Decision-Support for SAR Coordination
Measure. Model. Plan.
SAROS brings scientific search planning to every domain a coordinator faces: drift modelling for maritime incidents, evidence-based lost person behaviour on land, and glide-range modelling for overdue aircraft. Monte Carlo simulation, probability heatmaps, IAMSAR search patterns and a full mission audit trail — in one secure platform.
Terrestrial Search
Maritime Drift
Aero New
The same workflow everywhere: model the scenario, see the probability, plan the search. Learn it once, use it for every incident type.
Lost person behaviour modelling grounded in the statistical analysis of thousands of real incidents. Terrain-aware Monte Carlo simulation with dynamic behaviour re-weighting as weather, light and time change.
Explore Land Search →Allen/Breivik leeway drift with 15 empirically calibrated object classes, live wind, tide and current forcing, and up to 2,000-particle Monte Carlo ensembles across 168-hour simulations.
Explore Maritime Drift →Glide-range envelopes, winds-aloft integration and probability heatmaps for missing aircraft — and when the envelope reaches the sea, hand the datum straight to the drift engine.
Explore SAROS Aero →Not a demo dataset — live drift trials with a police marine unit, and retrospective benchmarking against published search incidents. Read the Scientific Foundations →
Sixteen real search incidents described in Koester, Lost Person Behavior (2010), were retrospectively run through SAROS.
“The land planning tool, awesome again!”
— Staff Officer, HM Coastguard
“Hugely insightful and an absolutely incredible system you have developed and produced.”
— Inspector, Police Search Advisor, Police Scotland
Lost person behaviour modelling based on the work of Dr Robert J. Koester and the Grampian research base. Mountain, moorland, urban and dementia-specific profiles.
Lost people don't move in circles — they follow paths, avoid steep ground and funnel down valleys. So do SAROS particles, and so do the zones built from them.
Every simulated journey negotiates the real hill. Particles follow the path network at raised probability, refuse slopes beyond walkable limits, and drift toward the water features the behaviour statistics say attract lost subjects. Replay the timeline and watch the cloud trace the terrain — not a smooth circle around the point last seen.
The particle cloud collapses into ranked zones that hug the ground — High, Medium and Low, each carrying its area, containment probability and target POD, ready for team tasking. Point attractors are set on the map itself: mark a footpath or a familiar place and probability mass follows it, exactly as the dementia and behaviour literature describes.
The Allen (2005) / Breivik (2011) leeway framework — the international standard for maritime SAR drift prediction — with live environmental forcing and Monte Carlo uncertainty modelling.
The model decomposes object motion into downwind and crosswind leeway components calibrated from field experiments, with ocean current advection applied on top.
Deploy particles at Last Known Position with uncertainty radius
Propagate each particle using wind + tide + leeway coefficients
Generate probability contours from particle distribution
One workflow carries the incident from beacon decode to a drift-advected search plan.
Paste or upload the MCC alert transcript and SAROS decodes it: beacon hex, protocol, GPS position, uncertainty and registry lookup — reviewed and confirmed by the operator before the mission is created. No re-keying at 2am.
The confirmed beacon seeds the drift simulation — last known position, datum time and fix error prepopulated, every run anchored to the mission record. The coordinator reviews the inputs and presses Run: fewer transposition errors, faster first search area.
Select the airbase and the aircraft; SAROS computes transit time, time on scene, arrival and bingo from the asset's endurance profile — so the pattern that follows is one the aircraft can actually fly.
The generated pattern rides the modelled drift — each waypoint moves with the water column and casualty, not geo-locked to the sea floor. The crew chooses the frame: fly the water-referenced rose, record the GPS ground track.
SAROS generates the search pattern the situation calls for — serpentine parallel tracks for large drift areas, expanding square for a tight datum, sector search for a point last seen — sized to the particle spread at commence-search time, with waypoints, bearings and estimated search time on an exportable search card.
Nested probability contours define where to search first, second, and third — enabling optimal allocation of limited SRU time and fuel. The SAR Coordinator sees a clear priority map, not a single best-guess point.
The target is moving — the search area should move with it. Parallel track, expanding square and sector patterns advect with the water so effort stays on the drifting datum, not a fixed patch of sea the target left an hour ago. Pilots fly the constant-heading rose; the GPS ground track is the record.
Patterns are planned against the asset that will fly them: airbase and asset selection, transit time, time on scene and bingo fuel. A green/amber/red feasibility check shows whether the search fits the aircraft's endurance before the card is issued — not after it launches.
When an aircraft is overdue and the ELT is silent, the question is the same as every search: where do we look first? SAROS Aero answers it with physics, winds aloft and Monte Carlo probability — in the same workflow coordinators already know from Land and Drift.
If the glide envelope reaches the water, SAROS Aero hands the splash-point datum, time window and uncertainty directly to the maritime drift engine — one platform carries the search from cruise altitude to the liferaft. No legacy RCC tool chains an air incident into sea drift.
When an aircraft goes missing, its own transponder is usually the best evidence there is. SAROS puts the live air picture inside the planning tool — and turns the last returns into a search plan without a single figure retyped.
The minutes after an aircraft drops off the picture are spent chasing radar replays and reading positions over the phone. With the last returns already in the case — datum, time and track intact — the first ranked search area exists while others are still transcribing.
SAROS Aero is decision support for search planning. Performance profiles are generic and conservative, every simplification is declared on the output, and residual probability outside the searched area is always shown — absence of probability is never treated as evidence of absence.
Push search data to CalTopo with one click — probability zones, search tracks and waypoints appear instantly on shared maps.
Search patterns, turn points and search areas from drift simulations push directly to a CalTopo map. Field teams see the search plan on their devices immediately.
Probability rings, search zones and the last known position push to CalTopo with styled layers — HIGH, MEDIUM and LOW zones are colour-coded for immediate situational awareness.
Push complete search data to CalTopo from either Drift or Land Search with a single button press.
Zones, tracks and markers arrive in CalTopo with SAR-standard colours and labels — no manual styling needed.
Field teams, air assets and coordination centres all see the same live map — bridging the gap between planning and execution.
From first alert to case closure — integrated mission lifecycle management.
Every simulation lives inside a structured incident lifecycle. Planning assumptions are recorded as immutable revisions, tactical decisions are logged with rationale and linked to the run that informed them, and closure is formal — the mission record can be audited years later exactly as it stood at each decision point, never quietly rewritten.
Automated search pattern generation with sweep width calculation. Parallel track, expanding square, and sector search — export directly to field teams.
Real-time vessel positions via AISStream WebSocket. Identify available assets within search area for rapid tasking.
Field report ingestion and search card delivery via WhatsApp Business API. Bridge coordination centre to field teams instantly.
Push probability zones, search tracks and waypoints directly to CalTopo with one click. Shared maps keep field teams and coordination centres on the same page.
Every simulation generates a structured Search Card — incident summary, subject profile, weather conditions, and probability distribution — ready to issue to field teams as PDF or DOCX.
Built for organisations handling sensitive operational data. Defence-grade access controls with operational flexibility.
Join SAR organisations modernising their coordination with science-driven decision support.