Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T10:43:50.212638Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 71 of 71 outbound references and 5 inbound Pith citation observations for arXiv:2506.04985.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T10:43:50.212638Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-07-14T23:10:46.775151Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-11T22:11:14.387607Z
71 of 71 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 9ba8cc1a-738b-4380-916b-0bd6202341e8 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Understanding and overcoming the challenges of efficient transformer quantization
Reference 1
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Observation d8256077-1503-4508-a07d-c06095ff042e · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Bert busters: Outlier dimensions that disrupt transformers
Reference 2
Source-reported events for the cited work
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Observation 58f5443b-3af2-4d9a-a195-b157c627bcf6 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Unresolved cited work
Reference 3
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Observation c7a78b1e-bcb8-4804-99bd-ffe86490b644 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Quantizable Transformers: Removing Outliers by Helping Attention Heads Do Nothing
Reference 4
Source-reported events for the cited work
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Observation dbc63c28-99f4-47d7-b4b6-d19a1ba1c380 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Massive Activations in Large Language Models
Reference 5
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Observation b8559f51-d5d2-40ec-adc0-7fce677ae39b · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization SmoothQuant: Accurate and Efficient Post-Training Quantization for Large Language Models
Reference 6
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Observation 4d5c4acd-5ea6-4cb4-94c9-3db336267736 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization QuaRot: Outlier-Free 4-Bit Inference in Rotated LLMs
Reference 7
Source-reported events for the cited work
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Observation dd047719-78d1-4eb2-be08-62d303645640 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization SpinQuant: LLM quantization with learned rotations
Reference 8
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Unavailable: canonical work link unavailable.
Observation 509b68ee-495b-49c2-b78c-d8b23520fd09 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Quantizing deep convolutional networks for efficient inference: A whitepaper
Reference 9
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Observation cd97d06f-d500-4c0b-bfb6-2e87bb99de26 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization A White Paper on Neural Network Quantization
Reference 10
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Observation 3c83e253-9f44-4951-9bd2-dd5921bec1df · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Post-training 4-bit quantization of convolution networks for rapid-deployment
Reference 11
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Unavailable: canonical work link unavailable.
Observation 50e04b74-1f22-4005-b250-0dacbfd07d84 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Zeroq: A novel zero shot quantization framework
Reference 12
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Observation 885d442f-996e-402c-bedb-82def12ce75b · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Low-bit quantization of neural networks for efficient inference
Reference 13
Source-reported events for the cited work
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Observation 438057e3-01be-4626-a686-f32d716e6d88 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Improving Post Training Neural Quantization: Layer-wise Calibration and Integer Programming
Reference 14
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Unavailable: canonical work link unavailable.
Observation 1f216aed-f293-45eb-a214-bb2a4a85655a · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Same, same but different: Recovering neural network quantization error through weight factorization
Reference 15
Source-reported events for the cited work
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Observation 6b191482-579b-4f32-8e53-101cfa8e6b23 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Improving neural net- work quantization without retraining using outlier channel splitting
Reference 16
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Observation 2aed43fc-d301-4c5a-917d-c633adb95ae8 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Data-free quantization through weight equalization and bias correction
Reference 17
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Observation b210edd9-11bb-41f6-af73-0a1ab55e1632 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Up or Down? Adaptive Rounding for Post-Training Quantization
Reference 18
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Unavailable: canonical work link unavailable.
Observation e388f3a5-d0be-46bb-93b9-73a199e95015 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization BRECQ: Pushing the Limit of Post-Training Quantization by Block Reconstruction
Reference 19
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Unavailable: canonical work link unavailable.
Observation c024df58-8b6e-4c68-be7e-3940bd5d7b7c · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Deep learning with limited numerical precision
Reference 20
Source-reported events for the cited work
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Observation 5cc967d0-211a-47cf-9b83-fad6bcc52476 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Quantization and training of neural networks for efficient integer-arithmetic-only inference
Reference 21
Source-reported events for the cited work
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Observation 969ea878-426c-48d8-bc60-02170c14f88e · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Esser, Jeffrey L
Reference 22
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Observation 485f1515-d3bf-4677-986b-9f33a9ddafdc · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Lsq+: Improving low-bit quantization through learnable offsets and better initialization
Reference 23
Source-reported events for the cited work
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Observation d507e2b7-65cc-4069-b782-597c119b6fd5 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Overcoming oscillations in quantization-aware training
Reference 24
Source-reported events for the cited work
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Observation 7da8cef2-4587-4574-81db-7b5309ac1165 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization LLM-QAT: Data-Free Quan- tization Aware Training for Large Language Models
Reference 25
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 3cb6aee2-6a07-482b-b315-3ac18a450963 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization BitDistiller: Unleashing the Potential of Sub-4-Bit LLMs via Self-Distillation
Reference 26
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation f030abb1-84cb-4181-94c3-7817bbfdee0e · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization EfficientQAT: Efficient Quantization-Aware Training for Large Language Models
Reference 27
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 657cfb93-0532-4c48-87ab-aec4df2bec6d · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Qlora: Efficient finetuning of quantized llms
Reference 28
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Unavailable: canonical work link unavailable.
Observation 289ff14b-bc35-4733-ae33-54f1fb574b65 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization QA-LoRA: Quantization-Aware Low-Rank Adaptation of Large Language Models
Reference 29
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Unavailable: canonical work link unavailable.
Observation 1768de1f-a55d-48c9-be05-903aee41c92e · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Low-Rank Quantization-Aware Training for LLMs
Reference 30
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Unavailable: canonical work link unavailable.
Observation e4a6e479-b504-4dfe-b7b0-2a07dfdb3d53 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Paretoq: Scaling laws in extremely low-bit llm quantization, 2025
Reference 31
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Observation 15fd83d1-ec0c-4244-85a5-e58b9eb4ac3b · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization GPTQ: Accurate Post-Training Quantization for Generative Pre-trained Transformers
Reference 32
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Observation 9ecc4d88-0f0c-4804-8227-bdda6b9b0470 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization SpQR: A Sparse-Quantized Representation for Near-Lossless LLM Weight Compression
Reference 33
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Observation 8fad7b8c-9a67-4e89-8b00-bbee994ae2b9 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization AWQ: Activation-aware Weight Quantization for LLM Compression and Acceleration
Reference 34
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Unavailable: canonical work link unavailable.
Observation c502772d-b90a-412c-8437-8958ce0fba68 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Owq: Outlier- aware weight quantization for efficient fine-tuning and inference of large language models
Reference 35
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Unavailable: canonical work link unavailable.
Observation 8667e534-2518-4bf2-954d-47bdcf62d9c7 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization SqueezeLLM: Dense-and-Sparse Quantization
Reference 36
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Observation f696d429-04b3-4cc4-a2a8-feec06fcb35b · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization SliM-LLM: Salience-Driven Mixed-Precision Quantization for Large Language Models
Reference 37
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Observation 9f794de9-c001-4ba4-8925-f3957faa6e3a · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Extreme Compression of Large Language Models via Additive Quantization
Reference 38
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Observation ec96620d-493a-4815-8591-81342b0588be · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization A frustratingly easy post-training quantization scheme for llms
Reference 39
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Observation da98e275-fbe4-41a6-ad7a-77f7f3f47aa0 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Flexround: Learnable rounding based on element-wise division for post-training quantization
Reference 40
Source-reported events for the cited work
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Observation bf7d682b-5699-4ec9-bb14-7d3682149f37 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Long- range zero-shot generative deep network quantization
Reference 41
Source-reported events for the cited work
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Observation 0a53fc79-93eb-4c1d-989b-0d38e74703a7 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Quip: 2-bit quantiza- tion of large language models with guarantees
Reference 42
Source-reported events for the cited work
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Observation a2cac9bb-05ea-4ff6-a91f-d0c1ecd524df · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Outlier Suppression+: Accurate quantization of large language models by equivalent and optimal shifting and scaling
Reference 43
Source-reported events for the cited work
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Observation 69b59f67-87e3-4053-98ab-73f54a6393f9 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization OmniQuant: Omnidirectionally Calibrated Quantization for Large Language Models
Reference 44
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Observation e26850cc-f1fa-42f3-8bd4-b7d17fd82973 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization QuIP#: Even Better LLM Quantization with Hadamard Incoherence and Lattice Codebooks, February
Reference 45
Source-reported events for the cited work
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Observation 870a263e-334d-4d85-bcaa-7fa4cc1a2161 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization DuQuant: Distributing Outliers via Dual Transformation Makes Stronger Quantized LLMs
Reference 46
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Observation 252b32eb-f7f4-4bcd-809a-0b2ae9fc5dcc · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization FlatQuant: Flatness Matters for LLM Quantization
Reference 47
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Observation 64dc9d2b-c2fd-430f-a0f7-a6a009f3ce69 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization SliceGPT: Compress Large Language Models by Deleting Rows and Columns
Reference 48
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Observation 7287845d-6e7e-4085-9c68-9ffa36c6253a · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Roformer: Enhanced transformer with rotary position embedding
Reference 49
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Observation 43470d1e-cbcb-47c7-af8c-9615542eca02 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Llama 2: Open Foundation and Fine-Tuned Chat Models
Reference 50
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Observation f00ec514-0be5-4c54-a336-416364dbeb24 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization The Llama 3 Herd of Models
Reference 51
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Observation 16655abc-63aa-47d1-bdef-c8b6b42e0071 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Pointer sentinel mixture models
Reference 52
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Observation 19c78207-9ae1-4dc9-996b-c6d7aeeb92ed · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization PIQA: Reasoning about Physical Commonsense in Natural Language
Reference 53
Source-reported events for the cited work
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Observation a34ff82a-8ca1-475f-b07b-e0983c96af3a · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization WinoGrande: an adversarial winograd schema challenge at scale
Reference 54
Source-reported events for the cited work
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Observation 1d04d0d8-2b3b-488a-99d5-7ca5f7ae42f5 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization HellaSwag: Can a Machine Really Finish Your Sentence?
Reference 55
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Observation e7ad51cb-3060-462f-87fc-3d24e2b28753 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Think you have Solved Question Answering? Try ARC, the AI2 Reasoning Challenge
Reference 56
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Observation f46dc064-b0cf-4035-a0c0-11d2169c7aa3 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization The lambada dataset: Word prediction requiring a broad discourse context
Reference 57
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Observation f3c35bc1-b422-4358-baea-1ae5efa5ca4d · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Working with Quantized Types — NVIDIA TensorRT Doc- umentation
Reference 58
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Observation e737f547-f15a-4453-a5aa-4dad17c7128f · outbound
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Reference 59
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Observation 30abc064-9048-4414-a3c4-459a113e0e72 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization AI Engine Direct SDK documentation
Reference 60
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Observation 9d768a9a-4f8f-4431-ba16-962eb3325d66 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization TensorRT operators documentation: DynamicQuantize not supported on DLA
Reference 61
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Observation e72a981b-b49f-4efb-80c4-7bc224be7ec9 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization fast-hadamard-transform
Reference 62
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Observation a265f935-0e7d-45f6-9090-3ef70eb62590 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization double-packed
Reference 65
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Observation 389e9d3d-8215-4636-88c7-3c78d8a8139a · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Evaluate quantization error per quantizer placement (e.g
Reference 66
Source-reported events for the cited work
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Observation 0d901eaf-5cd8-4c22-9a12-499f44daeb7a · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Based on step 1, choose which FPTs to add: (a) Attention and FFN input
Reference 67
Source-reported events for the cited work
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Observation b57a2e1a-8f17-4c26-90bc-d603c2affe6a · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Initialize transforms, e.g
Reference 68
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Observation fa9295aa-18e8-4de6-a6a1-cb6f538260c3 · outbound
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Reference 69
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Observation 33ec7427-9afd-4f78-a2fc-1c9b3d06c178 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Set the initial quantization grid, e.g
Reference 70
Source-reported events for the cited work
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Observation b4549857-6b67-4f37-9003-499b98980c9d · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization Train the FPTs and quantization grid end-to-end, with the unquantized outputs as target
Reference 71
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Observation 9a0cd5c9-7041-469c-94cf-c7e320333fb7 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization doi: 10.1145/3474381
Reference 2021
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Observation abf25eb5-8f0d-4593-965a-6a9964b135d3 · outbound
FPTQuant: Function-Preserving Transforms for LLM Quantization QuIP#: Even Better LLM Quantization with Hadamard Incoherence and Lattice Codebooks
Reference 2024
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Observation fbe7599b-8d5c-4a5e-b8b4-f20481b37886 · inbound
Leech Lattice Vector Quantization for Efficient LLM Compression FPTQuant: Function-Preserving Transforms for LLM Quantization
Reference 8
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Observation 7bd8316e-ec7e-42e8-9b9d-7b05baa4b7ba · inbound
Efficient Reasoning on the Edge FPTQuant: Function-Preserving Transforms for LLM Quantization
Reference 147
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Observation 781beda3-9b01-4397-bf23-090a6a93836f · inbound
When Quantization Is Free: An int4 KV Cache That Outruns fp16 on Apple Silicon FPTQuant: Function-Preserving Transforms for LLM Quantization
Reference 26
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Observation 70b001ba-0d1e-4e7a-8c1e-dd1c65847f4e · inbound
RotateAttention: RoPE-Aware Rotation and Range Rectification for INT4 Quantized Attention in Video Generation FPTQuant: Function-Preserving Transforms for LLM Quantization
Reference 2
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Observation f81c0d0d-901b-418c-bf2b-bff90bf5bbf0 · inbound
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Reference 2
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