MEET G2 Gigabit broadband. At a whole new scale.

The world is in the way.
That’s where we start.

Trees. Rooftops. Crowded spectrum. Six chapters connect the physics to the network your customers depend on.

Conceptual custom signal-processing silicon
Conceptual visualization of signal processing.

A straight line isn’t always an option.

Where people live determines where the network needs to reach. Obstructions and interference belong in the design from the beginning.

Trees

Foliage changes how energy propagates between radios.

Buildings

Rooftops and structures can obstruct or reflect the direct path.

Terrain

Elevation and geography shape each deployment’s possibilities.

Every mechanism should answer
an operator’s problem.

MechanismEngineering purposeBusiness implication to evaluateEvidence to collect
Multipath integrationUse viable indirect signal arrivals in an obstructed environment.Evaluate more addresses from a candidate site.Serviceable links and repeatable performance across representative obstructions.
Interference cancellationReduce the effect of unwanted radio energy.Protect the service experience in shared spectrum.Performance with measured interference, including changing conditions.
Multicarrier capacityCombine available carriers in supported configurations.Support the intended tier mix and growth plan.Aggregate sector demand, uplink needs, and capacity headroom.
Cloud operationsObserve, configure, and troubleshoot the installed fleet.Reduce avoidable operating friction as the network grows.Alarm handling, change control, install records, and recovery workflows.

More than one path forward.

Multipath integration brings usable reflected and diffracted signal energy together. The receiver works with differences in arrival angle, phase, and delay.

Multipath integration · Conceptual visualization
TRANSMIT

One signal.

Energy travels through the environment between the radios.

PROPAGATE

Several paths.

Objects and terrain can change the routes the signal follows.

RECEIVE

Recombined energy.

Adaptive processing integrates usable arrivals.

Read the NLoS Design Principles

The intelligence is in the processing.

Tarana’s space-time-frequency adaptive processing brings multiple dimensions of the radio channel into the beamforming solution.

Conceptual view of custom signal-processing silicon
Conceptual image, not a chip layout.

Adapt to a changing channel.

Radio conditions vary with the environment. Processing at both ends of the link helps the system respond as those conditions change.

The technology primer explains the implementation in engineering depth and distinguishes the product generations.

Read the Engineering Primer

Make room for the signal that matters.

Interference cancellation helps separate the wanted signal from unwanted radio energy. The animation illustrates the idea; it is not a measured spectrum trace.

Real-time interference cancellation · Conceptual visualization

Identify the Desired Link

Maintain the connection between the Base Node and its Remote Node.

Suppress Unwanted Energy

Use adaptive radio processing to reduce the effect of interference.

Keep Measuring

Evaluate performance under the conditions the deployment will actually face.

Grow the opportunity.
Plan for the demand.

G2 combines capacity across multiple carriers, helping operators use available licensed and unlicensed spectrum.

Multicarrier capacity · Conceptual visualization
4Separable carriers
160MHzSpectrum bandwidth
6.4GbpsG2 sector capacity

Product capabilities depend on configuration and regulatory availability.

Explore G2 Capabilities

Test the network you intend to sell.

Agree the pass criteria before the first radio is installed. Include the difficult locations and the operating conditions that matter to your customers.

Test areaRepresentative conditionAcceptance record
Coverage and propagationRepresentative distance, foliage, building obstruction, and mounting height.Document radio configuration, link margin, signal conditions, and install outcome.
Capacity under loadConcurrent traffic across a realistic mix of links and tiers.Measure aggregate throughput, per-subscriber behavior, and uplink/downlink balance.
Service qualityBusy-hour and application-relevant test cases.Record latency, packet loss, variation, and repeatability—not only peak speed.
InterferenceObserved background activity and changes over time.Retain spectrum conditions alongside the performance measurements.
ResiliencePlanned power, backhaul, management, and device recovery exercises.Confirm fault detection, escalation, recovery, and the customer impact.
OperationsInstallation, alignment, provisioning, firmware change, and troubleshooting.Record elapsed time, repeat visits, technician steps, and the evidence needed for support.
Keep a reproducible record.

Save the equipment models, firmware, band and channel configuration, site geometry, test endpoints, offered load, time window, and results. Agree any retest criteria and unresolved exceptions before commercial rollout.

Bring the Design to a Planning Discussion

Read the physics.
Then ask about your network.

Start with the primer, compare the product specifications, and examine the conditions in a published operator story.

Build a network that moves people forward.

Bring your coverage goals, terrain, and service targets. Let’s work through the deployment together.

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