Skip to main content
Erschienen in: Experimental Brain Research 1/2007

01.09.2007 | Research Article

Effects of visual uncertainty on grasping movements

verfasst von: Erik J. Schlicht, Paul R. Schrater

Erschienen in: Experimental Brain Research | Ausgabe 1/2007

Einloggen, um Zugang zu erhalten

Abstract

To successfully lift an object, a person’s fingers must be moved to locations where forces can be applied that are sufficient for maintaining contact and that allow for easy object manipulation. Obtaining such finger positions becomes more difficult when there is perceptual uncertainty about the location of the hand and object. However, knowledge about the amount of uncertainty could be incorporated into grasp plans to mitigate its effect. For example, during peripheral viewing the fingers could open wider to avoid colliding with or missing the object. The goal of this study is to determine the degree to which people incorporate their understanding of visual uncertainty when making a precision grasp. To investigate, subjects reached to a spatially fixed object whose retinal location was varied by fixating points 0–80° to the left of the object. This manipulation controlled the visual uncertainty of the hand and target without affecting the kinematic demands of the task. We found that people systematically changed their grasping behavior as a function of the amount of visual uncertainty in the task. Specifically, subjects’ maximum grip aperture increased linearly with target eccentricity. Moreover, the effect of visual uncertainty on finger trajectories could be captured by a single dimension of change along an axis. Together, these findings suggest that the sensorimotor system estimates visual uncertainty and behaviorally adjusts for it during grasping movements.
Literatur
Zurück zum Zitat Berthier NE, Clifton RK, Gullipalli V, McCall D, Robin D (1996) Visual information and object size in the control of reaching. J Motor Behav 28:187–197CrossRef Berthier NE, Clifton RK, Gullipalli V, McCall D, Robin D (1996) Visual information and object size in the control of reaching. J Motor Behav 28:187–197CrossRef
Zurück zum Zitat Brown LE, Halpert BA, Goodale MA (2005) Peripheral vision for perception and action. Exp Brain Res 165:97–106PubMedCrossRef Brown LE, Halpert BA, Goodale MA (2005) Peripheral vision for perception and action. Exp Brain Res 165:97–106PubMedCrossRef
Zurück zum Zitat Burbeck CA (1987) Position and spatial frequency in large-scale localization judgments. Vision Res 27:417–428PubMedCrossRef Burbeck CA (1987) Position and spatial frequency in large-scale localization judgments. Vision Res 27:417–428PubMedCrossRef
Zurück zum Zitat Burbeck CA, Yap YL (1990) Two mechanisms for localization? Evidence for separation-dependent and separation-independent processing of position information. Vision Res 30:739–750PubMedCrossRef Burbeck CA, Yap YL (1990) Two mechanisms for localization? Evidence for separation-dependent and separation-independent processing of position information. Vision Res 30:739–750PubMedCrossRef
Zurück zum Zitat Cheng S, Sabes PN (2006) Modeling sensorimotor learning with dynamical systems. Neural Comput 18:760–793PubMedCrossRef Cheng S, Sabes PN (2006) Modeling sensorimotor learning with dynamical systems. Neural Comput 18:760–793PubMedCrossRef
Zurück zum Zitat Chieffi S, Gentilucci M (1993) Coordination between the transport and the grasp components during prehension movements. Exp Brain Res 94:471–477PubMedCrossRef Chieffi S, Gentilucci M (1993) Coordination between the transport and the grasp components during prehension movements. Exp Brain Res 94:471–477PubMedCrossRef
Zurück zum Zitat Connolly JD, Goodale MA (1999) The role of visual feedback of hand position in the control of manual prehension. Exp Brain Res 125:281–286PubMedCrossRef Connolly JD, Goodale MA (1999) The role of visual feedback of hand position in the control of manual prehension. Exp Brain Res 125:281–286PubMedCrossRef
Zurück zum Zitat Cuijpers RH, Smeets JB, Brenner E (2004) On the relation between object shape and grasping kinematics. J Neurophysiol 91:2598–2606PubMedCrossRef Cuijpers RH, Smeets JB, Brenner E (2004) On the relation between object shape and grasping kinematics. J Neurophysiol 91:2598–2606PubMedCrossRef
Zurück zum Zitat Hamilton AF, Wolpert DM (2002) Controlling the action of statistics: obstacle avoidance. J Neurophysiol 87:2434–2440PubMed Hamilton AF, Wolpert DM (2002) Controlling the action of statistics: obstacle avoidance. J Neurophysiol 87:2434–2440PubMed
Zurück zum Zitat Harris CM, Wolpert DM (1998) Signal dependent noise determines motor planning. Nature 394:780–784PubMedCrossRef Harris CM, Wolpert DM (1998) Signal dependent noise determines motor planning. Nature 394:780–784PubMedCrossRef
Zurück zum Zitat Hawkins DM (1994) The feasible solution algorithm for least trimmed squares regression. Comput Stat Data Anal 17:185–196CrossRef Hawkins DM (1994) The feasible solution algorithm for least trimmed squares regression. Comput Stat Data Anal 17:185–196CrossRef
Zurück zum Zitat Jeannerod M (1981) Intersegmental coordination during reaching at natural visual objects. In: Long J, Baddeley A (eds) Attention and performance IX, Erlbaum, Hillsdale, pp 153–169 Jeannerod M (1981) Intersegmental coordination during reaching at natural visual objects. In: Long J, Baddeley A (eds) Attention and performance IX, Erlbaum, Hillsdale, pp 153–169
Zurück zum Zitat Jeannerod M (1984) The timing of natural prehension movements. J Motor Behav 16:235–254 Jeannerod M (1984) The timing of natural prehension movements. J Motor Behav 16:235–254
Zurück zum Zitat Kording KP, Wolpert DM (2004) Bayesian integration in sensorimotor learning. Nature 427:244–247PubMedCrossRef Kording KP, Wolpert DM (2004) Bayesian integration in sensorimotor learning. Nature 427:244–247PubMedCrossRef
Zurück zum Zitat Levi DM, Klein SA (1996) Limitations on position coding imposed by undersampling and univariance. Vision Res 36:2111–2120PubMedCrossRef Levi DM, Klein SA (1996) Limitations on position coding imposed by undersampling and univariance. Vision Res 36:2111–2120PubMedCrossRef
Zurück zum Zitat Niemeier M, Crawford JD, Tweed DB (2003) Optimal transsaccadic integration explains distorted spacial perception. Nature 422:76–80PubMedCrossRef Niemeier M, Crawford JD, Tweed DB (2003) Optimal transsaccadic integration explains distorted spacial perception. Nature 422:76–80PubMedCrossRef
Zurück zum Zitat Paulignan Y, Jeannerod M, MacKenzie C, Marteniuk (1991) Selective perturbation of visual input during prehension movements 2. The effects of changing object size. Exp Brain Res 87:407–420PubMedCrossRef Paulignan Y, Jeannerod M, MacKenzie C, Marteniuk (1991) Selective perturbation of visual input during prehension movements 2. The effects of changing object size. Exp Brain Res 87:407–420PubMedCrossRef
Zurück zum Zitat Paulignan Y, Frak VG, Toni I, Jeannerod M (1997) Influence of object position and size on human prehension movements. Exp Brain Res 114:226–234PubMedCrossRef Paulignan Y, Frak VG, Toni I, Jeannerod M (1997) Influence of object position and size on human prehension movements. Exp Brain Res 114:226–234PubMedCrossRef
Zurück zum Zitat Sabes PN, Jordan MI (1997) Obstacle avoidance and a sensitivity model of motor planning. J Neurosci 17:7119–7128PubMed Sabes PN, Jordan MI (1997) Obstacle avoidance and a sensitivity model of motor planning. J Neurosci 17:7119–7128PubMed
Zurück zum Zitat Saunders J, Knill DC (2004) Visual feedback control of hand movements. J Neurosci 24:3223–3234PubMedCrossRef Saunders J, Knill DC (2004) Visual feedback control of hand movements. J Neurosci 24:3223–3234PubMedCrossRef
Zurück zum Zitat Sivak B, MacKenzie CL (1990) Integration of visual information and motor output in reaching and grasping: the contributions of peripheral and central vision. Neuropsychologia 28:1095–1116PubMedCrossRef Sivak B, MacKenzie CL (1990) Integration of visual information and motor output in reaching and grasping: the contributions of peripheral and central vision. Neuropsychologia 28:1095–1116PubMedCrossRef
Zurück zum Zitat Smeets JBJ, Brenner E (1999) A new view on grasping. Motor Control 3:237–271PubMed Smeets JBJ, Brenner E (1999) A new view on grasping. Motor Control 3:237–271PubMed
Zurück zum Zitat Trommershauser J, Maloney LT, Landy MS (2003) Statistical decision theory and the selection of rapid, goal-directed movements. J Opt Soc Am A 20:1419–1433CrossRef Trommershauser J, Maloney LT, Landy MS (2003) Statistical decision theory and the selection of rapid, goal-directed movements. J Opt Soc Am A 20:1419–1433CrossRef
Zurück zum Zitat Trommershauser J, Gepshtein S, Maloney LT, Landy MS, Banks MS (2005) Optimal compensation for changes in task-relevant movement variability. J Neurosci 25:7169–7178PubMedCrossRef Trommershauser J, Gepshtein S, Maloney LT, Landy MS, Banks MS (2005) Optimal compensation for changes in task-relevant movement variability. J Neurosci 25:7169–7178PubMedCrossRef
Zurück zum Zitat van Beers RJ, Sittig AC, Denier van der Gon JJ (1998) The precision of proprioceptive position sense. Exp Brain Res 122:367–377PubMedCrossRef van Beers RJ, Sittig AC, Denier van der Gon JJ (1998) The precision of proprioceptive position sense. Exp Brain Res 122:367–377PubMedCrossRef
Zurück zum Zitat Verboven S, Hubert M (2005) LIBRA: a MATLAB Library for Robust Analysis. Chemom Intell Lab Syst 75:127–136CrossRef Verboven S, Hubert M (2005) LIBRA: a MATLAB Library for Robust Analysis. Chemom Intell Lab Syst 75:127–136CrossRef
Zurück zum Zitat Whitaker K, Latham K (1997) Disentangling the role of spatial scale, separation and eccentricity in Weber’s law for position. Vision Res 37:515–524PubMedCrossRef Whitaker K, Latham K (1997) Disentangling the role of spatial scale, separation and eccentricity in Weber’s law for position. Vision Res 37:515–524PubMedCrossRef
Zurück zum Zitat Wing AM, Turton A, Fraser C (1986) Grasp size and accuracy of approach in reaching. J Motor Behav 18:245–260 Wing AM, Turton A, Fraser C (1986) Grasp size and accuracy of approach in reaching. J Motor Behav 18:245–260
Zurück zum Zitat Wolpert DM, Ghahramani Z, Jordan MI (1995) An internal model for sensorimotor integration. Science 269:1880–1882PubMedCrossRef Wolpert DM, Ghahramani Z, Jordan MI (1995) An internal model for sensorimotor integration. Science 269:1880–1882PubMedCrossRef
Metadaten
Titel
Effects of visual uncertainty on grasping movements
verfasst von
Erik J. Schlicht
Paul R. Schrater
Publikationsdatum
01.09.2007
Verlag
Springer-Verlag
Erschienen in
Experimental Brain Research / Ausgabe 1/2007
Print ISSN: 0014-4819
Elektronische ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-007-0970-8

Weitere Artikel der Ausgabe 1/2007

Experimental Brain Research 1/2007 Zur Ausgabe

Leitlinien kompakt für die Neurologie

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Sozialer Aufstieg verringert Demenzgefahr

24.05.2024 Demenz Nachrichten

Ein hohes soziales Niveau ist mit die beste Versicherung gegen eine Demenz. Noch geringer ist das Demenzrisiko für Menschen, die sozial aufsteigen: Sie gewinnen fast zwei demenzfreie Lebensjahre. Umgekehrt steigt die Demenzgefahr beim sozialen Abstieg.

Hirnblutung unter DOAK und VKA ähnlich bedrohlich

17.05.2024 Direkte orale Antikoagulanzien Nachrichten

Kommt es zu einer nichttraumatischen Hirnblutung, spielt es keine große Rolle, ob die Betroffenen zuvor direkt wirksame orale Antikoagulanzien oder Marcumar bekommen haben: Die Prognose ist ähnlich schlecht.

Was nützt die Kraniektomie bei schwerer tiefer Hirnblutung?

17.05.2024 Hirnblutung Nachrichten

Eine Studie zum Nutzen der druckentlastenden Kraniektomie nach schwerer tiefer supratentorieller Hirnblutung deutet einen Nutzen der Operation an. Für überlebende Patienten ist das dennoch nur eine bedingt gute Nachricht.

Thrombektomie auch bei großen Infarkten von Vorteil

16.05.2024 Ischämischer Schlaganfall Nachrichten

Auch ein sehr ausgedehnter ischämischer Schlaganfall scheint an sich kein Grund zu sein, von einer mechanischen Thrombektomie abzusehen. Dafür spricht die LASTE-Studie, an der Patienten und Patientinnen mit einem ASPECTS von maximal 5 beteiligt waren.

Update Neurologie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.