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Big Data for Reliability and Security
edX
Course
Intermediate
Free to Audit
Certificate

Big Data for Reliability and Security

Purdue University

This course teaches the principles and practices of big data for improving the reliability and the security of computing systems. It exemplifies the principles through real-world examples and provides challenging programming problems based on novel datasets.

7 hrs/week6 weeksEnglish603 enrolled
Free to Audit

About this Course

This course teaches the principles and practices of big data for improving the reliability and the security of computing systems. Big data is a technology that is changing the way we do business and the way we play. As there is a tremendous growth in data being collected about every process and product in operation, there is value to be mined from this abundance of data. This means that big data is being applied in areas where there is great commercial advantage to be had, and consequently, attacks and failures have become a serious concern. This course asks and answers the question: Can big data be used to improve the reliability and the security of the processes that we rely on in our work and personal lives? Do big data techniques introduce new vulnerabilities that we should be aware of as we adopt big data practices in so many aspects of our lives? And what kinds of mitigations can be designed and deployed against such vulnerabilities? The course is taught by a leading researcher in reliability and security and an award-winning teacher. The course has a practical bent and introduces only the necessary theory and in the context of its application to today’s industrial big data context. The principles are exemplified through popular big data frameworks, such as, Apache Spark and Spark Streaming, Flink, Mesos, and containers. The course first lays out the problem landscape in the context of upsurge of data and its implications for reliability and for security. Then it describes how we can measure the relevant attributes. Next, it looks at the application-driven requirements and constraints for applying big data for reliability and security. Then it presents how the data can be processed for improving the resilience of the processes that depend on the data. It delves into a set of techniques for defending big data techniques against natural failures (the reliability aspect) and against malicious attacks (the security aspect). The different aspects are tied together through a set of challenge programming projects that are based on novel datasets that we have collected and curated. 3b

What You'll Learn

  • Formulate the reliability and the security requirements of a production system
  • Understand and develop big data techniques for improving reliability and security of computing systems
  • Construct software artifacts to instantiate the techniques for real-world datasets and under realistic conditions

Prerequisites

  • Python programming, basic knowledge of probability and statistics

Instructors

S

Saurabh Bagchi

Professor, School of Electrical and Computer Engineering and Department of Computer Science

Topics

Apache Flink
Apache Spark
Big Data
Spark Streaming
Resilience
Apache Mesos

Course Info

PlatformedX
LevelIntermediate
PacingUnknown
CertificateAvailable
PriceFree to Audit

Skills

أباتشي فلينك
أباتشي سبارك
البيانات الضخمة
سبارك ستريمينغ
المرونة
Apache Mesos

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