The North America GNSS Simulators Market should witness market growth of 7.8% CAGR during the forecast period (2022-2028).
Multiplying the recorded travel time by the signal's speed yields the actual distance between the satellite and the receiver. In a vacuum, the signal travels at the speed of light, or 300 km/s; in the Earth's atmosphere, it is a bit slower. Therefore, to achieve a measurement precision of a few meters, the satellite and receiver times must be known with a precision of around 10 microseconds. This necessitates that satellites be able to preserve time to within 10 microseconds!!
This timing precision is only achievable with atomic clocks. Since timekeeping is one of the most crucial components of a GNSS satellite, they carry several atomic clocks for redundancy. In addition, the ground segment monitors the clock behavior, and in addition to time-stamping the signals, satellites also broadcast their onboard clocks' offset, rate, and rate. Due to the need for precise timing, the European GNSS Galileo intends to utilize very sophisticated clocks known as Hydrogen masers. This is one of the system's distinctive characteristics.
As proof of concept and to make it "space proved," the GIOVE-B satellite is carrying an H-maser. Unfortunately, the Block-IIF and Block-III evolutions of the GPS do not intend to employ such sophisticated clocks. The anticipated (major) benefit of the H-Maser is that its behavior over several hours may be predicted with greater precision. Because the receiver must calculate the inaccuracy of its clock, it can determine time with astounding precision.
So, a GNSS-based clock would be extremely precise! There are now various GPS wristwatches on the market; but, due to their high battery consumption, they are relatively big. However, timing is one of the fields in which GPS is utilized extensively. Any application that requires precise timing utilizes a GPS receiver. Examples include the timekeeping of computer systems, the time stamping of financial transactions (extremely crucial!), and communication systems. Office computer's time is likely derived from GPS.
The U.S. Geological Survey (USGS) employs Global Navigation Satellite Systems (GNSS) technology to monitor natural hazards, provide geographic control for climate and land use change, and collect data required for investigative research about water, the environment, energy, and ecosystems. The vertical datum is crucial to a number of these interdisciplinary earth sciences. A single-base real-time (RT) survey consists of a roaming receiver reinforced by a single-base station receiver. This is the most frequent type of real-time technique.
The US market dominated the North America GNSS Simulators Market by Country in 2021; thereby, achieving a market value of $76.7 million by 2028. The Canada market is experiencing a CAGR of 10.3% during (2022-2028). Additionally, The Mexico market would exhibit a CAGR of 9.3% during (2022-2028).
Based on Receiver, the market is segmented into GPS, Galileo, GLONASS, BeiDou, and Others. Based on Application, the market is segmented into Navigation & Mapping, Surveying, Location-based Services, Vehicle Assistance System, and Others. Based on Component, the market is segmented into Hardware, Software, and Services (Professional Services and Managed Services). Based on Vertical, the market is segmented into Military & Defense, Consumer Electronics, Automotive, Marine, Aerospace, and Others. Based on countries, the market is segmented into U.S., Mexico, Canada, and Rest of North America.
The market research report covers the analysis of key stake holders of the market. Key companies profiled in the report include Spirent Communications plc, Keysight Technologies, Inc., Viavi Solutions, Inc., Hexagon AB, U-blox Holding AG, Rohde & Schwarz GmbH & Co. KG, Syntony GNSS, RACELOGIC Ltd., Averna Technologies, Inc. and Accord Software & Systems Private Limited.
Multiplying the recorded travel time by the signal's speed yields the actual distance between the satellite and the receiver. In a vacuum, the signal travels at the speed of light, or 300 km/s; in the Earth's atmosphere, it is a bit slower. Therefore, to achieve a measurement precision of a few meters, the satellite and receiver times must be known with a precision of around 10 microseconds. This necessitates that satellites be able to preserve time to within 10 microseconds!!
This timing precision is only achievable with atomic clocks. Since timekeeping is one of the most crucial components of a GNSS satellite, they carry several atomic clocks for redundancy. In addition, the ground segment monitors the clock behavior, and in addition to time-stamping the signals, satellites also broadcast their onboard clocks' offset, rate, and rate. Due to the need for precise timing, the European GNSS Galileo intends to utilize very sophisticated clocks known as Hydrogen masers. This is one of the system's distinctive characteristics.
As proof of concept and to make it "space proved," the GIOVE-B satellite is carrying an H-maser. Unfortunately, the Block-IIF and Block-III evolutions of the GPS do not intend to employ such sophisticated clocks. The anticipated (major) benefit of the H-Maser is that its behavior over several hours may be predicted with greater precision. Because the receiver must calculate the inaccuracy of its clock, it can determine time with astounding precision.
So, a GNSS-based clock would be extremely precise! There are now various GPS wristwatches on the market; but, due to their high battery consumption, they are relatively big. However, timing is one of the fields in which GPS is utilized extensively. Any application that requires precise timing utilizes a GPS receiver. Examples include the timekeeping of computer systems, the time stamping of financial transactions (extremely crucial!), and communication systems. Office computer's time is likely derived from GPS.
The U.S. Geological Survey (USGS) employs Global Navigation Satellite Systems (GNSS) technology to monitor natural hazards, provide geographic control for climate and land use change, and collect data required for investigative research about water, the environment, energy, and ecosystems. The vertical datum is crucial to a number of these interdisciplinary earth sciences. A single-base real-time (RT) survey consists of a roaming receiver reinforced by a single-base station receiver. This is the most frequent type of real-time technique.
The US market dominated the North America GNSS Simulators Market by Country in 2021; thereby, achieving a market value of $76.7 million by 2028. The Canada market is experiencing a CAGR of 10.3% during (2022-2028). Additionally, The Mexico market would exhibit a CAGR of 9.3% during (2022-2028).
Based on Receiver, the market is segmented into GPS, Galileo, GLONASS, BeiDou, and Others. Based on Application, the market is segmented into Navigation & Mapping, Surveying, Location-based Services, Vehicle Assistance System, and Others. Based on Component, the market is segmented into Hardware, Software, and Services (Professional Services and Managed Services). Based on Vertical, the market is segmented into Military & Defense, Consumer Electronics, Automotive, Marine, Aerospace, and Others. Based on countries, the market is segmented into U.S., Mexico, Canada, and Rest of North America.
The market research report covers the analysis of key stake holders of the market. Key companies profiled in the report include Spirent Communications plc, Keysight Technologies, Inc., Viavi Solutions, Inc., Hexagon AB, U-blox Holding AG, Rohde & Schwarz GmbH & Co. KG, Syntony GNSS, RACELOGIC Ltd., Averna Technologies, Inc. and Accord Software & Systems Private Limited.
Scope of the Study
By Type
- Multi Channel
- Single Channel
By Receiver
- GPS
- Galileo
- GLONASS
- BeiDou
- Others
By Application
- Navigation & Mapping
- Surveying
- Location-based Services
- Vehicle Assistance System
- Others
By Component
- Hardware
- Software
- Services
- Professional Services
- Managed Services
By Vertical
- Military & Defense
- Consumer Electronics
- Automotive
- Marine
- Aerospace
- Others
By Country
- US
- Canada
- Mexico
- Rest of North America
Key Market Players
List of Companies Profiled in the Report:
- Spirent Communications plc
- Keysight Technologies, Inc.
- Viavi Solutions, Inc.
- Hexagon AB
- U-blox Holding AG
- Rohde & Schwarz GmbH & Co. KG
- Syntony GNSS
- RACELOGIC Ltd.
- Averna Technologies, Inc.
- Accord Software & Systems Private Limited
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- Exhaustive coverage
- The highest number of Market tables and figures
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Table of Contents
Chapter 1. Market Scope & Methodology
Chapter 2. Market Overview
Chapter 3. Competition Analysis - Global
Chapter 4. North America GNSS Simulators Market by Type
Chapter 5. North America GNSS Simulators Market by Receiver
Chapter 6. North America GNSS Simulators Market by Application
Chapter 7. North America GNSS Simulators Market by Component
Chapter 8. North America GNSS Simulators Market by Vertical
Chapter 9. North America GNSS Simulators Market by Country
Chapter 10. Company Profiles
Companies Mentioned
- Spirent Communications plc
- Keysight Technologies, Inc.
- Viavi Solutions, Inc.
- Hexagon AB
- U-blox Holding AG
- Rohde & Schwarz GmbH & Co. KG
- Syntony GNSS
- RACELOGIC Ltd.
- Averna Technologies, Inc.
- Accord Software & Systems Private Limited
Methodology
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