Teen developer builds integer-only neural network in Rust that solves XOR problem
A 15-year-old developer from Germany has released ABSL (Adaptive Bitshift Learning) v1.0.0, a neural network method that operates entirely on integers without floating-point units. The system was built in Rust and trained to solve the XOR problem, a classic benchmark in machine learning. It achieves a 75% perfect-run rate and a peak global evaluation accuracy of 92.9%. The developer coded the project on a Samsung Galaxy S22 Ultra and has published the source code on GitHub. Future plans include refining the method further and scaling it to tackle the MNIST handwritten digit dataset.
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