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Embedded AI (Intelligence at the Deep Edge)

List Price: $79.99
SKU:
9781718504905
Quantity:
Minimum Purchase
25 unit(s)
Expected release date is Oct 27th 2026
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  • Product Details

    Author:
    David Such
    Format:
    Paperback
    Pages:
    600
    Publisher:
    No Starch Press (October 27, 2026)
    Imprint:
    No Starch Press
    Release Date:
    October 27, 2026
    Language:
    English
    Audience:
    General/trade
    ISBN-13:
    9781718504905
    ISBN-10:
    171850490X
    Weight:
    13oz
    Dimensions:
    7" x 9.25"
    File:
    RandomHouse-PRH_Book_Company_PRH_PRT_Onix_delta_active_D20260803T235053_157376548-20260803.xml
    Folder:
    RandomHouse
    List Price:
    $79.99
    Country of Origin:
    United States
    Pub Discount:
    65
    Case Pack:
    24
    As low as:
    $61.59
    Publisher Identifier:
    P-RH
    Discount Code:
    A
    QuickShip:
    Yes
  • Overview

    A project-driven guide to designing, training, and deploying artificial intelligence directly on embedded hardware, showing how to build intelligent, autonomous systems under real-world constraints.

    You already know how to build embedded systems. Now it’s time to make them intelligent.

    Adding AI to an embedded device takes more than training a model. You have to choose the right hardware, collect and prepare data, deploy models to resource-constrained devices, and integrate everything into a system that performs reliably.

    Drawing on more than 30 years of embedded engineering experience, David Such takes you through the complete engineering process. You’ll work through more than 25 hands-on projects (complete with downloadable source code, schematics, PCB designs, and datasets); no machine learning experience required.

    You’ll build:
    • A wake-word detector that responds to your voice
    • A real-time AI noise suppressor
    • An AI-powered MIDI synthesizer that composes music
    • A battery monitor that collects its own training data
    • A person detector that runs a neural network on a camera board 

    Whether you’re an embedded developer adding AI to your products, a machine learning practitioner moving onto embedded hardware, or a maker ready to move beyond beginner projects, Embedded AI teaches you the engineering decisions behind every design. When the breadboard is flaky, the sensor data is noisy, or the tensor arena is too small, you’ll know how to fix it—and why.

    Prerequisites
    Most projects require an Arduino UNO or Raspberry Pi Pico; a few use specialized boards. You’ll also need to download some free software, including Python with TensorFlow, Arduino IDE, and Raspberry Pi Pico SDK.