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THE USE OF CO-OCCURRENCE PATTERNS IN SINGLE IMAGE BASED FOOD PORTION ESTIMATION
Shaobo Fang1, Fengqing Zhu1, Carol J Boushey2
1School of Electrical and Computer Engineering, Purdue University, West Lafayette, Indiana, USA.
Accurately estimating food portions from images is crucial for dietary intake assessment. This study improves portion estimation by using co-occurrence patterns from mobile Food Record (mFR) system images.
Area of Science:
- Nutrition science
- Computer vision
- Health informatics
Background:
- Accurate dietary intake measurement is a significant challenge in nutrition and health research.
- Estimating food portion sizes from images is difficult due to variations in food preparation and appearance.
Purpose of the Study:
- To develop and evaluate a novel method for improving food portion estimation accuracy.
- To leverage co-occurrence patterns as contextual information for more precise dietary assessment.
Main Methods:
- A geometric model-based technique was employed for initial food portion estimation.
- Co-occurrence patterns of food items were derived from images collected using the mobile Food Record (mFR) system.
- These co-occurrence patterns were integrated as prior knowledge to refine the portion estimation results.
Main Results:
- The study demonstrated that incorporating food co-occurrence patterns significantly enhances portion estimation accuracy.
- The mobile Food Record (mFR) system facilitated the collection of relevant dietary image data.
- Geometric modeling combined with contextual co-occurrence information proved effective for portion size estimation.
Conclusions:
- Utilizing co-occurrence patterns as contextual information is a promising approach to improve food portion estimation.
- The developed methodology offers a potential solution to the long-standing problem of accurate dietary intake measurement.
- This research contributes to advancing digital health tools for nutrition monitoring and research.
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