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matlab-based graphical user interface (gui) program  (MathWorks Inc)


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    MathWorks Inc matlab-based graphical user interface (gui) program
    Matlab Based Graphical User Interface (Gui) Program, supplied by MathWorks Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/graphical+user+interface+(gui)+programmed+in/pm39288720-163-4-2
    Average 90 stars, based on 1 article reviews
    matlab-based graphical user interface (gui) program - by Bioz Stars, 2026-09
    90/100 stars

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    Article Title: Freeform imaging systems: Fermat’s principle unlocks “first time right” design
    Article Snippet: To allow readers to follow and evaluate the design method hands-on and in real-time we have programmed and compiled a graphical user interface (GUI) enhanced user application in C++ for deployment to MATLAB Web Application Server.

    Article Title: Reconfigurable rapid prototyping platform for power electronic circuits and systems for research and educational purposes
    Article Snippet: This study presents a power electronics rapid prototyping platform that can be used to implement a wide range of power conversion circuits and systems quickly and inexpensively.. The proposed platform features a modular structure, which is consisted of a control board and a power board.. The control board includes adjustable signal conditioning circuitry, adjustable gate driving circuits, networking interfaces, and a fast processing unit that can be programmed easily using MATLAB Simulink code generation tools.

    Article Title: Helminth Egg Automatic Detector (HEAD): Improvements in development for digital identification and quantification of Helminth eggs and its application online
    Article Snippet: The Gaussian pyramid method was programmed in a Matlab graphical user interface (GUI) and the scaled images were processed in the HEAD system with the Java version ( ).

    Article Title: Gaze-centered coding of proprioceptive reach targets after effector movement: Testing the impact of online information, time of movement, and target distance
    Article Snippet: The eye data was exported to a custom-written graphical user interface (GUI, programmed in MATLAB) and semi-automatically checked to ensure that participants followed the instruction to fixate the location of the LED until the reach was completed.



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    (A) Block diagram and (B) photograph of the portable DF-HRME imaging system. The distal tip of a thin, flexible fiber optic bundle is enclosed in a 3D-printed probe holder and placed in contact with the tissue epithelium. The probe relays the image to the portable optical system at the proximal end of the bundle. The system is controlled via a GUI on a laptop; high resolution video of microvasculature is displayed in real time without the need for an exogenous contrast agent. (C) Optical diagram of the DF-HRME. Scanning darkfield illumination is used to enable reflectance imaging of microvasculature through the fiber bundle. A DLP is used to project a scanning structured illumination pattern at the proximal face of the fiber bundle; synchronized detection is performed using a CMOS camera. An offset is introduced between the illumination and detection apertures to reduce internal reflection. Arrows indicate the directions of scanning at the probe surfaces, DLP and CMOS camera. DF-HRME: scanning darkfield high-resolution microendoscope; DLP: digital light projector; CMOS: complementary metal-oxide semiconductor camera; GUI: graphical user interface.

    Journal: Biomedical Optics Express

    Article Title: Scanning darkfield high-resolution microendoscope for label-free microvascular imaging

    doi: 10.1364/BOE.498584

    Figure Lengend Snippet: (A) Block diagram and (B) photograph of the portable DF-HRME imaging system. The distal tip of a thin, flexible fiber optic bundle is enclosed in a 3D-printed probe holder and placed in contact with the tissue epithelium. The probe relays the image to the portable optical system at the proximal end of the bundle. The system is controlled via a GUI on a laptop; high resolution video of microvasculature is displayed in real time without the need for an exogenous contrast agent. (C) Optical diagram of the DF-HRME. Scanning darkfield illumination is used to enable reflectance imaging of microvasculature through the fiber bundle. A DLP is used to project a scanning structured illumination pattern at the proximal face of the fiber bundle; synchronized detection is performed using a CMOS camera. An offset is introduced between the illumination and detection apertures to reduce internal reflection. Arrows indicate the directions of scanning at the probe surfaces, DLP and CMOS camera. DF-HRME: scanning darkfield high-resolution microendoscope; DLP: digital light projector; CMOS: complementary metal-oxide semiconductor camera; GUI: graphical user interface.

    Article Snippet: A graphical user interface (GUI) programmed in MATLAB (The MathWorks, Natick, Massachusetts) is implemented on a laptop to control the DF-HRME and display images in real-time.

    Techniques: Blocking Assay, Imaging