Showing posts with label Septentrio. Show all posts
Showing posts with label Septentrio. Show all posts

Thursday, 2 October 2025

Ultra-compact modules enable reliable positioning.

Volume shipments of the recently announced mosaic-G5 modules have been initiated by Septentrio. Measuring only 23 mm by 16 mm and weighing as little as 2.2 grams mosaic-G5 enables reliable positioning without performance compromises for commercial UAVs, robots, GIS devices and many other size and power-constrained industrial applications. Advanced GNSS technology from Septentrio provides enhanced positioning availability even in challenging environments where GNSS signals are degraded or obstructed.

“We have had a lot of interest in the mosaic-G5 module series since its announcement earlier this year. After successful beta testing with various customers, I am pleased to say that we have now started shipping volume orders,” commented François Freulon, Director of Product Management at Septentrio.

The broad choice of receiver modules within the extended mosaic family empowers users to choose the right balance of performance and cost that best suits their needs. The quad-band mosaic-G5 P3 and the triple band heading module mosaic-G5 P3H bring positioning availability in challenging environments and are tailored for applications such as mapping or light show drones. The new modules complement the mosaic product line, where the renowned mosaic-X5 receiver remains as the benchmark for world-leading GNSS open signal anti-jamming and anti-spoofing resilience in a small form factor.

For easy testing and prototyping, the mosaic-go G5 evaluation kit can now be purchased via the Septentrio webshop. It offers direct autopilot connections, while the free RxTools user interface assists with the setup and evaluation process.

The mosaic-go G5 evaluation kit enables easy testing and prototyping of the mosaic-G5 P3 and P3H modules.


@Septentrio @HexagonAB #Communications #Position



Monday, 5 February 2024

GNSS Antenna.

Septentrio has announced AntaRx-Si3. This is the first GNSS1/INS (Inertial Navigation System) Smart Antenna on the market in an ultra-rugged enclosure, designed for easy installation on machines such as agriculture robots. AntaRx-Si3 is the new member of the family of receivers leveraging FUSE+, which is designed to answer the need for position availability in tough industrial environments where GNSS signal reception may be temporarily compromised, such as under foliage. The IMU sensor in FUSE+ also improves positioning integrity2 and reliability, which is critical for autonomous systems.

“With AntaRx-Si3 you get a receiver delivering positioning information with a high level of availability and integrity, that you can install with minimal effort. This is especially beneficial for after-market upgrades. It also allows removal of this valuable component at the end of the day to protect against theft or vandalism,” commented Danilo Sabbatini, Product Manager of GNSS/INS at Septentrio.


The AntaRx-Si3 smart antenna is robust inside and out. It is designed to be mounted outside on a machine for operation in harsh environments out in the field. Enclosed in an impact resistant polycarbonate IP69K housing it can handle high levels of shocks and vibrations. This multi-frequency receiver delivers Septentrio’s field proven high-accuracy RTK positioning down to the centimeter level. AntaRx-Si3 has a built-in 4G cell modem, so there is no need for additional modem integration to acquire high-accuracy corrections.


AntaRx-Si3 leverages Septentrio’s GNSS+ algorithms with advanced multipath mitigation, which allows uninterrupted operation in environments where satellite signals could be reflected off nearby machinery or high structures such as silos. It delivers positioning at a high update rate and low latency, which are critical for control loops in autonomous movement or rotation. 



1Global Navigation Satellite System including the American GPS, European Galileo, Russian GLONASS, Chinese BeiDou, Japan’s QZSS and India’s NavIC. These satellite constellations broadcast positioning information to receivers which use it to calculate their absolute position.


2 Integrity is the measure of how truthful the positioning information really is. It gives an idea about the accuracy of the position so that one can make a judgement on how much to rely on the positioning under current conditions. For example, the current positioning may be temporarily less accurate than desired, under certain challenging conditions, such as near high structures which block GNSS satellites. Integrity information conveys the extent of accuracy degradation so the user can factor that in.


See also: Smart antenna for machine automation. (15/1/2024)


@Septentrio #Communications #Agriculture #Automation

Monday, 15 January 2024

Smart antenna for machine automation.

A high-performance GPS/GNSS receiver and an antenna in a single ruggedised housing offers multiple communications options.

A new smart antenna, ideal for machine automation and control in construction, precision agriculture and logistics has been announced by Septentrio. The AntaRx smart antenna is robust inside and out. Enclosed in a ruggedized housing, it can handle high levels of shocks and vibrations and is ready for operation in harsh industrial environments. 


Built on their long standing GNSS* experience, this multi-frequency receiver delivers high-accuracy RTK positioning down to the centimeter level. Equipment manufacturers and system integrators can benefit from the versatile offering including INS (Inertial Navigation System) integration, dual antenna mode, and 4G cellular communication.

“AntaRx combines the renowned positioning quality of Septentrio with a high-quality antenna, in a rugged and compact housing for simplified installation. The product targets industrial applications such as construction and mining, offering a high degree of robustness validated through extensive testing against industry standards,” stated Silviu Taujan, Product Manager at Septentrio. “AntaRx is available in several configurations, either as a GNSS smart antenna or as a GNSS/INS smart antenna system, integrating an industry leading IMU (Inertial Measurement Unit).”

Septentrio adds AntaRx to their established machine control GNSS receiver portfolio, with positioning solutions used by some of the largest construction companies in the world. This receiver technology integrates Septentrio’s GNSS+ algorithms, including advanced multipath mitigation, which allows uninterrupted operation in challenging conditions such as near high structures or machinery. High update rate and low latency ensure accurate plan execution during fast movement or rotation. AntaRx smart antenna is available now, for more information about this product or other Machine Control solutions please contact Septentrio.


* Global Navigation Satellite System including the American GPS, European Galileo, Russian GLONASS, Chinese BeiDou, Japan’s QZSS and India’s NavIC. These satellite constellations broadcast positioning information to receivers which use it to calculate their absolute position.
See also "Can you really trust your GPS position?" (27/9/2022)

@Septentrio #Communications #Agriculture #Automation

Tuesday, 27 September 2022

Can you really trust your GPS position?

GPS/GNSS integrity and why it is important to users, especially to those using high-accuracy GPS on robotic devices, autonomous applications, and other automated systems is discussed here by Septentrio's Maria Simsky. 


A French vineyard in the Loire valley is a beautiful sight, but the farm has trouble recruiting workers to weed their organically grown grapes. The young generation has moved to the cities leaving urban communities short on workforce. 

Solution: a fully autonomous tractor, developed by a French-based company Sitia, working tirelessly to weed the narrow rows between the grape vines. After a full month of weeding and hundreds of kilometers covered, Sitia approached the farmer to review the work done, and reimburse 2 grape vines, which were damaged during the month of operation. They were surprised to hear the farmer exclaim, “When I use my manual tractor to get the same job done, I damage at least two vines a day! How did your robot manage to be so careful?”. A high level of accuracy and integrity ensures high quality of autonomous operation.  

 

But what exactly is integrity of positioning and how does it affect the performance and reliability of robots and other autonomous machines? Integrity is the truthfulness of positioning and positioning accuracy information, even if it means showing that the current position information is not as accurate as desired in a certain challenging environment. A part of delivering high integrity positioning is a statistical analysis called RAIM or RAIM+, where the latter takes this analysis to the next level as part of a larger positioning protection package.  

 

Why is integrity critical for automation? 

Let us take a closer look at GNSS receiver integrity in the sense of truthful reporting of possible positioning inaccuracies, and how overly optimistic reporting can result in hazardous autonomous operation. Reporting of receiver accuracy is done through positioning uncertainty, which is the maximum possible error on the calculated position. It gives a sense of risk of a positioning error especially necessary in challenging GNSS environments where the receiver “sees” only a limited number of GNSS satellites or where GNSS signals are degraded. Such error reporting is important for all autonomous machines, but especially for assured PNT applications and mission critical operations. Keep in mind that a consistent position may look accurate but could still be incorrect. The positioning uncertainty gives an indication to which extent you can rely on the positioning accuracy at any given moment.   

 

The blue line on the diagram below shows position uncertainty estimated by a GNSS receiver under favorable conditions, when the view of the sky is unobstructed, and the receiver has a direct line-of-sight to many satellites. The receiver operator can set an alarm limit (shown in red), so that the receiver can flag situations when positioning uncertainty becomes too large.  

Figure 1: Under good GNSS conditions, the position uncertainty, shown by the blue lines is well within the alarm limits, indicating safe operation. The actual position of the receiver should always remain within the blue uncertainty boundaries.  ©Septentrio

During favorable conditions the positioning uncertainty stays well below the alarm limit because the calculated position is almost the same as the actual position of the robot. However, in challenging environments the truthfulness of positioning uncertainty becomes most critical (see Figure 2). For instance, when the view of the sky is partially obstructed by buildings or foliage, the receiver has access to only a limited number of GNSS satellites, making it harder to calculate accurate position. In such cases the receiver must report a higher positioning uncertainty, so that the system can take adequate action such as switching to lower speeds, staying further away from predefined boundaries, or stopping.  

 

Figure 2: In challenging environments receivers with high integrity report large positioning uncertainty, flagging possible inaccuracies to the system. If the receiver is too optimistic about its accuracy, the operation becomes hazardous.  ©Septentrio
A low integrity receiver may keep reporting an optimistic positioning uncertainty, that stays below the preset alarm limit even when the calculated position is way off from the actual position. The number may look fine, but effectively it becomes a “robot on the loose”, no longer on its planned path with a risk of damaging itself and its surroundings.    

Let us look at uncertainty limits in action during a GNSS car test in an urban canyon, where the view of the sky is partially obstructed by houses. The orange lines are the positioning and its uncertainty boundaries reported by the mosaic GNSS module in the car, while the red lines are the positioning and its uncertainty boundaries reported by another popular GNSS receiver. The white line shows the actual position of the car as it drives along the road. The orange uncertainty boundaries of the mosaic receiver are truthful and somewhat wider in this challenging environment, and you can see that the actual position always remains within these boundaries. On the other hand, the red trajectory jumps off course in a certain challenging spot on the road, with the actual position no more within the uncertainty boundaries, which remain too optimistic. In this case the competitor’s receiver gives a false sense of security and the system is unaware of its hazardous operation.  

Figure 3: In an urban canyon car test the Septentrio receiver reports truthful position uncertainty. A competitor receiver seems to be more accurate, while the actual position is not even within the reported uncertainty boundaries, resulting in hazardous operation.   ©Septentrio

If the receiver depicted by the red line would provide navigational information for an ADAS automotive system, for example, this could mislead the system into thinking that the car switched lanes. If the system would then attempt to correct the trajectory by switching back to the “correct lane” this would result in taking the car off course and potentially hitting the sidewalk or even another car.  

 

RAIM vs RAIM+ 

The underlying mechanism behind truthful positioning uncertainty reporting is RAIM (Receiver Autonomous Integrity Monitoring), which ensures truthful positioning calculation based on statistical analysis and exclusion of any outlier satellites or signals. Septentrio receivers are designed for high integrity and take RAIM to the next level with RAIM+, guaranteeing truthfulness of positioning with a high degree of confidence. In Septentrio receivers RAIM+ is actually a component of a comprehensive receiver protection suite called GNSS+ comprising positioning protection on various levels including AIM+ anti-jamming and anti-spoofing, IONO+ resilience to ionospheric scintillations and APME+ multipath mitigation.  


Figure 4 (right): In Septentrio receivers RAIM+ is a component of a complete GNSS+ protection suite, with other components including the AIM+ anti-jamming anti-spoofing technology, IONO+ protection against ionospheric activity, and APME+ multipath mitigation.  ©Septentrio


The Septentrio RAIM+ statistical model has been fine-tuned with over 50 terrabytes of field data collected over 20 years. It removes satellites and signals which may give errors due to multipath reflection, solar ionospheric activity, jamming and spoofing, while working together with the GNSS+ components mentioned above. Because of this multi-component protection architecture, it achieves a very high level of positioning accuracy and reliability which goes well beyond the standard RAIM. The RAIM+ statistical model is adaptive, highly detailed and complete, taking advantage of all available GNSS constellations and signals. The full RAIM+ functionality is even available in Septentrio’s GNSS/INS receiver line. User controlled parameters allow it to be tuned to specific requirements.  

 

The diagram below shows RAIM+ in action during a jamming and spoofing attack on a Septentrio GNSS receiver. While AIM+ removes the effects of GNSS jamming, both AIM+ and RAIM+ work together to block the spoofing attack. Satellites with high distance errors, shown on the middle graph, are removed by RAIM+ since they do not conform to the expected satellite distance.  

 

Figure 5: In this scenario jamming gives satellite distance errors but is countered by AIM+ technology. During spoofing AIM+ eliminates some of the spoofed satellites, while other satellites that have wrong distances are dismissed by RAIM+ algorithms.  ©Septentrio

This example shows that even in the case of jamming and spoofing, Septentrio’s high integrity receiver technology delivers truthful and reliable positioning that any autonomous system can count on.  

 

GNSS design around reliability 

GNSS receivers designed to be reliable strive for high integrity in both reporting of the positioning uncertainty as well as in RAIM+ advanced statistical modelling. This ensures that these receivers provide truthful and timely warning messages and are resilient in various challenging environments. Other technologies such as INS (Inertial Navigation System) can also be coupled to the GNSS receiver to extend positioning availability even during short GNSS outages. Quality indicators for satellite signals, CPU status, base-station quality and overall quality allow monitoring of positioning reliability at any given time. High-integrity GNSS receivers provide truthful positioning in autonomous machines such as the Sitia weeding tractor. They are also crucial components in safety-critical applications, assured PNT and any other application where accuracy and reliability matters.  


@Septentrio #Robotics 

 

Thursday, 23 June 2022

Position filled at position technology company!

Septentrio has appointed of Peter Fairhurst as new Vice-President of Sales. In this role Peter will lead the sales and application support teams at Septentrio globally. Peter succeeds Neil Vancans, who is retiring at the end of June, and who has led Septentrio sales for the last 5 years.

Peter Fairhurst
Peter joins Septentrio with 15 years of experience in the GNSS* industry. He most recently was head of Product Strategy at ublox. Prior to that, he worked many years at Leica Geosystems.

“Peter is an experienced business leader with a proven track record of creating value for customers and fits perfectly in our vision to help our customers be successful in their markets”, said Antoon De Proft, CEO of Septentrio. ”Peter will play a crucial role in implementing our growth strategy and empowering our sales teams to solve our customers’ mission critical positioning challenges.”

Peter Fairhurst himself said: “I am thrilled to join Septentrio and to bring their world-class GNSS solutions to industrial customers around the globe. Septentrio has unique capabilities and products and is an ideal partner for industrial OEM’s for whom reliable and accurate positioning is crucial for their success.”


* GNSS (Global Navigation Satellite System) including the American GPS, European Galileo, Russian GLONASS, Chinese BeiDou, Japan’s QZSS and India’s NavIC. These satellite constellations broadcast positioning information to receivers which use it to calculate their absolute position.

@Septentrio #Communications #Position

Monday, 13 June 2022

Resilience to jamming and spoofing.

Septentrio is strengthening its market reach for high precision GNSS modules by signing a distribution partnership with CompoTEK for Germany, Austria and Switzerland. With over a decade of experience as a distributor of modules and semiconductors, CompoTEK support its customers during the purchasing and sourcing process, works closely with them during the design-in phase, and also offers long-term product support.

“We are excited about our new partnership with CompoTEK, a company with long-term experience and knowledge of the high-accuracy positioning technology and market. We are extending our existing sales and application engineering channels, with a goal of complete coverage of US, Europe, Asia and beyond as well as efficient local support,” commented Jan Reisen, sales manager at Septentrio.

The mosaic™ high-accuracy RTK module makes use of all available GNSS constellations and signals for maximum positioning availability even in challenging environments. Its small form factor and low power consumption makes it ideal for high volume applications and assembly lines. The built-in AIM+ Advanced Interference Mitigation technology ensures resilience to GNSS jamming and spoofing*, making mosaic™ a reliable positioning component in any robotic, drone or machine control system. 


* Jamming & Spoofing
Jamming is a form of radio interference which occurs when GPS frequency is overpowered by other radio waves, resulting in accuracy degradation or event total loss of position.
Spoofing is a malicious form of radio interference, where misleading signals are sent into the receiver, resulting in faulty coordinates, which lead the target away from its predefined track.

@Septentrio #CompuTEK #GNSS #Communications

Tuesday, 19 April 2022

Ruggedized GNSS receiver.

The AsteRx-U3 is the successor of the popular Septentrio AsteRx-U multi-frequency GNSS receiver for construction, mining and other machine control applications. The new product combines the company's latest triple-band precise positioning GNSS core with extended wireless communication features including Wi-Fi, UHF and 4G LTE. 

The versatile connectivity features of this receiver make it easy to fit it into any control system and enable simple and cost-effective overall design.

“We are excited to introduce AsteRx-U3 to the market of industrial automation. Its advanced connectivity package offers manufacturers and integrators access to reliable high-accuracy positioning in a system which is versatile, easy to use and integrate, “ said Silviu Taujan, Product Manager at Septentrio.

This receiver offers a unique feature, a guaranteed low latency of under 10 msec and a high data rate, which allows machines to work with rapid as well as accurate movements. An IP68-rated housing of AsteRx-U3 with fixing brackets and robust M12 connectors ensures a quick and reliable installation. 

@Septentrio @AgilityPRS #Communications #Manufacturing #PAuto


Monday, 19 April 2021

Positioning and orientation by Satellite!

By expanding their GNSS/INS (Inertial Navigation System) product family, Septentrio starts offering more application-specific positioning and orientation solutions.

The AsteRx-i3 product family brings to market an array of next-generation receivers from plug-and-play navigation solutions to feature-rich receivers with raw measurement access. OEM boards are available for rapid integration as well as ruggedized receivers enclosed in a waterproof IP68 housing. Such product variety accommodates specific needs of various applications which require high accuracy positioning together with 3D orientation, heading, pitch and roll angles.

“Using our off-the-shelf GNSS/INS systems allows our customers to focus their efforts on core technology and to reduce their products’ time-to-market,” commented Danilo Sabbatini, Product Manager at Septentrio. “With this new generation of products, we aim to satisfy specific needs of various customers. Instead of releasing a single general-purpose product, we bring several dedicated solutions for fastest and easiest integration into systems that require robotic navigation or sensor fusion.”

AsteRx-i3 Pro+ receivers support either single or dual antenna modes. The single antenna mode is ideal for compact and light-weight configurations. The dual antenna mode reduces the need for movement during IMU initialization, allowing fully informed navigation from mission start.

The AsteRx-i3 product line includes a total of 5 new GNSS/INS receivers. The Pro receivers offer high accuracy positioning with 3D orientation and dead-reckoning functionality for fastest and easiest plug-and-play integrations. Meanwhile, the Pro+ are the most versatile receivers providing integrated positioning and orientation along with raw measurements, in single or dual antenna configurations, ideal for applications with sensor fusion. One of the receivers offers an off-board IMU sensor, which can be mounted exactly at the alignment point-of-interest. 

• Global Navigation Satellite System (GNSS) including the American GPS, European Galileo, Russian GLONASS, Chinese BeiDou, Japan’s QZSS and India’s NavIC. These satellite constellations broadcast positioning information to receivers which use it to calculate their absolute position.

@Septentrio  #Agriculture #Robotic #Pauto

Tuesday, 3 March 2020

Continuous positioning for demanding industrial applications.

Septentrio has introduced AsteRx SB ProDirect, a new compact and robust integrated heading GPS/GNSS* receiver. It delivers accurate heading and pitch or heading and roll information in addition to the reliable high-accuracy positioning that Septentrio receivers are known for. 

AsteRx SB ProDirect is a top-value product combining efficient minimalistic design with high-quality performance. It is designed as an ‘install-and-forget’ device providing continuous positioning for demanding industrial applications. Machines and autonomous systems now have access to heading and pitch or heading and roll information immediately from power-up allowing trajectory path optimization and fully informed navigation from mission start.

“The AsteRx SB ProDirect brings the very essence of GNSS positioning and position independent heading, needed for robotics, machine control and similar applications”, said Chris Lowet, Product Manager at Septentrio. “It comes in a simple no-frills, ruggedized, easy-to-install package so you can quickly get started and have reliable positioning and heading throughout your project.”

While AsteRx SB remains Septentrio’s single antenna positioning solution in the compact housed receiver product line, AsteRx SB ProDirect brings a dual antenna option. It is designed for quick and easy integration into any machine monitoring or control system and packs performance and durability into a single ruggedized box. This receiver is robust inside and out, by using Septentrio’s latest LOCK+ technology. ProDirect’s positioning and heading performance is optimized under intense mechanical vibrations, shakes or shocks.

#PAuto #Robotics @Septentrio