6G Core Tech: FR3, xMIMO, ISAC, AI RAN & NTN Explained
Foundation technologies of 6G : Learn how FR3 Spectrum, xMIMO, ISAC, AI-Native RAN and Non-Terrestrial Networks (NTN) will transform connectivity in 2030.
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Foundation technologies of 6G : Learn how FR3 Spectrum, xMIMO, ISAC, AI-Native RAN and Non-Terrestrial Networks (NTN) will transform connectivity in 2030.
Discover the core PHY and MAC features of Wi-Fi 8 (802.11bn). Learn how DRU, MAPC, and ELR provide ultra-high reliability for next-gen networks.

Explore WiFi 7 Extremely High Throughput (EHT) frame structure based on IEEE 802.11be, including preamble, EHT-SIG fields, and data field enhancements.

Explore Wi-Fi 8 frame formats as per 802.11bn. A deep dive into UHR MU, TB and ELR PPDU structures for ultra high reliability and extended range connectivity.
Learn the 4 pillars of Wi-Fi 8 including PHY Efficiency, Spectrum Flexibility, Multi-AP Intelligence and Power/Roaming. How 802.11bn ensures reliability.

Explore the WiFi 7 MAC layer advancements, including multi-link operation, enhanced MU capabilities, and frame structures for efficient AP and STA communication.

Explore the WiFi 7 physical layer (PHY) with a block diagram of transmitter modules for Access Points (APs) and Stations (STAs). Key enhancements and differences explained.

Explore essential Wi-Fi 7 transmitter measurements, including EVM, spectral flatness, and emission mask, to ensure signal quality, regulatory compliance, and optimal network performance.
This article on Wi-Fi 7 network planning covers site survey, RF link budget and deployment guide including tools and Access Point (AP) Selection.
Discover the benefits of RF Gallium Nitride (GaN) technology. Learn about its high power applications, market growth, and top RF GaN manufacturers.

Explore WiFi 7 PPDU Formats and their fields as per 802.11be including HE MU PPDU, ETH MU PPDU, HE TB PPDU and ETH TB PPDU.
Learn how Wi-Fi 7 improves QoS with MLO, R-TWT, TSN-inspired scheduling for low latency, efficiency and reliability across wireless deployments.
Understand the difference between Digital Predistortion (DPD) and Digital Post-Distortion (DPoD) and why receiver side compensation is vital for 6G.
Compare glass and silicon interposers for advanced RF packaging. Learn why glass is emerging as the preferred platform for mmWave and sub-THz systems.

Explore WiFi 7 architecture, including PHY/MAC layer enhancements, MLO, and benefits like higher data rates, reduced latency, and improved spectrum efficiency.

Learn Wi-Fi 7 MU-MIMO basics and explore advantages or benefits of MU-MIMO.

Learn Wi-Fi 7 Multi-RU and Preamble Puncturing.Explore difference between them including benefits of puncturing.

Explore impedance matching circuits (L networks, Pi networks) and devices (baluns, stubs, quarter-wave transformers) for maximum power transfer in RF systems.

Learn how to design a 1 GHz Hairpin Bandpass Filter (BPF) using RF simulation software. The article includes substrate specifications and simulation results.

Explore the 10 Gigabit Ethernet (10GbE) physical layer, its subgroups (10GBASE-R, X, T, W), and sublayers like XGMII, PCS, PMA, PMD, and MDI. Learn their functions and specifications.

Explores the architecture and features of the 100 Gigabit Ethernet Physical Layer (PHY), including PCS sublayer, multilane transmitter and receiver concepts.
Explore the distinctions between 802.11ac Wave1 and Wave2, including channel bandwidth, speed, and beamforming capabilities. Understand the evolution of WLAN technology.

Explore the architecture and sublayers of the 40 Gigabit Ethernet physical layer, including RS, XLGMII, PCS, FEC, PMA, PMD, and AN.

Explore 4096-QAM modulation in Wi-Fi 7, including its benefits, drawbacks, and applications in high-bandwidth wireless communication.
Compare traditional Quality of Service (QoS) with 6G's new Quality of Security (QoSec). Understand the shift to adaptive, context-aware defense.
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