Intelligent Sprinkler: Design and Evaluation of a Low-Cost Mobile Agricultural Robot for Sensor-Driven Irrigation and Vision-Guided Targeted Spraying

Uniform irrigation and blanket spraying can apply water or treatment liquid without accounting for local field conditions. This work presents the design of the Intelligent Sprinkler, a low-cost tracked mobile agricultural platform that combines soil and climate sensing, sensor-driven irrigation, camera-based target detection, targeted liquid delivery, obstacle-aware navigation, and feedback logging within a SENSE–PERCEIVE–DECIDE–NAVIGATE–ACTUATE–MEASURE–FEEDBACK loop. The platform uses a Raspberry Pi for high-level processing and a microcontroller for real-time sensing and actuation. Irrigation is implemented as a threshold-based closed-loop controller rather than as a machine-learning irrigation predictor, while YOLOv8n is specified for target detection and edge deployment. The evaluation protocol defines controlled irrigation, vision, spraying, navigation, and complete-cycle experiments with predefined metrics and statistical tests. This manuscript includes an explicitly labeled synthetic dataset to demonstrate the intended reporting structure. The numerical values are not experimental findings and are placeholders for verified measurements from the physical prototype.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-05
DOI
https://doi.org/10.5281/zenodo.23151414
Primary Topic
Smart Agriculture and AI
Type
preprint
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preprint

Intelligent Sprinkler: Design and Evaluation of a Low-Cost Mobile Agricultural Robot for Sensor-Driven Irrigation and Vision-Guided Targeted Spraying

Satyanarayana Reddy Karri L O V E, Doddi Sricharan Rao, Balaji Muram Reddy, Sampathkumar Nithyanantham et al.
Zenodo (CERN European Organization for Nuclear Research)
Smart Agriculture and AI
preprint

Intelligent Sprinkler: Design and Evaluation of a Low-Cost Mobile Agricultural Robot for Sensor-Driven Irrigation and Vision-Guided Targeted Spraying

Satyanarayana Reddy Karri L O V E, Doddi Sricharan Rao, Balaji Muram Reddy, Sampathkumar Nithyanantham, Venkatesh Gurram
preprint en

Abstract

Uniform irrigation and blanket spraying can apply water or treatment liquid without accounting for local field conditions. This work presents the design of the Intelligent Sprinkler, a low-cost tracked mobile agricultural platform that combines soil and climate sensing, sensor-driven irrigation, camera-based target detection, targeted liquid delivery, obstacle-aware navigation, and feedback logging within a SENSE–PERCEIVE–DECIDE–NAVIGATE–ACTUATE–MEASURE–FEEDBACK loop. The platform uses a Raspberry Pi for high-level processing and a microcontroller for real-time sensing and actuation. Irrigation is implemented as a threshold-based closed-loop controller rather than as a machine-learning irrigation predictor, while YOLOv8n is specified for target detection and edge deployment. The evaluation protocol defines controlled irrigation, vision, spraying, navigation, and complete-cycle experiments with predefined metrics and statistical tests. This manuscript includes an explicitly labeled synthetic dataset to demonstrate the intended reporting structure. The numerical values are not experimental findings and are placeholders for verified measurements from the physical prototype.

Zenodo (CERN European Organization for Nuclear Research)
Kalasalingam Academy of Research and Education (IN)
Smart Agriculture and AI
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