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Paper Citation Record · LEDGER

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective

As of 12 August 2026, this Paper Citation Record lists 100 of 119 outbound references and 0 inbound Pith citation observations for arXiv:2607.03784.

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

pith.paper-citation-record.v1
2607.03784 v1

Coverage vector

measured 100 of 119 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-07-11T23:58:47.097757Z

measured 100 of 100 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-12T06:34:41.77262+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

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

Source: cited_works

Reference resolution

100 of 119 outbound references displayed

  • verified exact1
  • verified fuzzy0
  • unresolved98
  • parse uncertain1
  • malformed identifier0
  • metadata mismatch0

External citation measurements

No source-named external measurement is stored.

Outbound references

Observation 0ae8267c-97c4-4c47-8491-e93348d3b5a1 · outbound

This paper cites Token merging: Your ViT but faster.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Token merging: Your ViT but faster

Reference 1

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:648e832645dcf618abc592e3f031f32cd96d998cb75770cd5d8d7661c5017fe6

Observation 07c0d54a-26c7-4566-bbdf-aa9d7a3503ff · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 2

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:bbb89cb3d6756707fe17564112cd24a10a93e222d73d920a23f42e0e8f012634

Observation b0bd2002-fc72-4a33-89ed-d9325a67835f · outbound

This paper cites Transformer interpretability beyond attention visualization.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Transformer interpretability beyond attention visualization

Reference 3

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:a972b5f99711909b83c6039cd73c86365d1b30b2b61d549192629dfe33420868

Observation 847015b1-ef50-4183-a865-1ba1a5f393c4 · outbound

This paper cites R., Fan, Q., and Panda, R.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective R., Fan, Q., and Panda, R

Reference 4

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:ac2937934f55d4510e74db0025740856e9447c74f7be67721a4a2ffee1fc05ce

Observation d7a0b12c-eee4-4d7d-a328-a6a5d86ad0a8 · outbound

This paper cites Diffrate: Differentiable compression rate for efficient vision transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Diffrate: Differentiable compression rate for efficient vision transformers

Reference 5

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:a3ebcce1b95b6b065669aa2806dbc8b1c8a972e7403df7fc5994cb0646c367b8

Observation 4352ef5c-6c02-4dc3-879c-4ac3f437794c · outbound

This paper cites Chasing sparsity in vision transformers: An end-to-end exploration, 2021 b.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Chasing sparsity in vision transformers: An end-to-end exploration, 2021 b

Reference 6

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:d984a0a934a22e6cff83882803409af9028eb7a40ccd5b06d88c43803989c152

Observation 30291fc2-36b1-4d12-8efb-8fa472e706b7 · outbound

This paper cites SparseViT : Revisiting activation sparsity for efficient high-resolution vision transformer.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective SparseViT : Revisiting activation sparsity for efficient high-resolution vision transformer

Reference 7

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:ecd11b82583348627dd2f5865538396e54106b292d866bb3548eb92c5960569d

Observation 1f8c303b-fe1f-47d0-aaec-51855a7a42bd · outbound

This paper cites The stone-weierstrass theorem.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective The stone-weierstrass theorem

Reference 8

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:47b7d0dd6630489d73f05bc4e3b2f8c100d0fc17195ad22fb2050327b50a818a

Observation e1b042ed-7444-4ad1-b546-4ee3880fe682 · outbound

This paper cites Imagenet: A large-scale hierarchical image database.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Imagenet: A large-scale hierarchical image database

Reference 9

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e396642b3a4c8eb55c9b32399b41e8e290ad7a030e9f51fbf3dc0375111f5772

Observation 051bbb16-b76b-439f-a06b-8d90676003d6 · outbound

This paper cites An image is worth 16x16 words: Transformers for image recognition at scale.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective An image is worth 16x16 words: Transformers for image recognition at scale

Reference 10

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:077c7157459bd12c1f4f69cbe911cee54337c0f9120f93ce5d5c51b1f29d6bcf

Observation 64fe9407-2350-41b5-ac2b-58d81f01bb62 · outbound

This paper cites and Chong, E.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective and Chong, E

Reference 14

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:5eda59139f67d70c763b38fff18f1832a0e2caa16da8ef0f5817d63384d54066

Observation cfd5e04b-1ea7-4b0c-b8f1-3d173601849f · outbound

This paper cites Transformer in transformer.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Transformer in transformer

Reference 16

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:11bbcef172b887349dec91212c18a62a130bfcdaf26258f0b6071c3b734d59ff

Observation 1088c285-c0f6-4a3c-a30e-36efb76bfa22 · outbound

This paper cites and Xiao, L.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective and Xiao, L

Reference 18

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:f1bacf4169aac71ca2b528a4efd9255a5b903fc3d5e7a53e27305e892383d433

Observation 25f617eb-4cb6-4cd8-87f7-da9d1dff8696 · outbound

This paper cites Learning multiple layers of features from tiny images.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Learning multiple layers of features from tiny images

Reference 20

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Observation 63c2d926-17f3-4af8-a48f-cdb5ec8fb247 · outbound

This paper cites EfficientFormer : Vision transformers at mobilenet speed.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective EfficientFormer : Vision transformers at mobilenet speed

Reference 21

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:c95711d631be028da4d5674f12812720a0107b5ee91c1a291d8d572b06ae7181

Observation 4df548e4-465b-4e2d-ae53-08007170b7ce · outbound

This paper cites Not All Patches are What You Need: Expediting Vision Transformers via Token Reorganizations.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Not All Patches are What You Need: Expediting Vision Transformers via Token Reorganizations

Reference 22

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Observation 92dd261d-1a61-4036-99c4-b7b0d07e61ac · outbound

This paper cites Mlp can be a good transformer learner.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Mlp can be a good transformer learner

Reference 23

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:d23753dc4d75f8c5a1cd2116a399d06383f0541ce44792fba616b2cd5418a683

Observation 6a22cba9-7f99-4a0d-ae6a-f16363f321a0 · outbound

This paper cites Microsoft COCO: Common Objects in Context.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Microsoft COCO: Common Objects in Context

Reference 24

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:7539f18eaeda2d7c8381798c802069fb664964de45be20189f10ab07cfc3e5e3

Observation a6c27d2a-1c33-406a-926d-3c424617fe78 · outbound

This paper cites TB-STC : Transposable block-wise N:M structured sparse tensor core.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective TB-STC : Transposable block-wise N:M structured sparse tensor core

Reference 25

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:3a31e8aa19df97812f01f628630f8c1b23258973fa598f672e1ecc6f088a47b6

Observation f14bdd58-cf48-47bd-a1f9-f43ea63ad448 · outbound

This paper cites Swin transformer: Hierarchical vision transformer using shifted windows.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Swin transformer: Hierarchical vision transformer using shifted windows

Reference 26

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:0bea0998cdef393f39cf454e9c5d0b7249b59e370afa47ff550f9cf010c19fd9

Observation b44af04e-b7e0-437e-bf9e-31bfc013a158 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 28

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:ecf49402d0f4ff8f0939d5bca964da4b3d39c0be54215858b75cb75822a0dab1

Observation b8062bcb-5604-43c5-a09a-d12e9558a6c8 · outbound

This paper cites ShortGPT : Layers in large language models are more redundant than you expect.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective ShortGPT : Layers in large language models are more redundant than you expect

Reference 29

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:97abb40b1eb911eb5f69df932bb1009fe22d0fe5183ce27716034fcbbd634bb1

Observation e2aa63fb-c74f-44b7-a743-814b14f96642 · outbound

This paper cites Speedup deep learning models on gpu by taking advantage of efficient unstructured pruning and bit-width reduction.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Speedup deep learning models on gpu by taking advantage of efficient unstructured pruning and bit-width reduction

Reference 30

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:2e1ba53911e24691bd5b4315d35d7896af5ac102413a2f0ee6cedb7d90acc234

Observation 01806e45-8eeb-4007-a094-11ffbbf1ff05 · outbound

This paper cites DynamicViT : Efficient vision transformers with dynamic token sparsification.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective DynamicViT : Efficient vision transformers with dynamic token sparsification

Reference 31

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:bac74c03ac2fadac64f858b2e117b1795802af7a7d34797308a7d6243f31b243

Observation ac72c40c-311c-4ee3-a5ea-85398b211105 · outbound

This paper cites A Simple and Effective Pruning Approach for Large Language Models.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective A Simple and Effective Pruning Approach for Large Language Models

Reference 32

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:6d4c5017a75d6e20b878a1404d298ba40a8406d9b9bd449afe73fb08b289ecbd

Observation a43519db-ed42-408d-84f5-0a1ec4790d20 · outbound

This paper cites Going deeper with image transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Going deeper with image transformers

Reference 33

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:dbcac474d99ada3cab06812d8e5ebb25824a3421c9f0d75442032b458396665c

Observation 7b1e520f-54a7-4e0d-940e-bdf30fd3ed01 · outbound

This paper cites Regression analysis.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Regression analysis

Reference 34

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Observation 04b86278-4084-4b15-a3aa-c7d48d94f54d · outbound

This paper cites PVT v2 : Improved baselines with pyramid vision transformer.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective PVT v2 : Improved baselines with pyramid vision transformer

Reference 35

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:89576aeea1c419f7c15366cbe99e55a89d49f56051600a48914d0b552e19632a

Observation df03824a-4076-42da-931b-6deff9e67332 · outbound

This paper cites Joint token pruning and squeezing towards more aggressive compression of vision transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Joint token pruning and squeezing towards more aggressive compression of vision transformers

Reference 36

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:728692bef6e1d64a41f14efbf1782dedbf2d345739ebdaa060022da63b66cfc1

Observation d5faabc3-1126-4dfe-a9cd-30c2f8d80bbd · outbound

This paper cites GTP-ViT : Efficient vision transformers via graph-based token propagation.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective GTP-ViT : Efficient vision transformers via graph-based token propagation

Reference 39

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Observation 9fbebde7-5d71-4a5f-8261-18cc0f7bce9e · outbound

This paper cites Evo-ViT : Slow-fast token evolution for dynamic vision transformer.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Evo-ViT : Slow-fast token evolution for dynamic vision transformer

Reference 40

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Observation db088654-d4a2-423a-8386-1a05ea28bea3 · outbound

This paper cites Global vision transformer pruning with hessian-aware saliency.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Global vision transformer pruning with hessian-aware saliency

Reference 41

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:231dbf0dd79590c8abfcf4fdfd603d213b975a4e76ba250bc4826392096ee0ee

Observation 1b04340b-13e1-490d-9e88-c100b4b66407 · outbound

This paper cites Width & depth pruning for vision transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Width & depth pruning for vision transformers

Reference 42

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doi, observed 2026-07-12T00:08:22.178374Z

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No event found in the named queried sources as of 2026-08-12T06:34:41.77262+00:00.

source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fb58e211521038de4e9e98a7ef50a96ac8aaccdeab5660fb646a5389cc53b7f2

Observation a5b07959-e09d-47ee-ae20-99210bd4a2bb · outbound

This paper cites Unified visual transformer compression.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unified visual transformer compression

Reference 43

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:b712ce3adf83db4d2935b319054db7920d65adfe5939209c730cc209e73871fd

Observation 0d51d5fd-6f5c-4271-b685-8095b204c372 · outbound

This paper cites SAViT : Structure-aware vision transformer pruning via collaborative optimization.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective SAViT : Structure-aware vision transformer pruning via collaborative optimization

Reference 45

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e402f32b03c64299e73b040a6edc2048fc728a5c0e309fac34cc681b886f04bf

Observation 1ba1fd19-0013-4581-af90-771624c5cb29 · outbound

This paper cites Scene parsing through ade20k dataset.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Scene parsing through ade20k dataset

Reference 46

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:d5454b9def27b4bd27968c7f59a9607012f4195a294beaa20ae1f10967a42aec

Observation 40d320c8-9551-4519-82da-f040833a76f2 · outbound

This paper cites Vision Transformer Pruning.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Vision Transformer Pruning

Reference 47

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Observation 23eb139a-1fb7-4fc1-87ad-df8731685b3b · outbound

This paper cites IEEE Transactions on Pattern Analysis and Machine Intelligence , volume=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective IEEE Transactions on Pattern Analysis and Machine Intelligence , volume=

Reference 48

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:1ea1598a699125528ea0518d4258f3db0ce6d4204e96ef7d827801456fc6a6cd

Observation e7b5e6d4-7cca-4c6c-8c3b-780a2ad7839f · outbound

This paper cites Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition Workshops , pages=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition Workshops , pages=

Reference 49

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:8096413aeab6f7484aae57f465ef38e620aaa9bd22b64022c09645a32cb33cbc

Observation 3b6b2445-471d-4ec0-b307-2f0e8d18600c · outbound

This paper cites LayerMerge: Neural Network Depth Compression through Layer Pruning and Merging.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective LayerMerge: Neural Network Depth Compression through Layer Pruning and Merging

Reference 50

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:7a6a981ea87cd1a727add118de7421e762d5fbf0ae88ffa1a85f529f1df8de5b

Observation 55236f18-2388-4950-a1de-b14b59c16621 · outbound

This paper cites International Conference on Machine Learning , pages=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective International Conference on Machine Learning , pages=

Reference 51

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:497759860831e9f4ba813aa591b3256a300932130fe81d00a88be10dc9661df1

Observation 511ae96d-cd05-4efc-9cca-ffbc0fc106a8 · outbound

This paper cites Layer Folding: Neural Network Depth Reduction using Activation Linearization.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Layer Folding: Neural Network Depth Reduction using Activation Linearization

Reference 52

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:1f533bcf105522e7a25605bf1514389866ecc4a43510cb41f88b85e2d6a89c16

Observation 08e5474b-b12f-4574-98fd-26dea78f23a5 · outbound

This paper cites Langley , title=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Langley , title=

Reference 53

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:8ebbd20c485484c878cd22702f993aa2a1af71de588a9029602679a36f863cff

Observation 5cbecbf0-1a82-4a9c-9cfd-01dbbdf25286 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 54

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:f920df673f2c5c3853eef9ab25737893155c6c3372a665786eede69e930fce23

Observation 6af8121c-4791-4124-b587-452a658b2070 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 55

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:bda823e65f429125c35e8c1970c6e725dcfed807ed40beaef14b78b2a081c60c

Observation 57728754-ff6b-4ee0-8379-3e497b009c5b · outbound

This paper cites I , publisher=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective I , publisher=

Reference 56

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:0b6d66bc475da93708139e2c4b83645666a637ebf3b21c98a73ec2437ae55802

Observation d45feb57-6bcd-497e-994d-5059ecf87634 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 57

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:7edaa1a6823645e65fbde013520bd314e6223908d3d60606ccc10856ec9fe7c1

Observation 026c97ce-78d5-4527-993c-5fa3bba66d8d · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 58

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:0e52a2c57ce5f7aa6402ce9caa25419e3056fc29cc682ce0d8d62eb47dd86e53

Observation c6129384-6388-46c1-9ffa-d845309f3a62 · outbound

This paper cites Newell and P.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Newell and P

Reference 59

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:bcd46bbdb5681a273eea97b9b1357680d497377a4bd78999d48ea97a4710b3f2

Observation b2e160fc-5da8-454f-bf0b-35bee85c1ab0 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 60

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:3fe9c859e4de0a748c2bbb929b782840e5f75d2f52bbd8531320f50084e0af90

Observation 5b84ea92-2a9d-4875-8984-b080b87b9d8e · outbound

This paper cites and Kaiser,.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective and Kaiser,

Reference 61

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e9088f2fff3c3cf73fd8b65da82a44c9b69134fcc063e8bc6225ca21b6df2d5f

Observation 885314ea-79cc-447b-896e-a46e54c0cb37 · outbound

This paper cites International Conference on Learning Representations , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective International Conference on Learning Representations , year=

Reference 62

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fda27a0214e5ee61e9fcc953de94dd25836b6ed09cc235977920e3b500ad3e8a

Observation 5addb896-c098-444a-a6a8-db7ca76139c3 · outbound

This paper cites International Conference on Machine Learning , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective International Conference on Machine Learning , year=

Reference 63

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:24ce2077e69b431deeea713c812eae1d2505c9049db98efed1b89b58abdee374

Observation 463ead81-458b-4ec9-88a6-18e6b547f59e · outbound

This paper cites Pyramid Vision Transformer: A Versatile Backbone for Dense Prediction Without Convolutions , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Pyramid Vision Transformer: A Versatile Backbone for Dense Prediction Without Convolutions , year=

Reference 64

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:75a0622473db584dfc08c4cb5c7462e7c7a0864ba523cc7217ecaf111507dfc6

Observation c0ec6fce-419b-46a8-bb87-e6a560890687 · outbound

This paper cites Proceedings of the IEEE/CVF International Conference on Computer Vision , pages=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the IEEE/CVF International Conference on Computer Vision , pages=

Reference 65

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fbc9eaa207869030a95243581566d95f8ce1c5ac768acfc45bcd546488255939

Observation 6dfce47d-8805-492e-b407-0cba9d26e496 · outbound

This paper cites MViTv2: Improved Multiscale Vision Transformers for Classification and Detection.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective MViTv2: Improved Multiscale Vision Transformers for Classification and Detection

Reference 66

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:28468f2798b03466d079a32426f314a27d2c6355bc2e5f5637b085cd92552b14

Observation bf0059e4-f889-4257-bd8b-5326b2da552a · outbound

This paper cites and Tan, Mingxing , booktitle=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective and Tan, Mingxing , booktitle=

Reference 67

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fa4976d900a599165a9abd769a0cf8e2edeeb509ce02a30bb855834935532931

Observation d2d03b30-ccd9-4555-a1cd-9f843b50a1c3 · outbound

This paper cites 2021 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2021 , eprint=

Reference 68

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:f3cbccfd3e8334f0bc27b554e81a8b4f73486c3dec5f2550a1321ed6b05d3799

Observation a371dac9-2e00-4584-ae8d-0b06915b45cc · outbound

This paper cites 2022 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2022 , eprint=

Reference 69

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:828696e2d6d9057ae2c231df46c307ea70a2f61e099d38dfcc85c632cd4e65c3

Observation f6870304-4209-4791-abb8-e0e53b3d8fbe · outbound

This paper cites CSWin Transformer: A General Vision Transformer Backbone with Cross-Shaped Windows.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective CSWin Transformer: A General Vision Transformer Backbone with Cross-Shaped Windows

Reference 70

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:35fd45aed22a426739a70106d9b8a1e1ffde62f832f48c733079ddff888cc26d

Observation 8bb674fe-7cc5-441b-bef4-8809a149bbc2 · outbound

This paper cites DaViT: Dual Attention Vision Transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective DaViT: Dual Attention Vision Transformers

Reference 71

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:f7362ac7a24c991517953fa3cb86d3fadeec83f9b05079b9ee0ec8e6b7cd0791

Observation f5109bef-e6dc-4659-919b-37868cdb4df2 · outbound

This paper cites ReSTR: Convolution-free Referring Image Segmentation Using Transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective ReSTR: Convolution-free Referring Image Segmentation Using Transformers

Reference 72

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:1cbb3223daa3e9ce5b187f4a8ca832ddf6f18e9e2400e1388052ae275b7377df

Observation f5089e8f-5250-468f-9f5b-f6a018614df1 · outbound

This paper cites 2022 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2022 , eprint=

Reference 73

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:5626eddbd7ea253bfc9f64a8f6c35558deeec1e3f772613d809ad4411a781e23

Observation f816eee1-82aa-4ba3-ab17-c46d26baf3c9 · outbound

This paper cites , title=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective , title=

Reference 74

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:3aba87086accced180803894782728a51aba8847faa0299fab058ef4904d1cec

Observation a82b29bc-7a1a-4fce-9860-6a3cd841f8c2 · outbound

This paper cites 2021 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2021 , eprint=

Reference 75

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:0d9dd5f7ef0f291a3ef4f34df07507f523eaec6e40c138c25fbc209546950a5e

Observation ad94c89f-ee55-4235-b5a2-306175190648 · outbound

This paper cites International Conference on Learning Representations , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective International Conference on Learning Representations , year=

Reference 76

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fb2790bc03c350ad5aec49829abdad6a0852789baf32da258e750a66a81555cd

Observation 5af6fde3-221a-4521-9f7d-08f8f8ce68b3 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 77

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:1594d93d75d6193a104e5e4adcb45d7714c9df846afe26e12d4b11ceb2828482

Observation 0aaf70c9-2b41-41ee-80c6-48fa01ce6e48 · outbound

This paper cites MLP Can Be a Good Transformer Learner , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective MLP Can Be a Good Transformer Learner , year=

Reference 78

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:d283504c5291820ab51ea5819dfc6de95d7ae975368bd4e328a866bf3bf1bfe4

Observation ca95a55c-e266-4baf-ab0b-31192ebe7291 · outbound

This paper cites DepthShrinker: A New Compression Paradigm Towards Boosting Real-Hardware Efficiency of Compact Neural Networks.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective DepthShrinker: A New Compression Paradigm Towards Boosting Real-Hardware Efficiency of Compact Neural Networks

Reference 79

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:267bde5f05524bcea93bbefe1f668d3d435ff723e501b6aaadd64f2e96bd3f18

Observation 0d9f6259-4b42-4495-ac5f-7b0a07be2f88 · outbound

This paper cites 2021 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2021 , eprint=

Reference 80

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:f4add59c09ef78996c27087412ff06a779f1b2c80de6dadbdc2ca361e21e406b

Observation b7223d71-b82a-4697-ad7c-02e37c04eff3 · outbound

This paper cites SparseGPT: Massive Language Models Can Be Accurately Pruned in One-Shot.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective SparseGPT: Massive Language Models Can Be Accurately Pruned in One-Shot

Reference 81

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e4f068a222514fe04b2f7663b0678d8533ca48e556fa7ddd532119e1dedda712

Observation 736184c1-5c12-49a6-893e-bad7cbc93d21 · outbound

This paper cites 2024 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2024 , eprint=

Reference 82

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:20cf8023e7c90d1323f9f9f13425f516a6cf3dc3abe0396436b07388ecf633d1

Observation 8ae2733e-b564-4906-a101-b519c7b9b538 · outbound

This paper cites STEP: Learning N:M Structured Sparsity Masks from Scratch with Precondition.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective STEP: Learning N:M Structured Sparsity Masks from Scratch with Precondition

Reference 83

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:aff0d4f6972710725000c1d3f446e44e3c584662599b7b7a1e549e4579a22b6d

Observation 13c9a042-2ecf-44db-baa1-44ba71f226c9 · outbound

This paper cites LPViT: Low-Power Semi-structured Pruning for Vision Transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective LPViT: Low-Power Semi-structured Pruning for Vision Transformers

Reference 84

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:56a1e9bba1fa9a28e2c2599ae50fa97bd03ec1613dbaf722a3ebddd9964891db

Observation a9432fbc-1918-4d28-9e57-20a9e1c6e2e0 · outbound

This paper cites Beyond 2:4: exploring V:N:M sparsity for efficient transformer inference on GPUs.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Beyond 2:4: exploring V:N:M sparsity for efficient transformer inference on GPUs

Reference 85

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:d331435cf96dfc0bb5f26444ea5eaaaa61f9042148baddba7dfe32973dbf1875

Observation 844dc753-87d8-4b35-a01a-38b8ee0b0294 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 86

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:0bdfb65c9995dcd648b8474a1a27277908cd5781492ff991c2df2efa66ae9900

Observation 9df25f5a-faaa-4434-95a9-7fbf25259ca9 · outbound

This paper cites 2022 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2022 , eprint=

Reference 87

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:66562be83a826d4cbca3ca751f7153cfa658969233ca8e4c9541a57e7144c652

Observation 4abdf15c-d573-4ff4-8c1c-7c53de180eb6 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 88

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:0fa75bf0ebd0a9ef042a2841d158b64bc6d0a3223d25f51eada05139f8939e65

Observation 64ee8947-f5e7-4c77-a357-9f8e448481c2 · outbound

This paper cites Proceedings of the 36th International Conference on Machine Learning , series=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the 36th International Conference on Machine Learning , series=

Reference 89

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fda9a6790c501df4f69bcf996f55d4b4e03d0ecf79c5ceb5bca0d0fd31002039

Observation 7d9f687b-00ba-4f6d-9f1a-bdf305cda8e5 · outbound

This paper cites 2019 , eprint=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2019 , eprint=

Reference 90

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e2ece233f7ffea69117da88820541048a0c66d609b8390c5e4026fc05d603c0c

Observation b0965a8e-140d-46eb-920e-5a864285f65a · outbound

This paper cites Proceedings of the 36th International Conference on Neural Information Processing Systems , articleno=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the 36th International Conference on Neural Information Processing Systems , articleno=

Reference 91

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:298f889f89cf6e8e5902063f11f6404ea28e632bb8b318b37bd10a4381a7cb9d

Observation b49786ec-a482-4110-8ecf-5d75f205b201 · outbound

This paper cites ImageNet: A Large-Scale Hierarchical Image Database , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective ImageNet: A Large-Scale Hierarchical Image Database , year=

Reference 92

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:0538a0e36ca26957d0e9ca51593c31b0937c5236d370651b8e223173da7fc437

Observation 14523b54-f891-4901-be61-c72039ce40dc · outbound

This paper cites Scene Parsing Through ADE20K Dataset , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Scene Parsing Through ADE20K Dataset , year=

Reference 93

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:cd59e7d9e96c67d411ba362ff62d47490baefbba70d793bf7f25e49d96fb0e3e

Observation 8afe9647-2096-4543-9b32-32dfe02af5ef · outbound

This paper cites TinyMIM: An Empirical Study of Distilling MIM Pre-trained Models.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective TinyMIM: An Empirical Study of Distilling MIM Pre-trained Models

Reference 94

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:babbb356bffffe90d061af18128918e69d769e67ee274f79c968e9161dec4f75

Observation c3a68de2-506d-47a8-a342-2c3a810511f3 · outbound

This paper cites Token Merging: Your.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Token Merging: Your

Reference 95

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:396d0622cc57e1c741e25329f9e996dd3bb9fa0d1f61b749281b72ddf6c80e89

Observation 692a2a5b-e575-4785-8da5-8baea642c5d8 · outbound

This paper cites International Conference on Machine Learning , pages=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective International Conference on Machine Learning , pages=

Reference 96

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e2a6da8f736f52efe6c2ba2350fd8143e7ccdd97ada4039cee60fbf4c9a03f5c

Observation 00420882-5931-4c09-a230-a4c3da727910 · outbound

This paper cites Distilling the Knowledge in a Neural Network.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Distilling the Knowledge in a Neural Network

Reference 97

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fc4951dd839fe87ed38a0afd29180bb1ebb73fb3f7ac2cf76bcf4600e887854d

Observation c2f4c1ad-5a9a-42bb-9753-a8cab0487ae1 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 98

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:558588ea14649d381f89efea090a03a43268c53fc0d789cdfd46b939fa6017fc

Observation f0d26030-461e-4f2b-896d-efcd834df048 · outbound

This paper cites Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition , pages=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition , pages=

Reference 99

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:1bf2cb5028bf963599020e4ee3f8ed9da7fe3c7486165d0968ddf2f4358b5fc9

Observation af91a26b-74e7-43f4-8a2f-e4bb327ad8b8 · outbound

This paper cites Proceedings of the IEEE/CVF International Conference on Computer Vision , pages=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the IEEE/CVF International Conference on Computer Vision , pages=

Reference 100

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:da01dc3f32607c06dc502f5be734ad8c27a517163d37ff1c8c70285a7b7fa348

Observation 1740f731-5b07-4ad0-9290-aa14e2191270 · outbound

This paper cites Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition , month=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition , month=

Reference 101

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:75e4158c9842ef424d3f9921ddb87d140f9b5f08074bf18cafafcbdd149787a2

Observation fe0a32fc-550b-4399-8ecc-d1f2ebf1a602 · outbound

This paper cites 2022 , pages=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2022 , pages=

Reference 102

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:34d0727336fafae57bc3918a05eedb0d43c496146fcb39ee3abd3a7697698037

Observation 838b1525-fc9f-4e7a-aaeb-1b0b6395057e · outbound

This paper cites Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition , year=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition , year=

Reference 103

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:74c7037da627a19902b23110f0c6c0b4011252e0a5c76ebd88be368ace937c78

Observation a2cceec5-58a5-4bc2-95ff-ce047d6a1a9b · outbound

This paper cites PPT: Token Pruning and Pooling for Efficient Vision Transformers.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective PPT: Token Pruning and Pooling for Efficient Vision Transformers

Reference 104

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:687029a15b52648b4e42ab9d6a0133b1a8bed82c1cbf27da54bbb7f6ca789fa5

Observation 2904b21a-f889-4a5b-bdd2-3b66c48da0a4 · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 105

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e2d3ed5fcf4459b726db82e20cb7d9b54141878b690154718191b4ba8e9da053

Observation aa276d23-2715-45ca-b524-ab78378f6ff0 · outbound

This paper cites Proceedings of the AAAI Conference on Artificial Intelligence , author=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Proceedings of the AAAI Conference on Artificial Intelligence , author=

Reference 106

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:04454e3ed8d9c63614b3527a39caac191be3c856c2829aa8be48d8d90965680a

Observation d6eda98a-6796-4739-8435-6c219d69757a · outbound

This paper cites Isomorphic Pruning for Vision Models.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Isomorphic Pruning for Vision Models

Reference 107

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:fabbe0b6259a807b1fb49d1a3c99e845a5d847d0d008d6808e5e5161f6281a7d

Observation ea73e555-4758-4a7b-860f-2805a974ec2c · outbound

This paper cites 2025 , organization=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2025 , organization=

Reference 108

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:2a8db8bd970753e624afc584c768d63eac3ee1ed6db5a59c2506ce78790313ac

Observation 78c485b5-d50c-4106-bbe0-3a6df73ca18a · outbound

This paper cites an unresolved cited work.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective Unresolved cited work

Reference 109

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:e3a1fdb390d61857ed22aea2a26670ee6441e90ebb366255d7ce09f63123e1e5

Observation 6e78e63b-c186-4921-9791-65c1aac210af · outbound

This paper cites 2023 , organization=.

Rethinking Depth Pruning for Vision Transformers: A Heterogeneity-Aware Perspective 2023 , organization=

Reference 110

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source=arxiv_source observed=2026-07-11T23:58:47.097757Z digest=sha256:16bd261502107ab5b6aa5756c2c15f6ef11dbfa40f0ee338a727d5075a670528

Pith citing papers

No inbound Pith citation observations are available.