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matlab®-based concurrent computing application 120  (MathWorks Inc)


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    MathWorks Inc matlab®-based concurrent computing application 120
    Matlab® Based Concurrent Computing Application 120, 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/matlab-based+computing+application/us08738684-65-7-6
    Average 90 stars, based on 1 article reviews
    matlab®-based concurrent computing application 120 - by Bioz Stars, 2026-09
    90/100 stars

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    Article Title: Dynamic collaborations in concurrent computing environments
    Article Snippet: .. The computing device 102 may further include a storage device 108, such as a hard-drive or CD-ROM, for storing an operating system and for storing application software programs, such as the MATLAB®-based concurrent computing application 120. .. The MATLAB®-based concurrent computing application 120 may run on any operating system such as any of the versions of the Microsoft® Windows operating systems, the different releases of the Unix and Linux operating systems, any version of the MacOS® for Macintosh computers, any embedded operating system, any real-time operating system, any open source operating system, any proprietary operating system, any operating systems for mobile computing devices, or any other operating system capable of running on the computing device and performing the operations described herein.

    Article Title: Dynamic collaborations in concurrent computing environments
    Article Snippet: .. The MATLAB®-based concurrent computing application 120 has one or more software components that run on each of the client 150 and workstations 170, and work in communication and in collaboration with each other to meet the functionality of the overall application. .. The MATLAB®-based computing application 120 may include a technical computing client application 250, or technical computing client, running on a client 150 computer and a technical computing worker application 270, or technical computing worker, running on a workstation 170.

    Article Title: Dynamic collaborations in concurrent computing environments
    Article Snippet: .. The computing device 102 may support any suitable installation medium 116, a CD-ROM, floppy disks, tape device, USB device, hard-drive or any other device suitable for installing software programs, such as the MATLAB®-based concurrent computing application 120. ..

    other:

    Article Title: Dynamic collaborations in concurrent computing environments
    Article Snippet: The interface function calls 122 provide various function calls for the MATLAB®-based concurrent computing application 120 to establish communication channels with other computing processes, or applications in the concurrent computing system.



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    Use of <t>PlantSize</t> to measure rosette sizes of Arabidopsis plants. (A) Dialog box of PlantSize with imported images of young wild type and mutant Arabidopsis plants. (B) Linear correlation of fresh weights and rosette sizes of individual Arabidopsis plants, grown on standard culture medium. Note high level of correlation between rosette sizes (shown in pixel numbers) and fresh weights (FW) of individual plants. (C) Change of average fresh weights of wild type Arabidopsis plants in 14 days growth period. (D) Change of average rosette sizes of wild type Arabidopsis plants in 14 days growth period, as determined by PlantSize. (E) Linear correlation of average fresh weights and average rosette sizes displayed on C,D .
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    Use of <t>PlantSize</t> to measure rosette sizes of Arabidopsis plants. (A) Dialog box of PlantSize with imported images of young wild type and mutant Arabidopsis plants. (B) Linear correlation of fresh weights and rosette sizes of individual Arabidopsis plants, grown on standard culture medium. Note high level of correlation between rosette sizes (shown in pixel numbers) and fresh weights (FW) of individual plants. (C) Change of average fresh weights of wild type Arabidopsis plants in 14 days growth period. (D) Change of average rosette sizes of wild type Arabidopsis plants in 14 days growth period, as determined by PlantSize. (E) Linear correlation of average fresh weights and average rosette sizes displayed on C,D .
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    MathWorks Inc matlab®-based concurrent computing application 120
    Use of <t>PlantSize</t> to measure rosette sizes of Arabidopsis plants. (A) Dialog box of PlantSize with imported images of young wild type and mutant Arabidopsis plants. (B) Linear correlation of fresh weights and rosette sizes of individual Arabidopsis plants, grown on standard culture medium. Note high level of correlation between rosette sizes (shown in pixel numbers) and fresh weights (FW) of individual plants. (C) Change of average fresh weights of wild type Arabidopsis plants in 14 days growth period. (D) Change of average rosette sizes of wild type Arabidopsis plants in 14 days growth period, as determined by PlantSize. (E) Linear correlation of average fresh weights and average rosette sizes displayed on C,D .
    Matlab® Based Concurrent Computing Application 120, 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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    MathWorks Inc matlab-based concurrent computing application 120
    Use of <t>PlantSize</t> to measure rosette sizes of Arabidopsis plants. (A) Dialog box of PlantSize with imported images of young wild type and mutant Arabidopsis plants. (B) Linear correlation of fresh weights and rosette sizes of individual Arabidopsis plants, grown on standard culture medium. Note high level of correlation between rosette sizes (shown in pixel numbers) and fresh weights (FW) of individual plants. (C) Change of average fresh weights of wild type Arabidopsis plants in 14 days growth period. (D) Change of average rosette sizes of wild type Arabidopsis plants in 14 days growth period, as determined by PlantSize. (E) Linear correlation of average fresh weights and average rosette sizes displayed on C,D .
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    Image Search Results


    Use of PlantSize to measure rosette sizes of Arabidopsis plants. (A) Dialog box of PlantSize with imported images of young wild type and mutant Arabidopsis plants. (B) Linear correlation of fresh weights and rosette sizes of individual Arabidopsis plants, grown on standard culture medium. Note high level of correlation between rosette sizes (shown in pixel numbers) and fresh weights (FW) of individual plants. (C) Change of average fresh weights of wild type Arabidopsis plants in 14 days growth period. (D) Change of average rosette sizes of wild type Arabidopsis plants in 14 days growth period, as determined by PlantSize. (E) Linear correlation of average fresh weights and average rosette sizes displayed on C,D .

    Journal: Frontiers in Plant Science

    Article Title: PlantSize Offers an Affordable, Non-destructive Method to Measure Plant Size and Color in Vitro

    doi: 10.3389/fpls.2018.00219

    Figure Lengend Snippet: Use of PlantSize to measure rosette sizes of Arabidopsis plants. (A) Dialog box of PlantSize with imported images of young wild type and mutant Arabidopsis plants. (B) Linear correlation of fresh weights and rosette sizes of individual Arabidopsis plants, grown on standard culture medium. Note high level of correlation between rosette sizes (shown in pixel numbers) and fresh weights (FW) of individual plants. (C) Change of average fresh weights of wild type Arabidopsis plants in 14 days growth period. (D) Change of average rosette sizes of wild type Arabidopsis plants in 14 days growth period, as determined by PlantSize. (E) Linear correlation of average fresh weights and average rosette sizes displayed on C,D .

    Article Snippet: Images are analyzed with the MatLab-based computer application PlantSize, which simultaneously calculates several parameters including rosette size, convex area, convex ratio, chlorophyll and anthocyanin contents of all plants identified on the image.

    Techniques: Mutagenesis

    Repression of Arabidopsis growth by increasing concentrations of salt. Five days-old seedlings were transferred to media supplemented by different concentrations of NaCl. Growth was monitored either by rosette imaging or weight measurements. (A) Rosette sizes of Arabidopsis plants determined by imaging and PlantSize analysis. (B) Average growth rates of plants calculated by the “Logest” function of Excel. (C,D) Average fresh weights (FW) and dry weights (DW) of plants grown on saline media. Bars on diagrams indicate standard deviation, ∗ shows significant differences to control tested by one-way ANOVA ( p < 0.05).

    Journal: Frontiers in Plant Science

    Article Title: PlantSize Offers an Affordable, Non-destructive Method to Measure Plant Size and Color in Vitro

    doi: 10.3389/fpls.2018.00219

    Figure Lengend Snippet: Repression of Arabidopsis growth by increasing concentrations of salt. Five days-old seedlings were transferred to media supplemented by different concentrations of NaCl. Growth was monitored either by rosette imaging or weight measurements. (A) Rosette sizes of Arabidopsis plants determined by imaging and PlantSize analysis. (B) Average growth rates of plants calculated by the “Logest” function of Excel. (C,D) Average fresh weights (FW) and dry weights (DW) of plants grown on saline media. Bars on diagrams indicate standard deviation, ∗ shows significant differences to control tested by one-way ANOVA ( p < 0.05).

    Article Snippet: Images are analyzed with the MatLab-based computer application PlantSize, which simultaneously calculates several parameters including rosette size, convex area, convex ratio, chlorophyll and anthocyanin contents of all plants identified on the image.

    Techniques: Imaging, Saline, Standard Deviation, Control

    Correlation of chlorophyll contents with Hue values. Fourteen days-old Arabidopsis plants treated by different stresses: 0,1 mM CdCl 2 , 3 mM H 2 O 2 , 150 mM NaCl, known to affect chlorophyll content. Plants were photographed after 3 days, and images were analyzed by PlantSize. (A) Images of treated plants. (B) Linear correlation of Hue values and chlorophyll contents of individual Arabidopsis plants (pixel numbers were used according to Figure ). (C,D) Average chlorophyll contents and HUE values of treated plants. (E) Correlation of average chlorophyll contents and average HUE values. Bars on diagrams show standard deviation, ∗ Indicates significant differences to control tested by one-way ANOVA ( p < 0.05).

    Journal: Frontiers in Plant Science

    Article Title: PlantSize Offers an Affordable, Non-destructive Method to Measure Plant Size and Color in Vitro

    doi: 10.3389/fpls.2018.00219

    Figure Lengend Snippet: Correlation of chlorophyll contents with Hue values. Fourteen days-old Arabidopsis plants treated by different stresses: 0,1 mM CdCl 2 , 3 mM H 2 O 2 , 150 mM NaCl, known to affect chlorophyll content. Plants were photographed after 3 days, and images were analyzed by PlantSize. (A) Images of treated plants. (B) Linear correlation of Hue values and chlorophyll contents of individual Arabidopsis plants (pixel numbers were used according to Figure ). (C,D) Average chlorophyll contents and HUE values of treated plants. (E) Correlation of average chlorophyll contents and average HUE values. Bars on diagrams show standard deviation, ∗ Indicates significant differences to control tested by one-way ANOVA ( p < 0.05).

    Article Snippet: Images are analyzed with the MatLab-based computer application PlantSize, which simultaneously calculates several parameters including rosette size, convex area, convex ratio, chlorophyll and anthocyanin contents of all plants identified on the image.

    Techniques: Standard Deviation, Control

    Estimation of anthocyanin accumulation in Arabidopsis plants. Fourteen days-old Arabidopsis plants were treated by 0,1 mM CdCl 2 , 3 mM H 2 O 2 , 200 mM, and 500 mM sucrose, known to stimulate anthocyanin accumulation. Plants were photographed after 3 days and images were analyzed by PlantSize. (A) Images of plants with different anthocyanin content. (B) Reverse correlation of Anthocyanin contents and HUE values of individual Arabidopsis plants (pixel numbers were used according to Figure ). (C,D) Average anthocyanin contents and average HUE values of treated plants. (E) Reverse correlation of average anthocyanin contents and HUE values. Bars on diagrams indicate standard deviation, ∗ shows significant differences to control tested by one-way ANOVA ( p < 0.05).

    Journal: Frontiers in Plant Science

    Article Title: PlantSize Offers an Affordable, Non-destructive Method to Measure Plant Size and Color in Vitro

    doi: 10.3389/fpls.2018.00219

    Figure Lengend Snippet: Estimation of anthocyanin accumulation in Arabidopsis plants. Fourteen days-old Arabidopsis plants were treated by 0,1 mM CdCl 2 , 3 mM H 2 O 2 , 200 mM, and 500 mM sucrose, known to stimulate anthocyanin accumulation. Plants were photographed after 3 days and images were analyzed by PlantSize. (A) Images of plants with different anthocyanin content. (B) Reverse correlation of Anthocyanin contents and HUE values of individual Arabidopsis plants (pixel numbers were used according to Figure ). (C,D) Average anthocyanin contents and average HUE values of treated plants. (E) Reverse correlation of average anthocyanin contents and HUE values. Bars on diagrams indicate standard deviation, ∗ shows significant differences to control tested by one-way ANOVA ( p < 0.05).

    Article Snippet: Images are analyzed with the MatLab-based computer application PlantSize, which simultaneously calculates several parameters including rosette size, convex area, convex ratio, chlorophyll and anthocyanin contents of all plants identified on the image.

    Techniques: Standard Deviation, Control

    Heat shock factor A4A (HSFA4A) modulates stress tolerance. (A) 5-days-old HSFA4A overexpressing seedlings (lines HSFox1, HSFox2) and wild type plants were transferred to culture medium supplemented by 100 mM NaCl. Growth was monitored by periodic imaging and evaluated by PlantSize. (A) Relative rosette sizes of plants grown on standard culture medium (1 corresponds to pixel No. on day 0). (B) Plant growth on saline medium. (C,D) 14-days-old plants were transferred to medium containing 150 mM NaCl and photographed at daily intervals. Changes in chlorophyll (C) and anthocyanin (D) contents were calculated from shifts in HUE values of the color images. Relative values are shown, where 1 corresponds to values of non-treated plants (day 0). Error bars indicate standard deviation, ∗ shows significant differences to control tested by one-way ANOVA ( p < 0.05).

    Journal: Frontiers in Plant Science

    Article Title: PlantSize Offers an Affordable, Non-destructive Method to Measure Plant Size and Color in Vitro

    doi: 10.3389/fpls.2018.00219

    Figure Lengend Snippet: Heat shock factor A4A (HSFA4A) modulates stress tolerance. (A) 5-days-old HSFA4A overexpressing seedlings (lines HSFox1, HSFox2) and wild type plants were transferred to culture medium supplemented by 100 mM NaCl. Growth was monitored by periodic imaging and evaluated by PlantSize. (A) Relative rosette sizes of plants grown on standard culture medium (1 corresponds to pixel No. on day 0). (B) Plant growth on saline medium. (C,D) 14-days-old plants were transferred to medium containing 150 mM NaCl and photographed at daily intervals. Changes in chlorophyll (C) and anthocyanin (D) contents were calculated from shifts in HUE values of the color images. Relative values are shown, where 1 corresponds to values of non-treated plants (day 0). Error bars indicate standard deviation, ∗ shows significant differences to control tested by one-way ANOVA ( p < 0.05).

    Article Snippet: Images are analyzed with the MatLab-based computer application PlantSize, which simultaneously calculates several parameters including rosette size, convex area, convex ratio, chlorophyll and anthocyanin contents of all plants identified on the image.

    Techniques: Imaging, Saline, Standard Deviation, Control

    Comparison of  PlantSize  with other imaging tools, developed for quantification of different plant parameters.

    Journal: Frontiers in Plant Science

    Article Title: PlantSize Offers an Affordable, Non-destructive Method to Measure Plant Size and Color in Vitro

    doi: 10.3389/fpls.2018.00219

    Figure Lengend Snippet: Comparison of PlantSize with other imaging tools, developed for quantification of different plant parameters.

    Article Snippet: Images are analyzed with the MatLab-based computer application PlantSize, which simultaneously calculates several parameters including rosette size, convex area, convex ratio, chlorophyll and anthocyanin contents of all plants identified on the image.

    Techniques: Comparison, Imaging, Software, In Vitro