PowerMatlab

@powermatlab


This channel shares all matlab codes and simulation matlab files in field of power electrical engineering.

Head of Group: Dr. Mehdi Zareian Jahromi

Supporting Admin: @Electricalmatlab_Support

Power Electrical Developing Advanced Research (PEDAR) Group.

PowerMatlab

03 Oct, 15:23


Project Number (3114): How to Perform Supervised Machine Learning Without Programming

Free training Video : ๐Ÿ‘‡๐Ÿ‘‡

YouTube link : https://youtu.be/vrpkAv8Iozw

Instagram ID : https://www.instagram.com/power_matlab?r=nametag





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PowerMatlab

18 Sep, 05:04


The field of machine learning is vast, and mastering the key techniques is crucial for any aspiring data scientist or AI enthusiast. Hereโ€™s a quick rundown of 11 critical machine learning methods that are fundamental to driving innovation and success in various applications:

Regression ๐Ÿ“ˆ: Used to predict continuous outcomes, this method helps in understanding relationships between variables.

Classification ๐Ÿ“Š: This technique is essential for categorizing data into predefined classes, a backbone for many AI systems.

Clustering ๐Ÿ“š: Grouping similar data points together, clustering is key in pattern recognition and data segmentation.

Dimensionality Reduction ๐Ÿ’ก: Simplifies complex datasets by reducing the number of random variables, enhancing computational efficiency.

Ensemble Methods ๐ŸŽฒ: Combines multiple models to improve the accuracy and robustness of predictions.

Neural Networks and Deep Learning ๐Ÿค–: Mimicking the human brain, these models are at the core of AI, enabling advancements in image and speech recognition.

Transfer Learning ๐Ÿ”„: Leverages pre-trained models to solve new but similar problems, reducing the need for large datasets.

Reinforcement Learning ๐Ÿ•น: Learns optimal actions through trial and error, widely used in robotics and game AI.

NLP (Neuro-Linguistic Programming) ๐Ÿง : Enables machines to understand and respond to human language, powering chatbots and voice assistants.

Computer Vision ๐Ÿ‘: Empowers machines to interpret and make decisions based on visual data, a key component in autonomous vehicles.

PowerMatlab Community ๐Ÿ’ป: A resourceful community for sharing insights and developments in machine learning.

These methods form the foundation of machine learning, each with its unique strengths and applications. Staying updated on these techniques is crucial for anyone looking to make a significant impact in the AI landscape.

#MachineLearning #ArtificialIntelligence #DataScience #DeepLearning #NeuralNetworks #NLP #ComputerVision #Clustering #Classification #Regression #TransferLearning #ReinforcementLearning #DimensionalityReduction #EnsembleMethods #AI #BigData #TechInnovation #Robotics #Automation #PredictiveAnalytics #AICommunity

PowerMatlab

15 Sep, 05:55


Project Number (3113): Free download of Matlab Simulation file for Transition of Hybrid AC/DC Microgrid Between Grid Connected Mode and Islanding Mode during the Operation

Free training Video : ๐Ÿ‘‡๐Ÿ‘‡

YouTube link : https://youtu.be/liEeO85KHDs

Instagram ID : https://www.instagram.com/power_matlab?r=nametag





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PowerMatlab

12 Sep, 07:04


๐Ÿ”Š PowerMatlab is excited to showcase the incredible opportunities of Deep Learning. This cutting-edge technology has the potential to revolutionize various fields, including sports performance, industrial maintenance, machine translation, speech recognition, and many more.

๐ŸŒŸ A Smarter and More Efficient Future with Deep Learning ๐ŸŒŸ

Deep Learning is rapidly evolving, providing numerous opportunities for innovation and enhanced performance across multiple domains. Notably, it has applications in:

Self-driving cars
Investment portfolio management
Image recognition for the visually impaired
Healthcare diagnosis
Join us as we leverage this advanced technology to make the world a better place.

๐Ÿ“ง For more information and collaboration, contact us at:
[email protected]
[email protected]

๐ŸŒ Website: www.powermatlab.com

๐Ÿ”ฌ๐Ÿš€๐Ÿค–๐ŸŒ๐Ÿ’ก

#DeepLearning #AI #ArtificialIntelligence #MachineLearning

PowerMatlab

24 Aug, 06:09


Dear Colleagues,

We are thrilled to announce that a Special Issue titled "AI-Based Modelling and Control of Power Systems" is now open for submissions.

This Special Issue is proudly supported by the Power Electrical Developing Advanced Research (PEDAR) Group and is hosted by the journal Processes (ISSN 2227-9717). This issue belongs to the "Energy Systems" section of the journal.


๐Ÿ‘‰More details and submission entrance: https://www.mdpi.com/journal/processes/special_issues/N06O7BQX80

๐Ÿ‘‰ Guest Editors:
Dr Mohammad Reza Maghami
Assoc. Prof. Javad Rahebi
Dr. Mehdi Zareian Jahromi


๐Ÿ“† Deadline for manuscript submissions: 03 March 2025.


Power Electrical Developing Advanced Research (PEDAR) Group

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PowerMatlab

12 Aug, 14:53


Preventing step voltage in case of power cable breakage

Power Electrical Developing Advanced Research (PEDAR) Group

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PowerMatlab

10 Aug, 09:37


Project Number (3112): Free download of Matlab Simulation file for Hybrid AC/DC microgrid test system simulation: grid connected and Island Modes

Free training Video : ๐Ÿ‘‡๐Ÿ‘‡

YouTube link : https://youtu.be/XxCoB_Zi3ug

Instagram ID : https://www.instagram.com/power_matlab?r=nametag





Power Electrical Developing Advanced Research (PEDAR) Group

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PowerMatlab

01 Aug, 07:47


Why is solar energy important?

๐ŸŒ The Earth has infinite solar energy โ˜€๏ธ!
In this fascinating video, Richard Kemp explains simply and clearly how solar panels convert sunlight into electricity.

Advantages of using solar panels include:

๐Ÿ“ŒReducing energy costs
๐Ÿ“ŒReducing air pollution
๐Ÿ“ŒProviding clean and unlimited energy
Watch the video to find out how solar energy can transform our future.

Power Electrical Developing Advanced Research (PEDAR) Group

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PowerMatlab

26 Jul, 15:28


Exploring the Diverse Types of Neural Networks in AI ๐Ÿค–

In the rapidly evolving field of artificial intelligence, understanding the different types of neural networks is crucial. Each type offers unique capabilities and applications. Let's delve into the various kinds of neural networks:

Perceptron ๐Ÿง 

The perceptron is the simplest form of a neural network, consisting of a single neuron. It is primarily used for binary classification tasks, distinguishing between two distinct classes.
Feed-Forward Networks (FFNs) โžก๏ธ

Feed-forward networks are structured so that data flows in a single directionโ€”from input to output. These networks are foundational in machine learning, useful for tasks such as prediction and classification.
Multi-Layer Perceptron (MLP) ๐ŸŽ›

Multi-layer perceptrons extend the concept of the perceptron by incorporating one or more hidden layers between the input and output layers. This architecture allows MLPs to capture complex patterns and interactions within the data.
Radial Basis Function Networks (RBFNs) ๐ŸŽฏ

RBF networks utilize radial basis functions as activation functions. They are particularly effective for classification and regression problems, leveraging the properties of these functions to model complex relationships.
Convolutional Neural Networks (CNNs) ๐Ÿ–ผ

Convolutional neural networks are designed for processing visual data. By applying convolutional layers, CNNs can automatically and adaptively learn spatial hierarchies of features from input images, making them indispensable for image and video recognition tasks.
Recurrent Neural Networks (RNNs) ๐Ÿ”„

Recurrent neural networks are adept at handling sequential data due to their inherent structure, which allows them to maintain a 'memory' of previous inputs. This makes RNNs suitable for tasks such as time series forecasting, language modeling, and speech recognition.
Long Short-Term Memory Networks (LSTMs) โณ

LSTMs are a specialized type of RNN designed to address the vanishing gradient problem. They excel at learning long-term dependencies, making them ideal for applications requiring the retention of information over extended periods, such as complex sequence prediction and natural language processing.

Power Electrical Developing Advanced Research (PEDAR) Group

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PowerMatlab

23 Jul, 20:08


Project Number (3111):
Free Download of MATLAB Simulation File for Noninvasive Online Condition Monitoring of Output Capacitorโ€™s ESR and C for a Flyback Converter


YouTube link : https://youtu.be/9cTYRPTKcXw

Instagram ID : https://www.instagram.com/power_matlab?r=nametag





Power Electrical Developing Advanced Research (PEDAR) Group

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๐Ÿ‘‡๐Ÿ‘‡

PowerMatlab

18 Jul, 15:01


I Think Neural Networks Be like :

" I know someone who knows someone"

just for funโ˜บ๏ธ

Sincerely Zareian Jahromi

PowerMatlab

17 Jul, 08:47


Project Number (3110):
How to Utilize ChatGPT for Simulating Your Target Model

Example #1 : PSO Algorithm

Example #2 : FlyBack Converter



YouTube link : https://youtu.be/ebGHaakOupU

Instagram ID : https://www.instagram.com/power_matlab?r=nametag





Power Electrical Developing Advanced Research (PEDAR) Group

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๐Ÿ‘‡๐Ÿ‘‡

PowerMatlab

23 Jun, 07:22


๐Ÿ”บJune 23rd is "International Women In Engineering Day"

๐Ÿ”น A day to encourage young girls and women to enter the engineering profession.

๐Ÿ”น It is also a day to recognize and appreciate all women engineers worldwide, and this year, one of the goals is "Investing in women's skills in engineering to accelerate progress."

Congratulations to all the esteemed women engineers in the PowerMatlab family.



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PowerMatlab

21 Jun, 13:46


How to Seek Assistance for MATLAB Programming Using AI (ChatGPT)



Power Electrical Developing Advanced Research (PEDAR) Group

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PowerMatlab

16 Jun, 14:04


I believe none of these 22 individuals can simulate their own articles, nor can they create a basic program to even print their own names.โ˜บ๏ธ๐Ÿ˜‰

Sincerely ๐Ÿ™
Zareian Jahromi

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