DYNAMIC ZONE PLATE AUGMENTED VISION EYEGLASSES
    1.
    发明申请
    DYNAMIC ZONE PLATE AUGMENTED VISION EYEGLASSES 审中-公开
    动态区域板摄像机视觉眼镜

    公开(公告)号:WO2014110430A1

    公开(公告)日:2014-07-17

    申请号:PCT/US2014/011127

    申请日:2014-01-10

    Abstract: A method, an apparatus, and a computer program product for modulating optics in a display are provided. An apparatus forms a plurality of zone plates (400) in a liquid crystal using electric fields. Each zone plate has a center, and the centers are aligned along a first axis of the display. The apparatus moves the plurality of zone plates in a first direction along a second axis of the display different from the first axis of the display, while maintaining alignment of the centers of the plurality of zone plates along the first axis. Such movement is provided through repositioning of electric fields through the liquid crystal.

    Abstract translation: 提供了一种用于在显示器中调制光学器件的方法,装置和计算机程序产品。 装置使用电场在液晶中形成多个区域板(400)。 每个区域板具有中心,并且中心沿显示器的第一轴线对准。 该装置沿着与显示器的第一轴线不同的显示器的第二轴在第一方向上移动多个区域板,同时保持多个区域板的中心沿着第一轴线的对准。 通过液晶重新定位电场来提供这种运动。

    SEE THROUGH NEAR-EYE DISPLAY
    4.
    发明申请
    SEE THROUGH NEAR-EYE DISPLAY 审中-公开
    看到近眼睛的显示

    公开(公告)号:WO2014066662A1

    公开(公告)日:2014-05-01

    申请号:PCT/US2013/066650

    申请日:2013-10-24

    CPC classification number: G02B5/1885 G02B27/0172 G02B2027/0174

    Abstract: The various embodiments include a near-eye display having a transmissive display and a diffractive micro-lens array. The transmissive display may be positioned relative to the diffractive micro-lens array so that the distance between the transmissive display and the diffractive micro-lens array is be approximately equal to focal length of the diffractive micro-lens array. The transmissive display may also be positioned relative to the diffractive micro-lens array so that a percentage of light emitted from the transmissive display is diffracted by the micro-lens array and collimated into focus on a retina of a human eye. The transmissive display may be further positioned relative to the diffractive micro-lens array so that light from a real world scene passes through transparent portions of the transmissive display and is diffracted by the micro-lens array out of focus of the human eye.

    Abstract translation: 各种实施例包括具有透射显示器和衍射微透镜阵列的近眼显示器。 透射显示器可以相对于衍射微透镜阵列定位,使得透射显示器和衍射微透镜阵列之间的距离近似等于衍射微透镜阵列的焦距。 透射显示器还可以相对于衍射微透镜阵列定位,使得从透射显示器发射的光的百分比被微透镜阵列衍射并准直聚焦在人眼的视网膜上。 透射显示器可以相对于衍射微透镜阵列进一步定位,使得来自真实世界场景的光通过透射显示器的透明部分,并且被微透镜阵列衍射出人眼的焦点。

    TRANSMISSION OF EMOTIONS AS HAPTIC FEEDBACK
    5.
    发明申请
    TRANSMISSION OF EMOTIONS AS HAPTIC FEEDBACK 审中-公开
    作为消息反馈的情绪传播

    公开(公告)号:WO2013058886A1

    公开(公告)日:2013-04-25

    申请号:PCT/US2012/054257

    申请日:2012-09-07

    Abstract: Methods, systems, and devices are described for augmenting electronic communications with emotional context. Electronic communications is received from a first device (115 -b-1). An expression of a user of the first device is captured at the first device (115 -b-1). Data based on the captured expression is received from the first device. The received data is analyzed to determine emotional context associated with the user of the first device (115 -b-1). A haptic response is generated based on the determined emotional context. The haptic response is associated with the received electronic communications. The haptic response is provided concurrently with the access of the electronic communications to indicate the emotional context of the user.

    Abstract translation: 描述了用于增强具有情感语境的电子通信的方法,系统和设备。 从第一设备(115-b-1)接收电子通信。 在第一设备(115-b-1)处捕获第一设备的用户的表达。 从第一设备接收基于捕获的表达式的数据。 分析接收到的数据以确定与第一设备(115-b-1)的用户相关联的情绪上下文。 基于确定的情绪语境产生触觉响应。 触觉响应与所接收的电子通信相关联。 触觉响应与电子通信的访问同时提供以指示用户的情绪上下文。

    SEE THROUGH NEAR-EYE DISPLAY
    10.
    发明公开
    SEE THROUGH NEAR-EYE DISPLAY 审中-公开
    DUR NACHI DES DESGES DURCHSICHTIGE ANZEIGE

    公开(公告)号:EP2912503A1

    公开(公告)日:2015-09-02

    申请号:EP13789115.6

    申请日:2013-10-24

    CPC classification number: G02B5/1885 G02B27/0172 G02B2027/0174

    Abstract: The various embodiments include a near-eye display having a transmissive display and a diffractive micro-lens array. The transmissive display may be positioned relative to the diffractive micro-lens array so that the distance between the transmissive display and the diffractive micro-lens array is be approximately equal to focal length of the diffractive micro-lens array. The transmissive display may also be positioned relative to the diffractive micro-lens array so that a percentage of light emitted from the transmissive display is diffracted by the micro-lens array and collimated into focus on a retina of a human eye. The transmissive display may be further positioned relative to the diffractive micro-lens array so that light from a real world scene passes through transparent portions of the transmissive display and is diffracted by the micro-lens array out of focus of the human eye.

    Abstract translation: 各种实施例包括具有透射显示器和衍射微透镜阵列的近眼显示器。 透射显示器可以相对于衍射微透镜阵列定位,使得透射显示器和衍射微透镜阵列之间的距离近似等于衍射微透镜阵列的焦距。 透射显示器也可以相对于衍射微透镜阵列定位,使得从透射显示器发射的光的百分比被微透镜阵列衍射并被准直聚焦在人眼的视网膜上。 透射显示器可以相对于衍射微透镜阵列进一步定位,使得来自真实世界场景的光通过透射显示器的透明部分,并且被微透镜阵列衍射出人眼的焦点。

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