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graphical user interface (gui) built within the matlab programming environment  (MathWorks Inc)


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    MathWorks Inc graphical user interface (gui) built within the matlab programming environment
    Graphical User Interface (Gui) Built Within The Matlab Programming Environment, 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/graphic+user+interface+(gui)+program/pm37251709-208-29-29
    Average 90 stars, based on 1 article reviews
    graphical user interface (gui) built within the matlab programming environment - by Bioz Stars, 2026-09
    90/100 stars

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    Article Snippet: .. The LAMP control software enables full control over the micro-printer and includes features such as slicing, print inspection, printer control and a graphical user interface (GUI) built within the MATLAB programming environment. ..

    Software:

    Article Title: Ultra-resolution scalable microprinting.
    Article Snippet: .. The LAMP control software enables full control over the micro-printer and includes features such as slicing, print inspection, printer control and a graphical user interface (GUI) built within the MATLAB programming environment. ..

    Article Title: Experimental investigation of the influence of an orifice plate on the pressure pulsation amplitude in the pulsating flow in a straight pipe
    Article Snippet: This paper presents the results of experimental study on the influence of an orifice plate on the levels of pressure pulsation downstream, in the conditions of pulsating flow in the object of research (a straight pipe).. The impact of an orifice plate on the pressure pulsation levels was quantified.. A decrease in the pressure pulsation level with a decrease in the cross-sectional area of an orifice plate (therefore, a decrease of its aperture ratio b coefficient) was observed, indicating the usability of this element of piping systems to attenuate pressure pulsations.

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    other:

    Article Title: A dynamical systems model for the measurement of cellular senescence
    Article Snippet: The model was fitted to the experimental dataset using a genetic algorithm in the MATLAB programming environment.

    Article Title: Systems and methods for streaming an application via object storage
    Article Snippet: For example, the MATLAB programming environment the Parallel Computing Toolbox, the Deep Learning Toolbox, the Partial Differential Equation Toolbox, etc.

    Article Title: Mixed-species flock sizes and compositions influence flock members’ success in three field experiments with novel feeders
    Article Snippet: We created an alpha shape for each individual point cloud using an alpha radius of 1 m and standard algorithms available within the MATLAB programming environment (alphaShape).

    Article Title: How low can you go? Measuring human event-related brain potentials from a two-channel EEG system.
    Article Snippet: Over the past ten years, there has been a rapid increase in the availability and use of mobile electroencephalography (mEEG) in research.. Indeed, researchers using mEEG have recorded EEG and event-related brain potentials in a wide range of environments for example, while walking (Debener et al., 2012), riding a bike (Scanlon et al., 2020), or even in a shopping mall (Krigolson et al., 2021).. However, given that low-cost, ease-ofuse, and setup speed provide the primary advantages of an mEEG system over large array traditional EEG systems, an important and unresolved question is just how many electrodes does an mEEG system need to collect research-quality EEG data?

    Article Title: Clinical tool to measure fluorescein patterns in orthokeratology
    Article Snippet: The images were processed with a customized algorithm written in the MATLAB programming environment (MATLAB R2019b for Windows; Intel® CoreTM i7-7700 CPU @ 3.6 GHz).



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    MathWorks Inc graphical user interface (gui) programmed in
    (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 <t>GUI</t> 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.
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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 <t>GUI</t> 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.
    Graphical User Interface (Gui) Built Within The Matlab Programming Environment, 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
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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 <t>GUI</t> 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.
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    MathWorks Inc matlab-based program with a graphical user interface (gui)
    (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 <t>GUI</t> 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.
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    Image Search Results


    (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