Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.

Helicopter landing on a ship is a visually regulated "rendezvous" task during which pilots must use fine control to land a powerful rotorcraft on the deck of a moving ship tossed by the sea while minimizing the energy at impact. Although augmented reality assistance can be hypothesized to...

Full description

Bibliographic Details
Main Authors: Antoine H P Morice, Thomas Rakotomamonjy, Julien R Serres, Franck Ruffier
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2021-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0255779
id doaj-94fb0393b21c4c02873b7d655d9dc9c7
record_format Article
spelling doaj-94fb0393b21c4c02873b7d655d9dc9c72021-08-17T04:31:10ZengPublic Library of Science (PLoS)PLoS ONE1932-62032021-01-01168e025577910.1371/journal.pone.0255779Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.Antoine H P MoriceThomas RakotomamonjyJulien R SerresFranck RuffierHelicopter landing on a ship is a visually regulated "rendezvous" task during which pilots must use fine control to land a powerful rotorcraft on the deck of a moving ship tossed by the sea while minimizing the energy at impact. Although augmented reality assistance can be hypothesized to improve pilots' performance and the safety of landing maneuvers by guiding action toward optimal behavior in complex and stressful situations, the question of the optimal information to be displayed to feed the pilots' natural information-movement coupling remains to be investigated. Novice participants were instructed to land a simplified helicopter on a ship in a virtual reality simulator while minimizing energy at impact and landing duration. The wave amplitude and related ship heave were manipulated. We compared the benefits of two types of visual augmentation whose design was based on either solving cockpit-induced visual occlusion problems or strengthening the online regulation of the deceleration by keeping the current [Formula: see text] variable around an ideal value of -0.5 to conduct smooth and efficient landing. Our results showed that the second augmentation, ecologically grounded, offers benefits at several levels of analysis. It decreases the landing duration, improves the control of the helicopter displacement, and sharpens the sensitivity to changes in [Formula: see text]. This underlines the importance for designers of augmented reality systems to collaborate with psychologists to identify the relevant perceptual-motor strategy that must be encouraged before designing an augmentation that will enhance it.https://doi.org/10.1371/journal.pone.0255779
collection DOAJ
language English
format Article
sources DOAJ
author Antoine H P Morice
Thomas Rakotomamonjy
Julien R Serres
Franck Ruffier
spellingShingle Antoine H P Morice
Thomas Rakotomamonjy
Julien R Serres
Franck Ruffier
Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.
PLoS ONE
author_facet Antoine H P Morice
Thomas Rakotomamonjy
Julien R Serres
Franck Ruffier
author_sort Antoine H P Morice
title Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.
title_short Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.
title_full Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.
title_fullStr Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.
title_full_unstemmed Ecological design of augmentation improves helicopter ship landing maneuvers: An approach in augmented virtuality.
title_sort ecological design of augmentation improves helicopter ship landing maneuvers: an approach in augmented virtuality.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2021-01-01
description Helicopter landing on a ship is a visually regulated "rendezvous" task during which pilots must use fine control to land a powerful rotorcraft on the deck of a moving ship tossed by the sea while minimizing the energy at impact. Although augmented reality assistance can be hypothesized to improve pilots' performance and the safety of landing maneuvers by guiding action toward optimal behavior in complex and stressful situations, the question of the optimal information to be displayed to feed the pilots' natural information-movement coupling remains to be investigated. Novice participants were instructed to land a simplified helicopter on a ship in a virtual reality simulator while minimizing energy at impact and landing duration. The wave amplitude and related ship heave were manipulated. We compared the benefits of two types of visual augmentation whose design was based on either solving cockpit-induced visual occlusion problems or strengthening the online regulation of the deceleration by keeping the current [Formula: see text] variable around an ideal value of -0.5 to conduct smooth and efficient landing. Our results showed that the second augmentation, ecologically grounded, offers benefits at several levels of analysis. It decreases the landing duration, improves the control of the helicopter displacement, and sharpens the sensitivity to changes in [Formula: see text]. This underlines the importance for designers of augmented reality systems to collaborate with psychologists to identify the relevant perceptual-motor strategy that must be encouraged before designing an augmentation that will enhance it.
url https://doi.org/10.1371/journal.pone.0255779
work_keys_str_mv AT antoinehpmorice ecologicaldesignofaugmentationimproveshelicoptershiplandingmaneuversanapproachinaugmentedvirtuality
AT thomasrakotomamonjy ecologicaldesignofaugmentationimproveshelicoptershiplandingmaneuversanapproachinaugmentedvirtuality
AT julienrserres ecologicaldesignofaugmentationimproveshelicoptershiplandingmaneuversanapproachinaugmentedvirtuality
AT franckruffier ecologicaldesignofaugmentationimproveshelicoptershiplandingmaneuversanapproachinaugmentedvirtuality
_version_ 1721205555565953024