Feature extraction from a signal and classification
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I was wondering if anyone could help me with a few steps or even code to get started on feature extraction from a signal. I would like to extract the features of a signal and then classify them in the classification learner app.
The data I have is a vibration signal that varies between a set of healthy bearings and bearings that are faulty.
The aim is to extract the features and then compare them in the classification app with each other to identify when bearings are faulty.
Any help is appreciated!
Thanks
3 Kommentare
Image Analyst
am 19 Feb. 2017
Care to show us a good and bad signal? Or attach them if you want anyone to try anything with them. Perhaps you can call pwelch() and check for anomalies in the spectrum.
Harry
am 26 Feb. 2017
Liyifei LiYiFei
am 24 Apr. 2023
你好,我也有和你相似的问题,你解决了吗,如何对信号进行特征提取并进行故障分类
Antworten (7)
Hi Harry,
This MATLAB example would be a good starting point:
The example deals with the classification of physiological signals but the features used here can be applied to classification of signals in general. The extracted features can then be fed as features for the classification app.
As suggested by Image Analyst, spectral analysis can be used to generate more features as well.
Abel
3 Kommentare
John BG
am 22 Feb. 2017
bearings: don't seem quite same domain as phyisio, do they?
John BG
Jan
am 22 Feb. 2017
+1. For Matlab all signals are a list of numbers only and it does not matter what the signal means physically.
Aditya Baru
am 2 Mai 2018
Bearbeitet: Aditya Baru
am 2 Mai 2018
Here's an example for feature extraction for bearing signals :) https://www.mathworks.com/help/predmaint/examples/wind-turbine-high-speed-bearing-prognosis.html https://www.mathworks.com/help/predmaint/examples/Rolling-Element-Bearing-Fault-Diagnosis.html
The new Predictive Maintenance Toolbox has a lot of capabilities that support this kind of workflow, so you could check out its documentation for more information.
Zhao Lu
am 22 Mär. 2021
1 Stimme
MATLAB has EMD function, for EEMD, the code can be downloaded from
1 Kommentar
Francisco Navarro
am 22 Mär. 2021
thanks!
Rahmawati Rahmawati
am 2 Mai 2018
0 Stimmen
halo everyone, I am rahma and i am totally newbie in EEG data analysis. I got an assignment to make a classification between two conditions using spectral powers based on Raw EEG data which has been given by my Professor. but to be honest i don't know how to start with this. and here are the state: Sampling rate: 512 HZ Channel position: POz, PO1, PO2, PO3, PO4, Oz, O1, O2
any help and hints are totally helpful for me.
Thanks in advance.
1 Kommentar
Smith Khare
am 25 Sep. 2019
One need complete dataset to process and understand, then after the main work starts
karthikeyan chandrasekar
am 8 Jan. 2019
0 Stimmen
hi everyone can anyone tell me how to extract features using PCA for a signal ,i.e 8190x2 signal which is in text[matrix] format.
Thankyou in advance
1 Kommentar
John Navarro
am 2 Feb. 2021
By PCA did you mean Principal component analysis?
If so, PCA does not extract features, it evaluates their correlation and indicates the more useful ones. PCA is employed for feature selection, no feature extraction. It should be done according the expertise, the case of study, and the features of interest.
Zhao Lu
am 15 Mär. 2021
0 Stimmen
Use EMD or EEMD or CEEMDAN
3 Kommentare
Francisco Navarro
am 21 Mär. 2021
Hi! What function or toolbox do you recommend to use EEMD or NA-MEMD or CEEMDAN? Thank you!
John Navarro
am 22 Mär. 2021
Signal Processing. Neither of these options are in MATLAB, as far as I know.
Maybe in a forum as function made by other users.
EMD and VMD are the most similar functions you would find in the program.
litha Mbangeni
am 23 Apr. 2021
0 Stimmen
Can I simulate CEEMDAN in matlab
2 Kommentare
Smith Khare
am 23 Apr. 2021
Yes... There is a toolbox available. You can use it to analyze the signal
Smith Khare
am 23 Apr. 2021
https://github.com/ron1818/PhD_code/blob/master/EMD_EEMD/ceemdan.m
The above link could be of interest to you
Shrey Joshi
am 18 Mai 2022
0 Stimmen
you can start by using features provided in feature extraction mode of signal labeler app.
https://www.mathworks.com/help/signal/ug/extract-signal-features.html
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