GUTSCHEIN
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Bitte haben Sie einen Moment Geduld, wir legen Ihr Produkt in den Warenkorb.
| ISBN | 9798192969557 |
|---|---|
| Sprache | Englisch |
| Erscheinungsdatum | 16.08.2026 |
| Größe | 229 x 152 mm |
| Verlag | Amazon Digital Services LLC - Kdp |
| Lieferzeit | Lieferung innerhalb von 28 Werktagen |
| Herstellerangaben | Anzeigen Libri GmbH Europaallee 1 | D-36244 Bad Hersfeld gpsr@libri.de |
Before a machine can learn, predict, or generate, something more basic has to happen: the world must become data.>Data: Giving the World a Form a Machine Can Use is a first-principles journey for non-technical readers who want to understand the foundations beneath modern artificial intelligence without being buried in jargon. It begins with ordinary life-a receipt, a weather reading, a form, a message, a photograph-and asks a deceptively powerful question: what changes when reality is represented in a form a machine can store, compare, and process?
From that foundation, the book builds one layer at a time. You will learn how records become datasets, how features and labels shape learning, why messy data changes outcomes, how patterns become classification and regression, and why probability is a language for uncertainty rather than a promise of certainty. You will then cross the bridge into artificial intelligence, weighted decisions, neural networks, training, inference, tokens, and generative AI-always with the reason before the terminology and the intuition before the formula. The mathematics is deliberately human-sized: fractions, decimals, percentages, averages, ranges, rates, ratios, weighted scores, simple loss, and probability are introduced through situations you can reason about before symbols appear. Dialogues voice the questions beginners often hesitate to ask. Workshops turn explanation into practice. Visual learning pages help compress difficult ideas into memorable structures. The final Value Edition turns the book into a mental gym. You will practise chunking complex problems, separating facts from assumptions, checking patterns before trusting stories, reasoning under uncertainty, rebuilding a neural network as understandable arithmetic, reviewing generated output, and completing a 14-day brain-training circuit. A glossary and first-principles quick-reference section make the ideas easy to recover later. This is not a book about memorizing fashionable vocabulary. It is about building the mental architecture beneath the vocabulary-so that when AI changes, you still know how to ask what is being represented, what pattern is being used, what uncertainty remains, what evidence deserves trust, and what should happen next.| ISBN | 9798192969557 |
|---|---|
| Sprache | Englisch |
| Erscheinungsdatum | 16.08.2026 |
| Größe | 229 x 152 mm |
| Verlag | Amazon Digital Services LLC - Kdp |
| Lieferzeit | Lieferung innerhalb von 28 Werktagen |
| Herstellerangaben | Anzeigen Libri GmbH Europaallee 1 | D-36244 Bad Hersfeld gpsr@libri.de |
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