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Course Outline

  1. Distributed Computing under Big Data
    1. Data mining methods (training single-model + distributed prediction: traditional machine learning algorithms + Mapreduce distributed prediction,)
    2. Apache Spark MLlib
  2. Recommendation and Precision Advertising:
    1. Parts of Natural Language
    2. Text clustering, text classification (tagging), synonyms
    3. User profile reconstruction, tag systems
    4. Strategies for recommendation algorithms
    5. Lift between classes, lift within classes, how to achieve precision
    6. How to build the closed loop for recommendation algorithms
  3. Logistic Regression, RankingSVM,
  4. Feature Detection: (Automated feature detection for deep learning and shapes)
  5. Natural Language
    1. Chinese word segmentation
    2. Topic models (text clustering)
    3. Text classification
    4. Keyword extraction
    5. Semantic analysis semantic parser, word2vec to word vectors
    6. RNN Long short-term memory (LSTM) Architecture

Requirements

There are no specific prerequisites for joining this course.

 21 Hours

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