Rapid and inexpensive assessment of soil total iron using Nix Pro color sensor
Abstract In this study, an inexpensive Nix Pro (Nix Sensor Ltd.) color sensor was used to develop prediction models for soil iron (Fe) content. Thirty‐eight soil samples were collected from five agricultural fields across the Animas watershed to develop and validate soil Fe prediction models. We use...
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Series: | Agricultural & Environmental Letters |
Online Access: | https://doi.org/10.1002/ael2.20050 |
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doaj-05f7c57737504bddaa0811b1aa1e47a72021-10-05T05:45:26ZengWileyAgricultural & Environmental Letters2471-96252021-01-0163n/an/a10.1002/ael2.20050Rapid and inexpensive assessment of soil total iron using Nix Pro color sensorGaurav Jha0Debjani Sihi1Biswanath Dari2Harpreet Kaur3Mallika Arudi Nocco4April Ulery5Kevin Lombard6Dep. of Land, Air, and Water Resources Univ. of California Davis CA 95616 USADep. of Environmental Sciences Emory Univ. Atlanta GA 30322 USAAgricultural and Natural Resources, Cooperative Extension North Carolina Agricultural and Technical State Univ. Greensboro NC 27420 USADep. of Plant and Environmental Science New Mexico State Univ. Las Cruces NM 88003 USADep. of Land, Air, and Water Resources Univ. of California Davis CA 95616 USADep. of Plant and Environmental Science New Mexico State Univ. Las Cruces NM 88003 USADep. of Plant and Environmental Science New Mexico State Univ. Las Cruces NM 88003 USAAbstract In this study, an inexpensive Nix Pro (Nix Sensor Ltd.) color sensor was used to develop prediction models for soil iron (Fe) content. Thirty‐eight soil samples were collected from five agricultural fields across the Animas watershed to develop and validate soil Fe prediction models. We used color space models to develop three different parameter sets for Fe prediction with Nix Pro. The different color space sets were used to develop three new predictive models for Nix Pro‐based Fe content against the lab‐based inductively coupled plasma analyzed Fe content. The model performances were assessed using the coefficient of determination, root mean square error, and model p‐value. Three models (International Commission on Illumination's lightness, ±a axis (redness to greenness), and ± b axis (yellowness to blueness) [CIEL*a*b]; red, green, blue [RGB]; and cyan, magenta, yellow, key [black] [CMYK]) were significant in predicting the Fe content using colorimetric variables with R2 ranging from 0.79 to 0.81. The mean square prediction error (MSPE) and Kling–Gupta efficiency (KGE) Index were calculated to validate models and CMYK was predicted to be a better model (MSPE = 0.13; KGE = 0.601) than CIEL*a*b and RGB models. The results suggest Nix Pro is useful in predicting soil Fe content.https://doi.org/10.1002/ael2.20050 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Gaurav Jha Debjani Sihi Biswanath Dari Harpreet Kaur Mallika Arudi Nocco April Ulery Kevin Lombard |
spellingShingle |
Gaurav Jha Debjani Sihi Biswanath Dari Harpreet Kaur Mallika Arudi Nocco April Ulery Kevin Lombard Rapid and inexpensive assessment of soil total iron using Nix Pro color sensor Agricultural & Environmental Letters |
author_facet |
Gaurav Jha Debjani Sihi Biswanath Dari Harpreet Kaur Mallika Arudi Nocco April Ulery Kevin Lombard |
author_sort |
Gaurav Jha |
title |
Rapid and inexpensive assessment of soil total iron using Nix Pro color sensor |
title_short |
Rapid and inexpensive assessment of soil total iron using Nix Pro color sensor |
title_full |
Rapid and inexpensive assessment of soil total iron using Nix Pro color sensor |
title_fullStr |
Rapid and inexpensive assessment of soil total iron using Nix Pro color sensor |
title_full_unstemmed |
Rapid and inexpensive assessment of soil total iron using Nix Pro color sensor |
title_sort |
rapid and inexpensive assessment of soil total iron using nix pro color sensor |
publisher |
Wiley |
series |
Agricultural & Environmental Letters |
issn |
2471-9625 |
publishDate |
2021-01-01 |
description |
Abstract In this study, an inexpensive Nix Pro (Nix Sensor Ltd.) color sensor was used to develop prediction models for soil iron (Fe) content. Thirty‐eight soil samples were collected from five agricultural fields across the Animas watershed to develop and validate soil Fe prediction models. We used color space models to develop three different parameter sets for Fe prediction with Nix Pro. The different color space sets were used to develop three new predictive models for Nix Pro‐based Fe content against the lab‐based inductively coupled plasma analyzed Fe content. The model performances were assessed using the coefficient of determination, root mean square error, and model p‐value. Three models (International Commission on Illumination's lightness, ±a axis (redness to greenness), and ± b axis (yellowness to blueness) [CIEL*a*b]; red, green, blue [RGB]; and cyan, magenta, yellow, key [black] [CMYK]) were significant in predicting the Fe content using colorimetric variables with R2 ranging from 0.79 to 0.81. The mean square prediction error (MSPE) and Kling–Gupta efficiency (KGE) Index were calculated to validate models and CMYK was predicted to be a better model (MSPE = 0.13; KGE = 0.601) than CIEL*a*b and RGB models. The results suggest Nix Pro is useful in predicting soil Fe content. |
url |
https://doi.org/10.1002/ael2.20050 |
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