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Artificial Intelligence for Lunar Exploration – Python to AI

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Artificial Intelligence for Lunar Exploration - Python to AI

Published 5/2024
Created by Spartificial Innovations
MP4 | Video: h264, 1280×720 | Audio: AAC, 44.1 KHz, 2 Ch
Genre: eLearning | Language: English | Duration: 160 Lectures ( 19h 32m ) | Size: 9.48 GB

Master AI for Lunar Exploration: Python, Machine Learning, Deep Learning, and Image Segmentation

What you’ll learn:
Master the installation of essential coding tools such as Python, VS Code, Git, and GitHub.
Gain a solid foundation in Python, covering basics like data types, control flow, and functions, and learn to upload code to GitHub.
Develop a deep understanding of Object-Oriented Programming by building a rocket simulation.
Explore key Python libraries such as NumPy and Matplotlib for data manipulation and visualization.
Understand the fundamentals of machine learning, including linear regression, and deploy ML models as APIs using FastAPI.
Dive into deep learning, build neural networks from scratch, and learn about convolutional neural networks (CNNs) for image classification.
Apply AI techniques to classify celestial objects and perform lunar image segmentation using advanced models like UNET.
Create a web application using Streamlit to visualize and interact with lunar image segmentation results.

Requirements:
No Programming experience required.

Description:
Welcome to “AI for Lunar Exploration – Python to AI” – your comprehensive guide to harnessing the power of artificial intelligence for space discovery. Designed for aspiring data scientists, AI enthusiasts, and space technology professionals, this course provides a unique opportunity to delve into the world of AI with a focus on lunar exploration.In this course, you’ll start with the basics by setting up your development environment, including Python, VS Code, Git, and GitHub. You’ll then move on to mastering Python programming, covering essential concepts like data types, control flow, functions, and uploading your code to GitHub.Next, you’ll explore Object-Oriented Programming (OOP) by building a rocket simulation. This hands-on project will deepen your understanding of OOP principles and how to apply them in real-world scenarios.The course then introduces you to critical Python libraries such as NumPy and Matplotlib. You’ll learn how to manipulate data and create stunning visualizations, skills crucial for any data scientist.We then dive into machine learning, starting with the basics of linear regression, and progressing to deploying your models as APIs using FastAPI. You’ll gain practical experience in training, testing, and evaluating machine learning models.Our deep learning modules will guide you through building neural networks from scratch, understanding convolutional neural networks (CNNs), and applying these techniques to classify celestial objects like stars, galaxies, and quasars. You’ll also learn to perform lunar image segmentation using advanced models like UNET.Finally, you’ll create a web application using Streamlit to visualize and interact with lunar image segmentation results, bringing your AI models to life.By the end of this course, you’ll have a robust skill set in Python programming, machine learning, deep learning, and web application development. You’ll be ready to tackle real-world challenges in lunar exploration and beyond.Enroll now to start your journey in “AI for Lunar Exploration” and take a giant leap in your AI and space exploration career!


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