Design Get up System Cultivation Crickets in a Wireless Clay Barn
DOI:
https://doi.org/10.33795/jartel.v16i3.10714Keywords:
Clay Barn, Cricket Cultivation, DHT22, ESP32, Firebase Realtime Database, Internet of Things, Wireless Sensor NetworkAbstract
Conventional cultivation of field crickets ( Gryllus bimaculatus ) faces challenges in maintaining stable environmental conditions and continuous monitoring. This study developed a Wireless Sensor Network (WSN)-based monitoring and control system using an ESP32 microcontroller integrated with DHT22, LDR, RTC DS3231, and load cell sensors. Temperature and humidity data were processed using the Mamdani Fuzzy Logic algorithm to automatically control heating and misting, while all sensor data were transmitted through Firebase Realtime Database and displayed on a web-based monitoring platform in real time. Experimental results showed that the DHT22 sensor achieved accuracies of 98.97% for temperature and 99.53% for humidity measurements. The LDR sensor successfully classified lighting conditions into dark (5 lux), dim (17 lux), and bright (40 lux). The load cell sensor achieved a Mean Absolute Percentage Error (MAPE) of 0.65% (99.35% accuracy), while the RTC DS3231 maintained accurate time synchronization. The Mamdani Fuzzy Logic algorithm achieved 98.40% accuracy compared with manual calculations. WSN communication performance demonstrated delays of 162.73–171.97 ms, jitter of 60.13–101.51 ms, and throughput of 12.85–14.06 kbps. All sensor data were successfully transmitted and displayed in real time, demonstrating the system's effectiveness for automated, centralized cricket cultivation monitoring and environmental control .
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