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Answer Engine Optimization (A Field Guide for Navigating AI-Driven Search and Discovery)

List Price: $59.99
SKU:
9798341672550
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25 unit(s)
Expected release date is Sep 1st 2026
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  • Product Details

    Author:
    Rodrigo Stockebrand
    Format:
    Paperback
    Pages:
    289
    Publisher:
    O'Reilly Media (September 1, 2026)
    Imprint:
    O'Reilly Media
    Release Date:
    September 1, 2026
    Language:
    English
    ISBN-13:
    9798341672550
    Weight:
    16.48oz
    Dimensions:
    7" x 9.19"
    File:
    TWO RIVERS-PERSEUS-Metadata_Only_Perseus_Distribution_Customer_Group_Metadata_20260817163245-20260817.xml
    Folder:
    TWO RIVERS
    List Price:
    $59.99
    Country of Origin:
    United States
    Pub Discount:
    60
    Case Pack:
    13
    As low as:
    $51.59
    Publisher Identifier:
    P-PER
    Discount Code:
    C
  • Overview

    Answer engines like ChatGPT are changing how people search for information. Instead of returning lists of web pages, these systems provide direct answers, sourced from content they can confidently access and interpret. As a result, clicks from traditional SEO efforts continue to decline, making it clear a new approach is needed.

    This book introduces the emerging discipline of answer engine optimization, a practical framework for making content more discoverable and citable by generative AI systems. Drawing on decades of experience, author Rodrigo Stockebrand explains how large language models retrieve, evaluate, and decide which sources to include—and not include—in the final answer. You'll explore how to design, structure, and maintain content so answer engines can reliably interpret and reference it, and how to position your organization as a trusted source for AI systems.

    • Understand how answer engines evaluate and select information
    • Structure content to improve comprehension by large language models
    • Use semantic HTML and structured data to improve content recognition
    • Build topical authority that supports credibility and citation across platforms
    • Measure performance across AI systems using emerging tools and metrics