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Underwater Acoustic Positioning Systems

Underwater acoustic positioning systems locate and track submerged vehicles, instruments, divers, and infrastructure where GNSS signals are unavailable. Using acoustic travel time, phase, or angle measurements, these systems calculate range and bearing between subsea targets and known reference points.

This page showcases leading manufacturers underwater acoustic positioning systems, including USBL, SBL, and LBL systems for offshore and oceanographic applications.

Read the Technology Overview

Suppliers of Underwater Acoustic Positioning Systems

Teledyne Marine
Teledyne Marine

High-Performance Instruments, Sensors & Technologies for Exploring & Monitoring Subsea Environments

Advanced Navigation
Advanced Navigation

High-Accuracy Inertial Sensors & Acoustic Positioning Systems for Marine, Maritime & Offshore Applications

Cerulean Sonar
Cerulean Sonar

Cutting-Edge Underwater Imaging & Positioning Solutions for Subsea Exploration

RJE International
RJE International

Underwater Acoustic Tracking & Recovery Solutions for Mission-Critical Subsea Assets

Cellula Robotics
Cellula Robotics

Innovative Autonomous Underwater Vehicle Solutions for Subsea Survey, Science & Security Applications

Impact Subsea
Impact Subsea

Innovative, High-Performance Underwater Sensing Technologies for the Marine Industry

applied acoustics
applied acoustics

Innovative Subsea & Marine Navigation, Positioning & Survey Solutions

eSonar
eSonar

Acoustic & Sonar Technologies for Marine & Maritime Applications

Blueprint Subsea
Blueprint Subsea

Imaging Sonar & Acoustic Positioning Beacons for ROVs

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Underwater Acoustic Positioning Systems

14 Cutting-edge Solutions
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USBL DAT
USBL DAT

Directional Acoustic Transponder for underwater positioning and communications

Directional Acoustic Transponder for underwater positioning and communications
... a Directional Acoustic Transponder that combines range measurement, bearing estimation, and...
TrackIt USBL System
TrackIt USBL System

TrackIt USBL System for subsea vehicle positioning

TrackIt USBL System for subsea vehicle positioning
...e TrackIt USBL System is an underwater positioning system developed for locating and tracking subsea...
Benthos Acoustic Release
Benthos Acoustic Release

Acoustic releases for subsea deployment and recovery

Acoustic releases for subsea deployment and recovery
...ledyne Benthos Acoustic Releases comprise a family of subsea release systems engineered for the... ...l-type release systems...
Subsonus Tag
Subsonus Tag

Low-cost tracking capability for underwater vehicles

Low-cost tracking capability for underwater vehicles
... is a low-cost acoustic positioning transponder designed for use with Advanced Navigation’s...
Subsonus
Subsonus

Miniature underwater acoustic positioning system for AUVs and ROVs

Miniature underwater acoustic positioning system for AUVs and ROVs
...hort baseline) underwater acoustic positioning system that combines a sophisticated eight-channel...
Omnitrack USBL
Omnitrack USBL

Underwater vehicle positioning system with magnetic interference-resistant heading

Underwater vehicle positioning system with magnetic interference-resistant heading
...nitrack subsea positioning system features a ring buoy that combines an ROV Locator USBL with dual...
ROV Locator USBLs
ROV Locator USBLs

USBL positioning systems with versatile synchronization options

USBL positioning systems with versatile synchronization options
...effective USBL positioning capabilities for UUVs (unmanned underwater vehicles) at depths of down to... ...1; uses duplex acoustic communication with a transceiver on the topside and a transponder on the...
ATT-400
ATT-400

Compact acoustic target transponder with 6-month battery life

Compact acoustic target transponder with 6-month battery life
...easy-to-deploy acoustic transponders can operate at depths of down to 1000 meters as standard, and a...
PRS-275
PRS-275

Diver & surface pinger receiver system with directional hydrophone

Diver & surface pinger receiver system with directional hydrophone
...and locate any underwater 5 - 80 kHz acoustic beacon at depths of down to 200 meters, with up to 8...
VADR-600M
VADR-600M

Rugged passive pinger receiver for AUVs & ROVs

Rugged passive pinger receiver for AUVs & ROVs
...ators to track acoustic sound sources with frequencies from 8kHz to 45kHz. Operational at depths of...
ULB-350
ULB-350

Cost-effective acoustic location beacon for depths of down to 1200m

Cost-effective acoustic location beacon for depths of down to 1200m
... equipment and underwater sites at depths of up to 1200 meters. The compact unit is highly suited to...
Subsea Sentinel Sensor Node
Subsea Sentinel Sensor Node

Seabed sensor node for marine mammal detection & target tracking

Seabed sensor node for marine mammal detection & target tracking
...utonomously in underwater arrays to provide reliable long-term collection and transmission of ocean... ...sive or active acoustic sensors, echosounders and environmental sensors, as well as long-range...
ISS360 Imaging Sonars
ISS360 Imaging Sonars

Compact imaging sonars for navigation & target identification

Compact imaging sonars for navigation & target identification
...ROVs, AUVs and underwater vehicles of any size. Utilizing a broadband composite transducer and...
Easytrak USBL Systems
Easytrak USBL Systems

Underwater tracking for divers and UUVs

Underwater tracking for divers and UUVs
...aseline (USBL) systems provides effective and efficient tracking of underwater assets such as...

The Complete Guide to Underwater Acoustic Positioning Systems

William Mackenzie

Updated:

Introduction to Underwater Acoustic Positioning

Underwater acoustic positioning systems locate submerged vehicles, instruments, structures, divers, and other assets where Global Navigation Satellite System (GNSS) signals cannot reach. Acoustic travel time, signal phase, or angle measurements determine range, bearing, or both between known reference points and an underwater target. Surface GNSS, vessel attitude, depth, timing, and sound-speed data are then combined to calculate a local or georeferenced subsea position.

An underwater acoustic positioning system may provide an independent fix or correct drift within a broader navigation solution. Performance depends on geometry, range, alignment, platform motion, timing, signal quality, multipath, obstruction, and sound-speed variation. Selection should reflect accuracy, depth, update rate, mission duration, environmental conditions, and available infrastructure.

Main Types of Underwater Acoustic Positioning Systems

Acoustic positioning systems are generally classified by the spacing and arrangement of their transducers, transponders, responders, or seabed reference points.

Ultra-Short Baseline Systems (USBL)

Subsonus USBL Miniature Underwater Acoustic Positioning System by Advanced Navigation

Subsonus USBL Underwater Acoustic Positioning System by Advanced Navigation

Ultra-short baseline acoustic positioning systems use a compact vessel-mounted array to determine the range and direction of a subsea transponder or responder. Range is derived from acoustic travel time, while direction is calculated from phase or time differences across the array. Measurements are combined with surface position, heading, and attitude. Calibration, pole stability, lever-arm offsets, vessel motion, and acoustic conditions affect performance.

Short Baseline Systems (SBL)

A short baseline acoustic positioning system uses several transducers installed across a vessel, structure, or platform. Their separation allows target position to be calculated from measured ranges or timing differences. Accuracy depends on surveyed transducer locations, baseline length, geometry, synchronization, and motion compensation.

Long Baseline Systems (LBL)

A long baseline acoustic positioning system uses multiple transponders at surveyed seabed positions. A vehicle or instrument measures ranges to these references to calculate its position within or near the array. LBL provides stable, repeatable positioning with less dependence on surface-vessel location, but requires deployment, calibration, battery management, and recovery.

Sparse and Reduced-Infrastructure LBL Systems

Sparse LBL configurations reduce the number of fixed seabed references by combining acoustic ranges with inertial, velocity, depth, or vehicle-motion data. This can reduce mobilization time and seabed equipment. Lower geometric redundancy increases reliance on vehicle trajectories, synchronization, sensor fusion, outlier rejection, and uncertainty monitoring.

Applications of Underwater Acoustic Positioning Systems

Underwater acoustic systems support scientific research, subsea engineering, survey operations, diver tracking, and vessel control whenever the position of a submerged asset must be established.

Hydrographic Surveying and Instrument Deployment

Hydrographic teams use acoustic positioning to track towfish, Remotely Operated Vehicles (ROVs), sampling platforms, and seabed instruments. Position data links measurements to coordinates, records deployment locations, and supports equipment relocation or recovery.

Water-Column and Ecosystem Research

Water-column research may require tracking profilers, cameras, nets, samplers, and Autonomous Underwater Vehicles (AUVs). Acoustic positioning reconstructs sampling paths and repeated transects. Update rate, range, power, accuracy, and uncertainty should match the platform and objectives.

Marine Archaeology and Environmental Monitoring

Marine archaeology projects use acoustic positioning to georeference vehicles, imaging systems, divers, tools, and recovered objects. Environmental monitoring uses similar methods when revisiting habitats, sediment stations, contamination sites, or long-term sensors. Repeatable positioning helps separate environmental change from survey or placement differences.

Subsea Construction and Offshore Energy Infrastructure Surveys

Subsea construction teams use acoustic positioning to guide vehicles, tooling, and sensors around cables, pipelines, foundations, wells, and other assets. Position data supports placement, inspection, metrology, touchdown monitoring, and as-built surveys. High-precision work may combine acoustic, inertial, Doppler velocity, depth, sonar, and optical data.

Dynamic Positioning Reference Support

An acoustic system can provide a relative reference between a surface vessel and a fixed or mobile subsea transponder. This may support Dynamic Positioning (DP) near subsea assets. Operators should consider continuity, latency, geometry, redundancy, interference, alarm limits, and undetected bias.

Core System Components

A complete underwater acoustic positioning system may include the following components:

  • Acoustic receivers and transceivers: Transmit, receive, identify, time, and process acoustic signals.
  • Acoustic pingers, transponders, and responders: Return coded replies or transmit when externally triggered.
  • Hydrophone and projector arrays: Receive sound, transmit sound, or perform both functions.
  • Vessel-mounted transducer poles and deployment machines: Place the acoustic head below bubbles, turbulence, and vessel noise.
  • GNSS receivers and surface position references: Establish the position of the vessel or surface node.
  • Motion Reference Units (MRUs) and attitude sensors: Measure roll, pitch, heave, and heading.
  • Sound-Velocity Sensors (SVSs) and profilers: Measure local sound speed and the water-column profile.
  • Depth and pressure sensors: Constrain vertical position and support integrated navigation.

Final accuracy also depends on transducer offsets, angular alignment, turnaround delays, coordinate frames, clock synchronization, and processing quality.

Integration with Subsea Navigation Systems

Acoustic positioning is often integrated with other navigation sensors to improve continuity, stability, and accuracy between acoustic updates:

  • Inertial Navigation Systems (INSs): Propagate position, velocity, and attitude while acoustic observations limit drift.
  • Doppler Velocity Logs (DVLs): Measure velocity relative to the seabed or water column.
  • Compass, heading, and attitude sensors: Establish orientation and support coordinate transformations.
  • Pressure-based depth sensors and altimeters: Measure depth and seabed clearance.
  • Simultaneous Localization and Mapping (SLAM): Estimate movement from recurring sonar or optical features.

These inputs may be combined through loosely or tightly coupled sensor fusion. Robust systems monitor residuals, reject invalid measurements, estimate uncertainty, and define behavior when updates are lost.

Integration with Marine Vehicles & Platforms

The configuration of an acoustic positioning system must reflect vehicle size, power, operating depth, motion, acoustic field of view, and communications architecture.

Remotely Operated Vehicles (ROVs)

Remotely Operated Vehicles (ROVs) commonly carry a transponder or responder for inspection, sampling, intervention, and construction. Acoustic data may update the vehicle’s Inertial Navigation System (INS). Integration should account for tether forces, shading, thruster noise, attitude, sensor offsets, and coordinate frames.

Autonomous Underwater Vehicles (AUVs)

Autonomous Underwater Vehicles (AUVs) use acoustic updates to correct drift without surfacing for GNSS. They may navigate relative to seabed beacons, a support vessel, or an unmanned surface platform. Update rate must be balanced against power, channel access, range, speed, and INS performance.

Unmanned Surface Vessels (USVs)

Unmanned Surface Vessels (USVs) can carry GNSS, attitude sensors, and acoustic transceivers to track submerged assets. Repositioning can improve geometry, follow an AUV, or extend coverage. Cooperative operations require synchronization, reliable communications, collision avoidance, and shared coordinate frames.

Towed Vehicles and Towfish

Towed vehicles move independently of the vessel because of cable shape, current, depth, and maneuvers. Direct acoustic positioning is more reliable than cable-length estimates alone. Combining vessel navigation, tow measurements, depth, layback, and acoustic fixes strengthens the position record.

Emerging Developments in Underwater Acoustic Positioning

Current development is focused on reducing fixed infrastructure, improving navigation continuity, and obtaining more information from each acoustic transmission:

  • Tightly coupled acoustic-inertial navigation: Processes acoustic observations alongside inertial, velocity, and depth data.
  • Distributed and mobile acoustic networks: Use moving surface or underwater platforms as temporary references.
  • Adaptive waveforms and environmental compensation: Adjust signaling and processing to changing noise, Doppler, and propagation conditions.
  • Integrated positioning and acoustic communications: Share channel resources for ranging, data transfer, commands, and status updates.

These developments are expanding system capability while increasing the importance of synchronization, calibration, cybersecurity, uncertainty estimation, and efficient acoustic channel management.

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