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FINN-R: An End-to-End Deep-Learning Framework for Fast Exploration of Quantized Neural Networks

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arxiv 1809.04570 v1 pith:BBJTMEJ2 submitted 2018-09-12 cs.AR

classification cs.AR
keywords neuraldesigngivennetworksaccuracyembeddedend-to-endengines
verification ladder T0 review T1 audit T2 compute T3 formal
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Convolutional Neural Networks have rapidly become the most successful machine learning algorithm, enabling ubiquitous machine vision and intelligent decisions on even embedded computing-systems. While the underlying arithmetic is structurally simple, compute and memory requirements are challenging. One of the promising opportunities is leveraging reduced-precision representations for inputs, activations and model parameters. The resulting scalability in performance, power efficiency and storage footprint provides interesting design compromises in exchange for a small reduction in accuracy. FPGAs are ideal for exploiting low-precision inference engines leveraging custom precisions to achieve the required numerical accuracy for a given application. In this article, we describe the second generation of the FINN framework, an end-to-end tool which enables design space exploration and automates the creation of fully customized inference engines on FPGAs. Given a neural network description, the tool optimizes for given platforms, design targets and a specific precision. We introduce formalizations of resource cost functions and performance predictions, and elaborate on the optimization algorithms. Finally, we evaluate a selection of reduced precision neural networks ranging from CIFAR-10 classifiers to YOLO-based object detection on a range of platforms including PYNQ and AWS\,F1, demonstrating new unprecedented measured throughput at 50TOp/s on AWS-F1 and 5TOp/s on embedded devices.

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  1. Hardware-Aware Feature Extraction Quantisation for Real-Time Visual Odometry on FPGA Platforms

    cs.CV 2025-07 conditional novelty 5.0 of 10

    A full-size SuperPoint CNN, quantised to 3 bits and implemented with the FINN framework, runs at 54 FPS on a ZCU102 FPGA for visual odometry, but with noticeably degraded trajectory accuracy.

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