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ویرایش: [1 ed.] نویسندگان: Rihai Wu, Xun Yang, Xia Zhou, Yibo Wang سری: Data Communication Series ISBN (شابک) : 0367695758, 9780367695750 ناشر: CRC Press سال نشر: 2021 تعداد صفحات: 445 [446] زبان: English فرمت فایل : PDF (درصورت درخواست کاربر به PDF، EPUB یا AZW3 تبدیل می شود) حجم فایل: 9 Mb
در صورت تبدیل فایل کتاب Enterprise Wireless Local Area Network Architectures and Technologies به فرمت های PDF، EPUB، AZW3، MOBI و یا DJVU می توانید به پشتیبان اطلاع دهید تا فایل مورد نظر را تبدیل نمایند.
توجه داشته باشید کتاب معماریها و فناوریهای شبکه محلی بیسیم سازمانی نسخه زبان اصلی می باشد و کتاب ترجمه شده به فارسی نمی باشد. وبسایت اینترنشنال لایبرری ارائه دهنده کتاب های زبان اصلی می باشد و هیچ گونه کتاب ترجمه شده یا نوشته شده به فارسی را ارائه نمی دهد.
این کتاب با پشتیبانی از انباشته دانش فنی و تجربه بزرگ هواوی در زمینه WLAN و همچنین درک آن از الزامات خدمات مشتری نوشته شده است. ابتدا، این کتاب چالشهای خدماتی را که با شبکههای بیسیم سازمانی مواجه است، همراه با جزئیات آخرین تکامل استانداردهای Wi-Fi، عملکرد رابط هوایی، و روشهایی برای بهبود تجربه کاربر در سناریوهای سازمانی را پوشش میدهد. علاوه بر این، شبکههای معمولی، برنامهریزی و طراحی سناریو خاص را برای WLANهای سازمانی نشان میدهد و درک جامعی از برنامهریزی، طراحی و پیادهسازی فنی WLAN سازمانی و همچنین پیشنهادهایی برای استقرار در اختیار خوانندگان قرار میدهد.
این یک راهنمای کاربردی و قابل درک برای طراحی WLAN است و برای مهندسین پشتیبانی فنی و برنامه ریزی WLAN، مدیران شبکه و علاقه مندان به فناوری شبکه نوشته شده است.
نویسندگان
Rihai Wu معمار ارشد راه حل WLAN شبکه پردیس Huawei با 16 سال تجربه در طراحی محصولات ارتباطات بی سیم و تخصص فراوان در طراحی شبکه و توسعه محصول است. او قبلاً بهعنوان طراح و توسعهدهنده محصولات برای دسترسی چندگانه تقسیم کد گسترده (WCDMA)، سلولهای کوچک داخلی LTE، و WLAN خدمت میکرد.
Xun. یانگ یک متخصص استاندارد WLAN از هواوی است. او نه سال تجربه در فرمول بندی استانداردهای WLAN دارد و قبلاً به عنوان منشی 802.11ac، رئیس مشترک 802.11ah PHY Ad-hoc و 802.11ax MU Ad Hoc Sub Group Co-Chicer خدمت کرده است. آقای یانگ بر تحقیقات فنی، ارتقای استانداردها و صنعتی سازی در زمینه WLAN نظارت می کند و بیش از 100 پتنت ثبت کرده است.
Xia Zhou مهندس مستندات راه حل WLAN شبکه پردیس هواوی است. او 10 سال تجربه در ایجاد اسناد برای محصولات شبکه پردیس دارد. خانم ژو قبلاً مسئول نوشتن کتابچه راهنمای سوئیچهای مرکز داده هوآوی، محصولات WLAN و راهحلهای شبکه دانشگاه بود. او همچنین نویسنده راهنمای استقرار راه حل شبکه پردیس است و یکی از حامیان مالی جلسات فنی مانند WLAN از مبانی تا مهارت بود.
< /b>Yibo Wang یک مهندس مستندات راه حل WLAN شبکه پردیس هواوی است. او نه سال تجربه در زمینه ایجاد اسناد برای محصولات شبکه پردیس دارد. آقای وانگ قبلاً مسئول نوشتن کتابچه راهنمای سوئیچهای هواوی، محصولات WLAN و روترها بود. او همچنین یکی از حامیان مالی جلسات فنی مانند دوره های آموزشی WLAN from Basics to Proficiency و گواهینامه HCIA-WLAN بود.
This book has been written with the support of Huawei's large accumulation of technical knowledge and experience in the WLAN field, as well as its understanding of customer service requirements. First, the book covers service challenges facing enterprise wireless networks, along with detailing the latest evolution of Wi-Fi standards, air interface performance, and methods for improving user experience in enterprise scenarios. Furthermore, it illustrates typical networking, planning, and scenario-specific design for enterprise WLANs, and provides readers with a comprehensive understanding of enterprise WLAN planning, design, and technical implementation, as well as suggestions for deployment.
This is a practical and easy-to-understand guide to WLAN design, and is written for WLAN technical support and planning engineers, network administrators, and enthusiasts of network technology.
Authors
Rihai Wu is Chief Architect of Huawei's campus network WLAN solution with 16 years of experience in wireless communications product design and a wealth of expertise in network design and product development. He previously served as a designer and developer of products for Wideband Code Division Multiple Access (WCDMA), LTE indoor small cells, and WLAN.
Xun Yang is a WLAN standard expert from Huawei. He has nine years of experience in formulating WLAN standards, and previously served as 802.11ac Secretary, 802.11ah PHY Ad-hoc Co-chair, and 802.11ax MU Ad Hoc Sub Group Co-chair. Mr. Yang oversees technical research, the promotion of standards, and industrialization in the WLAN field, and has filed more than 100 patents.
Xia Zhou is a documentation engineer of Huawei's campus network WLAN solution. She has 10 years of experience in creating documents for campus network products. Ms. Zhou was previously in charge of writing manuals for Huawei data center switches, WLAN products, and campus network solutions. She is also the author of Campus Network Solution Deployment Guide and was a co-sponsor of technical sessions such as WLAN from Basics to Proficiency.
Yibo Wang is a documentation engineer of Huawei's campus network WLAN solution. He has nine years of experience in creating documents for campus network products. Mr. Wang was previously in charge of writing manuals for Huawei switches, WLAN products, and routers. He was also a co-sponsor of technical sessions such as WLAN from Basics to Proficiency and HCIA-WLAN certification training courses.
Cover Half Title Series Page Title Page Copyright Page Table of Contents Summary Introduction Acknowledgments Authors Chapter 1 Enterprise WLAN Overview 1.1 HISTORY OF ENTERPRISE WLAN DEVELOPMENT 1.1.1 Phase 1: Initial Mobile Office Era — Wireless Networks As a Supplement to Wired Networks 1.1.2 Phase 2: Wireless Office Era — Integration of Wired and Wireless Networks 1.1.3 Phase 3: All-Wireless Office Era — All-Wireless Office, Wireless-Centric 1.2 CHALLENGES FACED BY ENTERPRISE WLANS 1.2.1 WLAN Services Require Ultra-Large Bandwidth 1.2.2 Wi-Fi Technology Bottlenecks Affect User Experiences 1.2.3 The Security of WLAN Services Is Questioned 1.2.4 The Growth of Network Devices Leads to More Complex Planning, Deployment, and Maintenance 1.2.5 Challenges Regarding WLAN and IoT Convergence 1.3 NEXT-GENERATION ENTERPRISE WLAN SOLUTIONS 1.3.1 Support for 802.11ax to Meet Ultra-High Bandwidth Requirements 1.3.2 Innovative Wireless Air Interface Technology, Providing Excellent User Experience 1.3.3 Integrated Security Technologies to Enable Comprehensive Wireless Protection 1.3.4 Scenario-Based Network Planning, Deployment, and Maintenance 1.3.5 WLAN and IoT Convergence Solution Chapter 2 WLAN Technology Basics 2.1 CONCEPT OF WIRELESS COMMUNICATION 2.1.1 Radio Waves 2.1.2 Wireless Communications System 2.1.2.1 Source Coding 2.1.2.2 Channel Coding 2.1.2.3 Modulation 2.1.2.4 Channel 2.1.3 Channel Rate and Bandwidth 2.2 WLAN KEY TECHNOLOGIES 2.2.1 Modulation Technology 2.2.2 OFDM 2.2.2.1 Principles 2.2.2.2 Advantages and Disadvantages 2.2.2.3 Applications 2.2.3 Channel Bonding 2.2.4 MIMO 2.2.4.1 Basic Concepts 2.2.4.2 Relationship between Spatial Streams and the Number of Antennas 2.2.4.3 Beamforming 2.2.4.4 MU-MIMO 2.2.5 OFDMA 2.2.6 CSMA/CA 2.2.6.1 CS 2.2.6.2 IFS 2.2.6.3 RB 2.3 802.11 STANDARDS 2.3.1 Origin (802.11–1997) 2.3.2 Enhancement (802.11b and 802.11 a) 2.3.3 Standard Extension and Compatibility (802.11g) 2.3.4 MIMO-OFDM-Based HT (802.11n) 2.3.5 VHT (802.11ac) 2.3.6 HEW (802.11ax) 2.3.7 Comparisons between 802.11 Standards 2.4 802.11AX STANDARDS 2.4.1 802.11ax Overview 2.4.1.1 Physical-Layer Technology of 802.11ax 2.4.1.2 MAC-Layer Technology of 802.11ax 2.4.2 High Efficiency PPDU 2.4.2.1 Pre-HE Modulated Fields 2.4.2.2 HE Modulated Fields 2.4.3 Throughput Improvement 2.4.3.1 High-Order Modulation Scheme 2.4.3.2 OFDM Subcarrier Division 2.4.3.3 Preamble Puncturing 2.4.4 Novel Multiuser Features 2.4.4.1 Introduction to Multiuser Features 2.4.4.2 Multiuser Transmission 2.4.4.3 BSR 2.4.4.4 Fragment Transmission and A-MPDU Enhancement 2.4.4.5 Channel Measurement 2.4.4.6 Channel Protection 2.4.4.7 MU EDCA 2.4.4.8 OFDMA-Based Random Access 2.4.4.9 NDP Feedback 2.4.5 Anti-interference and Spatial Reuse 2.4.5.1 OBSS-PD-Based Spatial Reuse 2.4.5.2 SRP-Based Spatial Reuse 2.4.5.3 Two NAVs 2.4.6 Energy Saving 2.4.6.1 TWT 2.4.6.2 OMI 2.4.6.3 20 MHz-Only STAs 2.4.6.4 Others 2.5 802.11AX PERFORMANCE EVALUATION 2.5.1 Impact of Different Transmission Modes on Uplink Throughput 2.5.2 Test on Uplink Throughput Improvement Using the AP Scheduling Algorithms 2.5.3 Test on Throughput Improvement Using Various Technologies 2.6 802.11AX STANDARD ACCELERATES INDUSTRY DEVELOPMENT 2.6.1 Enterprise Offices 2.6.2 Education 2.6.3 Healthcare 2.6.4 Finance 2.6.5 Airports 2.6.6 Manufacturing 2.6.7 Next-Generation Wi-Fi Chapter 3 Air Interface Performance and User Experience Improvement 3.1 KEY FACTORS AFFECTING WLAN PERFORMANCE 3.1.1 Usable Bandwidth Per User Decreases 3.1.2 User Collision Is Unavoidable 3.1.3 Hidden Nodes Cause Failures in the CSMA/CA Mechanism 3.2 OPTIMIZATION METHODS FOR WLAN PERFORMANCE 3.2.1 Radio Calibration 3.2.2 STA Roaming and Scheduling 3.2.3 Anti-interference Technology 3.2.4 Air-Interface QoS 3.2.5 Antenna Technology 3.3 RADIO CALIBRATION 3.3.1 Technological Background 3.3.2 Automatic Radio Calibration Techno logy 3.3.2.1 Obtaining Network Status Information 3.3.2.2 Automatic Transmit Power Control 3.3.2.3 Automatic Band Adjustment 3.3.2.4 Automatic Adjustment of Channels and Bandwidth 3.3.3 Applications and Benefits 3.3.3.1 Manual Radio Calibration 3.3.3.2 Scheduled Radio Calibration 3.3.3.3 Event-Triggered Radio Calibration 3.4 STA ROAMING AND SCHEDULING 3.4.1 Roaming Overview 3.4.1.1 Technological Background 3.4.1.2 Fast Roaming Principles 3.4.1.3 Principles of 802.11k Assisted Roaming 3.4.2 Smart Roaming 3.4.2.1 Principles of Smart Roaming 3.4.2.2 Applications of Smart Roaming 3.4.3 Band Steering 3.4.3.1 Technological Background 3.4.3.2 Band Steering Principles 3.4.3.3 Applications of Band Steering 3.4.4 Load Balancing 3.4.4.1 Technological Background 3.4.4.2 Load Balancing Principles 3.4.4.3 Applications of Load Balancing 3.5 ANTI-INTERFERENCE TECHNOLOGY 3.5.1 Spectrum Analysis 3.5.1.1 Technological Background 3.5.1.2 Huawei’s Spectrum Analysis Principles 3.5.1.3 Applications of Spectrum Analysis 3.5.2 Clear Channel Assessment 3.5.2.1 Technological Background 3.5.2.2 Working Principles 3.5.2.3 Applications of CCA 3.5.3 Request To Send/Clear to Send 3.5.3.1 Technological Background 3.5.3.2 Working Principles 3.5.3.3 Applications of RTS/CTS 3.5.4 AMC Algorithm 3.5.4.1 Background 3.5.4.2 Principles 3.5.4.3 Applications 3.6 AIR INTERFACE QOS 3.6.1 Dynamic EDCA 3.6.1.1 Technological Background 3.6.1.2 Principles of Huawei’s Dynamic EDCA 3.6.1.3 Applications and Benefits of Dynamic EDCA 3.6.2 Voice and Video Packet Identification 3.6.2.1 Technological Background 3.6.2.2 Technological Principles 3.6.2.3 Applications and Benefits 3.6.3 Airtime Scheduling 3.6.3.1 Technological Background 3.6.3.2 Technological Principles 3.6.3.3 Applications and Benefits 3.7 ANTENNA TECHNOLOGIES 3.7.1 Types and Main Specifications 3.7.1.1 Antenna Types 3.7.1.2 Main Specifications 3.7.2 Smart Antenna Technologies 3.7.2.1 Principles 3.7.2.2 Beam Selection 3.7.2.3 Applications of Smart Antennas 3.7.3 High-Density Antenna Technologies 3.8 AI-POWERED IMPROVEMENT IN RADIO PERFORMANCE Chapter 4 WLAN Security and Defense 4.1 WLAN SECURITY THREATS 4.2 WLAN SECURITY MECHANISMS 4.2.1 Common WLAN Access Authentication Modes 4.2.1.1 WEP 4.2.1.2 WPA/WPA2 4.2.1.3 WPA3 4.2.1.4 WAPI 4.2.2 WLAN User Authentication Modes 4.2.3 Wireless Attack Detection and Countermeasure 4.2.3.1 Basic Concepts 4.2.3.2 WIDS 4.2.3.3 Rogue Device Containment Chapter 5 WLAN and IoT Convergence 5.1 WIRELESS IoT TECHNOLOGIES 5.1.1 Overview of Wireless IoT Technologies 5.1.2 Multinetwork Convergence of Wireless Communications Technologies 5.2 APPLICATION SCENARIOS OF IoT APS 5.2.1 Enterprise IoT 5.2.2 Internet of Medical Things (IoMT) 5.2.3 Shopping Mall and Supermarket IoT Chapter 6 WLAN Positioning Technologies 6.1 DEVELOPMENT BACKGROUND OF WIRELESS POSITIONING TECHNOLOGIES 6.2 TECHNICAL PRINCIPLES OF WIRELESS POSITIONING 6.2.1 RF Pattern Matching 6.2.1.1 RSSI-Based RF Pattern Matching 6.2.1.2 CSI-Based RF Pattern Matching 6.2.2 Geometric Positioning 6.2.2.1 Propagation Distance Measurement 6.2.2.2 AoA Measurement 6.2.2.3 Trilateration 6.2.2.4 Triangulation 6.2.2.5 Hyperbolic Localization 6.3 SHORT-RANGE WIRELESS POSITIONING TECHNOLOGY IMPLEMENTATION METHODS 6.3.1 Application of Indoor Positioning Technologies in Short-Range Wireless Communications Systems 6.3.1.1 Wi-Fi 6.3.1.2 Bluetooth 6.3.1.3 UWB 6.3.2 Evaluation Counters of Indoor Positioning Solutions 6.3.2.1 Precision 6.3.2.2 Power Consumption 6.3.2.3 Cost 6.3.3 Comparison of Short-Range Wireless Positioning Solutions 6.4 REQUIREMENT-BASED POSITIONING SYSTEM DESIGN 6.4.1 Introduction to Positioning Systems 6.4.2 Network-Side Positioning Solutions 6.4.3 Terminal-Side Positioning Solutions Chapter 7 Enterprise WLAN Networking Design 7.1 WLAN COMPOSITION 7.1.1 Basic Units of a WLAN 7.1.2 Distribution System 7.2 WLAN NETWORKING ARCHITECTURE 7.2.1 Fat AP Architecture 7.2.2 WAC+Fit AP Architecture 7.2.2.1 Networking Mode 7.2.2.2 Data Forwarding Mode 7.2.2.3 VLAN Planning 7.2.2.4 IP Address Planning 7.2.2.5 Comparison of Typical WAC+Fit AP Networking Modes 7.2.2.6 WAC Backup 7.2.2.7 Inter-WAC Roaming 7.2.2.8 Navi WAC 7.2.3 Cloud Management Architecture 7.2.4 Leader AP Architecture 7.2.5 Agile Distributed Architecture 7.2.6 Development of Next-Generation Networking Architecture 7.2.6.1 Network Layer 7.2.6.2 Management Layer 7.2.6.3 Application Layer 7.2.6.4 WLAN for Intent-Driven Campus 7.3 TYPICAL WLAN NETWORKING SOLUTIONS 7.3.1 Networking Solutions for Large Campuses 7.3.1.1 Independent WAC Solution 7.3.1.2 Native WAC Solution 7.3.2 Enterprise Branch Networking Solution 7.3.2.1 Large-Sized Enterprise Branch WLAN Networking 7.3.2.2 Small-Sized Branch WLAN Networking 7.3.3 Small- and Medium-Sized Enterprises and Small- and Micro-Branch Networking Solution 7.3.3.1 Small- and Micro-Branch Networking 7.3.3.2 Small- and Medium-Sized Enterprise Networking Chapter 8 Enterprise WLAN Planning and Design 8.1 NETWORK PLANNING AND DESIGN CONCEPT 8.2 NETWORK PLANNING PROCESS 8.3 REQUIREMENT COLLECTION AND ONSITE SURVEY 8.3.1 Requirement Collection 8.3.2 Site Survey 8.3.2.1 Tools 8.3.2.2 Site Survey Items 8.3.2.3 Signal Attenuation Caused by Obstacles 8.4 NETWORK COVERAGE DESIGN 8.5 NETWORK CAPACITY DESIGN 8.5.1 Single-AP Performance 8.5.2 WLAN STA Concurrency Rate in Typical Scenarios 8.5.3 Single-User Bandwidth Requirement Estimation 8.5.4 AP Quantity Estimation 8.6 AP DEPLOYMENT DESIGN 8.6.1 AP Deployment Scenarios 8.6.2 Channel Planning 8.7 POWER SUPPLY AND CABLING DESIGN 8.7.1 Power Supply 8.7.1.1 PoE Power Supply 8.7.1.2 DC Power Supply Using Adapters 8.7.2 Cabling Design Chapter 9 Scenario-Based Enterprise WLAN Design 9.1 ENTERPRISE OFFICES 9.1.1 Business Characteristics 9.1.2 Best Practices of Network Design 9.1.3 Network Planning 9.2 STADIUMS/EXHIBITION HALLS 9.2.1 Business Characteristics 9.2.2 Best Practices of Network Design 9.2.3 Network Planning 9.3 HOTEL ROOMS, DORMITORIES, AND HOSPITAL WARDS 9.3.1 Business Characteristics 9.3.2 Best Practices of Network Design 9.3.3 Network Planning 9.4 CLASSROOMS 9.4.1 Business Characteristics 9.4.2 Best Practices of Network Design 9.4.3 Network Planning 9.5 SHOPPING MALLS, SUPERMARKETS, AND RETAIL CHAINS 9.5.1 Business Characteristics 9.5.2 Best Practices of Network Design 9.5.3 Network Planning 9.6 SQUARES AND STREETS 9.6.1 Business Characteristics 9.6.2 Best Practices of Network Design 9.6.3 Network Planning 9.7 PRODUCTION WORKSHOPS AND WAREHOUSES 9.7.1 Business Characteristics 9.7.2 Best Practices of Network Design 9.7.3 Network Planning Chapter 10 Enterprise WLAN O&M 10.1 ROUTINE MONITORING 10.1.1 Monitoring Method 10.1.2 Major Monitoring Metric 10.2 NETWORK INSPECTION 10.3 DEVICE UPGRADE 10.3.1 Procedures 10.3.2 Viewing the Upgrade Status 10.3.3 Upgrade Precautions 10.4 TROUBLESHOOTING 10.5 INTELLIGENT O&M 10.5.1 User Experience Visibility 10.5.2 Fault Identification and Proactive Prediction 10.5.3 Fault Locating and Root Cause Analysis 10.5.4 Network O&M Mode Transformed by Intelligent O&M ACRONYMS AND ABBREVIATIONS BIBLIOGRAPHY