We layer AI onto existing CCTV networks to extract real-time metrics—counts, flows, risks—while redacting identities prior to storage or analysis. No hardware replacement required.
Infrastructure operators manage thousands of video streams, yet the data is trapped. Manual review is retroactive and slow. Traditional video analytics are a compliance minefield.
The result ?
Critical operational decisions are made without the visual ground truth you already own.
GDPR risks often prevent the use of standard AI analytics in public spaces.
Footage is stored for security evidence, not analyzed for operational efficiency.
Replacing cameras or installing LiDAR across an entire network is cost-prohibitive.
We separate the insight from the identity. The system processes video streams to generate metrics, not surveillance records.
Ingests RTSP streams from your existing IP cameras. No new sensors or hardware replacement.
Redacts faces and license plates at the frame level before downstream storage or analysis.
AI extracts depth, occupancy, flow, and risk events using monocular depth estimation.
Delivers aggregated JSON data, heatmaps, and alerts. Video retention is configurable to customer policy.
Your operations team gets clean, structured data—not just hours of video.

In regulated environments, trust isn't about promises—it's about architecture. Our system is designed to support stringent Data Protection Impact Assessments (DPIAs).
We process pixels to generate math. The default state is anonymized.
Our AI detects "Human", not "Identity". No facial recognition or matching.
Logs of data processing activities available for compliance audits.
Standard 2D analytics struggle with perspective (e.g., a person far away looks small). We utilize advanced deep learning models to infer a 3D depth map from a single 2D camera feed.
This allows us to calculate real-world distance (meters) and density (people per m²) without expensive stereo cameras or LiDAR.

Vegetation management and trackside obstacle detection.
Safety zone monitoring for depots and tracks.
Analyze curbside congestion patterns and terminal dwell times to identify operational bottlenecks.
Crowd density and compliance monitoring.
We select partners for focused proof-of-value deployments. Define the KPI. Run for 4 weeks. Measure the impact.
Automated vegetation and obstacle detection from rolling stock.
Optimizing landside flow and curbside dwell times.
Safety monitoring for test tracks and smart depots.
Crowd safety and asset management for smart cities.
No obligation. No hardware changes. Clear scope upfront.
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