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DataSynOps — generate exactly the data you need

A closed-loop engine that synthesises rare conditions with physics-based simulation and generative AI, and attaches the ground-truth labels automatically.

How it works

Five steps that close into a loop

STEP 1

Diagnose the gap

We identify the conditions the current model fails on, automatically.

STEP 2

Synthesise the data

Physics-based simulation combined with generative realism refinement.

STEP 3

Auto-label

SAM2 produces pixel-precise polygons, sorted into three confidence tiers.

STEP 4

Retrain and verify

Synthetic pre-training, field fine-tuning, then measured verification.

STEP 5

Deploy and report

Detections and the evidence behind them are exported as a report.

CLOSED-LOOPSTEP 5 feeds STEP 1

Field results from the last step become the input to the first. As client sites accumulate, so do the data assets and the model performance built on them.

The closed-loop structure is secured as granted patent KR 10-2687011 (method and apparatus for generating training data for AI video analytics models) and published application KR 10-2026-0095246 (recursive AI training-data generation based on image synthesis).

You do not buy the data — you enter the conditions and the data is produced. Size, depth, illumination, season and soil type combine as parameters to build scenarios that field capture cannot reach. Because no real capture is required, no export restriction applies.
Products

Four components

DataSynOps-α
Synthesis engine for video-analytics training data
Certified test report CT24-104451K
DataSynOps-ε
Synthesis engine for image-enhancement training data
Software registration C-2024-054601
DataSynOps v2.0
Low-light synthetic data platform
2026 Innovative IT Award technology
AutoLabel Forge
SAM2-based automatic labeling pipeline
74.4% field recall · 83.6% precision
Assets

10 domain generation pipelines

PipelineWhat it generatesDomainStatus
SewerDefectSynOps Sewer pipe defect data generation Infrastructure inspection Delivered
ScenarioDataSynOps Scenario-based synthetic data generation Defense & industry In funded project
AerialDataSynOps Aerial-view object detection data generation Defense · UAV Delivered
FireDataSynForge Wildfire detection data generation Environment Delivered
AlgaeDataSynForge Algal bloom detection data generation Water quality Delivered
EventVideoSynOps Event-based video synthesis for hazard recognition Worker safety In development
AerialTargetTrackOps Drone target tracking and aiming support Defense Adjacent
SensorRestoreOps Restoration of contaminated autonomous-driving sensor imagery Mobility In development
WeldInspectSynOps Inference across weld geometry, process signals and internal quality Manufacturing QA Adjacent
SewerAutoLabelForge Auto-labeling on AI Hub sewer dataset Labeling automation In validation
Once built, a pipeline is an asset that can be sold repeatedly to new clients in the same domain. 6 of 10 have been verified in paid delivery or a funded program.
Intellectual property

3 granted patents · 2 certified test reports · 2 software registrations

TypeTitleNumberDateStatus
Granted patent Method and apparatus for generating training data for AI video analytics models 10-2687011 2024-07-17 Granted
Granted patent Integrated image enhancement and training-data generation using a generative recurrent network 10-2654017 2024-03-29 Granted
Granted patent Image matting method and apparatus 10-2624296 2024-01-09 Granted
Published application Recursive AI training-data generation based on image synthesis 10-2026-0095246 2024-12-16 Filed / published
Certified test report Certified test report — synthetic data solution CT23-102887K 2023-12-08 Issued
Certified test report Certified test report — DataSynOps-alpha CT24-104451K 2024-12-16 Issued
Software registration Software registration — DataSynOps-alpha C-2024-054600 2024-12-23 Granted
Software registration Software registration — DataSynOps-epsilon C-2024-054601 2024-12-23 Granted
Certified test reports are issued by the Korea Conformity Laboratories (KCL). Software registrations are held with the Korea Copyright Commission. Patent 10-2624296 was transferred from the Chung-Ang University Industry-Academic Cooperation Foundation.
Contact

Tell us what has to be detected on your site

Tell us what has to be detected on your site. We will first assess whether that data can be generated. If you have sample footage, we will prepare an auto-labeling demonstration with it.