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Paper Citation Record · LEDGER

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models

As of 21 August 2026, this Paper Citation Record lists 50 of 50 outbound references and 4 inbound Pith citation observations for arXiv:2603.05950.

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

pith.paper-citation-record.v1
2603.05950 v2

Coverage vector

measured 50 of 50 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-02T18:45:59.108312Z

measured 54 of 54 standing notices

One-hop event checks from named stored sources.

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

measured 4 of 4 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-08-10T04:51:16.303359Z

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: arxiv_reference, observed 2026-06-29T23:04:01.860140Z

Reference resolution

50 of 50 outbound references displayed

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  • verified fuzzy0
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  • malformed identifier0
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External citation measurements

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Outbound references

Observation cf9e99a0-5d13-45f3-ae7d-e06540dfed11 · outbound

This paper cites GPT-4 Technical Report.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models GPT-4 Technical Report

Reference 1

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Observation 89064253-6f59-4169-b841-7e12ac980067 · outbound

This paper cites Advances in neural information processing systems35, 23716– 23736 (2022).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Advances in neural information processing systems35, 23716– 23736 (2022)

Reference 2

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Observation 737e7fd8-18a0-48b8-84d0-7c6ee8a36fcb · outbound

This paper cites Qwen-VL: A Versatile Vision-Language Model for Understanding, Localization, Text Reading, and Beyond.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Qwen-VL: A Versatile Vision-Language Model for Understanding, Localization, Text Reading, and Beyond

Reference 3

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Observation db7334e7-2a43-4b80-aabc-43555b41d59c · outbound

This paper cites In: The Eleventh International Conference on Learning Representations (2023).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Eleventh International Conference on Learning Representations (2023)

Reference 4

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Observation caee3828-128e-4f67-bd2b-caaf39f1e181 · outbound

This paper cites In: The Thirteenth International Conference on Learning Representations (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Thirteenth International Conference on Learning Representations (2025)

Reference 5

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Observation 6c32310d-0dce-4d38-818e-8eea0d4b6802 · outbound

This paper cites In: Proceedings of the IEEE/CVF conference on computer vision and pat- tern recognition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF conference on computer vision and pat- tern recognition

Reference 6

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Observation 031a7641-ca60-496b-96d3-f95ba606ce62 · outbound

This paper cites Advances in neural information pro- cessing systems37, 73986–74007 (2024).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Advances in neural information pro- cessing systems37, 73986–74007 (2024)

Reference 7

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Observation 2ae9ef64-9935-49b0-bd5b-0d5a512b1aeb · outbound

This paper cites In: European Conference on Computer Vision.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: European Conference on Computer Vision

Reference 8

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Observation 6c3fd772-4b88-4d2c-8e10-a3bae9164cfe · outbound

This paper cites Gemini 2.5: Pushing the Frontier with Advanced Reasoning, Multimodality, Long Context, and Next Generation Agentic Capabilities.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Gemini 2.5: Pushing the Frontier with Advanced Reasoning, Multimodality, Long Context, and Next Generation Agentic Capabilities

Reference 9

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Observation 2a2f8f2f-9d2f-4e8e-8ec9-c671752dd83f · outbound

This paper cites Advances in neural information processing systems36, 49250–49267 (2023).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Advances in neural information processing systems36, 49250–49267 (2023)

Reference 10

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Observation 136ca392-b46a-455f-a8e1-1849a7b89ab5 · outbound

This paper cites In: Proceedings of the 60th Annual Meeting ofthe Associationfor Computational Linguistics (Volume 1: Long Papers).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the 60th Annual Meeting ofthe Associationfor Computational Linguistics (Volume 1: Long Papers)

Reference 11

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Observation 06a622f6-4bee-4ef6-b20e-78dfdb4966d4 · outbound

This paper cites In: The Thirty-ninth Annual Conference on Neural Information Processing Systems Datasets and Benchmarks Track (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Thirty-ninth Annual Conference on Neural Information Processing Systems Datasets and Benchmarks Track (2025)

Reference 12

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Observation 3b13d415-2767-4996-a661-293393223481 · outbound

This paper cites SIAM review53(2), 217–288 (2011).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models SIAM review53(2), 217–288 (2011)

Reference 13

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Observation e51d978a-1939-449c-aeb7-8a6aa642e034 · outbound

This paper cites He et al.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models He et al

Reference 14

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Observation 336e82c1-1a67-4db8-8038-473a1488407b · outbound

This paper cites In: Proceedings of the IEEE/CVF confer- ence on computer vision and pattern recognition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF confer- ence on computer vision and pattern recognition

Reference 15

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Observation 8718a084-e66a-4fae-9638-2b895e403e2d · outbound

This paper cites In: Pro- ceedings of the IEEE/CVF International Conference on Computer Vision (ICCV).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Pro- ceedings of the IEEE/CVF International Conference on Computer Vision (ICCV)

Reference 16

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Observation 8b64c871-dbff-4c4b-baf2-5860863ef341 · outbound

This paper cites In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition

Reference 17

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Observation 99c97fa7-1ccb-4c44-9798-330010bd7f50 · outbound

This paper cites In: International conference on machine learning.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: International conference on machine learning

Reference 18

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Observation ec0d5457-7463-4ed4-b9ff-039f5e55a94d · outbound

This paper cites In: The Thirteenth International Conference on Learning Representations (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Thirteenth International Conference on Learning Representations (2025)

Reference 19

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Observation 45d059c6-e33e-440d-9bb5-37218d97ca41 · outbound

This paper cites In: Proceedings of the 2023 conference on empirical methods in natural language processing.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the 2023 conference on empirical methods in natural language processing

Reference 20

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Observation 99926049-bdbb-4d59-aa20-e4231d3562af · outbound

This paper cites A Survey of State of the Art Large Vision Language Models: Alignment, Benchmark, Evaluations and Challenges.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models A Survey of State of the Art Large Vision Language Models: Alignment, Benchmark, Evaluations and Challenges

Reference 21

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Observation 126a4ea0-09a0-4e8d-a300-953bbde51131 · outbound

This paper cites In: Proceedings of the AAAI Confer- ence on Artificial Intelligence.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the AAAI Confer- ence on Artificial Intelligence

Reference 22

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Observation 96448390-317f-43c7-a479-c401a99029a2 · outbound

This paper cites In: The Thirteenth International Con- ference on Learning Representations (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Thirteenth International Con- ference on Learning Representations (2025)

Reference 23

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Observation 33b45742-4ede-4592-93d4-602479cd3747 · outbound

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Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Unresolved cited work

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Observation 764ee4e0-db35-4c93-858d-694c4755edbb · outbound

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Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Unresolved cited work

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Observation caeae5fe-969f-4e33-9f97-0f5fed85cf10 · outbound

This paper cites In: Thirty-seventh Conference on Neural Information Processing Systems (2023).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Thirty-seventh Conference on Neural Information Processing Systems (2023)

Reference 26

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Observation f5393465-b11c-4fd5-a04e-17a705b65dd6 · outbound

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Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Unresolved cited work

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Observation 42c6d4bb-334f-4f3d-ac0a-addae59593f2 · outbound

This paper cites Advances in neural information processing systems35, 2507– 2521 (2022).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Advances in neural information processing systems35, 2507– 2521 (2022)

Reference 28

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Observation 5f5d785c-d064-4d99-b75b-97dfe7408c38 · outbound

This paper cites In: The Thirty-ninth Annual Conference on Neural Information Processing Sys- tems (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Thirty-ninth Annual Conference on Neural Information Processing Sys- tems (2025)

Reference 29

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Observation 9ae72c76-b8b4-4fad-92c2-3736c48283d6 · outbound

This paper cites Foundations and Trends®in Machine Learning3(2), 123–224 (2011).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Foundations and Trends®in Machine Learning3(2), 123–224 (2011)

Reference 30

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Observation bcbba7f6-d38c-4206-9506-7878dcbec738 · outbound

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Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Unresolved cited work

Reference 31

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Observation 34c46798-9cb7-4595-8fcf-cb9212b1eb03 · outbound

This paper cites In: Proceedings of the IEEE/CVF International Conference on Computer Vision.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF International Conference on Computer Vision

Reference 32

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Observation 43b96c3c-f85b-4550-a562-b5b5012ffd90 · outbound

This paper cites In: Proceedings of the IEEE/CVF conference on computer vision and pattern recognition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF conference on computer vision and pattern recognition

Reference 33

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Observation 8f1d2b5b-ee98-4582-9f8a-f67c09ba1041 · outbound

This paper cites Gemini 1.5: Unlocking multimodal understanding across millions of tokens of context.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Gemini 1.5: Unlocking multimodal understanding across millions of tokens of context

Reference 34

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Observation b8652bfd-e4e4-41c0-bab1-c46eac360714 · outbound

This paper cites Advances in neural information pro- cessing systems30(2017).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Advances in neural information pro- cessing systems30(2017)

Reference 35

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Observation c0c7c5ee-86de-481d-b890-4434ea4d2150 · outbound

This paper cites Qwen2-VL: Enhancing Vision-Language Model's Perception of the World at Any Resolution.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Qwen2-VL: Enhancing Vision-Language Model's Perception of the World at Any Resolution

Reference 36

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Observation 3c3b2a4e-1e98-4ac7-b2ba-d9e8d0b2e34e · outbound

This paper cites In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition

Reference 37

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Observation a567a97f-eb9a-4251-a948-070d717a5329 · outbound

This paper cites In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition

Reference 38

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Observation 2916ddb6-7798-48b6-8fc4-42f167dd2d2e · outbound

This paper cites In: The Thirty-ninth Annual Conference on Neural Information Processing Systems (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Thirty-ninth Annual Conference on Neural Information Processing Systems (2025)

Reference 39

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source=pdf_text observed=2026-08-02T18:45:58.195952Z digest=sha256:7be9c63b7a6332fbb36d39e1fec50da4ad5db2cfd75280efadeb50fcaf2b7a6b

Observation 00ac6b63-cc89-47ed-9d63-30208ab8cc0c · outbound

This paper cites In: Proceed- ings of the IEEE/CVF International Conference on Computer Vision.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceed- ings of the IEEE/CVF International Conference on Computer Vision

Reference 40

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source=pdf_text observed=2026-08-02T18:45:58.278397Z digest=sha256:713177bffcefb91593822e74f7d5659cc4d252308e828ad4ae0ed34c86ac24c4

Observation 785be0e7-3d67-44a6-bc95-ad59c28eb3d8 · outbound

This paper cites Authorea Preprints (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models Authorea Preprints (2025)

Reference 41

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Observation ce9ca7c6-d7d2-47a2-9f35-d5c914f34404 · outbound

This paper cites In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition

Reference 42

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source=pdf_text observed=2026-08-02T18:45:58.421780Z digest=sha256:6639757d2fdbd145c7c92e3c3ac53142888ac322ea6eaf8188c381aed5a6a68f

Observation 8ce2e5be-f5fa-4dcc-8636-ccbfbf26a4be · outbound

This paper cites In: Proceedings of the Computer Vision and Pattern Recognition Conference.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the Computer Vision and Pattern Recognition Conference

Reference 43

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Observation 5c81e0f9-57de-4dcb-a7de-b32758eb4e2b · outbound

This paper cites MM-Vet: Evaluating Large Multimodal Models for Integrated Capabilities.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models MM-Vet: Evaluating Large Multimodal Models for Integrated Capabilities

Reference 44

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source=pdf_text observed=2026-08-02T18:45:58.561475Z digest=sha256:e3c2db9d905a535caf7148b9062f22bb98fc55b022118fda30e16cd14770d7a1

Observation a9e0d786-198a-4bbc-abe8-2d6aa773c3d4 · outbound

This paper cites IEEE transactions on pattern analysis and machine intelligence46(8), 5625–5644 (2024).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models IEEE transactions on pattern analysis and machine intelligence46(8), 5625–5644 (2024)

Reference 45

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source=pdf_text observed=2026-08-02T18:45:58.625043Z digest=sha256:691eab16a81229475d174a648d51cbaad3233bcea4a44d92f7c42681e4f15df7

Observation a0e51aab-85da-467e-848f-b9d5f189b9ce · outbound

This paper cites InternLM-XComposer: A Vision-Language Large Model for Advanced Text-image Comprehension and Composition.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models InternLM-XComposer: A Vision-Language Large Model for Advanced Text-image Comprehension and Composition

Reference 46

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source=pdf_text observed=2026-08-02T18:45:58.668589Z digest=sha256:ddecadc77c33004a1cd804837f0ae0d44772267a77582bdb39b5dca5f15661f9

Observation 54f9a890-76cb-468c-beb8-00dc0b132517 · outbound

This paper cites In: Proceedings of the IEEE/CVF International Conference on Computer Vision.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Proceedings of the IEEE/CVF International Conference on Computer Vision

Reference 47

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source=pdf_text observed=2026-08-02T18:45:58.781905Z digest=sha256:95c45252d1f276564114a8215ab703296a1c5428e75008003907a32acddcdd61

Observation 6c8ab119-90a1-4d02-a44d-477cd2a0bf88 · outbound

This paper cites In: Forty-second International Conference on Machine Learning (2025).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: Forty-second International Conference on Machine Learning (2025)

Reference 48

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source=pdf_text observed=2026-08-02T18:45:58.887860Z digest=sha256:cc26e88e8b4892f539997f38dd9ab1f37c7daa3c7f8290de1180b7b4409f05c1

Observation 7a92f221-f0a5-430b-85ea-16e1bdb66649 · outbound

This paper cites In: The Twelfth International Conference on Learning Representations (2024).

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models In: The Twelfth International Conference on Learning Representations (2024)

Reference 49

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source=pdf_text observed=2026-08-02T18:45:59.004144Z digest=sha256:e8febeca47094689a2ee9b9e507f6df06f540fe2cceb13f8547fc6616d83df5a

Observation 479c6eea-1448-4b62-aa80-487d2ca1d49c · outbound

This paper cites highlighted tokens.

Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models highlighted tokens

Reference 50

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source=pdf_text observed=2026-08-02T18:45:59.108312Z digest=sha256:f083854d9893a8950e19e71961b64cebd1350cb69af9bd19e1e07bf1f7780103

Pith citing papers

Observation 1e526df3-20e0-4f1d-83a8-fabdb1c779ec · inbound

FreqCache: Accelerating Embodied VLN Models with Adaptive Frequency-Guided Token Caching cites this paper.

FreqCache: Accelerating Embodied VLN Models with Adaptive Frequency-Guided Token Caching Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models

Reference 10

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arxiv_id, observed 2026-07-31T02:06:21.532085Z

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source=pdf_text observed=2026-05-08T03:10:29.477937Z digest=sha256:4f1330e79f59cc6a5ce84fcb9d369705ad0bd31091398e07e199ed5cdb8207eb

Observation c8d63ad2-fb6b-4485-9345-34bb3353ab34 · inbound

Toward Native Multimodal Modeling: A Roadmap cites this paper.

Toward Native Multimodal Modeling: A Roadmap Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models

Reference 260

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arxiv_id, observed 2026-07-31T02:06:21.532085Z

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source=pdf_text observed=2026-06-29T22:58:38.610609Z digest=sha256:6140dc5342d9d838c1e64e015e1c3487b14cd684405f60066b7c20fec7836e3b

Observation 78282162-7d68-4e52-8bd3-e48a6164f750 · inbound

PARCEL: Pool-Anchored Resampling with Conditioned Elastic Queries for Efficient Vision-Language Understanding cites this paper.

PARCEL: Pool-Anchored Resampling with Conditioned Elastic Queries for Efficient Vision-Language Understanding Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models

Reference 44

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arxiv_id, observed 2026-07-31T02:06:21.532085Z

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No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

source=pdf_text observed=2026-06-29T08:13:42.526597Z digest=sha256:c6c845ac90ec36036d932d892a76c58cb079c503d68aa3a32cc30f454341bdf1

Observation 92c823a5-1470-42e2-8e75-c50bdc24a828 · inbound

A Picture is Worth a Thousand Tokens: How Vision Language Models Cut AI Energy Costs While Improving Accuracy cites this paper.

A Picture is Worth a Thousand Tokens: How Vision Language Models Cut AI Energy Costs While Improving Accuracy Energy-Driven Adaptive Visual Token Pruning for Efficient Vision-Language Models

Reference 13

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source=pdf_text observed=2026-08-10T04:51:16.303359Z digest=sha256:a7a892daa40944c22c6b605c4f1e0ec884c9f63f23c8c1f24a5661504d35119c