Designing Ad CTR Prediction Models and Calibration Strategies
Learn to build and calibrate high-performance CTR prediction models using Wide & Deep, DCN, and DLRM architectures for digital advertising systems.
このコースについて
In the highly competitive world of digital advertising, predicting whether a user will click an ad is crucial for maximizing revenue and user engagement. This text-based course guides you through the core concepts and architectures used to build accurate, modern click-through rate (CTR) prediction models. You will transition from understanding basic classification to designing and calibrating sophisticated recommendation architectures. You will learn how to handle sparse categorical features, combine linear and deep models, and ensure your model's predicted probabilities match real-world outcomes.
What you'll learn:
- Understand the foundational mathematics of click-through rate prediction and why standard classification models need calibration.
- Explore modern model architectures including Wide & Deep, Deep & Cross Networks (DCN), and Deep Learning Recommendation Models (DLRM).
- Apply calibration techniques like Platt scaling and isotonic regression to align predicted probabilities with actual click frequencies.
- Implement multi-task learning strategies to optimize for multiple user actions simultaneously.
- Integrate modern feature stores and embedding techniques to manage high-cardinality categorical data efficiently.
- Analyze real-world evaluation metrics and modern monitoring patterns to maintain model performance over time.
The course starts with essential terminology and the mathematical foundations of CTR prediction before guiding you through advanced neural network architectures and calibration workflows. Through clear written explanations and structured code snippets, you will gain a practical understanding of ad tech machine learning systems. This program is designed for software engineers, data scientists, and machine learning enthusiasts who want to enter the ad tech space, with no prior recommendation system experience required. Start reading today to master the core architectures powering modern digital advertising.
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LinkedInプロフィールに追加 -
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無期限アクセス
いつでも再開可能、有効期限なし -
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スマホでもPCでも
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30日返金保証
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短く要点だけ
39分の実践的な内容
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このコースを受けるには何が必要ですか? +
インターネットに接続したスマホかパソコンだけ。インストールも特別な機材も不要です。
支払い方法は? +
Stripe経由のカード、または暗号通貨。カード情報は当社では保存せず、Stripeが安全に取り扱います。
返金できますか? +
はい — 30日以内なら理由を問わず全額返金。
いつまでアクセスできますか? +
ずっと。購入後はあなたのもの。いつでも見返せます。
修了証はもらえますか? +
はい。修了するとLinkedInプロフィールに追加できる修了証を受け取れます。
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