Apache Spark 2: Data Processing and Real-Time Analytics
Idioma: inglés
Editorial: Packt Publishing, 2018
- Tapa blanda
- Usado

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- Título
- Apache Spark 2: Data Processing and Real-Time Analytics
- Autor
- Kienzler, Romeo; Karim, Md. Rezaul; Alla, Sridhar
- Editorial
- Packt Publishing
- Año de publicación
- 2018
- Estado
- As New
- Encuadernación
- Encuadernación de tapa blanda
- Idioma
- inglés
- ISBN 10
- 1789959209
- ISBN 13
- 9781789959208
Build efficient data flow and machine learning programs with this flexible, multi-functional open-source cluster-computing framework
Key Features:
- Master the art of real-time big data processing and machine learning
- Explore a wide range of use-cases to analyze large data
- Discover ways to optimize your work by using many features of Spark 2.x and Scala
Book Description:
Apache Spark is an in-memory, cluster-based data processing system that provides a wide range of functionalities such as big data processing, analytics, machine learning, and more. With this Learning Path, you can take your knowledge of Apache Spark to the next level by learning how to expand Spark's functionality and building your own data flow and machine learning programs on this platform.
You will work with the different modules in Apache Spark, such as interactive querying with Spark SQL, using DataFrames and datasets, implementing streaming analytics with Spark Streaming, and applying machine learning and deep learning techniques on Spark using MLlib and various external tools.
By the end of this elaborately designed Learning Path, you will have all the knowledge you need to master Apache Spark, and build your own big data processing and analytics pipeline quickly and without any hassle.
This Learning Path includes content from the following Packt products:
- Mastering Apache Spark 2.x by Romeo Kienzler
- Scala and Spark for Big Data Analytics by Md. Rezaul Karim, Sridhar Alla
- Apache Spark 2.x Machine Learning Cookbook by Siamak Amirghodsi, Meenakshi Rajendran, Broderick Hall, Shuen MeiCookbook
What You Will Learn:
- Get to grips with all the features of Apache Spark 2.x
- Perform highly optimized real-time big data processing
- Use ML and DL techniques with Spark MLlib and third-party tools
- Analyze structured and unstructured data using SparkSQL and GraphX
- Understand tuning, debugging, and monitoring of big data applications
- Build scalable and fault-tolerant streaming applications
- Develop scalable recommendation engines
Who this book is for:
If you are an intermediate-level Spark developer looking to master the advanced capabilities and use-cases of Apache Spark 2.x, this Learning Path is ideal for you. Big data professionals who want to learn how to integrate and use the features of Apache Spark and build a strong big data pipeline will also find this Learning Path useful. To grasp the concepts explained in this Learning Path, you must know the fundamentals of Apache Spark and Scala.
“Sinopsis” puede pertenecer a otra edición de este título.
Acerca del autor
Md. Rezaul Karim is a researcher, author, and data science enthusiast with a strong computer science background, coupled with 10 years of research and development experience in machine learning, deep learning, and data mining algorithms to solve emerging bioinformatics research problems by making them explainable. He is passionate about applied machine learning, knowledge graphs, and explainable artificial intelligence (XAI). Currently, he is working as a research scientist at Fraunhofer FIT, Germany. He is also a PhD candidate at RWTH Aachen University, Germany. Before joining FIT, he worked as a researcher at the Insight Centre for Data Analytics, Ireland. Previously, he worked as a lead software engineer at Samsung Electronics, Korea.
Sridhar?Alla?is the co-founder and CTO of Blue Whale Consulting and is expert at helping companies (big and small) define their vision for systems and capabilities that will allow them to establish a strategic execution plan to deal with the ever-growing data collected to support analytics and product teams. He has very experienced at dealing with all aspects of data collection, security, governance, and processing as part of end-to-end big data analytics and machine learning initiatives (including predictive modeling, deep learning, and ML automation). Sridhar?is a published book author and an avid presenter at numerous conferences, including Strata, Hadoop World, and Spark Summit.? He also has several patents filed with the US PTO on large-scale computing and distributed systems.? He has over 18 years' experience writing code in Scala, Java, C, C++, Python, R, and Go, and has extensive hands-on knowledge of Spark, Flink, TensorFlow, Keras, Hadoop, Cassandra, HBase, MongoDB, Riak, Redis, Zeppelin, Mesos, Docker, Kafka, ElasticSearch, Solr, H2O, machine learning, text analytics, distributed computing, and high-performance computing. Sridhar lives with his wife and daughter in New Jersey and in his spare time loves blogging and coaching organizations on next-generation advancements in technology and their alignment with business goals.
“Acerca de” puede pertenecer a otra edición de este título.
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