Key FeaturesMaster intricacies of R deep learning packages such as mxnet & tensorflowLearn application on deep learning in different domains using practical examples from text, image and speechGuide to set-up deep learning models using CPU and GPUBook DescriptionDeep Learning is the next big thing. It is a part of machine learning. Its favorable results in applications with huge and complex data is remarkable. Simultaneously, R programming language is very popular amongst the data miners and statisticians.This book will help you to get through the problems that you face during the execution of different tasks and Understand hacks in deep learning, neural networks, and advanced machine learning techniques. It will also take you through complex deep learning algorithms and various deep learning packages and libraries in R. It will be starting with different packages in Deep Learning to neural networks and structures. You will also encounter the applications in text mining and processing along with a comparison between CPU and GPU performance.By the end of the book, you will have a logical understanding of Deep learning and different deep learning packages to have the most appropriate solutions for your problems.What you will learnBuild deep learning models in different application areas using TensorFlow, H2O, and MXnet.Analyzing a Deep boltzmann machineSetting up and Analysing Deep belief networksBuilding supervised model using various machine learning algorithmsSet up variants of basic convolution functionRepresent data using Autoencoders.Explore generative models available in Deep Learning.Discover sequence modeling using Recurrent netsLearn fundamentals of Reinforcement LeaningLearn the steps involved in applying Deep Learning in text miningExplore application of deep learning in signal processingUtilize Transfer learning for utilizing pre-trained modelTrain a deep learning model on a GPUAbout the AuthorDr. PKS Prakash is a Data Scientist and an author. He has spent last 12 years in developing many data science solution to solve problems from leading companies in healthcare, manufacturing, pharmaceutical and e-commerce domain. He is working as Data Science Manager at ZS Associates. ZS is one of the worlds largest business services firms helping clients with commercial success, by creating data-driven strategies using advanced analytics that they can implement within their sales and marketing operations to make them more competitive, and by helping them deliver impact where it matters.Prakash background involves PhD in Industrial and System Engineering from Wisconsin-Madison, US. He has defended his second PhD in Engineering from University of Warwick, UK. His other educational background involves; Masters from University of Wisconsin-Madison, US and Bachelors from National Institute of Foundry and Forge Technology (NIFFT), India. He is co-founder of Warwick Analytics which is based on his PhD work from University of Warwick, UK.Prakash has published widely in research areas of operational research & management, soft computing tools and advance algorithms in leading journals such as IEEE-Trans, EJOR, and IJPR among others. He has edited an issue on Intelligent Approaches to Complex Systems and contributed in books “Evolutionary Computing in Advanced Manufacturing” Published by WILEY and “Algorithms and Data Structures using R” published by PACKT.Achyutuni Sri Krishna Rao is a Data Scientist, a Civil Engineer and an Author. He has spent last 4 years in developing many data science solutions to solve problems from leading companies in healthcare, pharmaceutical and manufacturing domain. He is working as Data Science Consultant at ZS Associates.Sri Krishnas background involves a masters in Enterprise Business Analytics and Machine Learning from National University of Singapore, Singapore. His other educational background involves a Bachelors from National Institute of Technology Warangal, India.Sri Krishna has published widely in research areas of civil engineering. He has contributed in a book titled “Algorithms and Data Structures using R” published by PACKT.Table of ContentsGetting StartedDeep Learning with RConvolution Neural NetworkData representation using AutoencodersGenerative models in Deep learningRecurrent Neural NetworksReinforcement learningApplication of Deep Learning in Text-MiningApplication of Deep Learning in Signal processingTransfer learning
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