13. Two-stage wide-band filter.mp4
42.23MB
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5. Filtering/17. Code challenge Filter these signals!.mp4
11.33MB
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5. Filtering/1.1 sigprocMXC_filtering.zip.zip
4.63MB
5. Filtering/2. Filtering Intuition, goals, and types.vtt
19.15KB
5. Filtering/3. FIR filters with firls.vtt
17.72KB
5. Filtering/10. Windowed-sinc filters.vtt
14.23KB
5. Filtering/7. Avoid edge effects with reflection.vtt
13.97KB
5. Filtering/14. Quantifying roll-off characteristics.vtt
13.29KB
5. Filtering/5. IIR Butterworth filters.vtt
12.39KB
5. Filtering/15. Remove electrical line noise and its harmonics.vtt
12.05KB
5. Filtering/6. Causal and zero-phase-shift filters.vtt
11.85KB
5. Filtering/8. Data length and filter kernel length.vtt
9.83KB
5. Filtering/9. Low-pass filters.vtt
8.86KB
5. Filtering/12. Narrow-band filters.vtt
7.92KB
5. Filtering/16. Use filtering to separate birds in a recording.vtt
7.67KB
5. Filtering/11. High-pass filters.vtt
7.15KB
5. Filtering/4. FIR filters with fir1.vtt
6.96KB
5. Filtering/13. Two-stage wide-band filter.vtt
5.43KB
5. Filtering/17. Code challenge Filter these signals!.vtt
1.54KB
5. Filtering/1. MATLAB and Python code for this section.html
85B
6. Convolution/3. Convolution in MATLAB.mp4
100.74MB
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6. Convolution/6. Thinking about convolution as spectral multiplication.mp4
87.65MB
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6. Convolution/2. Time-domain convolution.mp4
71.11MB
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6. Convolution/5. The convolution theorem.mp4
68.76MB
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6. Convolution/8. Convolution with frequency-domain Gaussian (narrowband filter).mp4
51.82MB
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6. Convolution/7. Convolution with time-domain Gaussian (smoothing filter).mp4
49.48MB
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6. Convolution/9. Convolution with frequency-domain Planck taper (bandpass filter).mp4
46.06MB
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6. Convolution/4. Why is the kernel flipped backwards!!!.mp4
22.55MB
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6. Convolution/6.1 TFtheory.mp4.mp4
18.18MB
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6. Convolution/10. Code challenge Create a frequency-domain mean-smoothing filter.mp4
16.85MB
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6. Convolution/1.1 sigprocMXC_convolution.zip.zip
250.11KB
6. Convolution/3. Convolution in MATLAB.vtt
15.6KB
6. Convolution/6. Thinking about convolution as spectral multiplication.vtt
15.25KB
6. Convolution/2. Time-domain convolution.vtt
14.74KB
6. Convolution/5. The convolution theorem.vtt
11.96KB
6. Convolution/8. Convolution with frequency-domain Gaussian (narrowband filter).vtt
8.11KB
6. Convolution/9. Convolution with frequency-domain Planck taper (bandpass filter).vtt
7.46KB
6. Convolution/7. Convolution with time-domain Gaussian (smoothing filter).vtt
7.27KB
6. Convolution/4. Why is the kernel flipped backwards!!!.vtt
5.77KB
6. Convolution/10. Code challenge Create a frequency-domain mean-smoothing filter.vtt
2.07KB
6. Convolution/1. MATLAB and Python code for this section.html
72B
7. Wavelet analysis/8. MATLAB Time-frequency analysis with complex wavelets.mp4
140.35MB
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7. Wavelet analysis/5. Wavelet convolution for narrowband filtering.mp4
135.88MB
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7. Wavelet analysis/2. What are wavelets.mp4
93.01MB
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7. Wavelet analysis/9. Time-frequency analysis of brain signals.mp4
63.48MB
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7. Wavelet analysis/6. Overview Time-frequency analysis with complex wavelets.mp4
48.65MB
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7. Wavelet analysis/3. Convolution with wavelets.mp4
48.17MB
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7. Wavelet analysis/10. Code challenge Compare wavelet convolution and FIR filter!.mp4
13.36MB
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7. Wavelet analysis/1.1 sigprocMXC_wavelets.zip.zip
769.67KB
7. Wavelet analysis/8. MATLAB Time-frequency analysis with complex wavelets.vtt
17.75KB
7. Wavelet analysis/2. What are wavelets.vtt
17.38KB
7. Wavelet analysis/5. Wavelet convolution for narrowband filtering.vtt
17.37KB
7. Wavelet analysis/9. Time-frequency analysis of brain signals.vtt
9.9KB
7. Wavelet analysis/6. Overview Time-frequency analysis with complex wavelets.vtt
9.54KB
7. Wavelet analysis/3. Convolution with wavelets.vtt
6.59KB
7. Wavelet analysis/10. Code challenge Compare wavelet convolution and FIR filter!.vtt
2.54KB
7. Wavelet analysis/7. Link to youtube channel with 3 hours of relevant material.html
621B
7. Wavelet analysis/4. Scientific publication about defining Morlet wavelets.html
465B
7. Wavelet analysis/1. MATLAB and Python code for this section.html
84B
8. Resampling, interpolating, extrapolating/9. Dynamic time warping.mp4
122.58MB
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8. Resampling, interpolating, extrapolating/3. Downsampling.mp4
110.76MB
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8. Resampling, interpolating, extrapolating/2. Upsampling.mp4
100.91MB
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8. Resampling, interpolating, extrapolating/6. Resample irregularly sampled data.mp4
93.92MB
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8. Resampling, interpolating, extrapolating/8. Spectral interpolation.mp4
77.28MB
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8. Resampling, interpolating, extrapolating/5. Interpolation.mp4
55.2MB
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8. Resampling, interpolating, extrapolating/4. Strategies for multirate signals.mp4
44.17MB
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8. Resampling, interpolating, extrapolating/7. Extrapolation.mp4
36.67MB
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8. Resampling, interpolating, extrapolating/10. Code challenge denoise and downsample this signal!.mp4
25.17MB
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8. Resampling, interpolating, extrapolating/1.1 sigprocMXC_resampling.zip.zip
411.17KB
8. Resampling, interpolating, extrapolating/9. Dynamic time warping.vtt
19.71KB
8. Resampling, interpolating, extrapolating/2. Upsampling.vtt
15.79KB
8. Resampling, interpolating, extrapolating/3. Downsampling.vtt
14.76KB
8. Resampling, interpolating, extrapolating/6. Resample irregularly sampled data.vtt
13.22KB
8. Resampling, interpolating, extrapolating/8. Spectral interpolation.vtt
12.46KB
8. Resampling, interpolating, extrapolating/5. Interpolation.vtt
9.42KB
8. Resampling, interpolating, extrapolating/4. Strategies for multirate signals.vtt
7.96KB
8. Resampling, interpolating, extrapolating/7. Extrapolation.vtt
7.15KB
8. Resampling, interpolating, extrapolating/10. Code challenge denoise and downsample this signal!.vtt
5.03KB
8. Resampling, interpolating, extrapolating/1. MATLAB and Python code for this section.html
67B
9. Outlier detection/3. Outliers via local threshold exceedance.mp4
77.34MB
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9. Outlier detection/2. Outliers via standard deviation threshold.mp4
69.63MB
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9. Outlier detection/4. Outlier time windows via sliding RMS.mp4
46.09MB
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9. Outlier detection/5. Code challenge.mp4
39.06MB
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9. Outlier detection/1.1 sigprocMXC_outliers.zip.zip
268.27KB
9. Outlier detection/2. Outliers via standard deviation threshold.vtt
11.51KB
9. Outlier detection/3. Outliers via local threshold exceedance.vtt
10.71KB
9. Outlier detection/4. Outlier time windows via sliding RMS.vtt
7.1KB
9. Outlier detection/5. Code challenge.vtt
4.59KB
9. Outlier detection/1. MATLAB and Python code for this section.html
72B
Visit Getnewcourses.com.url
343B
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342B