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HomeWiFi Signals Explained
Guide · Plain English

Four Bars
Tell You Almost Nothing.

Signal strength is the number everyone looks at and the number that explains the least. A room can show full bars and still be unusable, because what actually decides your experience is how far the signal sits above the noise around it. Here is how to read wireless properly — and what to do about what you find.

Why signal strength alone does not explain wireless quality Two rooms with identical signal strength. In the first the noise floor is low, leaving a wide gap the data can use. In the second the noise floor is high, leaving almost no usable gap, so the connection is slow despite showing full bars. SAME SIGNAL · DIFFERENT RESULT QUIET ROOM NOISY ROOM Signal −55 dBm Signal −55 dBm SNR 40 wide usable gap SNR 10 Noise floor −65 dBm neighbours, interference Noise floor −95 dBm Fast and stable Slow, drops, retries Both phones show full bars. Only one of them works.
Signal is only half the story. What matters is the gap between your signal and the noise underneath it. That gap is called SNR, and it is the single most useful number in wireless.
01 · Start Here

The Two Numbers That Actually Matter

Everything else in this guide hangs off these two. Learn them and most wireless complaints become diagnosable.

In one line: RSSI is how loud your device hears the access point, measured in dBm and always a negative number where closer to zero is stronger; SNR is how far that signal sits above the background noise, measured in plain dB where bigger is better. Good RSSI with poor SNR still means a bad connection — which is why bars on a phone are close to meaningless.

RSSI stands for Received Signal Strength Indicator. Think of it as volume. It is written in dBm — decibels relative to one milliwatt — and it is always negative, because the power involved is a tiny fraction of a milliwatt. A reading of −45 dBm is loud and close. A reading of −80 dBm is faint and far. The counter-intuitive part is that −45 is stronger than −80, because it is closer to zero.

SNR stands for Signal-to-Noise Ratio. Think of it as clarity. If RSSI is how loudly someone is speaking, SNR is how loudly they are speaking compared with the noise in the room. Two people can shout equally loudly, but only one of them is in a quiet room. SNR is written as a plain number in dB and it is always positive: signal minus noise. A signal of −55 dBm sitting on a noise floor of −95 dBm gives an SNR of 40 dB, which is excellent. The same −55 dBm signal in a room where the noise floor is −65 dBm gives an SNR of 10 dB, which barely works.

This is why a phone showing four bars can still stream badly, and why replacing the router rarely helps. The bars are showing you volume. The problem is clarity. If wired versus wireless is the underlying question for your building, the wired vs wireless guide is worth reading alongside this one.

02 · Reading The Numbers

The RSSI Scale, And Honest Thresholds

These are the numbers we design to. They are not universal law, but they are close enough to be useful in every building we have surveyed.

Applied to a real site: a published villa audit measured 14 rooms below this threshold — despite 32 access points being installed →

A scale of signal strength values and what each range means in practice Signal strength from minus thirty dBm, which is excellent and only found beside the access point, down through minus sixty-seven dBm, the design target for voice and video, to minus eighty dBm and below, where connections become unusable. CLOSER TO ZERO IS STRONGER −30 to −50 dBm Excellent You are within a few metres of the access point. Everything works. −50 to −67 dBm Good — the design target Voice, video calls and 4K all work reliably. Aim for this everywhere that matters. −67 to −72 dBm Workable Browsing and email are fine. Calls start to stutter when the room gets busy. −72 to −80 dBm Poor Connected, slow, and dropping. This is where most complaints come from. −80 dBm and below Unusable The device clings on and refuses to move. Worse than no signal at all.
−67 dBm is the number to remember. It is the industry design target for voice and video, and the threshold we plan coverage around. If a room where people work sits below it, the room needs an access point — not a bigger router.

SNR Targets

The clarity number
  • 40 dB+ — excellent, full speed available
  • 25–40 dB — very good, reliable for everything
  • 20–25 dB — the practical floor for voice and video
  • 15–20 dB — slow, with retries you can feel
  • Below 15 dB — unreliable regardless of signal strength

Where People Go Wrong

The traps in these numbers
  • Reading a −70 as better than −50, because 70 is a bigger number
  • Measuring only near the router, where everything looks perfect
  • Measuring signal but never noise, then wondering why it is slow
  • Measuring on one phone and assuming every device sees the same
  • Chasing a stronger transmitter when the client cannot shout back that far
03 · The Units

dBm, dB And dBi Are Not The Same Thing

Three units that look alike, sound alike, and get mixed up in product listings constantly.

dBm — an absolute power levelThis is a real measurement of how much power is present. Signal strength and noise floor are both in dBm. Always negative in wireless, and closer to zero is stronger.
dB — a difference between two thingsA ratio, not a level. SNR is in dB because it is the gap between signal and noise. Losses through a wall are also quoted in dB. Nothing is measured in dB on its own.
dBi — how focused an antenna isThe gain of an antenna. It does not create power; it concentrates it. A high-dBi antenna is like a torch beam and a low-dBi one is like a bare bulb — the same energy, shaped differently.
Why high dBi is not automatically betterA focused antenna reaches further along its beam and covers less to the sides. On a ceiling in an open office that is wasteful; down a warehouse aisle it is exactly right. Match the antenna to the shape of the space.
The 3 dB rule worth knowingEvery 3 dB roughly doubles or halves power. So a 6 dB improvement is four times the power, and a 10 dB loss through a wall leaves a tenth of it. Small numbers, large consequences.
The noise floorThe background level of radio energy in a space, in dBm, with nothing of yours transmitting. Around −95 dBm is quiet. Around −80 dBm is a busy apartment building where SNR will be hard to win.

One asymmetry that catches people out: a powerful access point can be heard by a phone across the building, but the phone cannot shout back that far. Its antenna is smaller and its battery smaller still. Turning transmit power up on an access point often makes coverage look wider on a survey while making the actual experience worse, because devices connect from places they cannot hold a conversation from. This is one of the commonest self-inflicted wireless faults we are called to fix.

04 · Channels

Channel Overlap: Why 1, 6 And 11

The single most common cause of a slow 2.4 GHz network, and it is free to fix.

This is not theoretical. In one audited estate, 15 of 30 radios sat on channel 6 — queuing for the same airtime instead of adding capacity →

Overlapping channels compared with the non-overlapping channels 1, 6 and 11 In the 2.4 GHz band each channel is wider than the spacing between channel numbers, so neighbouring channels bleed into each other. Only channels 1, 6 and 11 are far enough apart not to overlap at all. THE PROBLEM · CHANNELS 1, 3, 5, 7 They bleed into each other — everyone slows down THE FIX · CHANNELS 1, 6 AND 11 1 6 11 No overlap at all — three clean lanes 2.4 GHz has only ever had three usable channels. Not fourteen.
2.4 GHz gives you three channels, not fourteen. The numbers go to 13 or 14 depending on the country, but each channel is wider than the gap between numbers, so only 1, 6 and 11 avoid each other entirely. Any other choice interferes with two neighbours instead of competing politely with one.
Channel Width

Wider Is Not Simply Faster

  • 20 MHz — the only sane choice on 2.4 GHz, and the most resilient anywhere. Narrow, but it survives noise.
  • 40 MHz — a reasonable default on 5 GHz in a home with few neighbours.
  • 80 MHz — fast where the air is clean; in a dense apartment block it collides with everyone.
  • 160 MHz — superb on paper, and usually only realistic on 6 GHz where there is genuinely room.
  • The trade-off: a wider channel is a wider target. It gathers more noise and leaves fewer clean lanes for your other access points.
The Bands

Range Versus Room

  • 2.4 GHz — travels furthest and penetrates walls best, but has three channels and is shared with microwaves, Bluetooth and every neighbour. Keep it for IoT and far corners.
  • 5 GHz — the workhorse. Many channels, much faster, shorter reach. This is where most of your devices should live.
  • 6 GHz — clean, wide and empty, available only to WiFi 6E and 7. Shortest range of all, so it needs access points closer together, not further apart.
05 · Channel Maps

5 GHz And 6 GHz: Clean Lanes And Dirty Ones

2.4 GHz gives you three lanes. The other two bands are far more generous — but only if you choose the channel width honestly.

The 5 GHz channel map showing which blocks are clean, which require DFS, and how many lanes remain at each channel width The 5 GHz band divides into four blocks. UNII-1 and UNII-3 are freely usable. UNII-2A and UNII-2C require DFS and hold the majority of the spectrum. Below, the number of non-overlapping channels available at 20, 40, 80 and 160 MHz widths. 5 GHz · FOUR BLOCKS, TWO OF THEM DFS UNII-1 36–48 UNII-2A 52–64 · DFS UNII-2C 100–144 · DFS UNII-3 149–165 free to use radar-shared — most of the band lives here free to use NON-OVERLAPPING CHANNELS AT EACH WIDTH 20 MHz up to 25 — plenty 40 MHz about 12 — comfortable 80 MHz 6 — and only 2 without DFS 160 MHz 2 — both need DFS Every doubling of width halves the number of clean lanes.
This is the trade-off nobody mentions on the box. At 20 MHz the 5 GHz band is enormous. At 160 MHz it holds two channels, both of which need DFS — so a building with several access points cannot use wide channels without them colliding. Width and coverage pull in opposite directions.
The 6 GHz band compared with 2.4 and 5 GHz, and the lanes it provides The 6 GHz band offers roughly 1200 MHz of spectrum where available, compared with about 500 MHz at 5 GHz and around 70 usable MHz at 2.4 GHz. It provides 59 twenty-megahertz channels, or seven at 160 MHz, with no DFS requirement and no legacy devices present. 6 GHz · WHY IT CHANGES THE MATHS 2.4 GHz ~70 MHz usable · 3 lanes 5 GHz ~500 MHz · but half of it is DFS 6 GHz ~1200 MHz where regulators allow it · no DFS WHAT 6 GHz ACTUALLY BUYS YOU 59 channels at 20 MHz 7 full 160 MHz channels none legacy devices, no DFS The catch: shortest range of the three bands, and only WiFi 6E and 7 can see it.
6 GHz is the first band with room to be wasteful. It is the only place where 160 MHz channels are realistic across several access points, because it is the only band with enough lanes left over. Availability is set by each country's regulator, so confirm what is permitted in the UAE before designing around it.
Clean lanes available 2.4 GHz 5 GHz 6 GHz
At 20 MHz3~2559
At 40 MHz1 — do not~1229
At 80 MHzNot possible6 (2 without DFS)14
At 160 MHzNot possible2 (DFS only)7
DFS required?NoFor most of the bandNo
Who can use itEverythingWiFi 5 and newerWiFi 6E and 7 only
RangeFurthestModerateShortest
Typical noiseVery highModerateVery low

Read the table as a planning tool rather than a scoreboard. If a building needs six access points, then at 80 MHz on 5 GHz you have exactly enough clean lanes only if you accept DFS — and at 160 MHz you simply cannot do it without two of them sharing. That is the moment to either narrow the channels or move the demanding devices to 6 GHz. The width you choose is really a decision about how many access points you can run without them fighting each other.

06 · DFS

DFS: Free Channels, With A Condition

Roughly half of the 5 GHz band is sitting unused in most buildings. Here is why, and when you should take it.

DFS stands for Dynamic Frequency Selection. A large block of 5 GHz channels is shared with weather radar, military radar and some airport systems. Regulators allow WiFi to use those channels on one condition: if the access point detects a radar pulse, it must stop transmitting on that channel immediately and move elsewhere. That is the whole bargain.

In return you get a large number of extra channels that most consumer equipment never touches, because manufacturers avoid them for a quiet life. In a dense building those channels are often the only genuinely clean air available.

Use DFS When

Where it wins clearly
  • You are in a dense apartment block or tower and the normal channels are full
  • You need several access points on non-overlapping channels
  • The equipment is proper enterprise gear that handles a radar event gracefully
  • Devices are mostly modern — most current phones and laptops support DFS fine
  • The site is not beside an airport, a port or a weather station

Avoid DFS When

Where it costs more than it gives
  • You are close to an airport, coastline or radar installation — expect regular events
  • The network carries voice calls that cannot survive a channel change
  • Older IoT devices, some cameras and cheap smart plugs cannot see DFS channels at all
  • You would be putting your only access point on it with no fallback

What a radar event actually looks like: the access point vacates the channel, then must listen on the new one before transmitting — a period called the channel availability check, which can take up to sixty seconds, or ten minutes on some weather-radar channels. Devices drop and reconnect. Once a quarter in a quiet area is a fair trade for clean air. Twice a day beside an airport is not, and no amount of configuration will change it.

07 · Generations

How Signal Behaves Across WiFi 4 To 7

A newer generation does not make the signal travel further. It makes better use of the signal that arrives.

Aspect WiFi 4 WiFi 5 WiFi 6 / 6E WiFi 7
Standard802.11n802.11ac802.11ax802.11be
Bands2.4 + 55 only2.4 + 5 (+6 on 6E)2.4 + 5 + 6
Behaviour at weak signalFalls off a cliffFalls off a cliffDegrades gracefullyDegrades gracefully
Many devices at oncePoor — strict queuePoor — downlink onlyGood — OFDMA both waysGood
Range for the same powerBest on 2.4 GHzShorterSimilar, used betterSimilar, used better
Useful at low SNRLimitedLimitedBetter — longer symbols helpBetter still
Battery impact on devicesHighHighLower — scheduled wakeLower
Max channel width40 MHz80–160 MHz160 MHz320 MHz
Best used forLegacy IoT onlyLight use, few devicesThe sensible defaultDense, high-demand sites

The row that matters most is the third one. Older generations hold a fast connection until the signal weakens slightly, then collapse. WiFi 6 and 7 include modulation and coding schemes that keep working sensibly as conditions worsen. That is why an upgrade often feels like better coverage even though the physics of range has not changed at all — the edges of the coverage simply stopped falling over.

08 · Roaming

Sticky Clients And The Truth About Locking

The most requested wireless fix, and the one most often applied in the wrong direction.

A device staying connected to a distant access point instead of the nearer one A laptop walks from one access point to another. Because the original connection is still just about alive, the device holds on to the distant access point at a weak signal instead of switching to the strong one beside it. THE STICKY CLIENT PROBLEM AP 1 where it started AP 2 right beside it Laptop, now here walked across the floor still attached at −78 dBm slow, retrying, dropping calls −45 dBm, ignored The device decides when to move — not the network. All the network can do is stop rewarding a bad decision.
Roaming is the client's choice, always. No access point can drag a device across to itself. Phones and laptops hold on to a working connection because reconnecting costs time and battery, which is sensible behaviour right up until it is not.
Minimum RSSI — the real toolSet a floor, commonly around −75 dBm, below which the access point stops serving a client and pushes it to look elsewhere. Used gently this is the single most effective roaming fix.
Set it too aggressively and it backfiresA threshold of −65 dBm in a building where coverage genuinely dips to −70 will disconnect people in perfectly usable spots. Always survey first, then set the threshold below the worst real coverage you intend to support.
Turn transmit power DOWN, not upLower power makes cells smaller and edges cleaner, so devices reach the point of switching sooner. Counter-intuitive, and correct in almost every multi-AP building.
802.11k, v and r — the standards that helpk gives the device a list of neighbours, v suggests a better one, r speeds up the handover. Enable them, but test: a few older devices behave badly with r in particular.
Band steering, used with careNudges capable devices to 5 GHz and away from crowded 2.4 GHz. Helpful in general, occasionally hostile to IoT devices that only speak 2.4 GHz — which is a good reason to give those their own network.
Locking a device to one APGenuinely useful for fixed equipment — a desktop, a camera, a till, a media player that never moves. Pin it and it stops wandering. For anything that walks around, locking creates the exact problem you were trying to solve.
09 · Surveying

Heatmapping: Measuring Instead Of Guessing

A survey turns opinions about the WiFi into a floor plan with numbers on it. That is the entire value.

A heatmap survey means walking a building with a floor plan loaded into software, recording signal, noise and data rates as you go, and producing a coloured map showing exactly where coverage succeeds and fails. Three kinds are worth knowing: a predictive survey models a building from drawings and wall materials before anything is installed; an active survey measures real throughput while connected; and a passive survey listens to everything in the air, including your neighbours, without joining any network.

NetSpot

The accessible one
Best for
Homes, villas, small offices and anyone learning. Runs on a laptop with no extra hardware.
Strength
Genuinely usable within an hour, and the free tier answers most household questions.
Limit
Less depth for large multi-floor sites and no serious spectrum analysis.
Industry standard

Ekahau

The professional one
Best for
Large villas, offices, warehouses, hotels and anywhere a design has to be defended.
Strength
Predictive modelling before installation, plus validation after — the same tool for both.
Limit
Expensive, and the dedicated measurement hardware costs as much as the licence.

AirMagnet

The diagnostic one
Best for
Interference hunting and compliance work where the question is why, not merely where.
Strength
Deep spectrum analysis that identifies non-WiFi interference other tools cannot see.
Limit
A specialist instrument rather than a general design tool.

The tool matters far less than the method. A survey walked properly with free software beats a careless one with the most expensive licence available. What you are buying is the floor plan with numbers on it — evidence that a room is at −74 dBm rather than an argument about whether the WiFi is bad. QSN surveys before quoting, precisely so the proposal describes your building instead of a generic one.

10 · Deciding

Choosing Access Points With The Numbers

Once you can read signal, buying decisions get much simpler and usually cheaper.

The Rule: More Access Points, Less Power Each

Almost every wireless problem we are called to has the same shape: too few access points, turned up too high, on overlapping channels, with nothing measured. The fix is nearly always the reverse — more access points at lower power, on non-overlapping channels, placed from a survey. Three modest access points beat one powerful one in essentially every building with walls.

When comparing hardware, the specification that matters is rarely the headline speed. Look for the number of spatial streams, whether the uplink port can carry more than a gigabit if you intend to use wide channels, whether the antenna pattern suits a ceiling or a corridor, and whether the whole estate can run under one controller. Then match the generation to the building — the WiFi generations guide covers that choice, and the switches guide covers what should be feeding them.

11 · What Trips People Up

Mistakes We See Repeatedly

Every one of these produces a symptom that points somewhere else.

Turning The Power Up

The instinctive move that makes it worse
  • It widens the cell so devices connect from places they cannot reply from
  • It makes your own access points interfere with each other
  • It encourages sticky clients to hold on even longer
  • It cannot fix a wall, and the client radio is still small and battery powered

Five More Worth Knowing

Cheap to avoid, slow to diagnose
  • 80 MHz channels in an apartment block. Wide channels in dense air collide constantly — 20 or 40 MHz is often measurably faster
  • Auto channel left to itself forever. It picks well on the day and rarely revisits the decision after neighbours change
  • Judging coverage by the phone in your hand. A laptop, a phone and a smart plug see three different things from the same spot
  • Mounting access points in the ceiling void or a metal cabinet. Metal and plasterboard undo the whole design silently
  • Ignoring the uplink cable. A 160 MHz-capable access point on a single gigabit cable is limited by the cable, not the air
12 - Questions

Signal FAQs

The questions that come up once the numbers stop being mysterious.

What is RSSI, and why is it a negative number?
RSSI stands for Received Signal Strength Indicator and it describes how strongly your device hears the access point. It is measured in dBm, meaning decibels relative to one milliwatt, and it is negative because wireless signals carry a tiny fraction of a milliwatt — so the value is expressed as a number below that reference point. The practical consequence is that a value closer to zero is stronger: −45 dBm is a strong signal, while −80 dBm is a weak one. As a working guide, −30 to −50 is excellent, −50 to −67 is the range you should design for, −67 to −72 is workable for browsing but marginal for calls, and anything below −80 is effectively unusable even though a device may still show a connection.
What is SNR, and why does it matter more than signal strength?
SNR is the Signal-to-Noise Ratio: the gap between your signal and the background radio noise in that space, expressed as a plain number in dB. If RSSI is how loudly someone is speaking, SNR is how loudly they are speaking compared with the noise in the room. It matters more because a strong signal in a noisy environment still produces a poor connection. A signal of −55 dBm on a quiet noise floor of −95 dBm gives an SNR of 40 dB and works beautifully; the same −55 dBm signal in an apartment block with a noise floor of −65 dBm gives an SNR of only 10 dB and will be slow and unreliable. Aim for 25 dB or more, treat 20 dB as the floor for voice and video, and expect trouble below 15 dB no matter how many bars are showing.
What is the difference between dBm, dB and dBi?
They look similar and mean quite different things. dBm is an absolute measurement of power — signal strength and the noise floor are both quoted in dBm, and in wireless they are always negative. dB on its own is a ratio, a difference between two values rather than a level, which is why SNR and the loss through a wall are both given in dB. dBi describes the gain of an antenna, meaning how tightly it focuses the energy it is given; it does not create power, it shapes it, so a high-dBi antenna behaves like a torch beam and a low-dBi one like a bare bulb. A useful rule alongside all three is that every 3 dB roughly doubles or halves power, so a 10 dB loss through a wall leaves about a tenth of what you started with.
Why should I only use channels 1, 6 and 11 on 2.4 GHz?
Because they are the only ones that do not overlap. The 2.4 GHz band numbers its channels up to 13 or 14 depending on the country, but each channel is considerably wider than the spacing between the numbers, so channels sitting next to each other bleed into one another. Two networks sharing channel 6 will at least take turns politely, since they can hear each other and cooperate. A network on channel 3 partially overlaps both 1 and 6, so it cannot coordinate with either and simply raises the noise floor for everyone including itself. Choosing 1, 6 or 11 gives you three genuinely clean lanes, which is all the 2.4 GHz band has ever really offered.
Is a wider channel always faster?
No, and assuming so is one of the most common ways to make a network slower. A wider channel carries more data per transmission, but it also gathers more noise and occupies air that neighbouring access points then cannot use. In a detached villa with clean air, 80 MHz on 5 GHz may be excellent. In a dense apartment tower the same setting collides with every neighbour, and dropping to 40 or even 20 MHz frequently measures faster in practice. Wider channels also reduce how many non-overlapping channels you have available, which matters as soon as you have more than one access point. On 2.4 GHz, 20 MHz is the only sensible choice. On 6 GHz there is genuinely enough room for wide channels, which is much of the point of that band.
What is DFS, and should I use those channels?
DFS stands for Dynamic Frequency Selection. A large block of 5 GHz channels is shared with weather, military and aviation radar, and regulators permit WiFi to use them on the condition that an access point detecting a radar pulse must leave that channel immediately and check the new one before transmitting. In return you gain a substantial number of channels that most consumer equipment avoids, which in a dense building is often the only genuinely clean air available. Use them when the normal channels are congested, when you need several access points on separate channels, and when the equipment is capable enough to handle an event gracefully. Avoid them close to an airport, a coastline or a radar installation, where events will be frequent, and be aware that some older IoT devices and cameras cannot see DFS channels at all.
Why does my phone stay connected to a distant access point?
This is called a sticky client, and it happens because the decision to move belongs entirely to the device, never to the network. Phones and laptops hold on to a working connection because reconnecting costs time and battery, so they will often cling to an access point at −78 dBm while a much stronger one sits directly overhead. The network cannot drag a device across, but it can stop rewarding the bad decision. The most effective tool is a minimum RSSI threshold, commonly around −75 dBm, below which the access point stops serving that client so it looks elsewhere. Reducing transmit power also helps, because smaller cells create cleaner edges. Enabling the 802.11k, v and r standards assists devices that support them, though a small number of older devices behave poorly with r.
Should I lock devices to a specific access point?
For equipment that never moves, yes, and it is a genuinely useful technique — a desktop computer, a fixed camera, a point-of-sale terminal or a media player will all behave more predictably pinned to the access point they sit beneath. For anything that travels through the building it is counterproductive, because you are guaranteeing the exact problem you were trying to solve: a device holding a weak connection when a better one is available. For mobile devices the right approach is the opposite of locking, which is to design overlapping coverage properly, lower transmit power so cell edges are distinct, and set a minimum RSSI threshold below the weakest coverage you intend to support.
What does a heatmap survey actually tell me?
It converts opinions about the WiFi into a floor plan with measured numbers on it. A surveyor walks the building with the plan loaded into software such as NetSpot, Ekahau or AirMagnet, recording signal strength, noise and data rates throughout, and produces a coloured map showing precisely where coverage meets the target and where it fails. There are three useful varieties: a predictive survey models the building from drawings before anything is bought, an active survey measures real throughput while connected, and a passive survey listens to everything in the air including neighbouring networks. The value is evidence rather than argument — knowing a particular room sits at −74 dBm tells you exactly what to do, whereas being told the WiFi is bad in that room does not.
Will a newer WiFi generation give me better coverage?
Not in the sense of the signal travelling further, since range at a given frequency and power is set by physics rather than by the standard. What newer generations do is use a weak signal more intelligently. WiFi 4 and 5 tend to hold a fast connection until conditions deteriorate slightly and then collapse, whereas WiFi 6 and 7 include schemes that degrade gracefully and remain useful at lower signal-to-noise ratios. The result often feels like better coverage because the edges of the coverage area stop falling over, even though the coverage area itself has not grown. If a room is genuinely below −72 dBm, no generation will rescue it — that room needs an access point closer to it, which is a cabling decision rather than a purchasing one.

Stop Guessing. Measure It.

We survey the building, map every room against the numbers in this guide, and design coverage around what we actually find — then supply, install and manage it. Across Dubai and the UAE.

Pocket Guide PDF · 2.1 MB