Neural Networks with Keras: Practical Deep Learning in Python and R
Master the fundamentals of artificial neural networks and build predictive models for business applications using Keras and TensorFlow in both Python and R.
💬AI 강사 어떤 강의든 질문하면 언제든 즉시 명확한 답을 받을 수 있어요.
🕐언제든지 시작 정해진 일정이나 마감이 없어요 — 원할 때 자신의 속도로 배우세요.
🌐한국어로 강의, 과제, 수료증까지 — 모두 완전히 당신의 언어로.
이 과정 소개
Neural networks power the world's most sophisticated AI systems, but you do not need a advanced degree in mathematics to start building them. This written course bridges the gap between deep learning theory and practical implementation, teaching you how to solve real-world prediction problems.
You will transition from understanding core neural network concepts to confidently programming, training, and evaluating models. By implementing solutions in both Python and R using Keras and TensorFlow, you will gain a versatile skill set highly valued in data science and business analytics.
What you'll learn:
- Understand the foundational architecture of artificial neural networks, including neurons, layers, and activation functions.
- Master the mechanics of model training, including forward propagation, backpropagation, and gradient descent optimization.
- Build and compile predictive deep learning models using Keras and TensorFlow in both Python and R.
- Evaluate model performance using key metrics and address common training issues like overfitting.
- Apply modern workflows, including setting up clean virtual environments and tracking training metrics for basic model management.
- Translate business problems into structured data tasks suitable for neural network classification and regression.
The curriculum starts with fundamental terminology and neural network theory before guiding you through step-by-step code implementations. You will read clear explanations of the math-light theory, examine parallel code snippets in Python and R, and learn how to interpret model results for business decision-making.
This course is designed for aspiring data scientists, business analysts, and students who want a practical entry point into deep learning. No prior experience with neural networks is required, though a basic familiarity with Python or R programming is helpful.
Begin reading today to master the core engine of modern artificial intelligence.
받게 되는 것
📜수료증 LinkedIn 프로필에 추가
💬개인 AI 튜터 강좌에서 막혔나요? 내장 튜터에게 언제든지 무엇이든 물어보세요.
🎧오디오 버전 포함 화면 없이 어디서나 학습
♾️평생 이용 언제든 다시 보세요, 만료 없음
📱휴대폰 또는 컴퓨터 어디서든 모든 기기에서
💸14일 환불 이유 묻지 않음
⚡짧고 핵심적 3시간의 실용 학습
수료증
PickAClass에서 수료하는 모든 강좌는 이런 자격증을 발급합니다 — 원본, 고유 코드, URL 검증 가능, 그리고 실제로 입증한 내용을 상세히 기재.
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Neural Networks with Keras: Practical Deep Learning in Python and R
입증된 스킬
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기초
1.2 시간
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1.4 시간
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1.7 시간
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1.9 시간
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Neural Networks with Keras: Practical Deep Learning in Python and R