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Scala Machine Learning Projects

You're reading from  Scala Machine Learning Projects

Product type Book
Published in Jan 2018
Publisher Packt
ISBN-13 9781788479042
Pages 470 pages
Edition 1st Edition
Languages

Table of Contents (17) Chapters

Title Page
Packt Upsell
Contributors
Preface
1. Analyzing Insurance Severity Claims 2. Analyzing and Predicting Telecommunication Churn 3. High Frequency Bitcoin Price Prediction from Historical and Live Data 4. Population-Scale Clustering and Ethnicity Prediction 5. Topic Modeling - A Better Insight into Large-Scale Texts 6. Developing Model-based Movie Recommendation Engines 7. Options Trading Using Q-learning and Scala Play Framework 8. Clients Subscription Assessment for Bank Telemarketing using Deep Neural Networks 9. Fraud Analytics Using Autoencoders and Anomaly Detection 10. Human Activity Recognition using Recurrent Neural Networks 11. Image Classification using Convolutional Neural Networks 1. Other Books You May Enjoy Index

Algorithms, tools, and techniques


Large-scale data from release 3 of the 1000 Genomes project contributes to 820 GB of data. Therefore, ADAM and Spark are used to pre-process and prepare the data (that is, training, testing, and validation sets) for the MLP and K-means models in a scalable way. Sparkling water transforms the data between H2O and Spark.

Then, K-means clustering, the MLP (using H2O) are trained. For the clustering and classification analysis, the genotypic information from each sample is required using the sample ID, variation ID, and the count of the alternate alleles where the majority of variants that we used were SNPs and indels.

Now, we should know the minimum info about each tool used such as ADAM, H2O, and some background information on the algorithms such as K-means, MLP for clustering, and classifying the population groups.

H2O and Sparkling water

H2O is an AI platform for machine learning. It offers a rich set of machine learning algorithms and a web-based data processing...

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