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Flying By ML -- CNN Inversion of Affine Transforms
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This paper describes a machine learning method to automate reading of cockpit gauges, using a CNN to invert affine transformations and deduce aircraft states from instrument images. Validated with synthetic images of a turn-and-bank indicator, this research introduces methods such as generating datasets from a single image, the 'Clean Training Principle' for optimal noise-free training, and CNN interpolation for continuous value predictions from categorical data. It also offers insights into hyperparameter optimization and ML system software engineering.
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Publication details
- DOI
- 10.48550/arxiv.2312.17258
- OpenAlex
- W4390489508
- Document type
- preprint
- Language
- EN
- Source
- arXiv (Cornell University)
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