Press release
Global and U.S. GNSS Receiver Components Market Report, Published by QY Research.
GNSS Receiver Components are the core hardware and software building blocks that enable devices to receive and process satellite signals from GPS, GLONASS, Galileo, and BeiDou constellations. Key elements include RF front-ends, baseband processors, antennas, oscillators, and firmware stacks, which together deliver precise positioning, navigation, and timing (PNT) data.https://www.qyresearch.com/reports/3682162/gnss-receiver-components
Core market data:
Global Market Size (2024): USD 6.8 billion
CAGR (2024-2030): 5.6%
Unit Price (Average): USD 4
Annual Production Units: 1.7 billion units
Gross Margin: ~42%
Production Capacity: 2.4 billion units
List of Main players:
Qualcomm
Broadcom
MediaTek
STMicroelectronics
u-blox
Skyworks Solutions
Intel
Quectel
NovAtel
Rohde & Schwarz
Trimble
Texas Instruments
Rockwell Collins
Tallysman
Septentrio
Hemisphere GNSS
Furuno Electric
Navcom Technology
Upstream supply depends on advanced semiconductor fabs for RFIC and baseband SoC fabrication, MEMS sensor suppliers for integrated inertial components, frequency synthesizer and temperature-compensated crystal oscillator (TCXO/OCXO) manufacturers, as well as advanced RF packaging and substrate providers. Raw materials include high-purity silicon wafers, rare earth metals for oscillators, and low-loss PCB laminates. Downstream demand is driven by automotive OEMs integrating GNSS modules into ADAS and navigation systems, mobile device makers embedding GNSS chips in smartphones and tablets, telecom operators deploying network synchronization systems, and industrial automation companies using GNSS timing for precision robotics, surveying, and asset tracking. System integrators and module assemblers act as key intermediaries linking chipmakers to end-product manufacturers.
Modern GNSS components leverage dual- and multi-frequency signal tracking (L1/L2/L5, E1/E5), carrier-phase measurement for centimeter-level accuracy, and advanced error correction via Real-Time Kinematics (RTK) and Precise Point Positioning (PPP) techniques. They also incorporate anti-jamming and anti-spoofing algorithms based on adaptive filtering, cryptographic signal authentication, and beamforming with multi-element antennas. Tight integration with 5G and Internet of Things (IoT) modules allows low-latency corrections through edge networks and cloud-based augmentation services. Increasingly, GNSS chips embed low-power AI accelerators to dynamically optimize satellite selection and mitigate multipath effects in dense urban environments.
The next generation of GNSS receiver components will focus on AI-based signal correction that fuses data from multi-constellation GNSS, Inertial Measurement Unit (IMU), Light Detection and Ranging (LiDAR), and vision sensors to enhance performance under challenging conditions. Quantum-enhanced atomic clocks and chip-scale timing modules are expected to improve synchronization accuracy for critical infrastructure and 5G base stations. GNSS + sensor fusion architectures will enable continuous positioning in GNSS-denied environments like tunnels or urban canyons. Additionally, integration into autonomous vehicles, drones, and emerging satellite Internet of Things (sat-IoT) networks will drive miniaturization, ultra-low-power designs, and resilient operation under space-grade radiation and thermal conditions. These trends are poised to transform GNSS receiver components from standalone chips into intelligent, multimodal positioning engines.
For Inquiries:
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Canada: +1-778-907-6631
China: +86-150-1303-8387
Japan: +81-90-3800-9273
South Korea: +82-2883-1278
India: +91-866-9986-909
Indonesia: +62-818-510-991
Germany: +49-15788468916
Switzerland: +41-765899438
Portugal: +351-910983247
Email: global@qyresearch.com
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