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Soybeans tempeh image dataset for tempeh maturity detection.

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Area of Science:

  • Food Science and Technology
  • Agricultural Engineering
  • Computer Science (Machine Learning)

Background:

  • Tempeh, a traditional Indonesian fermented soya bean product, is a vital animal protein substitute globally.
  • Current tempeh production relies on manual observation throughout its 1-4 day fermentation process.
  • The manual process is labor-intensive and presents opportunities for automation to improve efficiency.

Purpose of the Study:

  • To explore the potential of computer image detection with machine learning for automating the observation of soya bean fermentation in tempeh production.
  • To develop an image dataset capturing the key stages of traditional tempeh fermentation.
  • To enhance working time efficiency in tempeh manufacturing through technological integration.

Main Methods:

  • Development of an image dataset focused on the soya bean fermentation process for traditional tempeh.
  • Image data acquisition using smartphone cameras at three distinct fermentation stages: Day-0, Day-1, and Day-2.
  • Data preprocessing included image filtration and cropping, with images organized into time-based folders.

Main Results:

  • A curated image dataset representing the visual progression of soya bean fermentation for tempeh.
  • Distinct visual characteristics identified for each fermentation stage (Day-0, Day-1, Day-2).
  • Demonstrated potential for machine learning-based image analysis to monitor fermentation.

Conclusions:

  • Computer image detection and machine learning offer a viable solution for automating tempeh fermentation monitoring.
  • The created image dataset serves as a foundation for developing automated quality control systems.
  • Automation can significantly increase efficiency and consistency in traditional tempeh production.