Patent classifications
G02C7/043
Lens for Myopic Eye
An ophthalmic lens element includes an upper distance viewing zone and a lower near viewing zone. The upper distance viewing zone includes a central region with a first refractive power for clear distance vision and peripheral regions that are relatively positive in power compared to the first refractive power. The lower near viewing zone has a central region that is relatively positive in power compared to the first refractive power to account for accommodative lag. The powers of the peripheral regions of the lower near viewing zone are one of: i) equal to the power of the central region of the lower near viewing zone, ii) relatively positive in comparison to the power of the central region of the lower near viewing zone.
Contact lens comprising a superior lenticular aspect
Disclosed herein is a contact lens comprising a rounded, minus-carrier, lenticular-like curve over a central, upper portion of the lens that allows the contact lens to translate upwards in downgaze.
Contact lens comprising a lenticular in a superior portion of the contact lens
Disclosed herein is a contact lens comprising a lenticular in a superior portion of the contact lens wherein the contact lens attaches to an upper eyelid of a wearer by the lenticular interacting with an upper tarsal plate of the upper eyelid of a wearer, said interaction allows the contact lens to translate upwards in downgaze and maintain rotational stability. In one aspect, the lenticular has a top surface, said top surface having a shape selected from the group consisting of flat, flat with rounded corners, concave, convex or tapered having a thicker portion closer to an edge of the contact lens, or combinations thereof. In another aspect, the lenticular is comprised of a plurality of lenticular sections. In yet another aspect, the lenticular is anatomically-shaped.
METHOD FOR MEASURING A SUBJECT'S EYE MOVEMENT AND SCLERAL CONTACT LENS
Method and contact lens (3) for measuring a subject's three dimensional eye movement including torsional movement. A video camera (1) is provided for recording an image of the subject's eye (2). The contact lens (3) is provided for placement over the subject's eye (2). The contact lens (3) comprises one or more markers (3a,3b) that are detectable by the video camera (1) and are positioned at a lateral offset (D) with respect to a central part (3p) of the contact lens (3). The one or more markers (3a,3b) are configured for detecting torsional rotation (R) of the subject's eye (2) around a line of sight axis (C) of the subject's eye (2) by using the video camera (1) to track a position of the one or more markers (3a,3b).
Lens System for Vision Correction
A contact lens system is provided. The system includes a first lens configured for positioning over a cornea and a second lens positionable over the first lens. The system is configured such that the resistance to lateral movement of the first lens with respect to the cornea is higher than the resistance to lateral movement of the second lens with respect to the first lens.
Truncated translating contact lens with optimized performance and method of design
Translating contact lenses which are truncated for correcting presbyopia and whose design is optimized to maximize translation ability while maintaining comfort when the lens is worn on eye. Truncation of the lenses results in a non-round geometry while still retaining under-lid residency in select portions of the lens itself. Maximum thickness and back surface radius of curvature along with ramp shape can be optimized individually or in combination to maximize translation of the lens relative to the eye, when the lens is positioned on eye.
Device, method and system to provide accommodation during a stereoscopic display
Techniques and mechanisms for determining a level of accommodation to be provided by an eye-mountable device (EMD) for a user viewing a 3D stereoscopic display. In one embodiment, the EMD in disposed in or on an eye of the user, and an angle of vergence between the user's eyes is detected. Based on the angle of vergence, the EMD provides a level of accommodation that results in the user having a blurred viewing of an object in the stereoscopic display. The blur induces the user to change the accommodation provided by the eye on which, or in which, the EMD is disposed. Inducing the user to perform such a change in the eye's accommodation more closely approximates what the user would do when viewing real world physical objects. This tends to result in a better viewing experience by the user. In another embodiment, the angle of vergence is detected based on exposure of the EMD to a magnetic field.
CONTACT LENS COMPRISING A SUPERIOR LENTICULAR ASPECT
Disclosed herein is a contact lens comprising a rounded, minus-carrier, lenticular-like curve over a central, upper portion of the lens that allows the contact lens to translate upwards in downgaze.
Lens for myopic eye
An ophthalmic lens element includes an upper distance viewing zone and a lower near viewing zone. The upper distance viewing zone includes a central region with a first refractive power for clear distance vision and peripheral regions that are relatively positive in power compared to the first refractive power. The lower near viewing zone has a central region that is relatively positive in power compared to the first refractive power to account for accommodative lag. The powers of the peripheral regions of the lower near viewing zone are one of: i) equal to the power of the central region of the lower near viewing zone, ii) relatively positive in comparison to the power of the central region of the lower near viewing zone.
Lens for correction of myopic refractive error
An ophthalmic lens element includes an upper distance viewing zone and a lower near viewing zone. The upper distance viewing zone includes a central region with a first refractive power for clear distance vision and peripheral regions that are relatively positive in power compared to the first refractive power. The lower near viewing zone has a central region that is relatively positive in power compared to the first refractive power to account for accommodative lag. The powers of the peripheral regions of the lower near viewing zone are one of: i) equal to the power of the central region of the lower near viewing zone, ii) relatively positive in comparison to the power of the central region of the lower near viewing zone.