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A list of all the posts and pages found on the site. For you robots out there, there is an XML version available for digesting as well.
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Posts
Future Blog Post
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Blog Post number 4
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This is a sample blog post. Lorem ipsum I can’t remember the rest of lorem ipsum and don’t have an internet connection right now. Testing testing testing this blog post. Blog posts are cool.
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Blog Post number 1
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portfolio
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publications
PyPOD-GP: Using PyTorch for accelerated chip-level thermal simulation of the GPU
Published in SoftwareX, 2024
PyPOD-GP is a Pytorch-based, GPU-optimized software for accurate and efficient core-level thermal simulation on many-core processor chips.
Recommended citation: Neil He, Ming-Cheng Cheng, Yu Liu. "PyPOD-GP: Using PyTorch for accelerated chip-level thermal simulation of the GPU " in SoftwareX. Vol.30, p.102147.
Paper Link | Code Link
Position: Beyond Euclidean – Foundation Models Should Embrace Non-Euclidean Geometries
Published in preprint, under review, 2025
This paper argues for the necessity of incoporating non-Euclidean geometry into foundation models design, with arguments grounded in both theoretics and pratical considerations
Recommended citation: Neil He, Jiahong Liu, Buze Zhang, Ngoc Bui, Ali Maatouk, Menglin Yang, Irwin King, Melanie Weber, and Rex Ying. "Position: Beyond Euclidean -- Foundation Models Should Embrace Non-Euclidean Geometries." arXiv preprint. 2025.
Paper Link
HELM: Hyperbolic Large Language Models via Mixture-of-Curvature Experts
Published in preprint, under review, 2025
This paper propose a framework for a family of hyperbolic LLMs, including a mixture-of-curvature experts module where each expert operates in a distinct curvature space, hyperbolic Multi-Head Latent Attention mechanism, and hyperbolic rotary positional encoding.
Recommended citation: Neil He, Rishabh Anand, Hiren Madhu, Ali Maatouk, Smita Krishnaswamy, Leandros Tassiulas, Menglin Yang, and Rex Ying. "HELM: Hyperbolic Large Language Models via Mixture-of-Curvature Experts." arXiv preprint. 2025.
Paper Link | Code Link
HyperCore: The Core Framework for Building Hyperbolic Foundation Models with Comprehensive Modules
Published in TheWebConf NEGEL Workshop, 2025
HyperCore is an easy-to-use, open source library for building hyperbolic deep learning networks, especially hyperbolic foundation models. This paper details the library components and builds the several novel hyperbolic foundation models with it, such as hyperbolic CLIP, ViT, and GraphRAG.
Recommended citation: Neil He, Menglin Yang, and Rex Ying. "HyperCore: The Core Framework for Building Hyperbolic Foundation Models with Comprehensive Modules." TheWebConf NEGEL Workshop. 2025.
Paper Link | Code Link
Efficient Diffusion Models for Symmetric Manifolds
Published in The Forty-Second International Conference on Machine Learning (ICML), 2025
This paper is proposes an efficient diffusion framework for generative modelling on symmetric manifolds, such as the unitary group, with provable convergence guarantees and iteration complexity.
Recommended citation: Oren Mangoubi, Neil He, and Nisheeth K. Vishnoi. "Efficient Diffusion Models for Symmetric Manifolds." in ICML. 2025
Paper Link | Code Link
Hyperbolic Deep Learning for Foundation Models: A Survey
Published in ACM SIGKDD International Conference on Knowledge Discovery and Data Mining, 2025
This paper presents a comprehensive survey that details the recent techinical advanvents in hyperbolic foundation models.
Recommended citation: Neil He, Hiren Madhu, Ngoc Bui, Menglin Yang, and Rex Ying. "Hyperbolic Deep Learning for Foundation Models: A Survey." in KDD. 2025.
Paper Link | Download Slides
Lorentzian Residual Neural Networks
Published in ACM SIGKDD International Conference on Knowledge Discovery and Data Mining, 2025
This paper proposes an efficient, stable, and effective residual neural network framework in hyperbolic space.
Recommended citation: Neil He, Menglin Yang, and Rex Ying. 2025. Lorentzian Residual Neural Networks. In KDD .
Paper Link | Code Link
talks
Hyperbolic Deep Learning for Foundation Models: A Tutorial
Published:
More information here I’m leading a tutorial for hyperbolic foundation models at SIGKDD 2025! This tutorial aims to provide a comprehensive understanding of hyperbolic deep learning methods espeically their application to foundation models. It will cover the theoretical foundations, practical implementations, and future research directions in this exciting field. The tutorial is designed for a broad audience, including both newcomers and experts in machine learning, and will feature interactive components to engage participants.
Non-Euclidean Foundation Models: Advancing AI Beyond Euclidean Frameworks
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More information here I’m orgranizing a workshop for non-Euclidean Foundation Models at NeurIPS 2025! This workshop will include submissions, talks, and poster sessions on topics related to the intersection of foundation models and non-Euclidean representation learning, including theoretical foundations, architectures and algorithms, applications, trustworthiness and robustness, and benchmarks and tools.
teaching
Teaching Assistant for Set Theory
Undergraduate course, Yale University, Department of Mathematics, 2022
Teaching assistant for the Set Theory course (MATH 270) at Yale.
Teaching Assistant for Real Analysis
Undergraduate course, Yale University, Department of Mathematics, 2023
Teaching assistant for the Real Analysis course (MATH 255) at Yale.
Teaching Assistant for Data Structures and Programming Course
Undergraduate course, Yale Univeristy, Department of Computer Science, 2023
Teaching assistant for the Data Structure and Programming course (CS223) at Yale for 2 semesters.