How Does GPS Work? GPS for Dummies - HikingGuy.com (2024)

In this Guide:

  • How Does Your GPS Work?
  • How A GPS Figures Out Where You Are
  • Getting More Accuracy From a GPS
  • Practical GPS Tips For Better Performance

GPS is Satellite Based Radio

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When people say "GPS" they are referring to a system of navigation that pinpoints your position on earth by using signals from radio satellites orbiting the earth. All you need to get your position is a GPS receiver. Almost all smartphones have a GPS receiver built-in today. A GPS receiver does not transmit any signals, all it does is receive GPS data beamed to earth from GPS satellites. If you can't receive the GPS signals, you can't get your position.

Each GPS unit, regardless of size, has a small chipset and GPS antenna. GPS signals are received via the antenna and then sent to the chipset, which is the workhorse, decoding the satellite signals, performing multiple calculations based on the GPS information, and then spitting out a location.

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GPS is Really GNSS

The acronym GPS (Global Positioning System) is generally used synonymously with the more accurate acronym GNSS (global navigation satellite system). Why? Because GPS was the first worldwide satellite positioning system, started in 1993 by the US Government (now run by Space Force). GPS was originally conceived by the Department of Defense for the military, but since its launch in 1993, has been leveraged by users worldwide.

Since then other countries have gotten in on the act, launching their own GNSS systems. And for each GNSS system, new satellites are being launched all the time, and the technology in them continues to improve. Although each GNSS has it's own particulars, they all work on the same fundamental principles that I'll cover in this guide.

SystemCountrySatellitesCoverage
GPSUSA33global
GLONASSRussia27global
Galileo EU30global
QZSSJapan7Asia
IRNSSIndia7Asia
BeiDouChina27global
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It should also be noted that these are the GNSS systems that are publicly available. Other countries (I'm looking at you UK) have been rumored to have their own GNSS systems that are only available for military use. And commercial satellites such as Elon Musk's StarLink will be able to augment current positioning systems (from an accuracy of 300cm to 70cm) and maybe even work on its own as a GNSS.

Want to know what GNSS systems that your Android phone can receive? Try the GPSTest app. For iPhones, you have to go to the specs page on Apple.

The GPS Signal

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If you're familiar with AM or FM radio, you know that stations have a radio frequency. For example, in Southern California, you can tune your car radio into KPCC public radio on FM 89.3, or 1070 KNX on AM. GPS signals are similar, but instead of AM or FM, they are on something called the L-Band, which roughly lies below the band used for AM radio. Why the L-Band? Because this set of radio frequencies canpenetrate clouds, fog, rain, storms, and vegetation with minimal interference (more on that later). The idea is that it works anywhere.

The actual GPS signal is a series of "ons" and "offs" in a specific format that gives your GPS receiver information about the satellite, the time the signal was sent, and the satellite's position. Your GPS unit not only receives this information, but also measures how long it takes the signal travel from the satellite to yourreceiver, at the speed of light, to determine the distance between you and the satellite. This measurement of elapsed signal travel time is key to getting accurate measurements.

In order for a GPS to work correctly, the times must be synchronized across all the positioning signals. To put the importance of correct time in context, a 0.001 second error equates to a 300km inaccuracy. So each GPS satellite has an atomic clock, the most stable and accurate time reference ever developed (using the element Rubidium most of the time), and it uses that clock to broadcast its time. Atomic clocks in satellites are expensive ($50-100k) and big, but today you can get one for $1500 that fits in your pocket.

Your GPS receiver does not have an atomic clock, but rather a quartz one. In the end, the GPS time doesn't matter much. An accurate atomic time signal is pulled from a GPS signal to synchronize (more in the next section).

How GPS Determines Your Position

At a minimum, your GPS receiver needs three satellite signals (aka "fixes") to determine your position, which is called trilateration.

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Remember the theory of relativity? Because time moves faster for objects with less gravity, like GPS satellites, their clocks get 38 microseconds faster than earth clocks every day. That equates to about 6 miles of accuracy. The GPS system has been programmed to address this, and having a fourth satellite fix helps eliminate timing errors.

Do More Satellites Increase Accuracy?

No and yes. Theoretically, for a 3-D position, you just need 4 signals / spheres. They will all intersect at one point. Adding more spheres will not make that one point anymore of one point. In practice, a GPS chipset will be performing multiple trilateration calculations using different sets of signals, and then using statistical analysis to narrow down that set of positions to a more accurate single position. So having more satellites to choose from, assuming the GPS chipset can handle them, will help.

How Accurate is GPS?

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According to the official US Government website for GPS, most consumer GPS units are accurate to a 16 feet radius. On newer multi-band GPS units, you can get a 6 foot accuracy regularly. Other multi-GNSS units usually fall around 9-16 ft. Now how this figure is actually generated is part of the secret sauce in the GPS unit and you have to take that figure with a grain of salt. There are factors that I'll talk about next that can degrade your accuracy, but these are good general figures.

I'm assuming everyone wants as accurate of a GPS fix as possible, but it helps to put GPS accuracy into context. The US Parks Service recommends that trails be built with a minimum width of 4ft. If you're hiking and your GPS is giving you 6-16ft of accuracy, that should be more than enough to help you navigate. It should also be enough to record your track fairly accurately. It's probably not enough to guide a self-driving car without plunging it off a cliff.

And just as important as accuracy is reliability. You want a position accuracy figure that stays constant as you move through canyons, tree cover, and buildings. Newer technology can help keep a reliable fix as you move around. I'll talk about that shortly as well.

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What Causes GPS Inaccuracy?

In an ideal world, your GPS unit would receive four perfect GPS signals with no interference, read all the information, and calculate a precise position. But in the real world, there are factors that can degrade the GPS signal as it travels the 12,550 miles from space to earth. The effect of GPS signal interference is bad or incomplete GPS data. A modern GPS chipset will evaluate the quality of the GPS signal and throw out those that are not good. More primitive GPS units will just give you a less accurate position.

Here are the main culprits that can degrade your GPS accuracy.

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Can the government reduce the accuracy of a GNSS? Yes. For the US GPS system, there is a feature called Selective Availability that degrades the accuracy. The idea is that the government degrades public GPS when it might benefit an enemy, etc.. It was rarely used in the early days of GPS, and today is "permanently" turned off by law. We all know that laws change, laws are broken, and who knows what the future holds. Other GNSS systems can be degraded as well.

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Lastly, you can have hardware or software problems at any point in the process. Sometimes satellites malfunction, or orbits change slightly because of gravitational shifts. When this occurs the GNSS providers broadcast "fixes" for the issues (more later). Satellites can also go down because of malfunctions and service (and you can check their status here).

You can even have software errors on the GPS receiver end. In 2020 many GPS units were off because the Sony GPS chipset didn't account for the fact that the year had 53 weeks. Problems like this are usually addressed through firmware updates, so make sure your unit is up to date.

New GPS Bands

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I mentioned that the first GPS constellation became operational in 1993. Well since then, technology has progressed and GPS has as well. Today the US is launching the third generation of GPS, aptly named GPS 3. For the GPS end-user, this equates to new GPS bands. Here's what the GPS bands are all about.

BandYear StartedDescription
L11993This is the original GPS band. It's the slowest and does the worst job at traveling through objects.
L2C2005 It's a newer signal that's more efficiently encoded and penetrates objects better. It's generally combined with an L1C signal which allows it to correct some ionospheric errors.
L52010GPS 3 satellites support the L5 frequency which has a stronger signal and is encoded the most efficiently. It's considered "the best" positioning frequency that you can receive outside of encrypted military options.
L1C2018Think of this new signal as a "connector" signal that allows GPS to slot in more efficiently with other GNSS systems.

New GPS satellites are backward compatible. So GPS 3 satellites not only broadcast L5 signals, but also L1. And not all satellites (as of 2021) support the newer bands.

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Overall the newer bands allow signals to travel more efficiently, eliminating a good amount of interference. It means that the GPS unit can get a more reliable signal, ensuring a consistent position with every fix. So while it might also offer a more accurate position, it's really the consistency of a good signal through varying conditions that is the game changer.

GPS Helpers

In an ideal world, your GPS would be 100% accurate, but as you've seen, it's not the reality with the current GNSS systems. So various entities have come up with ways to improve the GNSS positioning experience. Brace yourself of an onslaught of acronyms.

WAAS & Satellite-based Augmentation Systems

Knowing that there can be orbit and timing errors with GNSS satellites, their operators have set up systems to monitors these errors, calculate corrections, and then broadcast the correction to users using a different set of satellites. These are called Satellite-based Augmentation Systems (SBAS), and unlike the global footprint of some GNSS systems, generally only offer coverage in the home area of the operator.

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For you as an end user, if you have the option to "enable WAAS" as found on some Garmin units, do it. It can improve the accuracy of your position. Note that receiving this additional signal and applying the corrections will require a bit more power consumption from your GPS chipset.

Assisted GPS (A-GPS or A-GNSS)

When you first power your GPS on, it needs to acquire signals, read the data, and then predict the orbits and positions based on those signals. But the orbit data and corrections for all the satellites is available online as a data feed, so why not grab it from the much faster cellular or WiFi connection first? That's what A-GPS performs.

The result is a much faster initial satellite fix and a small amount of power savings. Most smartphone GPS systems will have this built in, and even standalone GPS units like a Garmin Fenix or handheld will download information when you sync with your phone. On a Garmin they are called EPO or CPE files.

Differential GPS Systems

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If you know the precise surveyed position of a point, and compare it to your GPS position reading, you would know the offset or difference. Once you knew how far off your GPS was, you could apply the difference to your data to get a precise position. This is called differential GPS positioning.There is a worldwide network of ground stations that monitor GPS differentials and provide that data for free to users (USA and world locations).

The problem is that this differential correction isn't currently something widely supported in real-time, but as communications get more sophisticated, it's not out of the question for a handheld GPS to access this data and apply it. Instead, you can upload your GPS data (saved as a RINEX file, a feature available on newer models like the GPSMAP 66 and Montana 700) to the NOAA OPUS site, and then get back a corrected file. There's other ways to do it as well, but that's the gist of it. It's a fairly technical process, but hopefully in the future, it could be seamless and integrated into systems like Garmin Explore and Garmin Connect.

The US Coast Guard and Army Corps of Engineers used to broadcast differential information over a radio signal, the Nationwide Differential GPS System (NDGPS). With the advent of WAAS and the new bands, it was discontinued in 2020.

Real-Time Kinematic (RTK)

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RTK is the modern version of differential GPS. It uses a sophisticated method to determine satellite error and offset at a base station, and then transmits the offset to roving GPS units. Often the transmission occurs over data networks instead of radio waves. RTK is commonly used by surveying to get a 1cm level of accuracy. It's so precise that RTK base stations are used to measure tectonic plate movement.

RTK receivers can have a cellular connection to access data in the field from base stations. RTK base stations are generally accessed by a paid subscription, but there are some publicly available RTK stations. You can even set up your own RTK base station.

GPS Positioning Today and Beyond

Modern GPS chipsets can receive multiple signals from multiple GNSS systems simultaneously. From there, they can evaluate factors such as the signal quality and strength, pick the best options, and then calculate your position. They can also use different combinations of satellites and signals to simultaneously calculate multiple position fixes and perform statistical analysis to refine them further. As GPS chips become more sophisticated and efficient, the more variables they can evaluate and the more calculations they can perform.

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Modern GNSS chipsets determine your position based on

  • a combination of GNSS signals
  • new GNSS bands
  • accelerometer input (also known as pedestrian dead reckoning or user dead reckoning)
  • position based on nearby WiFi and Bluetooth signals (works similarly to GPS positioning)
  • position based on cellular signals
  • real-time atmospheric data and compensation
  • 3D mapping of the earth's surface

New smartphones with powerful processors have the computing horsepower to evaluate all of these inputs and offer a very precise position,probably leaving many dedicated handheld GPS units in the dust. For example, newer phones like the Google Pixel 5 can get a GPS accuracy of about 3 feet. If you're hiking, running, or biking, you probably don't need much more precision than the width of your body.

For purpose-built outdoor GPS units from companies like Garmin, it will be tough to compete with smartphones, especially as phones get more rugged and efficient. Moving forward I'd expect standalone GPS to offer universal adoption of the newer GNSS bands, better battery life, and hopefully better chip logic and control. Integrating an RTK component (either in real-time or cached when synced) would also be a great way to out-perform the smartphone. It will be interesting to see how the smartphone GPS versus dedicated GPS battle evolves.

GPS Tips

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  • If you need to choose between multiple GNSS bands or multi-band signals within one GNSS (like L1 & L2C & L5 in GPS), I've found that the multi-band within one system outperforms multiple GNSS systems.
  • One of the main power draws on a GPS unit is the GPS chipset use. If you have the GPS chipset working at full bore, recording every second using multiple GNSS systems, it's going to consume more power. Every GPS unit is different, but the more features that you can "turn off" the less power that your GPS unit will consume.
  • Turn on WAAS if you have it and are okay with the battery drain.
  • Turn off "smart recording" and enable every-second tracking if you have that option. "Smart recording" uses inputs such as the accelerometer and heart rate to determine what data points to save, but the logic has been known to make bad choices. Setting recording for every second ensures that your position is always saved.
  • Sync your GPS with your phone or WiFi before using it. That will download the latest A-GPS files, check for firmware updates, sync your clock, and should allow you to acquire a GPS fix quicker. If you're using the GPS after a long time or after traveling far, this is even more important.
  • Turn on your GPS and let it sit with a clear view of the sky for about 2 minutes before starting your tracking. This is called GPS Soak and gives the unit time to get a stable position.
  • Carry your GPS unit on a shoulder strap or top pocket, giving it a clear line of sight to the sky.
  • If you are buying an InReach GPS device, you probably won't see GLONASS support. The InReach (Iridium) and GLONASS frequencies are close to each other, and transmitting in InReach would interfere with the GLONASS reception (or maybe even fry the receiver). In fact, on InReach devices like the GPSMAP 66i, the unit supports GLONASS but the software has it disabled.
  • Calibrate your compass and barometer if your device has them. These can be inputs for your GPS chipset.
  • On Android devices, turn on "high accuracy" mode by going tosettings > location > mode > high accuracy.
  • On Garmin devices, enable 3-D speed and distance, which factors in elevation changes when calculating distance and speed. It should give you more reliable tracking data.
  • Pause your GPS when you stop. Why? Because if you have say, 10ft of accuracy, and you're recording every second, each fix can be 10 feet away, recording about 600 ft of travel over 1 minute when stopped. This is called GPS nesting or drift.

Basic GPS Concepts in Use

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This Guide Was Written by Cris Hazzard

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Hi, I'mCris Hazzard, aka Hiking Guy, a professional outdoors guide,hiking expert, and author based in Southern California. I created this website to share all the great hikes I do with everyone else out there. This site is different because it gives detailed directions that even the beginning hiker can follow. I also share what hiking gear works and doesn't so you don't waste money. I don't do sponsored or promoted content; I share only the gear recommendations, hikes, and tips that I would with my family and friends. If you like the website and YouTube channel, please support these free guides (I couldn't do it without folks like you!). You can stay up to date with my new guides by following me on YouTube, Instagram, or by subscribing to my monthly newsletter.

How Does GPS Work? GPS for Dummies - HikingGuy.com (2024)

FAQs

How Does GPS Work? GPS for Dummies - HikingGuy.com? ›

GPS is Satellite Based Radio

How does a hiking GPS work? ›

The GPS device is, in fact, a receiver and operates like an antenna, receiving signals in the form of radio waves from orbiting satellites. In order to provide an accurate position, the GPS receiver must successfully connect to 4 different satellites, so that the position of the device can be determined in real time.

How does GPS work in simple terms? ›

HOW GPS WORKS. GPS satellites circle the Earth twice a day in a precise orbit. Each satellite transmits a unique signal and orbital parameters that allow GPS devices to decode and compute the precise location of the satellite. GPS receivers use this information and trilateration to calculate a user's exact location.

How do you use GPS step by step? ›

Jump to a section
  1. Step 1: Acquire a GPS Device or App.
  2. Step 2: Familiarize Yourself with the GPS Interface.
  3. Step 3: Power On and Connect.
  4. Step 4: Enter Your Destination.
  5. Step 5: Choose Your Route.
  6. Step 6: Start Navigation.
  7. Step 7: Adjust Settings for Preferences.
  8. Step 8: Take Advantage of Additional Features.

How does GPS know exactly where you are? ›

A GPS receiver determines its own location by measuring the time it takes for a signal to arrive at its location from at least four satellites. Because radio waves travel at a constant speed, the receiver can use the time measurements to calculate its distance from each satellite.

Should I use cell phone app or handheld GPS for hiking? ›

A DGPS is more durable, waterproof, has better battery life, replaceable batteries, and are built to be rugged and withstand the elements of the outdoors. Smartphones are not built specifically for outdoor activities.

What are the basics of GPS? ›

The Global Positioning System (GPS) is a space-based radio-navigation system consisting of a constellation of satellites broadcasting navigation signals and a network of ground stations and satellite control stations used for monitoring and control.

How do I use my GPS for directions? ›

Start or stop navigation
  1. On your Android phone or tablet, open the Google Maps app .
  2. Search for a place or tap it on the map.
  3. At the bottom left, tap Directions. ...
  4. Choose your mode of transportation.
  5. If other routes are available, they'll show in gray on the map. ...
  6. To start navigation, tap Start.

How to use GPS to find a location? ›

To search for a place, enter the latitude and longitude GPS coordinates on Google Maps. You can also find the coordinates of the places you previously found. Besides longitude and latitude, you can use plus codes to share a place without an address.

How do you use GPS on your phone? ›

To enable GPS on an Android phone, access Settings, navigate to Location, toggle it on, and select high accuracy for optimal performance. If you own an Android phone, you'll likely need to use the GPS at some point. GPS is a powerful tool that allows you to navigate, find your way around, and even track your fitness.

Does GPS work without internet? ›

GPS does not require any form of internet connectivity. As already mentioned, GPS dependent on the signals from satellites. Anyone can harness these signals using a GPS receiver. You can test this fact by turning of the internet connection on your phone and try to use google maps.

How does GPS locate positions? ›

The GPS receiver in your mobile device compares the time signals it receives from the satellites with its internal clock. Knowing the speed of light and when the signals were sent and received, your device can calculate your distance from each satellite, and thereby home in on your longitude, latitude and altitude.

Can someone track you if your GPS is off? ›

The answer is yes, it's possible to track mobile phones even if location services are turned off. Turning off the location service on your phone can help conceal your location. This is important if you don't want third parties knowing where you are or being able to track your movement.

How does Garmin work without internet? ›

The GPS itself does not use data, it merely receives satellite signals independent of cell service. The device actually uses a GPS, meaning it receives help from the cell carrier - but that help uses the voice network, and you aren't charged for it.

How do GPS tracking devices work? ›

GPS trackers connect to a series of satellites to determine location. The tracker uses a process called trilateration which uses the position of three or more satellites from the Global Navigation Satellite System (GNSS) network and its distance from them to determine latitude, longitude, elevation, and time.

Can I use my iPhone as a GPS for hiking? ›

When you have a WIFI connection, download the map content (and trail data if you have it) that you'll need while hiking. Your iPhone can get a GPS signal in the woods, but you will be unlikely to reach the Internet for data.

How does GPS work without cell signal? ›

Yes, GPS works because it is completely independent of any WiFi or Cellular data connection. A GPS is just a radio that receives location data from satellites, so its radio is separate from any WiFi, Cellular, or Bluetooth radio. Pre-loaded maps need no internet connection to work.

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