The first mathematical model of neural networks was published in the 1943 scientific article "A logical calculus of the ideas immanent in nervous activity" by Walter Pitts and Warren McCulloch, marking the beginning of machine learning.
This was followed in 1949 by the publication of Donald Hebb's book, The Organization of Behavior. One of the seminal foundations of machine learning, the book proposed hypotheses about the relationship between behavior, neural networks, and brain activity.
Machine learning is a branch of artificial intelligence (AI) that focuses on building systems that can learn from and make decisions based on data. For beginners, it can be helpful to understand some of the fundamental concepts and techniques used in the field.
This easy-to-understand manual is specially made for both beginners and seniors who want to effectively master MACHINE LEARNING without stress.
This comprehensive manual presents all you need to know about the MACHINE LEARNING in simple, illustrative, and straightforward terms.
Here Is A Preview Of What You Will Learn In This Book:
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Paperback. Condizione: new. Paperback. The first mathematical model of neural networks was published in the 1943 scientific article "A logical calculus of the ideas immanent in nervous activity" by Walter Pitts and Warren McCulloch, marking the beginning of machine learning.This was followed in 1949 by the publication of Donald Hebb's book, The Organization of Behavior. One of the seminal foundations of machine learning, the book proposed hypotheses about the relationship between behavior, neural networks, and brain activity.Machine learning is a branch of artificial intelligence (AI) that focuses on building systems that can learn from and make decisions based on data. For beginners, it can be helpful to understand some of the fundamental concepts and techniques used in the field.This easy-to-understand manual is specially made for both beginners and seniors who want to effectively master MACHINE LEARNING without stress.This comprehensive manual presents all you need to know about the MACHINE LEARNING in simple, illustrative, and straightforward terms.Here Is A Preview Of What You Will Learn In This Book: What Is Machine LearningHow Does Machine Learning WorkWhy Should We Learn Machine LearningHow To Get Started With Machine LearningWhich Language Is Best For Machine LearningTypes Of Machine LearningMachine Learning AlgorithmsApplication Of Machine LearningPractical Applications Of Machine LearningThe Long-Term Prospects Of AiWhat Is The Statistics And Machine Learning ToolboxTools For Statistics And Machine Learning And Their FeaturesHow To Use Statistics And Machine Learning ToolboxWhat Are The Best Ways To Integrate SMLT With Other MATLAB Features?What Is Data CleaningWhat Is The Difference Between Data Cleaning And Data TransformationCriteria For High-Quality DataEfficient Data Cleansing Software And ToolsWhat Is Data Preparation For Machine LearningData Preparation And Its Importance For Machine LearningProcedures For Preparing Data For Machine Learning InitiativesTools For Preparing Data For Machine LearningHow To Prepare Data For Machine Learning?What Is Machine Learning RegressionWhat Are Regression Models Used ForWhat Is Simple Linear RegressionWhat Is Multiple Linear RegressionWhat Is Logistic RegressionImplementing Machine Learning For Any CompanyWhat Is KNN (K-Nearest Neighbor) AlgorithmHow Can We Apply The KNN Algorithm?How Does The KNN Algorithm WorkImplementation In Python From ScratchComparing Our Model With SCIKIT-LearnImplementation Of KNN In RExamining The "Class" Library And Our KNN Predictor FunctionWhat Is Clustering In Machine Learning And How Does It WorkTypes Of Clustering AlgorithmsFraud And Detection ApplicationWhat Is Bias In Machine LearningHow Does Machine Learning Deal With Variance?How To Build A Machine Learning ModelThe Six-Step Process For Creating An Ml ModelHow To Improve Machine LearningTips And Tricks Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability. Codice articolo 9798332328916
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Paperback. Condizione: new. Paperback. The first mathematical model of neural networks was published in the 1943 scientific article "A logical calculus of the ideas immanent in nervous activity" by Walter Pitts and Warren McCulloch, marking the beginning of machine learning.This was followed in 1949 by the publication of Donald Hebb's book, The Organization of Behavior. One of the seminal foundations of machine learning, the book proposed hypotheses about the relationship between behavior, neural networks, and brain activity.Machine learning is a branch of artificial intelligence (AI) that focuses on building systems that can learn from and make decisions based on data. For beginners, it can be helpful to understand some of the fundamental concepts and techniques used in the field.This easy-to-understand manual is specially made for both beginners and seniors who want to effectively master MACHINE LEARNING without stress.This comprehensive manual presents all you need to know about the MACHINE LEARNING in simple, illustrative, and straightforward terms.Here Is A Preview Of What You Will Learn In This Book: What Is Machine LearningHow Does Machine Learning WorkWhy Should We Learn Machine LearningHow To Get Started With Machine LearningWhich Language Is Best For Machine LearningTypes Of Machine LearningMachine Learning AlgorithmsApplication Of Machine LearningPractical Applications Of Machine LearningThe Long-Term Prospects Of AiWhat Is The Statistics And Machine Learning ToolboxTools For Statistics And Machine Learning And Their FeaturesHow To Use Statistics And Machine Learning ToolboxWhat Are The Best Ways To Integrate SMLT With Other MATLAB Features?What Is Data CleaningWhat Is The Difference Between Data Cleaning And Data TransformationCriteria For High-Quality DataEfficient Data Cleansing Software And ToolsWhat Is Data Preparation For Machine LearningData Preparation And Its Importance For Machine LearningProcedures For Preparing Data For Machine Learning InitiativesTools For Preparing Data For Machine LearningHow To Prepare Data For Machine Learning?What Is Machine Learning RegressionWhat Are Regression Models Used ForWhat Is Simple Linear RegressionWhat Is Multiple Linear RegressionWhat Is Logistic RegressionImplementing Machine Learning For Any CompanyWhat Is KNN (K-Nearest Neighbor) AlgorithmHow Can We Apply The KNN Algorithm?How Does The KNN Algorithm WorkImplementation In Python From ScratchComparing Our Model With SCIKIT-LearnImplementation Of KNN In RExamining The "Class" Library And Our KNN Predictor FunctionWhat Is Clustering In Machine Learning And How Does It WorkTypes Of Clustering AlgorithmsFraud And Detection ApplicationWhat Is Bias In Machine LearningHow Does Machine Learning Deal With Variance?How To Build A Machine Learning ModelThe Six-Step Process For Creating An Ml ModelHow To Improve Machine LearningTips And Tricks Shipping may be from multiple locations in the US or from the UK, depending on stock availability. Codice articolo 9798332328916
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