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Paper Citation Record · LEDGER

Nova: An End-to-End MLIR Compiler for Deep Learning

As of 21 August 2026, this Paper Citation Record lists 39 of 39 outbound references and 0 inbound Pith citation observations for arXiv:2608.00029.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2608.00029 v1

Coverage vector

measured 39 of 39 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-04T01:44:49.125497Z

measured 39 of 39 standing notices

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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-21T06:32:19.484+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

39 of 39 outbound references displayed

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  • unresolved39
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  • malformed identifier0
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Outbound references

Observation 6b2a5a3a-3979-4bc0-b77a-c8372603e17d · outbound

This paper cites By capturing both forward activations and backward gradients into a unified graph, it unlocks the global visibility required for whole-step optimizations.

Nova: An End-to-End MLIR Compiler for Deep Learning By capturing both forward activations and backward gradients into a unified graph, it unlocks the global visibility required for whole-step optimizations

Reference 1

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source=pdf_text observed=2026-08-04T01:44:46.077041Z digest=sha256:1dd928980f3df7bf46a2d56cdb4d0c8b9dd4582b8d0a2d3ac5a6532ae33083a9

Observation b1c872c9-cac1-4853-a601-eadb69a4f79b · outbound

This paper cites This represents the full training step natively within 2 MLIR, serving as the definitive foundation for both cross- operator fusion and compiler-native gradient synchronization.

Nova: An End-to-End MLIR Compiler for Deep Learning This represents the full training step natively within 2 MLIR, serving as the definitive foundation for both cross- operator fusion and compiler-native gradient synchronization

Reference 2

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Observation d7843cfd-5aa9-45a1-8e58-da6c754cde85 · outbound

This paper cites an unresolved cited work.

Nova: An End-to-End MLIR Compiler for Deep Learning Unresolved cited work

Reference 3

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Observation f0bf3f6f-4cef-4031-b89b-07129caa6fe8 · outbound

This paper cites parallel.

Nova: An End-to-End MLIR Compiler for Deep Learning parallel

Reference 4

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Observation 06d9497a-79c6-43bb-a284-a1b162ae5acc · outbound

This paper cites Nova time-shifts nvgpu.device_async_copy operations by depth − 1 iterations, guaranteeing that itera- tion i+2 prefetches from HBM while iteration i computes on resident memory.

Nova: An End-to-End MLIR Compiler for Deep Learning Nova time-shifts nvgpu.device_async_copy operations by depth − 1 iterations, guaranteeing that itera- tion i+2 prefetches from HBM while iteration i computes on resident memory

Reference 5

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Observation 1df89411-c041-4bcb-afde-0217c0de178e · outbound

This paper cites an unresolved cited work.

Nova: An End-to-End MLIR Compiler for Deep Learning Unresolved cited work

Reference 6

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Observation 369a9268-8a61-445b-a7e9-19aa1300da7c · outbound

This paper cites The hardware ldmatrix instruction is highly rigid, and its ldmatrix.trans variant is strictly limited to 16-bit granularity.

Nova: An End-to-End MLIR Compiler for Deep Learning The hardware ldmatrix instruction is highly rigid, and its ldmatrix.trans variant is strictly limited to 16-bit granularity

Reference 7

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Observation 6cf57b15-4b9f-48c3-ac56-8a522ccbac7b · outbound

This paper cites To optimize them, Nova pins the accumulators directly in registers and expands clustered subgroup reductions into gpu.shuffle 6 butterfly trees.

Nova: An End-to-End MLIR Compiler for Deep Learning To optimize them, Nova pins the accumulators directly in registers and expands clustered subgroup reductions into gpu.shuffle 6 butterfly trees

Reference 8

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Observation 64605d85-231c-43dd-a636-47844e5f6724 · outbound

This paper cites All tested implementations remained within the 10−4 relative error band.

Nova: An End-to-End MLIR Compiler for Deep Learning All tested implementations remained within the 10−4 relative error band

Reference 9

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Observation 43519325-4a2c-44a9-bc93-366efba83ca6 · outbound

This paper cites At 144M parameters, both PyTorch and the eager baseline run out of memory (OOM) on the 12 GB card, whereas Nova and XLA successfully fit and continue training.

Nova: An End-to-End MLIR Compiler for Deep Learning At 144M parameters, both PyTorch and the eager baseline run out of memory (OOM) on the 12 GB card, whereas Nova and XLA successfully fit and continue training

Reference 10

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Observation 4b9d8b8e-fd9b-423e-8e20-44028903e59e · outbound

This paper cites By operating en- tirely on a single fused graph, Nova proves that on a memory- constrained GPU, it is possible to lower the memory floor and raise throughput simultaneously.

Nova: An End-to-End MLIR Compiler for Deep Learning By operating en- tirely on a single fused graph, Nova proves that on a memory- constrained GPU, it is possible to lower the memory floor and raise throughput simultaneously

Reference 11

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Observation ad12ddab-edad-416b-b221-e01cbc77b68c · outbound

This paper cites At 144M parame- ters, PyTorch and XLA both encounter OOM errors, whereas Nova successfully fits the DDP step.

Nova: An End-to-End MLIR Compiler for Deep Learning At 144M parame- ters, PyTorch and XLA both encounter OOM errors, whereas Nova successfully fits the DDP step

Reference 12

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Observation 908ece37-c54d-47e7-9b1b-63c6b324242e · outbound

This paper cites It efficiently overlaps gradient synchronization with computation.

Nova: An End-to-End MLIR Compiler for Deep Learning It efficiently overlaps gradient synchronization with computation

Reference 13

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Observation dc046a27-db3f-41ad-8649-5baed81d7b1b · outbound

This paper cites Figure 10:Device memory consumption (MB) in Mixed preci- sion training.

Nova: An End-to-End MLIR Compiler for Deep Learning Figure 10:Device memory consumption (MB) in Mixed preci- sion training

Reference 14

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Observation 829c65fe-32b9-4938-8fc5-8f8289a86c6c · outbound

This paper cites 7 Discussions and limitations In this section, we analyze Nova’s architectural trade-offs, evaluating the limits of its performance characteristics and open challenges for scaling.

Nova: An End-to-End MLIR Compiler for Deep Learning 7 Discussions and limitations In this section, we analyze Nova’s architectural trade-offs, evaluating the limits of its performance characteristics and open challenges for scaling

Reference 15

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Observation a7f9ee6c-ba27-457e-beff-8eb9217e85e9 · outbound

This paper cites IREE: Intermediate Representation Execution En- vironment.

Nova: An End-to-End MLIR Compiler for Deep Learning IREE: Intermediate Representation Execution En- vironment

Reference 16

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Observation 18086e39-76ce-4999-9d8b-5358eb890999 · outbound

This paper cites OpenXLA: A compiler for machine learning.

Nova: An End-to-End MLIR Compiler for Deep Learning OpenXLA: A compiler for machine learning

Reference 17

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Observation 4f824d65-e7f2-4028-9527-992194256e61 · outbound

This paper cites Operator Fusion in XLA: Analysis and Evaluation.

Nova: An End-to-End MLIR Compiler for Deep Learning Operator Fusion in XLA: Analysis and Evaluation

Reference 18

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Observation 85f1d730-47f1-4e87-8d4c-8d0eecf020fc · outbound

This paper cites MLIR: Scaling Compiler Infrastructure for Domain- Specific Computation.

Nova: An End-to-End MLIR Compiler for Deep Learning MLIR: Scaling Compiler Infrastructure for Domain- Specific Computation

Reference 19

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Observation f6d47976-55fb-41d3-bf8f-cb9b0d1bc3ed · outbound

This paper cites Halide: A Language and Compiler for Opti- mizing Parallelism, Locality, and Recomputation in Image Processing Pipelines.

Nova: An End-to-End MLIR Compiler for Deep Learning Halide: A Language and Compiler for Opti- mizing Parallelism, Locality, and Recomputation in Image Processing Pipelines

Reference 20

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Observation 23ad3ed3-a8e8-40fd-b9d4-17e31e457ec1 · outbound

This paper cites Tensor Comprehensions: Framework-Agnostic High-Performance Machine Learning Abstractions.

Nova: An End-to-End MLIR Compiler for Deep Learning Tensor Comprehensions: Framework-Agnostic High-Performance Machine Learning Abstractions

Reference 21

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Observation 2be29e31-f76a-4cb9-b1f7-95e54b9dc1b8 · outbound

This paper cites cuDNN: Efficient Primitives for Deep Learning.

Nova: An End-to-End MLIR Compiler for Deep Learning cuDNN: Efficient Primitives for Deep Learning

Reference 22

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Observation b15599c9-198f-46f8-bef1-b8d8db21aa32 · outbound

This paper cites TVM: An Automated End-to-End Optimizing Compiler for Deep Learning.

Nova: An End-to-End MLIR Compiler for Deep Learning TVM: An Automated End-to-End Optimizing Compiler for Deep Learning

Reference 23

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Observation 6bd8cc2d-458e-4acb-9ce5-dd77b9ddddbc · outbound

This paper cites PyTorch: An Imperative Style, High-Performance Deep Learning Library.

Nova: An End-to-End MLIR Compiler for Deep Learning PyTorch: An Imperative Style, High-Performance Deep Learning Library

Reference 24

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Observation a23b4fa5-9f23-4d6d-8f9e-e7eea7f192fb · outbound

This paper cites TensorFlow: A System for Large-Scale Machine Learning.

Nova: An End-to-End MLIR Compiler for Deep Learning TensorFlow: A System for Large-Scale Machine Learning

Reference 25

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Observation 342254c8-20b7-42e1-9864-85bebc0e2e46 · outbound

This paper cites Composable and Modular Code Generation in MLIR: A Structured and Retargetable Approach to Tensor Compiler Construction.

Nova: An End-to-End MLIR Compiler for Deep Learning Composable and Modular Code Generation in MLIR: A Structured and Retargetable Approach to Tensor Compiler Construction

Reference 26

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Observation 77df85a4-e998-4474-ac03-aeec1cfae9dc · outbound

This paper cites Triton: An Intermediate Language and Compiler for Tiled Neural Network Computations.

Nova: An End-to-End MLIR Compiler for Deep Learning Triton: An Intermediate Language and Compiler for Tiled Neural Network Computations

Reference 27

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Observation 81cfc8be-1b58-4ecc-8623-cd31d6781211 · outbound

This paper cites Data Movement Is All You Need: A Case Study on Optimizing Transformers.

Nova: An End-to-End MLIR Compiler for Deep Learning Data Movement Is All You Need: A Case Study on Optimizing Transformers

Reference 28

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Observation da0409ad-d884-4f62-86fe-dcd626631e0a · outbound

This paper cites The MLIR Transform Dialect: Your Compiler Is More Powerful Than You Think.

Nova: An End-to-End MLIR Compiler for Deep Learning The MLIR Transform Dialect: Your Compiler Is More Powerful Than You Think

Reference 29

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Observation c1ba18a3-f3fb-422b-8070-f11b82a985b9 · outbound

This paper cites Ansor: Generating High-Performance Tensor Programs for Deep Learning.

Nova: An End-to-End MLIR Compiler for Deep Learning Ansor: Generating High-Performance Tensor Programs for Deep Learning

Reference 30

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Observation 4315f462-1de6-4588-8fea-3b7d05cb5278 · outbound

This paper cites cuBLAS Library User Guide.

Nova: An End-to-End MLIR Compiler for Deep Learning cuBLAS Library User Guide

Reference 31

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Observation 8fb5fe0b-d5fe-4d91-9cf2-f575e5be191b · outbound

This paper cites CUTLASS: CUDA Templates for Linear Algebra Subroutines.

Nova: An End-to-End MLIR Compiler for Deep Learning CUTLASS: CUDA Templates for Linear Algebra Subroutines

Reference 32

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Observation 122a1c7e-d264-42f3-b883-9a37679ff6c4 · outbound

This paper cites FlashAttention: Fast and Memory-Efficient Exact Atten- tion with IO-Awareness.

Nova: An End-to-End MLIR Compiler for Deep Learning FlashAttention: Fast and Memory-Efficient Exact Atten- tion with IO-Awareness

Reference 33

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Observation 1ac5a38b-9c92-439c-ba88-2e6fa9d0bfa4 · outbound

This paper cites PyTorch Distributed: Experiences on Accelerating Data Parallel Training.

Nova: An End-to-End MLIR Compiler for Deep Learning PyTorch Distributed: Experiences on Accelerating Data Parallel Training

Reference 34

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Observation b067abe4-8107-4802-9038-5fff65b18e09 · outbound

This paper cites Automatic Differentiation in Machine Learning: a Survey.

Nova: An End-to-End MLIR Compiler for Deep Learning Automatic Differentiation in Machine Learning: a Survey

Reference 35

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Observation 0b9c0e5b-2f4c-4c9d-8da3-e88fcbfe0c56 · outbound

This paper cites JAX: Composable Transformations of Python+NumPy Programs.

Nova: An End-to-End MLIR Compiler for Deep Learning JAX: Composable Transformations of Python+NumPy Programs

Reference 36

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Observation 9fbb5862-e225-4f48-9d5a-65bfe239036c · outbound

This paper cites Roofline: An Insightful Visual Performance Model for Multicore Architectures.

Nova: An End-to-End MLIR Compiler for Deep Learning Roofline: An Insightful Visual Performance Model for Multicore Architectures

Reference 37

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source=pdf_text observed=2026-08-04T01:44:49.008467Z digest=sha256:7f6c55dcb817ff49daefd66cb6dc5a035f19852e893296d085c3c7847b9d4b0b

Observation ca78294d-e0b0-4632-8395-45e14830b622 · outbound

This paper cites CUDA C++ Programming Guide.

Nova: An End-to-End MLIR Compiler for Deep Learning CUDA C++ Programming Guide

Reference 38

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no resolver link, observed 2026-08-04T01:44:49.066748Z

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source=pdf_text observed=2026-08-04T01:44:49.066748Z digest=sha256:cb03ebae0501407cf0d7c541572ac52242a92195a5423027d0e6ab7f1fb11358

Observation 3d7001f9-e9de-479c-bc51-5c1f2c5211be · outbound

This paper cites LLVM/MLIR 21.1.6; CUDA Toolkit 13.0.

Nova: An End-to-End MLIR Compiler for Deep Learning LLVM/MLIR 21.1.6; CUDA Toolkit 13.0

Reference 39

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no resolver link, observed 2026-08-04T01:44:49.125497Z

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Pith citing papers

No inbound Pith citation observations are available.