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Analog IC Placement Generation via Neural Networks from Unlab... - 9783030500603

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Item specifics

Condition
Brand New: A new, unread, unused book in perfect condition with no missing or damaged pages. See the ...
Book Title
Analog IC Placement Generation via Neural Networks from Unlabe...
ISBN
9783030500603
Publication Year
2020
Type
Textbook
Format
Paperback
Language
English
Publication Name
Analog Ic Placement Generation Via Neural Networks from Unlabeled Data
Item Height
235mm
Author
Nuno Horta, Nuno Lourenco, Ricardo Martins, Antonio Gusmao
Publisher
Springer Nature Switzerland A&G
Item Width
155mm
Subject
Computer Science
Item Weight
174g
Number of Pages
87 Pages

About this product

Product Information

In this book, innovative research using artificial neural networks (ANNs) is conducted to automate the placement task in analog integrated circuit layout design, by creating a generalized model that can generate valid layouts at push-button speed. Further, it exploits ANNs' generalization and push-button speed prediction (once fully trained) capabilities, and details the optimal description of the input/output data relation. The description developed here is chiefly reflected in two of the system's characteristics: the shape of the input data and the minimized loss function. In order to address the latter, abstract and segmented descriptions of both the input data and the objective behavior are developed, which allow the model to identify, in newer scenarios, sub-blocks which can be found in the input data. This approach yields device-level descriptions of the input topology that, for each device, focus on describing its relation to every other device in the topology. By means of these descriptions, an unfamiliar overall topology can be broken down into devices that are subject to the same constraints as a device in one of the training topologies. In the experimental results chapter, the trained ANNs are used to produce a variety of valid placement solutions even beyond the scope of the training/validation sets, demonstrating the model's effectiveness in terms of identifying common components between newer topologies and reutilizing the acquired knowledge. Lastly, the methodology used can readily adapt to the given problem's context (high label production cost), resulting in an efficient, inexpensive and fast model.

Product Identifiers

Publisher
Springer Nature Switzerland A&G
ISBN-13
9783030500603
eBay Product ID (ePID)
13046665939

Product Key Features

Author
Nuno Horta, Nuno Lourenco, Ricardo Martins, Antonio Gusmao
Publication Name
Analog Ic Placement Generation Via Neural Networks from Unlabeled Data
Format
Paperback
Language
English
Subject
Computer Science
Publication Year
2020
Type
Textbook
Number of Pages
87 Pages

Dimensions

Item Height
235mm
Item Width
155mm
Item Weight
174g

Additional Product Features

Title_Author
Antonio Gusmao, Ricardo Martins, Nuno Lourenco, Nuno Horta
Series Title
Springerbriefs in Applied Sciences and Technology
Country/Region of Manufacture
Switzerland

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