FYVIE

One-bit foundation models,
built to think locally.

We build 1-bit models trained from scratch.

01 / SPQ / WIKITEXT-2

Language models

Reasoning, generation and agents.

Answers computed where the question was asked — no round trip, no per-token bill, no transcript leaving the device.

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02 / SPQ / CIFAR-100

Vision models

Perception and visual understanding.

Real-time detection and classification on camera-class silicon — every frame processed where it was captured.

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03 / DEVELOPMENT TRACK

Audio models

Speech, sound and acoustic intelligence.

Speech and sound understood on the device itself — for the rooms, cabins and floors where audio must never leave.

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Intelligence for edge hardware

01

Telecoms

Network monitoring when the link goes down.

02

Drones

Onboard vision without a cloud connection.

03

Robotics

Machine control behind the air gap.

Advantages of 1-bit models

10x lower RAM use

A model that needed 4 GB fits in 0.4 GB — small enough for a phone.

01 / MEMORY 10x less memory

Versus full precision — a 2B-parameter model runs in 0.4 GB, beside the application you already ship.

4.0 GBFP16
2.0 GBINT8
1.0 GBINT4
0.4 GB1-BIT

Lightning fast

Multiplies become additions, so each token takes far less arithmetic.

02 / SPEED up to 6x faster

On a single CPU — 29 ms per token from a 2B model, fluent real-time generation with no accelerator involved.

29 ms1-BIT 2B
41–124 msCONVENTIONAL
2B-CLASS

Hyper efficient

Sixteen bits of precision cut to one, with the model still doing its job.

03 / CPU SPEED-UP 5.1x faster

On the ARM cores embedded products already ship — up to 6.2x on x86 — with optimised 1-bit kernels.

1.4–5.1xARM
2.4–6.2xX86

1x = the same model on a standard runtime

Ultra low power

Less memory traffic, less energy per token, no data centre required.

04 / ENERGY 23x lower power

At the top end — an estimated 0.028 J per token against 0.186–0.649 J for comparable models.

0.028 J1-BIT 2B
0.186–0.649 JCONVENTIONAL
2B-CLASS
EXPLORE OUR RESEARCH

Become a
design partner.

We’re taking a small number of hardware partners — OEMs, chip vendors and SOM providers — to benchmark Fyvie on real platforms and shape the deployment stack. Integrate once at the platform level; every product family built on it inherits the model.

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