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Advanced Rust ML: Custom Modules with Tch-rs | ML Engineering

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  Hi All Another day, another Rust ML backend application. Today we're looking at defining custom modules in Rust in the ML backend. We're going to be creating a custom linear layer in Rust using Tch-rs ( Rust PyTorch bindings ).   View full source below:   Let's break the above code down. Block by block. 1. Imports use tch::{nn, nn::Module, Tensor}; What it does:  *        tch::nn - Neural network module containing layer definitions. *      nn:Module - The trait that all neaural network modules must implement. *      Tensor - The Tensor type used throughout tch-rs   2. Struct Definition   struct CustomLayer { weight: Tensor, bias: Tensor, } What it does: *      weight - A tensor holding a layer's weights (matrix) *      bias -  A tensor holding the layer's bias (vector) This is essentially a linear layer (fully connected layer) that we're definin...