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Electronic Distance Measuring Instruments (EDMs) are essential tools in modern surveying, offering precise distance measurements by emitting electromagnetic signals and calculating the time required for these signals to travel to a target and return. Two primary types of signals are used in EDMs — light waves and microwaves — each suited to specific environmental and distance requirements. Light-wave-based EDMs utilize either infrared or laser light, providing high accuracy over...
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The human ear cannot distinguish between two sources of sound if they happen to reach within a specific time interval, typically 0.1 seconds apart. More than this, and they are perceived as separate sources.
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Global Positioning System (GPS) technology has revolutionized navigation and positioning, but its accuracy is often compromised by various errors. These errors, stemming from environmental, satellite, and receiver-related factors, require careful mitigation to ensure reliable performance across applications.Atmospheric ErrorsGPS signals travel through the Earth’s ionosphere and troposphere, introducing delays which affect accuracy. The ionosphere is strongly influenced by charged particles,...
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The human brain perceives pitch through two primary mechanisms reflected in place theory and frequency theory. Each mechanism describes how sound waves are interpreted as specific pitches by the brain, offering insights into the intricate processes of auditory perception.
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GPS surveying methods vary in application, accuracy, and data collection techniques, catering to diverse surveying and mapping needs. Static GPS, kinematic GPS, and real-time kinematic (RTK) surveying are widely used. Each technique offers distinct advantages.Static GPS involves placing one receiver at a known reference point and another at the target point. It collects exact positional data by observing multiple satellite ranges over an extended period, achieving centimeter-level accuracy for...
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The Global Positioning System (GPS) has become an indispensable tool in fieldwork, offering unparalleled precision and efficiency for surveying, navigation, and infrastructure development. By harnessing signals from a constellation of satellites, GPS receivers determine the location of objects with remarkable speed and accuracy, often completing calculations within a second.Advantages of Modern GPS TechnologyContemporary GPS receivers are designed to meet the practical demands of field...
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Noise-Resilient Acoustic Low Energy Beacon for Proximity-Based Indoor Positioning Systems.

Teodoro Aguilera1, Fernando J Aranda1, Felipe Parralejo1

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This study introduces an Acoustic Low Energy (ALE) beacon for proximity-based indoor positioning systems. The ALE beacon offers robust performance and comparable energy efficiency to Bluetooth Low Energy (BLE) beacons, while saving device battery life.

Keywords:
acoustic beaconlocation based servicesproximity-based positioning

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Area of Science:

  • Acoustics
  • Signal Processing
  • Indoor Positioning Systems

Background:

  • Proximity-Based Indoor Positioning Systems (PIPSs) offer simple installation and reduced computational load for mobile devices.
  • Existing systems may have limitations in noisy environments or energy efficiency.

Purpose of the Study:

  • To design and evaluate an Acoustic Low Energy (ALE) beacon utilizing inaudible Linear Frequency Modulated (LFM) signals.
  • To assess the robustness, detection range, and energy consumption of the ALE beacon compared to commercial solutions.

Main Methods:

  • Design of an ALE beacon emitting inaudible LFM signals.
  • Experimental testing with nine Android devices to evaluate performance metrics.
  • Analysis of signal-to-noise ratio, detection rate, reception angles, and energy consumption.

Main Results:

  • ALE beacon reliably detected at 1 meter with signal-to-noise ratios as low as -12 dB.
  • Achieved over 80% detection rate for reception angles up to 50° at 1 meter.
  • Demonstrated comparable power consumption to Bluetooth Low Energy (BLE) beacons and up to 9% greater battery savings for mobile devices.

Conclusions:

  • The ALE beacon presents a robust and energy-efficient solution for proximity-based indoor positioning.
  • LFM signal coding enhances noise robustness for reliable beacon detection.
  • ALE technology offers a viable alternative to BLE for indoor positioning, with potential battery life advantages.