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I started my career in experimental quantum computing with a Masters degree and a few publications in noise-tolerant quantum control of trapped-ion qubits. I took 5 years to try my hand at the world of business and startups, part of which involved launching the international expansion of a Spanish logistics startup in the UK. It was a blast, but not enough to keep me from being drawn back to my technical/analytical roots. In 2019 I watched the AlphaGo documentary, trained some reinforcement learning agents in gym, and trained an MNIST classifier. The ML bug got a hold of me, and I haven't looked back since.

Projects

In between running my own machine learning consultancy and heading up perception for Dextrous Robotics (which unfortunately had to wind down in late 2023), I love to explore and contribute to the ML ecosystem. See below for some highlights. For a summary of my professional work please see my LinkedIn.

Consistency Policy

I distilled Diffusion Policys into consistency models. This was part of a push for me to understand diffusion models in depth.

This contribution leverages PyTorch's symbolic tracing toolkit to provide a compact and intuitive API interface for extracting hidden layers from TorchVision models.

I authored a related blog post in the official PyTorch blog.

I also made a YouTube tutorial.

Contributions to timm

timm is the go-to library for SOTA vision backbones in PyTorch. Some of my contributions include:

Educational content on YouTube

I believe in teaching to learn, so I occasionally record a screencast of myself explaining an ML concept. Check out my YouTube channel. This video on understanding attention in transformers has been particularly popular.

Kaggle competitions

Kaggle was a great resource for spinning up my ML knowledge.

In the Bristol Myers Squibb - Molecular Translation competition I landed 27th place (9th amongst solo competitors). For this GIF, I visualize one of the attention maps in my vision transformer + text decoder while it transcribes the molecule's international chemical identifier.

30th place in Kaggle's Global Wheat Detection competition.

Interactive web demo of GANSpace

After doing a short introductory course to Angular, I flexed my skills with a web-based front-end that would allow users to flexibly tune attributes of a GAN's output. At the time this was mind-blowing stuff for the general population and computer vision practitioners alike (can you believe that was just 2019!).

A tutorial on the Variational Quantum Eigensolver

Just before jumping into ML, I took a quick detour back to quantum computing to check what I'd missed. I'm a strong believer in teaching to learn. So I made a tutorial on VQEs. Check it out here.

Alexander Soare's Projects

blenderproc icon blenderproc

A procedural Blender pipeline for photorealistic training image generation

cbir icon cbir

🏞 A content-based image retrieval (CBIR) system

detectron2 icon detectron2

Detectron2 is a platform for object detection, segmentation and other visual recognition tasks.

easyocr icon easyocr

Ready-to-use OCR with 80+ supported languages and all popular writing scripts including Latin, Chinese, Arabic, Devanagari, Cyrillic and etc.

gym icon gym

A toolkit for developing and comparing reinforcement learning algorithms.

kalman-and-bayesian-filters-in-python icon kalman-and-bayesian-filters-in-python

Kalman Filter book using Jupyter Notebook. Focuses on building intuition and experience, not formal proofs. Includes Kalman filters,extended Kalman filters, unscented Kalman filters, particle filters, and more. All exercises include solutions.

label-studio icon label-studio

Label Studio is a multi-type data labeling and annotation tool with standardized output format

lerobot icon lerobot

🤗 LeRobot: State-of-the-art Machine Learning for Real-World Robotics in Pytorch

mmengine icon mmengine

OpenMMLab Foundational Library for Training Deep Learning Models

mmocr icon mmocr

OpenMMLab Text Detection, Recognition and Understanding Toolbox

pytorch icon pytorch

Tensors and Dynamic neural networks in Python with strong GPU acceleration

pytorch-image-models icon pytorch-image-models

PyTorch image models, scripts, pretrained weights -- ResNet, ResNeXT, EfficientNet, EfficientNetV2, NFNet, Vision Transformer, MixNet, MobileNet-V3/V2, RegNet, DPN, CSPNet, and more

scipy icon scipy

SciPy library main repository

vision icon vision

Datasets, Transforms and Models specific to Computer Vision

weighted-boxes-fusion icon weighted-boxes-fusion

Set of methods to ensemble boxes from object detection models, including implementation of "Weighted boxes fusion (WBF)" method.

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