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Postdoctoral Computer Vision 🔭 Research Scientist at Lawrence Livermore National Laboratory. Personal github account.

Interested in transformers for video processing. Two-way attention. Multimodal LLMs. Parameter-efficient fine-tuning.

I'm currently working on

Multimodal 🚀 Large Language Models:

  • Uploading code soon for adapting any image transformer and transformer language model into a multimodal-llm (MLLM)
  • Train a custom adapter to link the latent representations of the two token sequences
  • Potentially fine-tune with parameter-efficient fine-tuning (peft, LoRA)
  • Custom training pipeline for bootstrapping text-image pairs into <text, image, text>, <text, image>, <image, text> as an augmentation
  • Hosting as a Gradio or Huggingface space to demo

Chemical 🚨 Sensing:

  • Novel architectures for multitask learning + early classification of time series
  • Optimized preprocessing
  • Learning from Samples Worth Learning

Molecular 🔬 Representations:

  • VicReg over molecular images for augmentation-invariant embeddings
  • Graph Transformers over 3D molecular structure for unsupervised property embeddings

I'm interested and have ongoing projects in

  • Fine-tuning LLMs for multimodality in images, video, or domain-specific data types
  • Graph contrastive representation learning
  • Sequential representations of time series

ChemTime Representation

Past work:

Publications and some public projects on my page

Alexander Moore's Projects

acgans-improve-challenging icon acgans-improve-challenging

Public repo corresponding to ACGANs Improve Chemical Sensors for Challenging Distributions - ICMLA 2022 Oral Presentation + Paper

bountyboard icon bountyboard

Utilities for AWS LightSail-hosted wordpress site running Javascript for efficient, scalable brand awareness incentives.

molecularrepresentation icon molecularrepresentation

Exploring molecular representations for downstream supervised learning with natural image embedding techniques.

pytorch-mnist-celeba-cgan-cdcgan icon pytorch-mnist-celeba-cgan-cdcgan

Pytorch implementation of conditional Generative Adversarial Networks (cGAN) and conditional Deep Convolutional Generative Adversarial Networks (cDCGAN) for MNIST dataset

tweetpredictor icon tweetpredictor

Statistical learning methods to predict the party of a politician on Twitter

vlm icon vlm

Composition of Multimodal Language Models From Scratch

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