Unverified paper record
Validation of In-House Imaging System via Code Verification on Petunia Images Collected at Increasing Fertilizer Rates and pHs.
Sensors (Basel, Switzerland) · 6 Sept 2024 · 10.3390/s24175809
Abstract
In a production environment, delayed stress recognition can impact yield. Imaging can rapidly and effectively quantify stress symptoms using indexes such as normalized difference vegetation index (NDVI). Commercial systems are effective but cannot be easily customized for specific applications, particularly post-processing. We developed a low-cost customizable imaging system and validated the code to analyze images. Our objective was to verify the image analysis code and custom system could successfully quantify the changes in plant canopy reflectance. 'Supercascade Red', 'Wave© Purple', and 'Carpet Blue' Petunias ( Petunia × hybridia ) were transplanted individually and subjected to increasing fertilizer treatments and increasing substrate pH in a greenhouse. Treatments for the first trial were the addition of a controlled release fertilizer at six different rates (0, 0.5, 1, 2, 4, and 8 g/pot), and for the second trial, fertilizer solution with four pHs (4, 5.5, 7, and 8.5), with eight replications with one plant each. Plants were imaged twice a week using a commercial imaging system for fertilizer and thrice a week with the custom system for pH. The collected images were analyzed using an in-house program that calculated the indices for each pixel of the plant area. All cultivars showed a significant effect of fertilizer on the projected canopy size and dry weight of the above-substrate biomass and the fertilizer rate treatments ( p p p > 0.05). Manganese and phosphorus had no significance with chlorophyll fluorescence for 'Carpet Blue' and 'Wave© Purple' ( p > 0.05), though 'Supercascade Red' was found to have significance ( p p = 0.005). NDVI as a function of the projected canopy size had no statistical significance. We verified the ability of the imaging system with integrated analysis to quantify nutrient deficiency-induced variability in plant canopies by increasing pH levels.
Plant phenotyping relevance
低コスト imaging system と画像解析コードを開発・検証し、植物キャノピーの反射率や投影面積を定量化することが研究の中心であるため。
abstractWe developed a low-cost customizable imaging system and validated the code to analyze images.
abstractOur objective was to verify the image analysis code and custom system could successfully quantify the changes in plant canopy reflectance.
abstractWe verified the ability of the imaging system with integrated analysis to quantify nutrient deficiency-induced variability in plant canopies by increasing pH levels.
Code and data availability
The supplied blocks describe the petunia imaging/phenotyping study and its in-house analysis code, but contain no data availability statement, public dataset deposit, image repository, or code deposit with an authors' public URL. The only URLs present are ORCID author identifiers and the CC BY license link, none of the
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