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Follow a Machine Learning Workflow · LearnSpace
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Follow a Machine Learning Workflow

Курс от CertNexus
Средний≈ 20 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Machine learning is not just a single task or even a small group of tasks; it is an entire process, one that practitioners must follow from beginning to end. It is this process—also called a workflow—that enables the organization to get the most useful results out of their machine learning technologies. No matter what form the final product or service takes, leveraging the workflow is key to the success of the business's AI solution. This second course within the Certified Artificial Intelligence Practitioner (CAIP) professional certificate explores each step along the machine learning workflow, from problem formulation all the way to model presentation and deployment. The overall workflow was introduced in the previous course, but now you'll take a deeper dive into each of the important tasks that make up the workflow, including two of the most hands-on tasks: data analysis and model training. You'll also learn about how machine learning tasks can be automated, ensuring that the workflow can recur as needed, like most important business processes. Ultimately, this course provides a practical framework upon which you'll build many more machine learning models in the remaining courses.

Навыки, которые вы освоите

Descriptive StatisticsData PreprocessingModel DeploymentData AnalysisData CollectionModel TrainingMachine LearningPredictive ModelingData ProcessingData CleansingApplied Machine LearningMachine Learning AlgorithmsMLOps (Machine Learning Operations)Model EvaluationStatistical AnalysisAI WorkflowsProcess Management

Программа курса

6 модулей · 99 учебных материалов

01Collect the Dataset18 материалов

Overview

Follow a Machine Learning Workflow Course IntroductionВидеоCAIP Specialization IntroductionВидеоCollect the Dataset Module IntroductionВидеоOverviewЧтение

Учитесь у экспертов

Stacey McBrine

CDSP, CAIP, CIoTP, CIoTSP, CFR, CISSP, SSCP, CASP, CFR, CEI, CEH, ECSA, CHFI, CCNA, CCSI, CTT+, LINUX+, PENTEST+, SECURITY+, A+, SCNP, ITIL Foundations, ITIL SO, ITIL OSA, MCSA, MCITP

Follow a Machine Learning Workflow
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Новые знания — в удобное для вас время.

Начать на Coursera

Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 20 ч

6 модулей

Язык: Английский

Субтитры: Арабский, Французский, Узбекский, Украинский, Китайский (Китай), Греческий, Итальянский, Бразильский португальский, Нидерландский, Корейский, Немецкий, Пушту, Русский, Тайский, Индонезийский, Шведский, Турецкий, Испанский, Дари, Хинди, Японский, Казахский, Польский

Часть программы вашего университета
Get help and meet other learners. Join your Community!Чтение

Data Collection

Machine Learning DatasetsВидеоData Structure TerminologyВидеоData Quality IssuesВидеоData SourcesВидеоOpen DatasetsЧтениеOpen Datasets QuizЗаданиеGuidelines for Selecting a Machine Learning DatasetВидеоExamining the Structure of a Machine Learning DatasetЛабораторнаяETL and Machine Learning PipelinesВидеоGuidelines for Loading a DatasetЧтениеLoading the DatasetЛабораторная

Evaluate What You've Learned

Collecting the DatasetЗаданиеReflect on What You've LearnedОбсуждение
02Analyze the Dataset25 материалов

Overview

Analyze the Dataset Module IntroductionВидеоOverviewЧтение

Statistical Analysis

Dataset Content and FormatВидеоGuidelines for Exploring the Structure of a DatasetЧтениеExploring the General Structure of the DatasetЛабораторнаяDistributionsВидеоDescriptive Statistical AnalysisВидеоCentral TendencyВидеоVariability and RangeВидеоVariance and Standard DeviationВидеоSkewnessВидеоKurtosisВидеоStatistical MomentsЧтениеCorrelation CoefficientВидеоGuidelines for Analyzing a DatasetЧтениеAnalyzing a Dataset Using Statistical MeasuresЛабораторная

Visual Analysis

VisualizationsВидеоHistogramВидеоBox PlotВидеоScatterplotВидеоMapsВидеоGuidelines for Using Visualizations to Analyze DataЧтениеAnalyzing a Dataset Using Visualizations

Evaluate What You've Learned

Analyzing the DatasetЗаданиеReflect on What You've LearnedОбсуждение
03Prepare the Dataset17 материалов

Overview

Prepare the Dataset Module IntroductionВидеоOverviewЧтение

Data Preparation

Data PreparationВидеоData TypesВидеоOperations You Can Perform on Different Types of DataЧтениеData Types QuizЗаданиеContinuous vs. Discrete VariablesВидеоData EncodingВидеоDimensionality ReductionВидеоMissing and Duplicate ValuesВидеоNormalization and StandardizationВидеоSummarizationЧтениеHoldout MethodВидеоGuidelines for Preparing Training and Testing DataЧтениеSplitting the Training and Testing Datasets and LabelsЛабораторная

Evaluate What You've Learned

Preparing the DatasetЗаданиеReflect on What You've LearnedОбсуждение
04Set Up and Train a Model22 материалов

Overview

Set Up and Train a Model Module IntroductionВидеоOverviewЧтение

Set Up a Machine Learning Model

Design of ExperimentsВидеоHypothesis TestingВидеоp-value and Confidence IntervalВидеоMachine Learning AlgorithmsВидеоGuidelines for Setting Up a Machine Learning ModelЧтениеSetting Up a Machine Learning ModelЛабораторная

Train the Model

Iterative TuningВидеоBias and GeneralizationsВидеоCross-ValidationВидеоDealing with OutliersЛабораторнаяFeature TransformationВидеоScaling and Normalizing FeaturesЛабораторнаяThe Bias–Variance Tradeoff

Evaluate What You've Learned

Setting Up and Training the ModelЗаданиеReflect on What You've LearnedОбсуждение
05Finalize the Model15 материалов

Overview

Finalize the Model Module IntroductionВидеоOverviewЧтение

Model Finalization

Know Your AudienceВидеоUse Visualization to Present Your FindingsВидеоPut Together a Machine Learning PresentationВидеоCommunicate Your Findings ClearlyВидеоTranslating Results into Business ActionsВзаимная проверкаPut a Model into ProductionВидеоPipeline AutomationВидеоTesting and MaintenanceВидеоConsumer-Oriented ApplicationsЧтениеGuidelines for Incorporating Machine Learning into a Long-Term SolutionЧтениеIncorporating a Model into a Long-Term SolutionВзаимная проверка

Evaluate What You've Learned

Finalizing a ModelЗаданиеReflect on What You've LearnedОбсуждение
06Apply What You've Learned2 материалов

Project

Course 2 ProjectЛабораторнаяFollowing a Machine Learning Workflow to Predict Demand for Bicycle RentalsВзаимная проверка
Лабораторная
Видео
ParametersВидео
RegularizationВидео
Training EfficiencyВидео
Guidelines for Training and Tuning the ModelЧтение
Refitting and Testing the ModelЛабораторная