Submitted:
08 July 2025
Posted:
09 July 2025
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Abstract
Keywords:
1. Introduction
2. Literature Review
2.1. Paleontological and Biostratigraphic Significance of Cretaceous Ammonites
2.2. Applications of Deep Learning in Paleontology
2.3. Non-Destructive and Spectroscopic Technologies for Fossil Imaging
2.4. Stratigraphic Data and Fossil Provenance Modeling
2.5. Challenges in Macro-Fossil Classification and Colombian Case Studies
3. Methodology
3.1. Dataset and Image Acquisition
3.2. CNN Architecture and Model Training
3.3. Evaluation Metrics and Validation Strategy
3.4. Implementation Tools and Expected Outcomes
4. Results and Discussion
4.1. Model Performance and Taxonomic Accuracy
4.2. Visual Interpretability and Morphological Correlation
4.3. Implications for Stratigraphy and Collection Management
4.4. Limitations and Future Work
5. Conclusions
References
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