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Mathematics of Big Data and Machine Learning (M-I-T)
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2. Examples Demonstration (M-I-T)
2. Examples Demonstration (M-I-T)
Course:
Mathematics of Big Data and Machine Learning (M-I-T)
Discipline:
Applied Sciences
Institute:
MIT
Instructor(s):
Prof. Dr. Jeremy Kepner, Prof. Dr. Vijay Gadepally
Level:
Graduate
Mathematics of Big Data and Machine Learning (M-I-T)
0. Examples Demonstration (M-I-T)
0. Introduction (M-I-T)
1. Artificial Intelligence and Machine Learning (M-I-T)
1. Examples Demonstration (M-I-T)
1. Using Associative Arrays (M-I-T)
2. Cyber Network Data Processing; AI Data Architecture (M-I-T)
2. Examples Demonstration (M-I-T)
2. Group Theory (M-I-T)
3. Entity Analysis in Unstructured Data (M-I-T)
3. Examples Demonstration (M-I-T)
4. Analysis of Structured Data (M-I-T)
4. Examples Demonstration (M-I-T)
5. Examples Demonstration (M-I-T)
5. Perfect Power Law Graphs — Generation, Sampling, Construction, and Fitting (M-I-T)
6. Bio Sequence Cross Correlation (M-I-T)
6. Examples Demonstration (M-I-T)
7. Examples Demonstration (M-I-T)
7. Kronecker Graphs, Data Generation, and Performance (M-I-T)
Demonstration 7 (M-I-T)
Lecture: Mathematics of Big Data and Machine Learning (M-I-T)