Udemy - 10 Code-less Artificial Intelligence projects in 10 Days

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Udemy - 10 Code-less Artificial Intelligence projects in 10 Days (Size: 3.8 GB)
  1. Introduction Day 10.mp4 19.9 MB
  1. Introduction Day 10.srt 1.2 KB
  1. Introduction Day 3.mp4 26.5 MB
  1. Introduction Day 3.srt 1.7 KB
  1. Introduction Day 4.mp4 21.1 MB
  1. Introduction Day 4.srt 1.4 KB
  1. Introduction Day 5.mp4 25.1 MB
  1. Introduction Day 5.srt 1.5 KB
  1. Introduction Day 6.mp4 30.6 MB
  1. Introduction Day 6.srt 1.8 KB
  1. Introduction Day 7.mp4 40.9 MB
  1. Introduction Day 7.srt 2.5 KB
  1. Introduction Day 9.mp4 34.3 MB
  1. Introduction Day 9.srt 2 KB
  1. Introduction to Day 1.mp4 26 MB
  1. Introduction to Day 1.srt 1.6 KB
  1. Introduction to Day 2.mp4 25.3 MB
  1. Introduction to Day 2.srt 1.8 KB
  1. Introduction to Day 8.mp4 25.7 MB
  1. Introduction to Day 8.srt 1.7 KB
  1. Main Course Intro.mp4 34.3 MB
  1. Main Course Intro.srt 2.1 KB
  10. End of Day 2.mp4 11.2 MB
  10. End of Day 2.srt 614.4 B
  10. Task 7. Classification Models KPIs.mp4 82 MB
  10. Task 7. Classification Models KPIs.srt 20.9 KB
  10. Task 8. DataRobot Demo Model Deployment.mp4 39.3 MB
  10. Task 8. DataRobot Demo Model Deployment.srt 8.9 KB
  10. Task 8. Final Project Part A.mp4 38.9 MB
  10. Task 8. Final Project Part A.srt 8.3 KB
  10. Task 8. Final Project.mp4 98.7 MB
  10. Task 8. Final Project.srt 17.1 KB
  11. End of Day 3.mp4 9.2 MB
  11. End of Day 3.srt 614.4 B
  11. End of Day 7.mp4 10.2 MB
  11. End of Day 7.srt 716.8 B
  11. Task 8. Model Assessment.mp4 121.2 MB
  11. Task 8. Model Assessment.srt 22 KB
  11. Task 9. Final Project Part B.mp4 52.5 MB
  11. Task 9. Final Project Part B.srt 10.5 KB
  11. Task 9. Technicalities.mp4 65.6 MB
  11. Task 9. Technicalities.srt 15.2 KB
  12. End of Day 8.mp4 7.9 MB
  12. End of Day 8.srt 614.4 B
  12. Task 10. Final Project Part A.mp4 36.2 MB
  12. Task 10. Final Project Part A.srt 7.5 KB
  12. Task 9. Final Project.mp4 36.8 MB
  12. Task 9. Final Project.srt 8.1 KB
  13. End of Day 6.mp4 4.3 MB
  13. End of Day 6.srt 307.2 B
  13. Task 11. Final Project Part B.mp4 96.7 MB
  13. Task 11. Final Project Part B.srt 18.7 KB
  14. End of Day 5.mp4 7.1 MB
  14. End of Day 5.srt 409.6 B
  2. Quiz 10 Applications of Machine Learning in Finance.html 204.8 B
  2. Quiz AI Applications in Business.html 204.8 B
  2. Quiz Artificial Neural Networks Architectures.html 204.8 B
  2. Task 1. Project Card and Demo.mp4 57.9 MB
  2. Task 1. Project Card and Demo.srt 11 KB
  2. Task 1. Project Overview.mp4 8.6 MB
  2. Task 1. Project Overview.srt 5.8 KB
  3. End of Day 10.mp4 16.3 MB
  3. End of Day 10.srt 1 KB
  3. End of Day 4.mp4 9.1 MB
  3. End of Day 4.srt 614.4 B
  3. End of Day 9.mp4 4.9 MB
  3. End of Day 9.srt 307.2 B
  3. Task 2. AI Applications in Fashion.mp4 119.5 MB
  3. Task 2. AI Applications in Fashion.srt 13.4 KB
  3. Task 2. Artificial Neural Networks (ANNs) Simplified.mp4 97 MB
  3. Task 2. Artificial Neural Networks (ANNs) Simplified.srt 18.1 KB
  3. Task 2. Business Case and Success Stories.mp4 51.4 MB
  3. Task 2. Business Case and Success Stories.srt 7.5 KB
  3. Task 2. Business Case, Reading Materials and Quiz.mp4 69 MB
  3. Task 2. Business Case, Reading Materials and Quiz.srt 8.6 KB
  3. Task 2. Business Case.mp4 53 MB
  3. Task 2. Business Case.srt 7.9 KB
  3. Task 2. Success Stories and Business Case.mp4 45.5 MB
  3. Task 2. Success Stories and Business Case.srt 6.2 KB
  4. Quiz AI Applications for Facial Recognition.html 204.8 B
  4. Quiz AI Applications in Fashion.html 204.8 B
  4. Quiz AI for Price Prediction.html 204.8 B
  4. Quiz AIML Applications For Sentiment Analysis.html 204.8 B
  4. Quiz Cutting-Edge AI Models.html 204.8 B
  4. Quiz How AI is helping prevent Blindness.html 204.8 B
  4. Reading Materials How AI is Transforming Human Resources.html 307.2 B
  5. Quiz How AI is transforming Human Resources.html 204.8 B
  5. Task 3. AI Training vs. Testing Process.mp4 66.5 MB
  5. Task 3. AI Training vs. Testing Process.srt 16.2 KB
  5. Task 3. Data Exploration.mp4 38.5 MB
  5. Task 3. Data Exploration.srt 7.9 KB
  5. Task 3. Data Overview.mp4 23.6 MB
  5. Task 3. Data Overview.srt 5.6 KB
  5. Task 3. Google Teachable Machines Demo Data Collection.mp4 67.1 MB
  5. Task 3. Google Teachable Machines Demo Data Collection.srt 11.1 KB
  6. Task 3. Data Overview.mp4 32.8 MB
  6. Task 3. Data Overview.srt 6 KB
  6. Task 4. AI Lingo.mp4 75.6 MB
  6. Task 4. AI Lingo.srt 16.2 KB
  6. Task 4. DataRobot Demo Data Upload.mp4 44.8 MB
  6. Task 4. DataRobot Demo Data Upload.srt 8.2 KB
  6. Task 4. Google Teachable Machines Demo Model Training.mp4 34.1 MB
  6. Task 4. Google Teachable Machines Demo Model Training.srt 5 KB
  6. Task 4. Model Training and Testing in Google Teachable Machines.mp4 138.3 MB
  6. Task 4. Model Training and Testing in Google Teachable Machines.srt 23.3 KB
  7. Task 4. DataRobot Demo Data Upload.mp4 34.7 MB
  7. Task 4. DataRobot Demo Data Upload.srt 6.8 KB
  7. Task 5. Confusion Matrix.mp4 58.8 MB
  7. Task 5. Confusion Matrix.srt 15.8 KB
  7. Task 5. DataRobot Demo Data Analysis.mp4 112.3 MB
  7. Task 5. DataRobot Demo Data Analysis.srt 17 KB
  7. Task 5. DataRobot Demo Exploratory Data Analysis.mp4 19 MB
  7. Task 5. DataRobot Demo Exploratory Data Analysis.srt 11.7 KB
  7. Task 5. DataRobot Demo Model Training.mp4 82.6 MB
  7. Task 5. DataRobot Demo Model Training.srt 13 KB
  7. Task 5. Export and Deploy Model in Google Teachable Machines.mp4 47.4 MB
  7. Task 5. Export and Deploy Model in Google Teachable Machines.srt 8.7 KB
  7. Task 5. Google Teachable Machines Demo Model EvaluationDeployment.mp4 59.2 MB
  7. Task 5. Google Teachable Machines Demo Model EvaluationDeployment.srt 8.7 KB
  8. Task 5. DataRobot Demo Data Exploration.mp4 52.8 MB
  8. Task 5. DataRobot Demo Data Exploration.srt 9.4 KB
  8. Task 6. Classifier Models KPIs.mp4 66.1 MB
  8. Task 6. Classifier Models KPIs.srt 14.7 KB
  8. Task 6. DataRobot Demo Deploy Model.mp4 37.8 MB
  8. Task 6. DataRobot Demo Deploy Model.srt 6.5 KB
  8. Task 6. DataRobot Demo Model Training.mp4 84 MB
  8. Task 6. DataRobot Demo Model Training.srt 14.1 KB
  8. Task 6. Final Project Part A.mp4 85.9 MB
  8. Task 6. Final Project Part A.srt 16.8 KB
  8. Task 6. Final Project.mp4 62.3 MB
  8. Task 6. Final Project.srt 11.7 KB
  9. End of Day 1.mp4 9.7 MB
  9. End of Day 1.srt 716.8 B
  9. Task 6. DataRobot Demo Model Training.mp4 42.5 MB
  9. Task 6. DataRobot Demo Model Training.srt 8 KB
  9. Task 7. DataRobot Demo Model Assessment.mp4 68.4 MB
  9. Task 7. DataRobot Demo Model Assessment.srt 12.9 KB
  9. Task 7. DataRobot Demo Model Deployment.mp4 35.6 MB
  9. Task 7. DataRobot Demo Model Deployment.srt 7.4 KB
  9. Task 7. Explainable AI.mp4 121.6 MB
  9. Task 7. Explainable AI.srt 22.6 KB
  9. Task 7. Final Project Part B.mp4 74.1 MB
  9. Task 7. Final Project Part B.srt 13.9 KB
  9. Task 7. Precision vs. Recall.mp4 88 MB
  9. Task 7. Precision vs. Recall.srt 14.8 KB
  Bonus Resources.txt 307.2 B
  Day 4. Deep Neural Networks [Autosaved].pptx 7.3 MB
  Day 4. Deep Neural Networks.pptx 7.3 MB
  Get Bonus Downloads Here.url 204.8 B
  ▲ 173 total files

Description


10 Code-less Artificial Intelligence projects in 10 Days
MP4 | Video: h264, 1280x720 | Audio: AAC, 44.1 KHz, 2 Ch
Genre: eLearning | Language: English + srt | Duration: 80 lectures (7h 41m) | Size: 3.44 GB
Build 10 AI projects in 10 days without coding using Google Teachable Machines, DataRobot and AWS Autopilot
What you'll learn:
Build, train, test and deploy 10 AI/ML models in 10 days without writing any code.
Build, train, test and deploy AI models to classify fashion items using Google Teachable Machine.
Visualize State-of-the-Art Artificial Intelligence Models Using Tensorspace JS, Google Tensorflow Playground and Ryerson 3D CNN Visualizations.
Explain the difference between learning rate, epochs, batch size, accuracy, and loss.
Build, train and deploy advanced AI to detect Diabetic Retinopathy disease using DataRobot AI.
Leverage the power of AI to solve regression tasks and predict used car prices using DataRobot AI.
Evaluate trained AI models using various KPIs such as confusion matrix, classification accuracy, and error rate.
Understand the theory and intuition behind Residual Neural Networks (ResNets), a state-of-the-art deep NNs that are widely adopted in several industries.
Understand the impact of classifier threshold on False Positive Rate (Fallout) and True Positive Rate (Sensitivity).
Predict employee attrition based on their features such as employee engagement, distance from home, job satisfaction using DataRobot AI.
Develop an AI model to detect face masks using Google Teachable Machines.
Build, train and deploy XGBoost-based algorithm to perform regression tasks using AWS SageMaker Autopilot.
Learn how to transfer knowledge from a pre-trained Artificial Neural Network to a new network using transfer learning strategy.
Learn how to train multiple AI models based on XG-Boost, Artificial Neural Networks, Random Forest Classifiers and compare their performance in DataRobot.
Learn how to use SageMaker Studio AutoML tool to build, train and deploy AI/ML models which requires almost zero coding experience.
Differentiate between various regression models KPIs such as R2 or coefficient of determination, Mean Absolute Error and Mean Squared error.
Learn how to build, train, test and deploy advanced machine learning classification models using Google Vertex AI.
Understand how to leverage the power of AI/ML to predict bank customers credit card default using their features such as interest rates and loan purpose
Learn how to create a new dataset using Google Vertex AI Develop and manage experiments using Google Vertex AI.
Understand the theory, intuition, and mathematics behind simple and multiple linear regression and differentiate between various regression models KPIs.
Deploy the best model after the hyperparameters optimization job is complete and Learn how to assess feature importance and explain model predictions.
Deploy and monitor AI/ML models and create AI/ML applications with Google Vertex AI

Requirements
The course has no prerequisites and is open to anyone with no or basic programming knowledge. Students who enroll in this course will master AI fundamentals and directly apply these skills to solve real world challenging problems.

Description
The no-code AI revolution is here! Do you have what it takes to leverage this new wave of code-friendly tools paving the way for the future of AI?

Businesses of all sizes want to implement the power of Machine Learning and AI, but the barriers to entry are high. That's where no-code AI/ML tools are changing the game.

https://FreeCourseWeb.com

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