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Bio-inspired Sensor Fusion for Quality Assessment of Harumanis Mangoes
- Source :
- Procedia Chemistry. :165-174
- Publisher :
- Published by Elsevier B.V.
-
Abstract
- In recent years, there have been a number of reported studies on the use of non-destructive technique to evaluate and determine mango maturity and ripeness levels. However, most of these reported works were conducted using single-modality sensing systems, either using an electronic nose (e-nose), acoustics, CCD, IR sensor or by other non-destructive measurements. This paper presents the work on the classification of mangoes (Magnifera Indica cv. Harumanis) maturity and ripeness levels using data fusion of the electronic nose (e-nose) and acoustic sensor and combine with CCD and IR sensor. A Fourier-based shape separation method was developed from CCD camera images to grade mango by its shape and able to correctly classify 100%. Colour intensity from infrared image was used to distinguish and classify the level of maturity and ripeness of the fruits. The finding shows 92% correct classification of maturity levels by using infrared vision Three groups of samples each from two different harvesting times (week 7 and week 8) were evaluated by the e-nose and then followed by the acoustic sensor. By applying a low level data fusion technique on the e-nose and acoustic data, the classification for maturity and ripeness levels using LDA was improved.
- Subjects :
- Infrared image
Chemistry(all)
Machine vision
Level data
Analytical chemistry
fourier descriptor
automated inspection
Ripeness
acoustic
harumanis mango
grading system
otorhinolaryngologic diseases
e-nose
Mathematics
Electronic nose
Infrared vision
Quality assessment
business.industry
food and beverages
Pattern recognition
General Medicine
machine vision
Sensor fusion
Chemical Engineering(all)
Artificial intelligence
business
Subjects
Details
- Language :
- English
- ISSN :
- 18766196
- Database :
- OpenAIRE
- Journal :
- Procedia Chemistry
- Accession number :
- edsair.doi.dedup.....07a57ce6a79d9baa63c7b646d12c5d65
- Full Text :
- https://doi.org/10.1016/j.proche.2012.10.143