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图书 熵与信息论(影印版)/国外电子信息精品著作
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由格雷编写的这本《熵与信息论(影印版)》是国外电子信息精品著作。本书共分14个章节,内容包括:熵、数据压缩、信道容量、率失真、网络信息论以及假设检验等。可作为电子工程、统计学以及通信方向高年级本科生和研究生学习信息论基础课程的参考书使用。

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由格雷编写的这本《熵与信息论(影印版)》保留了第一版清晰、简明的写作风格。信息论的内容主要包括熵、数据压缩、信道容量、率失真、网络信息论以及假设检验等。《熵与信息论(影印版)》旨在为读者在理论研究和应用等方面打下坚实的基础。每章的结尾配有习题集、要点总结以及主要内容论点的回顾。

《熵与信息论(影印版)》是电子工程、统计学以及通信方向高年级本科生和研究生学习信息论基础课程的理想参考书。

目录

Preface

Introduction

1 Information Sources

 1.1 Probability Spaces and Random Variables

 1.2 Random Processes and Dynamical Systems

 1.3 Distributions

 1.4 Standard Alphabets

 1.5 Expectation

 1.6 Asymptotic Mean Stationarity

 1.7 Ergodic Properties

2 Pair Processes: Channels, Codes, and Couplings

 2.1 Pair Processes

 2.2 Channels

 2.3 Stationariw Properties of Channels

 2.4 Extremes: Noiseless and Completely Random Channels

 2.5 Deterministic Channels and Sequence Coders

 2.6 Stationary and Sliding-Block Codes

 2.7 Block Codes

 2.8 Random Punctuation Sequences

 2.9 Memoryless Channels

 2.10 Finite-Memory Channels

 2.11 Output Mixing Channels

 2.12 Block independent Channels

 2.13 Conditionally Block independent Channels

 2.14 Stationarizing Block Independent Channels

 2.15 Primitive Channels

 2.16 Additive Noise Channels

 2.17 Markov Channels

 2.18 Finite-State Channels and Codes

 2.19 Cascade Channels

 2.20 Commuication Systems

 2.21 Couplings

 2.22 Block to Sliding-Block: The Rohiin-Kakutani Theorem

3 Entropy

 3.1 Entropy and Entropy Rate

 3.2 Divergence Inequality and Relative Entropy

 3.3 Basic Properties of Entropy

 3.4 Entropy Rate

 3.5 Relative Entropy Rate

 3.6 Conditional Entropy and Mutual Information

 3.7 Entropy Rate Revisited

 3.8 Markov Approximations

 3.9 Relative Entropy Densities

4 The Entropy Ergodic Theorem

 4.1 History

 4.2 Stationary Ergodic Sources

 4.3 Stationary Nonergodic Sources

 4.4 AMS Sources

 4.5 The Asymptotic Equipartition Property

5 Distortion and Approximation

 5.1 Distortion Measures

 5.2 Fidelity Criteria

 5.3 Average Limiting Distortion

 5.4 Communications Systems Performance

 5.5 Optima] Performance

 5.6 Code Approximation

 5.7 Approximating Random Vectors and Processes

 5.8 The Monge/Kantorovich/Vasershtein Distance

 5.9 Variation and Distribution Distance

 5.10 Coupling Discrete Spaces with the Hamming Distance

 5.11 Process Distance and Approximation

 5.12 Source Approximation and Codes

 5.13 d-bar Continuous Channels

6 Distortion and Entropy

 6.1 The Fano Inequality

 6.2 Code Approximation and Entropy Rate

 6.3 Pinsker's and Matron's Inequalities

 6.4 Entropy and Isomorphism

 6.5 Almost Lossless Source Coding

 6.6 Asymptotically Optimal Almost Lossless Codes

 6.7 Modeling and Simulation

 Relative Entropy

 7.1 Divergence

 7.2 Conditional Relative Entropy

 7.3 Limiting Entropy Densities

 7.4 Information for General Alphabets

 7.5 Convergence Results

8 Information Rates

 8.1 Information Rates for Finite Alphabets

 8.2 Information Rates for General Alphabets

 8.3 A Mean Ergodic Theorem for Densities

 8.4 Information Rates of Stationary Processes

 8.5 The Data Processing Theorem

 8.6 Memoryless Channels and Sources

9 Distortion and Information

 9.1 The Shannon Distortion-Rate Function

 9.2 Basic Properties

 9.3 Process Definitions of the Distortion-Rate Function

 9.4 The Distortion-Rate Function as a Lower Bound

 9.5 Evaluating the Rate-Distortion Function

10 Relative Entropy Rates

 10.1 Relative Entropy Densities and Rates

 10.2 Markov Dominating Measures

 10.3 Stationary Processes

 10.4 Mean Ergodic Theorems

11 Ergodic Theorems for Densities

 11.1 Stationary Ergodic Sources

 11.2 Stationary Nonergodic Sources

 11.3 AMS Sources

 11.4 Ergodic Theorems for Information Densities

12 Source Coding Theorems

 12.1 Source Coding and Channel Coding

 12.2 Block Source Codes for AMS Sources

 12.3 Block Source Code Mismatch

 12.4 Block Coding Stationary Sources

 12.5 Block Cod|rig AMS Ergodic Sources

 12.6 Subadditive FideliW Criteria

 12.7 Asynchronous Block Codes

 12.8 Sliding-Block Source Codes

 12.9 A Geometric Interpretation

13 Properties of Good Source Codes

 13.1 Optimal and Asymptotically Optimal Codes

 13.2 Block Codes

 13.3 Sliding-Block Codes

14 Coding for Noisy Channels

 14.1 Noisy Channels

 14.2 Feinstein's Lemma

 14.3 Feinstein's Theorem

 14.4 Channel Capacity

 14.5 Robust Block Codes

 14.6 Block Coding Theorems for Noisy Channels

 14.7 Joint Source and Channel Block Codes

 14.8 Synchronizing Block Channel Codes

 14.9 Sliding-block Source and Channel Coding

References

Index

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书名 熵与信息论(影印版)/国外电子信息精品著作
副书名
原作名
作者 (美)格雷
译者
编者
绘者
出版社 科学出版社
商品编码(ISBN) 9787030344731
开本 16开
页数 409
版次 1
装订 平装
字数 580
出版时间 2012-06-01
首版时间 2012-06-01
印刷时间 2012-06-01
正文语种
读者对象 青年(14-20岁),研究人员,普通成人
适用范围
发行范围 公开发行
发行模式 实体书
首发网站
连载网址
图书大类 科学技术-自然科学-数学
图书小类
重量 0.642
CIP核字
中图分类号 O236
丛书名
印张 27.25
印次 1
出版地 北京
239
169
21
整理
媒质 图书
用纸 普通纸
是否注音
影印版本 原版
出版商国别 CN
是否套装 单册
著作权合同登记号 图字01-2012-3442
版权提供者 Springer Berlin Heidelberg
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