Systems and Methods Involving Single Vision and Multifocal Lenses for Inhibiting Myopia Progression

    公开(公告)号:US20170336653A1

    公开(公告)日:2017-11-23

    申请号:US15523267

    申请日:2015-11-04

    CPC classification number: G02C7/02 B65B25/008 G02C7/04 G02C2202/24

    Abstract: A corrective lens system for the eyes of an individual includes first and second pairs of lenses of first and second prescriptions, respectively. In certain embodiments, the first pair of lenses includes a first lens for the left eye and a first lens for the right eye, and the second pair of lenses includes a second lens for the left eye and a second lens for the right eye. The first and second pairs of lenses may be configured in package having a plurality of compartments with individual lenses disposed in individual compartments. A set of instructions may be provided for wearing the first pair of lenses for a first time period and the second pair of lenses for a second time period. The first prescription is different from the second prescription. The lenses may inhibit the progression of myopia in the individual. Methods of arranging, prescribing, and using the lens system are described.

    Lenses, Devices, Systems and Methods for Refractive Error
    35.
    发明申请
    Lenses, Devices, Systems and Methods for Refractive Error 有权
    透镜,设备,系统和折射误差方法

    公开(公告)号:US20160161764A1

    公开(公告)日:2016-06-09

    申请号:US14884533

    申请日:2015-10-15

    Abstract: The present disclosure is directed to lenses, devices, methods and/or systems for addressing refractive error. Certain embodiments are directed to changing or controlling the wavefront of the light entering a human eye. The lenses, devices, methods and/or systems can be used for correcting, addressing, mitigating or treating refractive errors and provide excellent vision at distances encompassing far to near without significant ghosting. The refractive error may for example arise from myopia, hyperopia, or presbyopia with or without astigmatism. Certain disclosed embodiments of lenses, devices and/or methods include embodiments that address foveal and/or peripheral vision. Exemplary of lenses in the fields of certain embodiments include contact lenses, corneal onlays, corneal inlays, and lenses for intraocular devices both anterior and posterior chamber, accommodating intraocular lenses, electro-active spectacle lenses and/or refractive surgery.

    Abstract translation: 本公开涉及用于解决屈光不正的透镜,装置,方法和/或系统。 某些实施例涉及改变或控制进入人眼的光的波前。 透镜,设备,方法和/或系统可以用于校正,寻址,减轻或治疗屈光不正,并且提供远近的距离的优良视觉,而不会有重大的重影。 屈光不正可能例如是由近视,远视或具有或不伴有散光的老花眼引起的。 透镜,装置和/或方法的某些公开的实施例包括解决中心凹和/或周边视觉的实施例。 在某些实施方案领域中的镜片的示例性实例包括隐形眼镜,角膜嵌体,角膜镶嵌物,以及用于眼内装置的眼前镜和后腔的镜片,容纳眼内透镜,电活动眼镜镜片和/或屈光手术。

    Lenses, devices and methods for ocular refractive error
    36.
    发明授权
    Lenses, devices and methods for ocular refractive error 有权
    用于眼屈光不正的镜片,装置和方法

    公开(公告)号:US09195074B2

    公开(公告)日:2015-11-24

    申请号:US13857613

    申请日:2013-04-05

    Abstract: Certain embodiments are directed to lenses, devices and/or methods. For example, a lens for an eye having an optical axis and an aberration profile along its optical axis, the aberration profile having a focal distance and including higher order aberrations having at least one of a primary spherical aberration component C(4,0) and a secondary spherical aberration component C(6,0). The aberration profile may provide, for a model eye with no aberrations and an on-axis length equal to the focal distance: (i) a peak, first retinal image quality (RIQ) within a through focus range that remains at or above a second RIQ over the through focus range that includes said focal distance, where the first RIQ is at least 0.35, the second RIQ is at least 0.1 and the through focus range is at least 1.8 Diopters; (ii) a RIQ of 0.3 with a through focus slope that improves in a direction of eye growth; and (iii) a RIQ of 0.3 with a through focus slope that degrades in a direction of eye growth. The RIQ may be Visual Strehl Ratio or similar measured along the optical axis for at least one pupil diameter in the range 3 mm to 6 mm, over a spatial frequency range of 0 to 30 cycles/degree inclusive and at a wavelength selected from within the range 540 nm to 590 nm inclusive.

    Abstract translation: 某些实施例涉及透镜,装置和/或方法。 例如,具有光轴的透镜和沿其光轴的像差轮廓,像差轮廓具有焦距并且包括具有初级球面像差分量C(4.0)和 二次球面像差分量C(6,0)。 对于没有像差的模型眼睛和等于焦距的轴上长度,像差轮廓可以提供:(i)保持在等于或高于秒的通过对焦范围内的峰值,第一视网膜图像质量(RIQ) 包括所述焦距的通过对焦范围的RIQ,其中第一RIQ至少为0.35,第二RIQ为至少0.1,并且通过焦点范围为至少1.8屈光度; (ii)具有改善眼睛生长方向的通过焦点斜率的0.3的RIQ; 和(iii)具有通过聚焦斜率的0.3的RIQ,其在眼睛生长方向上降解。 RIQ可以是在0至30个循环/度范围内的空间频率范围内以及从内部选择的波长沿着光轴测量至少一个瞳孔直径在3mm至6mm范围内的视觉Strehl比率或类似物 范围540 nm至590 nm。

    Devices, systems and/or methods for myopia control

    公开(公告)号:US11226497B2

    公开(公告)日:2022-01-18

    申请号:US16344318

    申请日:2017-10-25

    Abstract: The present disclosure is directed generally to a lens that provides a stop signal to a myopic eye, over a substantial portion of the spectacle lens that the viewer is using. The present disclosure is directed to devices, methods and/or systems of imposing a stop signal to eye growth, using a spectacle lens in conjunction with a micro lenslet array. The present disclosure is also directed to devices, methods and/or systems of modifying incoming light through spectacle lenses that utilizes chromatic cues to decelerate the rate of myopia progression. The present disclosure is directed to devices, methods and/or systems of imposing a stop signal to eye growth, using a spectacle lens in conjunction with a refractive optical element and/or diffractive optical element that offer conflicting or contradictory optical signals at a wavelength between 510 nm and 610 nm.

    Lenses, Devices, Methods and Systems for Refractive Error

    公开(公告)号:US20200150458A1

    公开(公告)日:2020-05-14

    申请号:US16682996

    申请日:2019-11-13

    Abstract: The present disclosure is directed to lenses, devices, methods and/or systems for addressing refractive error. Certain embodiments are directed to changing or controlling the wavefront of the light entering a human eye. The lenses, devices, methods and/or systems can be used for correcting, addressing, mitigating or treating refractive errors and provide excellent vision at distances encompassing far to near without significant ghosting. The refractive error may for example arise from myopia, hyperopia, or presbyopia with or without astigmatism. Certain disclosed embodiments of lenses, devices and/or methods include embodiments that address foveal and/or peripheral vision. Exemplary of lenses in the fields of certain embodiments include contact lenses, corneal onlays, corneal inlays, and lenses for intraocular devices both anterior and posterior chamber, accommodating intraocular lenses, electro-active spectacle lenses and/or refractive surgery.

    Lenses, Devices, Systems and Methods for Refractive Error

    公开(公告)号:US20200150455A1

    公开(公告)日:2020-05-14

    申请号:US16681094

    申请日:2019-11-12

    Abstract: The present disclosure is directed to lenses, devices, methods and/or systems for addressing refractive error. Certain embodiments are directed to changing or controlling the wavefront of the light entering a human eye. The lenses, devices, methods and/or systems can be used for correcting, addressing, mitigating or treating refractive errors and provide excellent vision at distances encompassing far to near without significant ghosting. The refractive error may for example arise from myopia, hyperopia, or presbyopia with or without astigmatism. Certain disclosed embodiments of lenses, devices and/or methods include embodiments that address foveal and/or peripheral vision. Exemplary of lenses in the fields of certain embodiments include contact lenses, corneal onlays, corneal inlays, and lenses for intraocular devices both anterior and posterior chamber, accommodating intraocular lenses, electro-active spectacle lenses and/or refractive surgery.

    Lenses, devices and methods for ocular refractive error

    公开(公告)号:US10466507B2

    公开(公告)日:2019-11-05

    申请号:US16008921

    申请日:2018-06-14

    Abstract: Certain embodiments are directed to lenses, devices and/or methods. For example, a lens for an eye having an optical axis and an aberration profile along its optical axis, the aberration profile having a focal distance and including higher order aberrations having at least one of a primary spherical aberration component C(4,0) and a secondary spherical aberration component C(6,0). The aberration profile may provide, for a model eye with no aberrations and an on-axis length equal to the focal distance: (i) a peak, first retinal image quality (RIQ) within a through focus range that remains at or above a second RIQ over the through focus range that includes said focal distance, where the first RIQ is at least 0.35, the second RIQ is at least 0.1 and the through focus range is at least 1.8 Diopters; (ii) a RIQ of 0.3 with a through focus slope that improves in a direction of eye growth; and (iii) a RIQ of 0.3 with a through focus slope that degrades in a direction of eye growth. The RIQ may be Visual Strehl Ratio or similar measured along the optical axis for at least one pupil diameter in the range 3 mm to 6 mm, over a spatial frequency range of 0 to 30 cycles/degree inclusive and at a wavelength selected from within the range 540 nm to 590 nm inclusive.

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