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Related Concept Videos

Design Example: Resistive Touchscreen01:14

Design Example: Resistive Touchscreen

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A device engineer plays a crucial role in designing user interfaces for mobile devices. One such interface is the resistive touchscreen, which fundamentally consists of two metallic layers: a flexible upper layer and a rigid lower layer, separated by a narrow gap. The high resistance between these two layers is a key characteristic of this design.
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The innovation of touch-tone telephony revolutionized the telecommunications industry by replacing the traditional rotary dial with a dual-tone multi-frequency (DTMF) signaling system. This system uses a matrix-style keypad with buttons arranged in four rows and three columns, creating 12 distinct signals each assigned to a pair of frequencies. Each button press results in a simultaneous generation of two sinusoidal tones – one from a low-frequency group (697 to 941 Hz) and one from a...
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Tactile senses encompass touch, temperature, and pain, each mediated by specific receptors. Touch receptors detect mechanical energy or pressure against the skin. Sensory fibers from these receptors enter the spinal cord and relay information to the brain stem. Here, most fibers cross over to the opposite side of the brain. The touch information then moves to the thalamus, which projects a map of the body's surface onto the somatosensory areas of the parietal lobes in the cerebral cortex.
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Proposal of a Real-Time Test Platform for Tactile Internet Systems.

Pedro V A Alves1, Patricia D M Plentz2, Marcelo A C Fernandes1,3

  • 1Laboratory of Machine Learning and Intelligent Instrumentation, Federal University of Rio Grande do Norte, Natal 59078-970, Brazil.

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Summary

Researchers developed a real-time platform for tactile internet systems, using a wearable glove and a virtual robotic manipulator. This system effectively models various tactile sensations for testing new algorithms.

Keywords:
phantom omnireal timetactile glovetactile internet

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Area of Science:

  • Human-Computer Interaction
  • Robotics
  • Haptics

Background:

  • The tactile internet aims to transmit tactile sensations remotely, enabling new applications.
  • Developing real-time platforms is crucial for testing and validating tactile internet technologies.

Purpose of the Study:

  • To create a real-time test platform for tactile internet systems.
  • To enable interaction with virtual elements through a wearable tactile interface.
  • To emulate tactile sensations for research and development.

Main Methods:

  • A master device (wearable tactile glove with vibratory feedback) was developed.
  • A communication channel with variable latency was established using Matlab/Simulink.
  • A slave device, a robotic manipulator, was emulated in Matlab/Simulink.

Main Results:

  • The platform successfully generated diverse tactile sensations, including roughness, smoothness, dripping, and softness.
  • The system demonstrated adequate performance for testing tactile internet algorithms.
  • Bidirectional communication with variable latency was achieved.

Conclusions:

  • The developed platform provides a viable solution for real-time testing of tactile internet systems.
  • The system can be utilized to evaluate various algorithms and methods related to tactile communication.
  • This research contributes to the advancement of haptic technology and the tactile internet.