Knowledge Base
Frequently Asked Questions
Everything customers ask us about RTK GNSS, drone light shows, and photogrammetry, grouped by product. Can't find your answer? Ask us directly.
RoboDot Touch RTK GNSS
What is an RTK GPS receiver?
An RTK GPS receiver is a high-precision device that delivers centimeter-level accuracy for positioning, navigation, and mapping. The RoboDot Touch, a cutting-edge RTK receiver, uses Real-Time Kinematic (RTK) technology to process signals from GNSS satellites and correction data, delivered either through a traditional RTK base station or its built-in NTRIP caster. It connects to DJI drone controllers via Wi-Fi, enabling real-time precision without additional hardware. This setup reduces the need for ground control points (GCPs), streamlining aerial workflows. The RoboDot Touch also works seamlessly with other devices like smartphones and tablets, making it a versatile and user-friendly RTK GPS solution for both drone and ground-based applications.
How accurate is the RTK GPS?
The RoboDot Touch low cost RTK GPS receiver achieves centimeter-level accuracy, typically within 1-2 cm, making it ideal for precision tasks like surveying and drone mapping. By leveraging corrections from an RTK GPS base station or NTRIP network, this RTK receiver ensures consistent, reliable results in real-time. Its multi-band GNSS capabilities enhance performance in challenging environments, delivering superior precision for professionals using RTK GPS for drones or ground-based applications.
Is RTK better than GPS?
Yes, when precision matters, RTK GPS far surpasses standard GPS in accuracy and reliability. While standard GPS offers meter-level positioning, the RoboDot Touch RTK receiver provides centimeter-level precision by using correction data from an RTK GPS base station or NTRIP. This makes it perfect for drone surveying, and GIS applications where accuracy is critical. Additionally, its Bluetooth RTK GPS receiver feature allows seamless integration with mobile devices, offering a smarter, more efficient workflow compared to traditional GPS.
What is the range of RTK GPS?
The range of the RoboDot Touch RTK GPS receiver depends on its configuration. When using the built-in 915 MHz LoRa radio, it supports communication up to 1 km line of sight, ideal for connecting to nearby Rover devices. For base station setups, a typical range of 20 km or less is recommended for best results, with a maximum practical limit of around 50 km. When using internet-based NTRIP corrections, the range is virtually unlimited as long as a stable connection exists. As a Bluetooth RTK GPS receiver, it also connects effortlessly to nearby devices, making it a versatile RTK GPS module for both drone and ground-based applications.
What does RTK do for a drone?
RTK GPS for drones enhances positional accuracy to the centimeter level, enabling precise mapping, surveying, and navigation. The RoboDot Touch RTK receiver provides real-time corrections via its built-in NTRIP caster and connects to DJI drone controllers over Wi-Fi, eliminating the need for external hardware or complex setup. This allows drones to capture accurately geotagged images in real time, significantly reducing or even eliminating the need for ground control points (GCPs). By replacing GCPs, RTK streamlines workflows, cuts down field labor, and accelerates project turnaround while still delivering high-precision data for aerial photogrammetry and GIS tasks.
What is the difference between RTK and non RTK drones?
RTK drones, equipped with an RTK GPS module, achieve centimeter-level accuracy by using real-time corrections from an RTK GPS base station or its built-in NTRIP caster over Wi-Fi. In contrast, non-RTK drones rely on standard GPS, which provides only meter-level accuracy, making them less suitable for professional surveying or mapping. The RoboDot Touch connects to DJI drone controllers via Wi-Fi, while Bluetooth functionality is used for connecting to mobile devices like smartphones or tablets. This configuration ensures seamless integration, superior accuracy, and efficient workflows for aerial data collection.
Can you use an RTK drone without a base station?
Yes, an RTK drone can operate without a dedicated RTK GPS base station, but the positional data it captures will not be accurate enough for precision mapping or surveying. To achieve centimeter-level accuracy, the drone must receive real-time corrections, either from a local RTK base station or through NTRIP corrections over the internet. The RoboDot Touch supports NTRIP client mode and connects to DJI controllers via Wi-Fi, enabling accurate data capture without a physical base station, provided a stable internet connection is available. In remote areas, using the RoboDot Touch as a local base station ensures consistent high-accuracy results. Bluetooth functionality is reserved for mobile device integration and setup.
Do you need a base station for RTK?
While not always required, an RTK GPS base station significantly enhances the performance of an RTK GPS receiver. The RoboDot Touch can function as both a base station and rover, broadcasting corrections via Wi-Fi, LoRa, or NTRIP for real-time centimeter-level accuracy. In areas with internet access, it can connect to NTRIP networks, eliminating the need for a physical base station. Bluetooth is used specifically for setup and configuration via mobile devices, while Wi-Fi handles communication with DJI drones and other equipment. This makes the RoboDot Touch a flexible and powerful RTK GPS module for both drone and ground-based applications.
How to set-up your own RTK base station?
Building your own RTK GPS base station is straightforward with the RoboDot Touch. Here’s how:
1. Position the RoboDot Touch: Place it in an open area with a clear sky view, ideally on a tripod for stability.
2. Power On: Use its 10+ hour battery or connect to a power source.
3. Configure via Web UI: Access the user-friendly interface via WiFi on any browser-enabled device (e.g., smartphone or DJI controller) to set up the RTK GPS base station.
4. Broadcast Corrections: Choose WiFi (NTRIP/UDP), 915 MHz LoRa radio, or USB to send RTCM corrections to rovers or drones.
5. Log Data: Enable static observation logging for post-processing with tools like OPUS.
The RoboDot Touch’s low cost RTK GPS receiver capabilities make it an all-in-one solution for precision surveying.
Does RTK GPS work indoors?
RTK GPS relies on clear satellite signals, so it does not function effectively indoors or in areas with significant obstructions like buildings or dense tree cover. The RoboDot Touch RTK receiver excels in open environments, delivering centimeter-level accuracy when paired with an RTK GPS base station or NTRIP corrections. While Bluetooth is used for initial setup and configuration via mobile devices, reliable GNSS signal availability is essential for accurate positioning, making outdoor use ideal for applications like surveying and mapping.
What is an RTK GPS module?
An RTK GPS module is a compact device that enables Real-Time Kinematic positioning for centimeter-level accuracy. The RoboDot Touch serves as a versatile RTK GPS module, functioning as both a base station and rover. It supports WiFi, LoRa, and Bluetooth connectivity, making it ideal for surveying, and GIS applications. Its touch-screen interface and robust design simplify setup and operation, delivering precision for professional workflows.
What is the difference between single band and multi band GNSS?
Single-band GNSS receivers use one frequency band (e.g., GPS L1), offering basic accuracy but limited performance in challenging environments. In contrast, the RoboDot Touch RTK GPS module leverages multiple frequency bands (e.g., GPS L1/L2) and supports multiple satellite constellations like GPS, GLONASS, and BeiDou. This expanded satellite visibility greatly improves positioning accuracy and reliability, especially in obstructed or urban areas, making it ideal for high-precision applications like drone surveying and geospatial mapping.
Which is more accurate, RTK or Total Station?
Both RTK GPS and Total Station offer high precision, but their accuracy depends on the application. The RoboDot Touch RTK receiver achieves 1–2 cm accuracy in real time, making it ideal for large-scale surveying and dynamic environments. Total Stations, which rely on laser measurements, can reach sub-centimeter accuracy but require line-of-sight and are slower to deploy over wide areas. With both Wi-Fi and Bluetooth interfaces, the RoboDot Touch offers fast, flexible connectivity and excels in most geospatial tasks where efficiency and portability are essential.
Which is the cheapest RTK module?
If you're looking for a budget-friendly RTK solution, the RoboDot Touch is a great choice. It’s a compact, field-ready low cost RTK GPS module that offers centimeter-level accuracy without the price tag of traditional survey equipment. Designed for seamless integration with drones, tractors, and handheld devices, it’s ideal for those who need precision on a budget.
What features should I look for in an affordable RTK GNSS receiver?
When evaluating an affordable RTK GNSS receiver, look for multi-band GNSS support, hot-swappable power options, and compatibility with standard NTRIP correction networks. The RoboDot Touch stands out as a low cost RTK GPS receiver that combines robust performance with portability, making it perfect for applications in agriculture, construction, and UAV mapping.
Can low-cost RTK GNSS receivers support all satellite constellations?
Yes, many low cost RTK GPS receivers today, including the RoboDot Touch, support multiple global navigation satellite systems such as GPS, GLONASS, Galileo, and BeiDou. This multi-constellation compatibility enhances accuracy and reliability, even in challenging environments.
RoboGlow Drone Light Shows
What is a drone light show?
A drone light show is a synchronized aerial display created by dozens, or even hundreds of illuminated drones forming 3D patterns, animations, and logos in the night sky. Robota offers a powerful and portable drone light show system called RoboGlow, purpose-built for both small and large-scale performances.
How do drone light shows work?
Drone light shows work by pre-programming flight paths and LED patterns into a fleet of drones, which are then synchronized to fly and display visuals in the sky using software and GPS-based positioning. RoboGlow comes as a ready-to-use drone light show kit, making setup and deployment streamlined for operators.
What makes RoboGlow different from other drone light show systems?
RoboGlow stands out with its ultra-portable design, quick deployment features, integrated GPS/RTK support, and stunning RGBW LED outputs. It’s one of the few professional-grade light show drones for sale that can be easily transported, scaled, and flown in tight event timelines.
How portable is the RoboGlow drone light show system?
RoboGlow is designed with portability at its core, each drone folds into compact carrying cases, and the entire system can be deployed by a small team in under an hour. It’s an ideal drone light show system for sale for event organizers who need a mobile solution without sacrificing performance.
How easy is it to set up a RoboGlow drone light show?
Setting up a RoboGlow show is simple: power on the drones, connect the ground station, load the show file, and use Fly-To technology to place the drones in their start positions. Thanks to its intuitive software and plug-and-play hardware, RoboGlow is one of the easiest drone light show systems to operate, even in complex event environments.
How many color combinations can RoboGlow drones display?
RoboGlow drones use RGBW LEDs that enable millions of vivid color combinations and gradients. Whether you’re recreating logos, flag designs, or custom animations, the palette flexibility built into this drone light show kit ensures your visuals stand out against the night sky.
How does RoboGlow ensure precise drone positioning during shows?
RoboGlow uses GPS and RTK corrections via the included RoboDot receiver to maintain centimeter-level accuracy in midair, ensuring perfect formation alignment throughout the show. This level of precision makes it one of the most reliable and consistent drone light show systems on the market today.
What are the safety features of RoboGlow drone light shows?
Safety features include geofencing, low-battery return, failsafe landings, and individual drone monitoring. These features make RoboGlow not just stunning, but also a secure drone light show system for sale suitable for public venues and professional events.
How does RoboShow software simplify drone show design and deployment?
RoboShow software offers a visual timeline editor, real-time preview, and auto-assignment of drones to formation paths. This intuitive tool is bundled with every drone light show kit, enabling users to design, test, and deploy shows with minimal technical overhead.
What are the benefits of using drones for light shows?
Drone light shows are eco-friendly, customizable, reusable, and offer dynamic visuals that fireworks can’t match. If you're considering light show drones for sale, RoboGlow provides a scalable and creative solution with lower long-term costs and higher audience engagement.
How long can drones fly during a light show?
RoboGlow drones offer flight durations of approximately 15–25 minutes per charge, depending on conditions like wind and LED brightness. This exceeds the industry norm and provides ample time for most short to mid-format shows, making RoboGlow a standout choice among drone light show systems.
Metashape Pro Photogrammetry Software
What is Agisoft Metashape Pro used for?
Agisoft Metashape Pro is a professional photogrammetry software used to process digital images and generate high-quality 3D spatial data. It transforms images from drones, cameras, or multi-camera systems into dense point clouds, textured 3D models, orthomosaics, and digital surface models (DSMs) or digital terrain models (DTMs), making it ideal for aerial mapping solutions in various industries.
What are the main features of Agisoft Metashape Pro?
Agisoft Metashape Pro offers advanced features including automated image processing, support for RGB and multispectral cameras, and generation of dense point clouds, textured polygonal models, and georeferenced orthomosaics. It supports multi-core CPUs and GPUs for fast processing, offline operation, and distributed processing for large datasets. Additional capabilities include shadow and texture artifact removal, vegetation index calculation, and compatibility with drone mapping and photogrammetry solutions.
Can Agisoft Metashape Pro be used for large site mapping?
Yes, Agisoft Metashape Pro is highly effective for large site mapping. It is optimized for processing massive datasets using multi-core CPUs, multi-GPU systems, and distributed processing on high-performance computing clusters, enabling fast and accurate generation of 3D models and orthomosaics for extensive areas, making it a top choice for drone mapping and photogrammetry software.
How accurate is drone photogrammetry?
Drone photogrammetry with Agisoft Metashape Pro achieves high accuracy, often reaching up to 3 cm for aerial imagery and 1 mm for close-range photography. The software’s precise image alignment and integration with RTK/PPK workflows ensure reliable results for professional mapping and surveying applications using UAS photogrammetry software.
Can any drone be used for photogrammetry?
Not all drones are suitable for photogrammetry. Drones used for photogrammetric surveys typically need a stable flight platform, a quality camera, and precise GPS functionality to ensure accurate and reliable data. Agisoft Metashape Pro supports imagery from a wide range of drones, as long as they capture overlapping images with sufficient clarity and consistency. This makes the software versatile and compatible with many UAV platforms for aerial mapping solutions.
What equipment is needed for photogrammetry?
Photogrammetry with Agisoft Metashape Pro requires a drone or camera (RGB or multispectral, 5+ megapixels), a computer with a multi-core CPU, sufficient RAM (32+ GB recommended), and a high-end GPU for faster processing. Optional equipment includes RTK/PPK-enabled drones or ground control points (GCPs) for enhanced accuracy in drone mapping and photogrammetry solutions.
What is photogrammetry used for?
Photogrammetry is used to create detailed 3D models, maps, and spatial data from images. Applications include topographic mapping, cultural heritage documentation, visual effects production, and precise measurements for surveying, construction, agriculture, and archaeology, leveraging drone mapping and photogrammetry software like Agisoft Metashape Pro.
What industries use Metashape Pro for mapping and survey?
Agisoft Metashape Pro is used in industries such as surveying, agriculture, archaeology, cultural heritage preservation, mining, construction, and visual effects. Its ability to generate accurate 3D models and orthomosaics makes it valuable for professionals utilizing UAS photogrammetry software for mapping and analysis.
What is aerial mapping used for?
Aerial mapping is used to create detailed maps, orthomosaics, and 3D models of landscapes or sites. It supports land surveying, urban planning, environmental monitoring, agriculture management, and infrastructure development by providing accurate geospatial data through aerial mapping solutions like Agisoft Metashape Pro.
What is the best photogrammetry software for drones?
Agisoft Metashape Pro is widely regarded as the best photogrammetry software for drones due to its advanced automation, support for various camera types, and high accuracy in generating 3D models and orthomosaics. Its optimization for large datasets and integration with RTK/PPK workflows make it ideal for drone mapping and photogrammetry solutions.
What is the best aerial mapping software?
Agisoft Metashape Pro stands out as the best aerial mapping software, offering robust tools for processing aerial imagery into precise 3D models, orthomosaics, and DSMs/DTMs. Its compatibility with multi-core CPUs, GPUs, and distributed processing ensures efficient handling of large-scale projects, making it a leading choice for aerial mapping solutions.
Photogrammetry & Drone Mapping
What is drone photogrammetry?
Drone photogrammetry is the process of capturing aerial images with drones and converting them into accurate 2D maps or 3D models. It forms the backbone of modern photogrammetry solutions, enabling professionals to collect high-resolution spatial data efficiently and cost-effectively.
How does drone photogrammetry work?
Drone photogrammetry works by capturing overlapping images from a drone's onboard camera. These images are processed using UAV mapping software, which calculates the 3D geometry of the landscape by analyzing visual differences between image angles and positions.
What is geospatial software?
Geospatial software solutions allow users to visualize, analyze, and interpret geographic data. In photogrammetry, such software helps convert drone-captured imagery into actionable maps and models for industries like construction, mining, agriculture, and urban planning.
What is a digital surface model (DSM) in mapping?
A DSM is a 3D representation of the Earth's surface that includes natural terrain and man-made structures. Generated through aerial photogrammetry software, DSMs are essential for applications like flood modeling, line-of-sight analysis, and urban development.
What is an orthomosaic map?
An orthomosaic map is a high-resolution, geo-referenced image created by stitching together multiple overlapping aerial photos taken by a drone. Unlike basic aerial images, orthomosaics are geometrically corrected to eliminate distortion from camera tilt and terrain elevation, resulting in a true-to-scale map. Generated using advanced drone mapping software, orthomosaic maps are essential for accurate surveying, land analysis, construction planning, and GIS applications.
How accurate is drone photogrammetry?
Drone photogrammetry can achieve horizontal accuracy within 2–5 cm when using RTK-equipped drones and quality control points. This level of precision makes photogrammetry solutions suitable for detailed surveys, construction monitoring, and terrain analysis.
What industries use drone photogrammetry?
Industries like agriculture, mining, real estate, construction, and environmental science use photogrammetry solutions to generate topographic maps, monitor site progress, and model terrain for planning and analysis.
Can I use any drone for photogrammetry?
While technically possible, not all drones are ideal for photogrammetry. Drones optimized for mapping typically feature high-resolution cameras, GNSS modules, and compatibility with UAV mapping software for accurate data capture and processing.
What do you need for drone mapping?
To get started with drone mapping, you'll need a capable drone, a high-quality camera, GNSS equipment for positioning, and reliable drone mapping software to process and analyze your aerial data.
What is the difference between aerial photography and photogrammetry?
Aerial photography involves taking photos from above, while photogrammetry adds measurement and mapping capabilities. Aerial photogrammetry software enables users to convert overlapping images into precise 2D and 3D geospatial models, something traditional photography can’t do.
What is the best photogrammetry solution?
The best photogrammetry solution depends on your use case, but key factors include ease of use, processing speed, and data accuracy. Robota’s Agisoft Metashape Pro photogrammetry software offers advanced processing tools that deliver industry-grade results from drone-captured imagery, making it ideal for professionals across various sectors.
Eclipse 2.0 Survey Drone (Legacy)
What are fixed-wing drones?
Fixed-wing drones use rigid, non-rotating wings to generate lift, similar to traditional airplanes. They’re ideal for covering large areas efficiently, making them a strong choice among professional drones for surveying due to their longer flight times and greater range.
How far can a fixed-wing drone fly?
Fixed-wing drones can typically fly much farther than multirotor drones, often covering 50–100 km per flight depending on conditions. The Eclipse 2.0 is engineered for extended missions, making it an ideal rtk survey drone for large-area coverage with reliable data precision.
Are fixed-wing drones faster?
Yes, fixed-wing drones are significantly faster than multirotor drones, often reaching speeds of 60–100 km/h. This speed advantage allows them to complete mapping missions quickly, especially when deployed as mapping and surveying drones in time-sensitive environments.
What is drone aerial mapping?
Drone aerial mapping is the process of capturing high-resolution images from above and turning them into georeferenced maps or 3D models. An aerial mapping drone like Eclipse 2.0 delivers fast, accurate coverage over large landscapes, ideal for agriculture, construction, and land development.
What do mapping drones do?
Mapping drones autonomously capture overlapping aerial images that are later processed into digital surface models, orthomosaics, and topographic data. A rtk mapping drone enhances this process by providing centimeter-level accuracy using real-time satellite corrections.
How accurate is drone mapping?
Drone mapping can achieve 2–10 cm horizontal accuracy when using high-quality sensors and GNSS corrections. With the Eclipse 2.0 configured as an rtk survey drone, you can achieve precision-grade results even in wide-area or rugged terrain applications.
How accurate are drone surveys?
Drone surveys using RTK or PPK technology can deliver horizontal accuracies of 1–3 cm and vertical accuracies within 5 cm, depending on conditions. Professional drones for surveying like the Eclipse 2.0 ensure consistent and reliable geospatial outputs across industries.
What does RTK do on a drone?
RTK (Real-Time Kinematic) technology corrects GPS signals in real-time, significantly improving positional accuracy during flight. When integrated into a rtk mapping drone, RTK ensures every image is tagged with precise coordinates, streamlining post-processing and reducing ground control needs.
Do you need RTK for drone mapping?
RTK is not always required, but it's essential when high positional accuracy is critical, such as in engineering, mining, or land surveys. For these use cases, using an rtk survey drone like Eclipse 2.0 saves time, improves data reliability, and often eliminates the need for ground control points.
What is the range of a survey drone?
The range of a survey drone varies by type, but fixed-wing models like Eclipse 2.0 can cover 400 to 700 acres per flight depending on altitude and resolution settings. This makes them highly efficient mapping and surveying drones for large-scale and long-duration projects.
Goose Autopilot (Legacy)
What is a drone autopilot system?
A drone autopilot system is an onboard module that allows an unmanned aerial vehicle (UAV) to navigate, fly, and perform complex missions autonomously. Robota’s Goose is a fully integrated drone autopilot system built specifically for fixed-wing aircraft, enabling reliable, precise control across agricultural, defense, and surveying applications.
How does a drone autopilot work?
A drone autopilot receives real-time sensor input, such as GPS, IMU, and altimeter data, to manage the UAV’s entire flight path from takeoff to landing without manual intervention. Goose uses advanced algorithms and real-time positioning to ensure smooth, autonomous missions, making it a powerful and reliable component of modern UAV control systems.
What are the main features of a drone autopilot?
A robust drone autopilot includes real-time navigation, automatic takeoff and landing, mission planning, emergency failsafes, and support for fixed-wing or VTOL platforms. The Goose Autopilot from Robota includes all these features plus seamless integration with Robota’s Eclipse fixed-wing drones for efficient, autonomous operation.
What are the benefits of using an autopilot for drones?
Using an autopilot allows drones to perform complex, repetitive, or long-duration tasks with minimal human oversight. Benefits include higher precision, reduced pilot error, and consistent mission performance. With the Goose Autopilot, operators can take full advantage of advanced drone autopilot software designed for demanding field conditions.
What types of vehicles can use the Goose Autopilot?
The Goose Autopilot is designed for fixed-wing UAVs and is ideal for long-range flight missions. Its ruggedized design, precision controls, and plug-and-play interface make it adaptable for a wide range of drone ground control station setups, enhancing mission control in the field.
What missions can the Goose Autopilot be used for?
Goose Autopilot supports missions such as precision agriculture, aerial surveying, environmental monitoring, and tactical defense operations. It is designed to work exclusively with Robota’s own UAV ground control station, Robota GCS, for real-time monitoring and autonomous command. This integrated setup ensures seamless operation in the most demanding environments without the need for third-party pairing.
What is the best autopilot for drones?
The best autopilot system depends on your use case, platform, and mission needs. For fixed-wing UAV operations requiring precision, durability, and seamless integration, Robota’s Goose stands out as a leading drone autopilot trusted by professionals in defense, agriculture, and surveying.
What drone autopilot software should I use?
If you’re using the Goose Autopilot, Robota provides a proprietary drone autopilot software suite that simplifies mission planning, real-time telemetry, and post-flight analysis. The software is optimized for fixed-wing workflows and integrates tightly with Robota’s Eclipse drone platform for end-to-end autonomy.
Original RoboDot (Legacy)
What is an RTK receiver?
An RTK receiver is a high-precision GPS device that uses real-time correction data from a base station to deliver centimeter-level accuracy. The Robodot by Robota is a rugged, plug-and-play RTK receiver designed for precision applications like drone mapping, construction, and agriculture.
What does a GNSS receiver do?
A GNSS receiver captures satellite signals from multiple global navigation systems, like GPS, GLONASS, Galileo, and BeiDou to determine highly accurate position data. If you're looking to enhance location accuracy in your workflow, Robodot is a reliable option for those looking to buy a GNSS receiver built for field durability and seamless integration.
What are the different types of GNSS receivers?
GNSS receivers vary by precision level and use case. Basic receivers offer meter-level accuracy for consumer use, while high-end models like RTK and PPK receivers provide centimeter-level precision for professional applications. For users seeking consistent performance in tough environments, Robota’s Robodot is a field-tested, professional-grade RTK GPS for surveying.
What is RTK surveying?
RTK surveying involves using GNSS signals with real-time correction data to achieve high-accuracy land measurements. It eliminates the need for extensive ground control points and speeds up fieldwork. Robodot enables precise RTK surveying through a user-friendly setup that pairs easily with your drone, rover, or field controller.
Is RTK better than GPS?
Yes, when precision matters, RTK is significantly more accurate than standard GPS. While standard GPS typically provides accuracy within a few meters, RTK can achieve 1–2 centimeter precision using correction signals. Robodot is a trusted RTK receiver that enables professionals to reach survey-grade accuracy with ease and reliability.
How accurate is the RTK GPS?
RTK GPS technology delivers up to 1 cm horizontal and 2 cm vertical accuracy under optimal conditions. The Robodot system from Robota is built for dependable field performance, making it a reliable choice for professionals who need accurate, compact, and durable RTK GPS for surveying.
What is the range of RTK GPS?
The range of RTK GPS depends on the communication method. With Robodot, a 915 MHz radio link provides up to 1 km of range (line of sight) between two units. WiFi, used for direct device interface, is limited to about 400 ft. For longer distances, internet-based corrections (such as NTRIP) can support baseline lengths up to 50 km, though accuracy may degrade with increased distance. If you're looking for a GNSS receiver offering flexible connectivity options and reliable performance in diverse environments, Robodot is a solid choice.
How to use RTK in surveying step by step?
To use RTK in surveying:
1. Use an RTK base station or an NTRIP service as the correction source
2. Power on your RTK rover (like Robodot)
3. Connect the rover to the correction source
4. Begin collecting points using your preferred survey software
Robodot simplifies this process by offering a plug-and-play RTK GPS solution for surveying, making setup fast and efficient.