Analog VLSI Circuits for the Perception of Visual Motion (Hardcover)
暫譯: 視覺運動感知的類比 VLSI 電路 (精裝版)

Alan A. Stocker

  • 出版商: Wiley
  • 出版日期: 2006-05-12
  • 售價: $5,360
  • 貴賓價: 9.5$5,092
  • 語言: 英文
  • 頁數: 242
  • 裝訂: Hardcover
  • ISBN: 047085491X
  • ISBN-13: 9780470854914
  • 相關分類: VLSI
  • 已絕版

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Description

Although it is now possible to integrate many millions of transistors on a single chip, traditional digital circuit technology is now reaching its limits, facing problems of cost and technical efficiency when scaled down to ever-smaller feature sizes. The analysis of biological neural systems, especially for visual processing, has allowed engineers to better understand how complex networks can effectively process large amounts of information, whilst dealing with difficult computational challenges.

Analog and parallel processing are key characteristics of biological neural networks. Analog VLSI circuits using the same features can therefore be developed to emulate brain-style processing. Using standard CMOS technology, they can be cheaply manufactured, permitting efficient industrial and consumer applications in robotics and mobile electronics.

This book explores the theory, design and implementation of analog VLSI circuits, inspired by visual motion processing in biological neural networks. Using a novel approach pioneered by the author himself, Stocker explains in detail the construction of a series of electronic chips, providing the reader with a valuable practical insight into the technology.

Analog VLSI Circuits for the Perception of Visual Motion:

  • analyses the computational problems in visual motion perception;
  • examines the issue of optimization in analog networks through high level processes such as motion segmentation and selective attention;
  • demonstrates network implementation in analog VLSI CMOS technology to provide computationally efficient devices;
  • sets out measurements of final hardware implementation;
  • illustrates the similarities of the presented circuits with the human visual motion perception system;
  • includes an accompanying website with video clips of circuits under real-time visual conditions and additional supplementary material.

With a complete review of all existing neuromorphic analog VLSI systems for visual motion sensing, Analog VLSI Circuits for the Perception of Visual Motion is a unique reference for advanced students in electrical engineering, artificial intelligence, robotics and computational neuroscience. It will also be useful for researchers, professionals, and electronics engineers working in the field.

 

Table of Contents

Foreword.

Preface.

1 Introduction.

1.1 Artificial Autonomous Systems.

1.2 Neural Computation and Analog Integrated Circuits.

2 Visual Motion Perception.

2.1 Image Brightness.

2.2 Correspondence Problem.

2.3 Optical Flow.

2.4 Matching Models.

2.4.1 Explicit matching.

2.4.2 Implicit matching.

2.5 FlowModels.

2.5.1 Global motion.

2.5.2 Local motion.

2.5.3 Perceptual bias.

2.6 Outline for a Visual Motion Perception System.

2.7 Review of aVLSI Implementations.

3 Optimization Networks.

3.1 AssociativeMemory and Optimization.

3.2 Constraint Satisfaction Problems.

3.3 Winner-takes-all Networks.

3.3.1 Network architecture.

3.3.2 Global convergence and gain.

3.4 Resistive Network.

4 Visual Motion Perception Networks.

4.1 Model for Optical Flow Estimation.

4.1.1 Well-posed optimization problem.

4.1.2 Mechanical equivalent.

4.1.3 Smoothness and sparse data.

4.1.4 Probabilistic formulation.

4.2 Network Architecture.

4.2.1 Non-stationary optimization.

4.2.2 Network conductances.

4.3 Simulation Results for Natural Image Sequences.

4.4 Passive Non-linear Network Conductances.

4.5 Extended Recurrent Network Architectures.

4.5.1 Motion segmentation.

4.5.2 Attention and motion selection.

4.6 Remarks.

5 Analog VLSI Implementation.

5.1 Implementation Substrate.

5.2 Phototransduction.

5.2.1 Logarithmic adaptive photoreceptor.

5.2.2 Robust brightness constancy constraint.

5.3 Extraction of the Spatio-temporal Brightness Gradients.

5.3.1 Temporal derivative circuits.

5.3.2 Spatial sampling.

5.4 Single Optical Flow Unit.

5.4.1 Wide-linear-range multiplier.

5.4.2 Effective bias conductance.

5.4.3 Implementation of the smoothness constraint.

5.5 Layout.

6 Smooth Optical Flow Chip.

6.1 Response Characteristics.

6.1.1 Speed tuning.

6.1.2 Contrast dependence.

6.1.3 Spatial frequency tuning.

6.1.4 Orientation tuning.

6.2 Intersection-of-constraints Solution.

6.3 Flow Field Estimation.

6.4 DeviceMismatch.

6.4.1 Gradient offsets.

6.4.2 Variations across the array.

6.5 Processing Speed.

6.6 Applications.

6.6.1 Sensor modules for robotic applications.

6.6.2 Human–machine interface.

7 Extended Network Implementations.

7.1 Motion Segmentation Chip.

7.1.1 Schematics of the motion segmentation pixel.

7.1.2 Experiments and results.

7.2 Motion Selection Chip.

7.2.1 Pixel schematics.

7.2.2 Non-linear diffusion length.

7.2.3 Experiments and results.

8 Comparison to Human Motion Vision.

8.1 Human vs. Chip Perception.

8.1.1 Contrast-dependent speed perception.

8.1.2 Bias on perceived direction of motion.

8.1.3 Perceptual dynamics.

8.2 Computational Architecture.

8.3 Remarks.

Appendix.

A Variational Calculus.

B Simulation Methods.

C Transistors and Basic Circuits.

D Process Parameters and Chips Specifications.

References.

Index.

商品描述(中文翻譯)

**描述**

儘管現在可以在單一晶片上整合數百萬個晶體管,但傳統的數位電路技術已經達到其極限,面臨在縮小至越來越小的特徵尺寸時的成本和技術效率問題。對生物神經系統的分析,特別是視覺處理,讓工程師能夠更好地理解複雜網絡如何有效地處理大量信息,同時應對困難的計算挑戰。

類比和並行處理是生物神經網絡的關鍵特徵。因此,可以使用相同特徵的類比 VLSI 電路來模擬大腦風格的處理。利用標準 CMOS 技術,它們可以以低成本製造,允許在機器人技術和移動電子產品中進行高效的工業和消費應用。

本書探討了類比 VLSI 電路的理論、設計和實現,靈感來自生物神經網絡中的視覺運動處理。作者 Stocker 以其開創性的新方法詳細解釋了一系列電子晶片的構建,為讀者提供了對該技術的寶貴實踐見解。

《類比 VLSI 電路在視覺運動感知中的應用》:
- 分析視覺運動感知中的計算問題;
- 通過運動分割和選擇性注意等高層次過程檢視類比網絡中的優化問題;
- 演示在類比 VLSI CMOS 技術中實現網絡,以提供計算效率高的設備;
- 列出最終硬體實現的測量;
- 說明所呈現電路與人類視覺運動感知系統的相似性;
- 包含一個附屬網站,提供在實時視覺條件下電路的視頻片段和其他補充材料。

本書對所有現有的神經形態類比 VLSI 系統進行了全面回顧,對於電機工程、人工智慧、機器人技術和計算神經科學的高級學生來說,《類比 VLSI 電路在視覺運動感知中的應用》是一本獨特的參考資料。它對於在該領域工作的研究人員、專業人士和電子工程師也將非常有用。

**目錄**

**前言**

**序言**

**1 介紹**
1.1 人工自主系統
1.2 神經計算與類比集成電路

**2 視覺運動感知**
2.1 圖像亮度
2.2 對應問題
2.3 光流
2.4 匹配模型
2.4.1 明確匹配
2.4.2 隱式匹配
2.5 流模型
2.5.1 全局運動
2.5.2 局部運動
2.5.3 知覺偏差
2.6 視覺運動感知系統的概述
2.7 aVLSI 實現的回顧

**3 優化網絡**
3.1 關聯記憶與優化
3.2 約束滿足問題
3.3 贏者通吃網絡
3.3.1 網絡架構
3.3.2 全局收斂與增益
3.4 電阻網絡

**4 視覺運動感知網絡**
4.1 光流估計模型
4.1.1 良好定義的優化問題
4.1.2 機械等效
4.1.3 平滑性與稀疏數據
4.1.4 機率公式
4.2 網絡架構
4.2.1 非穩態優化
4.2.2 網絡導電性
4.3 自然圖像序列的模擬結果
4.4 被動非線性網絡導電性
4.5 擴展的遞迴網絡架構
4.5.1 運動分割
4.5.2 注意力與運動選擇
4.6 備註

**5 類比 VLSI 實現**
5.1 實現基材
5.2 光轉換
5.2.1 對數自適應光感受器
5.2.2 穩健的亮度恆定約束
5.3 時空亮度梯度的提取
5.3.1 時間導數電路
5.3.2 空間取樣
5.4 單一光流單元
5.4.1 寬線性範圍乘法器
5.4.2 有效偏置導電性
5.4.3 平滑性約束的實現
5.5 佈局

**6 平滑光流晶片**
6.1 響應特性
6.1.1 速度調整
6.1.2 對比度依賴性
6.1.3 空間頻率調整
6.1.4 方向調整
6.2 約束交集解
6.3 流場估計
6.4 設備不匹配
6.4.1 梯度偏移
6.4.2 陣列間的變化
6.5 處理速度
6.6 應用
6.6.1 機器人應用的感測模組
6.6.2 人機介面

**7 擴展網絡實現**
7.1 運動分割晶片
7.1.1 運動分割像素的原理圖
7.1.2 實驗與結果
7.2 運動選擇晶片
7.2.1 像素原理圖
7.2.2 非線性擴散長度
7.2.3 實驗與結果

**8 與人類運動視覺的比較**
8.1 人類與晶片感知
8.1.1 對比度依賴的速度感知
8.1.2 對運動方向的感知偏差
8.1.3 知覺動態
8.2 計算架構
8.3 備註

**附錄**
**A 變分微積分**
**B 模擬方法**
**C 晶體管與基本電路**
**D 製程參數與晶片規格**
**參考文獻**
**索引**