CYBER WELFARE

Protect your Digital Privacy

How Bluetooth and location work

Two technologies sharing one characteristic: they work by announcing or detecting presence. Both their usefulness and their exposure come from there.

Understanding the mechanism serves a practical purpose: knowing what to really switch off, and what switching off achieves nothing.

It expands on the recommendation turning off Bluetooth and location.

Part 1 — Bluetooth

What it is for and how it works

It is a short-range radio technology, designed to connect nearby devices with low power use. Typical range: ten to thirty metres, far less through walls.

It works in two modes worth telling apart.

Advertising. A device periodically emits small packets saying “I am here, and I can do these things”. It is how headphones make themselves findable.

Scanning. A device listens for other devices’ advertisements and lists them.

A phone does both. And advertising is the source of the exposure described in this unit: it is a signal emitted continuously, which anybody in range can receive.

Pairing

Before exchanging data, two devices pair: they confirm they want to connect — with a code, a confirmation, or a tap — and exchange a key which they keep.

From then on they recognise each other automatically. And that is why the list of paired devices should be cleared out now and then: every entry is a stored key.

The low-energy variant

The modern version of Bluetooth is designed to use very little power, and it is the one used by watches, sensors and tags.

That has an important consequence: the energy cost of leaving it on is now very low. The “switch it off for the battery” argument is worth far less than it was ten years ago. The argument that remains is observability.

Randomised addresses

A device always emitting the same identifier would be traceable from place to place. To avoid that, modern devices periodically change the identifier they advertise, keeping it stable only towards already paired devices.

It is an effective protection and on by default on recent devices. It is not perfect — some characteristics of the signal stay recognisable — but it greatly reduces traceability.

Part 2 — Location

The four sources

A device does not use one method to know where it is: it combines several, choosing on precision, speed and power use.

SourcePrecisionDoes it work indoors?Power use
SatellitesA few metresNoHigh
Nearby Wi-Fi networksTens of metresYesLow
Mobile cellsHundreds of metresYesVery low
The device’s sensorsRelativeYesLow

The row about Wi-Fi networks is the most interesting and the least known: the device works out its position by recognising the Wi-Fi networks it sees around it, comparing them against databases associating each network with an area.

That explains two things:

  • why location works well inside a building, where satellites do not reach;
  • why the system keeps scanning for networks even with Wi-Fi off: that scanning is a source of location, not an attempt to connect.

The last row of the table concerns the accelerometer, gyroscope and compass: they give no absolute position, but they allow movement to be tracked between one fix and the next.

How apps get the location

Apps do not access the sensors directly: they ask the operating system, which checks the permission granted and answers with the precision allowed.

That mediation is what makes the settings described in the operational guide effective:

SettingWhat the system does
Permission deniedIt does not answer
Only while using the appIt answers only with the app in the foreground
AlwaysIt answers in the background too
Approximate locationIt answers with an area, not a point

The fourth row is technically elegant: the system does not reduce its own precision — it reduces what it tells the app. The app receives a less precise value and works perfectly well for uses that do not need more.

Scheduled requests

An app can ask the system to be told when you enter or leave a certain area, instead of checking continuously.

It is an efficient and legitimate mechanism — it serves place-based reminders and arrival alerts — and it explains why an app can use location without being open, with minimal power use.

It is also what the “hollow” indicator in the status bar signals.

Power use, explained

A practical question the mechanism clears up, and one that guides choices better than any general rule.

ActivityPower use
Bluetooth on with no devices connectedVery low
Bluetooth with headphones in useLow
Location requested occasionallyLow
Continuous location from satellitesHigh
Location from Wi-Fi networksLow
Scheduled requests about areasVery low

The highlighted row explains why navigation drains so much and a place-based reminder almost nothing: it is not the location that costs, it is the method by which it is obtained.

A useful conclusion follows: if an app you do not use appears among the top battery consumers, it is using precise location continuously. It is the quickest way to find it without opening any list.

Part 3 — Location tags

A case worth explaining, because the mechanism is counter-intuitive and very instructive.

A small Bluetooth tag has neither GPS nor a connection. It only emits an advertisement.

Its operation rests on the network of every other device: when any phone passes nearby, it picks up the advertisement and reports its own position to the service, in encrypted form. The tag’s owner thereby sees where it is, without the phone that detected it knowing anything.

The system is designed to protect the privacy of both: whoever detects does not know what they detected, and whoever is searching does not know who detected it.

The relevant consequence is that these objects only work thanks to the participation of millions of devices — and that the same effectiveness makes them usable to follow a person. That is why the alert systems described in the unit on signals were introduced.

Why the location is sometimes wrong

A practical question the mechanism explains well, and one that helps in seeing the technology’s limits.

You are in a new place and the location shows somewhere else. The databases associating Wi-Fi networks with areas update over time. A network recently moved — an office that relocated, a router taken to another site — can still show at the previous address.

The location is imprecise indoors. Satellites do not go through roofs. Indoors the system relies on nearby networks, with a precision of tens of metres.

The location “jumps” between two points. The system is combining different sources and correcting the estimate as better data arrives.

It takes time to find you. Outdoors, after a period without using it, satellite reception takes a few seconds to establish.

You appear to be in another city. If you are connected through a VPN, some services that infer location from the network address — rather than from the sensors — will show the server’s country.

The last case is the most useful to know, because it separates two things that get confused: the location from the device’s sensors and the location inferred from the network. They are two independent mechanisms, and they can give different results at the same time.

What switching things off actually does

ActionReal effect
Switching Bluetooth off in the settingsNo advertising, no scanning
Switching it off from the quick panelOn some systems it stays active for system services
Switching Wi-Fi offNo connection, but the scanning can continue
Turning off network scanningIt stops the scanning with the radios off too
Flight modeIt switches off every radio
Revoking a location permissionThe app no longer gets an answer from the system
Turning location offNo app receives the position

Rows two and three are why this technical unit is useful: two of the actions people take most often do not do what they think.

How the system protects your location, without you knowing

It is worth recognising the protections already active, because there are more of them than people think and they explain why the situation has improved.

Permission is mediated. No app accesses the sensors: it asks the system, which decides what to answer. It is the structural protection everything else rests on.

Permission is revocable at any moment, and the revocation takes effect immediately.

Access is flagged. The status bar indicator makes visible something that used to be invisible.

Background access is remembered. The periodic notification summarising which apps used location while closed is a recent and very effective feature.

Precision can be reduced. The approximate option allows you to grant without granting everything.

Permission can expire. On some systems, an app unused for months automatically loses the permissions granted — maintenance that happens on its own.

Identifiers rotate. Bluetooth and Wi-Fi periodically change the identifier they advertise, making it harder to follow a device between places.

Taken together, these protections describe a clear direction: operating systems have moved towards giving the user control, and tools for exercising it.

What is missing is not the technology: it is the moment when somebody opens those lists. And that is exactly what this semantic unit tries to provide.

How this connects to the Cyber Welfare Framework

PillarWhat this content contributes
SkillsUnderstanding which actions really switch off what
AwarenessKnowing that location is also derived from nearby networks
Secure BehaviourClearing out the paired devices and using approximate location

Reference level: FL3 — Autonomous.

Summary

  • Bluetooth advertises its presence continuously: that is where the exposure comes from.
  • Location comes mainly from nearby Wi-Fi networks, not from satellites.
  • Approximate location reduces what the app receives, not the system’s own precision.
  • Switching off from the quick panel often does not really switch off: you have to go through the settings.

One thing to do today. Open your Bluetooth settings and look at the list of paired devices. Every entry is a stored key: remove the ones for devices you no longer own.

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