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    • 5. 发明授权
    • Optics landing system and method therefor
    • 光学着陆系统及其方法
    • US06828811B2
    • 2004-12-07
    • US10255345
    • 2002-09-26
    • John HansonJonathan FrankDario MeluzziDaniel M. Cotton
    • John HansonJonathan FrankDario MeluzziDaniel M. Cotton
    • G01R3102
    • G01R31/311G02B21/24
    • A landing system is provided for accurate placing of collection optics in a microscope. In one example, a solid immersion lens (SIL) is used for light collection, and the landing system is operated to place the SIL in contact with an IC. A proximity sensor is used for determining the SIL's position with respect to the IC. The proximity sensor is attached to a z-motion stage. During the placement procedure, the navigation is performed in steps and at each step the compression of the SIL is measured relative to its uncompressed state. When a measured compression exceeds a preset threshold, a SIL landing is recognized. In one example, after a landing is recognized, a further compression is imparted to the SIL in order to place the SIL in a focusing distance to the objective lens.
    • 提供了一种降落系统,用于在显微镜中精确放置收集光学元件。 在一个示例中,使用固体浸没透镜(SIL)进行光采集,并且操作着陆系统以使SIL与IC接触。 接近传感器用于确定SIL相对于IC的位置。 接近传感器连接到z运动台。 在放置过程中,导航按步骤执行,并且在每个步骤中,SIL的压缩相对于其未压缩状态被测量。 当测量压缩超过预设阈值时,会识别SIL着陆。 在一个示例中,在识别着陆之后,向SIL施加进一步的压缩,以便将SIL放置在与物镜聚焦的距离。
    • 7. 发明授权
    • CAPTCHA image scramble
    • CAPTCHA图片争夺
    • US08209743B1
    • 2012-06-26
    • US12720470
    • 2010-03-09
    • Jonathan Frank
    • Jonathan Frank
    • H04L9/32
    • G06K9/00234B44F1/10G06K9/00248G06K9/00261G06K9/00281G06K9/00536G06K2009/00328G09C5/00H04L9/3271H04L63/0838H04L63/102
    • In one embodiment, accessing a first image of a CAPTCHA, wherein the CAPTCHA comprises: the first image; a challenge based on the first image; and a correct response based on the first image; constructing a second image by scrambling the first image, comprising: cutting the first image into a plurality of image sections; recording positions of the image sections in the first image; and randomly rearranging the image sections to construct the second image; generating web-browser-executable code for unscrambling the second image back to the first image, wherein the web-browser-executable code indicates, for each one of the image sections in the second image, the position of the image section in the first image; and transmitting the second image and the web-browser-executable code to a second computing device.
    • 在一个实施例中,访问人机识别系统的第一图像,其中人机识别包括:第一图像; 基于第一幅图像的挑战; 以及基于第一图像的正确响应; 通过对所述第一图像进行加扰来构造第二图像,包括:将所述第一图像切割成多个图像部分; 在第一图像中记录图像部分的位置; 并随机重新排列图像部分以构建第二图像; 生成用于将所述第二图像解扰的所述网络浏览器执行代码返回到所述第一图像,其中所述网络浏览器可执行代码针对所述第二图像中的每个所述图像部分指示所述图像部分在所述第一图像中的位置 ; 以及将第二图像和网络浏览器可执行代码发送到第二计算设备。
    • 8. 发明授权
    • Apparatus and method for hard-docking a tester to a tiltable imager
    • 用于将测试仪硬接合到可倾斜成像仪的装置和方法
    • US07480051B2
    • 2009-01-20
    • US11054094
    • 2005-02-10
    • Jonathan FrankRick Portune
    • Jonathan FrankRick Portune
    • G01B11/00
    • G01R31/311G01N21/9501G01R31/2887
    • An apparatus and method are disclosed for hard-docking of a tester head to a DUT, while permitting the angular alignment of a specimen to be inspected to the optical axis of an optical testing tool. In one example, a system for orthogonal alignment of a specimen to an optical axis of a collection optics is provided. The system comprises a self-leveling tabletop; a specimen holder coupled to the tabletop and held at a fix orientation; collection optics coupled to the tabletop; a plunger coupled to the tabletop and operable to maintain the leveling orientation of the tabletop; a control valve sensing the leveling orientation of the tabletop and coupled to the plunger to control the operation of the plunger; and an aligner coupled to the tabletop and operable to change the alignment of the optical axis of the collection optics with respect to the specimen without changing the fixed orientation of the specimen holder.
    • 公开了一种用于将测试器头硬接合到DUT的装置和方法,同时允许检查样本的角度对准到光学测试工具的光轴。 在一个示例中,提供了用于样本与收集光学器件的光轴的正交对准的系统。 该系统包括自流平台式; 联接到桌面并保持在固定方向的样本保持器; 收集光学耦合到桌面; 联接到桌面并可操作以保持桌面的调平取向的柱塞; 感测台面的调平方向并联接到柱塞以控制柱塞的操作的控制阀; 以及对准器,其联接到桌面并且可操作以改变收集光学器件的光轴相对于样本的对准,而不改变样本保持器的固定取向。
    • 10. 发明授权
    • Optics landing system and method therefor
    • 光学着陆系统及其方法
    • US07123035B2
    • 2006-10-17
    • US10930454
    • 2004-08-31
    • John HansonJonathan FrankDario MeluzziDaniel Cotton
    • John HansonJonathan FrankDario MeluzziDaniel Cotton
    • G01R31/02
    • G02B21/02G01R31/311G02B21/24
    • A landing system is provided for accurate placing of collection optics in a microscope. In one example, a solid immersion lens (SIL) is used for light collection, and the landing system is operated to place the SIL in contact with an IC. A proximity sensor is used for determining the SIL's position with respect to the IC. The arrangement is attached to a z-motion stage. During the placement procedure, the navigation is performed in steps and at each step the compression of the SIL is measured relative to its uncompressed state. When a measured compression exceeds a preset threshold, a SIL landing is recognized. In one example, after a landing is recognized, a further compression is imparted to the SIL in order to place the SIL in a focusing distance to the objective lens.
    • 提供了一种降落系统,用于在显微镜中精确放置收集光学元件。 在一个示例中,使用固体浸没透镜(SIL)进行光采集,并且操作着陆系统以使SIL与IC接触。 接近传感器用于确定SIL相对于IC的位置。 该装置附着在z运动阶段。 在放置过程中,导航按步骤执行,并且在每个步骤中,SIL的压缩相对于其未压缩状态被测量。 当测量压缩超过预设阈值时,会识别SIL着陆。 在一个示例中,在识别着陆之后,向SIL施加进一步的压缩,以便将SIL放置在与物镜聚焦的距离。