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Paper Citation Record · LEDGER

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures

As of 7 August 2026, this Paper Citation Record lists 100 of 214 outbound references and 0 inbound Pith citation observations for arXiv:2507.10446.

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

pith.paper-citation-record.v1
2507.10446 v2

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measured 100 of 214 reference resolution

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100 of 214 outbound references displayed

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Outbound references

Observation 383ae0cd-83ed-4842-a36e-4433b5ac2b9e · outbound

This paper cites Structural interplay between germline interactions and adaptive recognition deter- mines the bandwidth of tcr-peptide-mhc cross-reactivity.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Structural interplay between germline interactions and adaptive recognition deter- mines the bandwidth of tcr-peptide-mhc cross-reactivity

Reference 1

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Unresolved cited work

Reference 2

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This paper cites Efficient 3d deep learning model for medical image semantic segmentation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Efficient 3d deep learning model for medical image semantic segmentation

Reference 3

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This paper cites Flamingo: a visual language model for few-shot learning.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Flamingo: a visual language model for few-shot learning

Reference 4

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Observation a22cbe5c-8261-4433-8751-79cbb1387918 · outbound

This paper cites Deep speech 2: End-to-end speech recognition in english and mandarin.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Deep speech 2: End-to-end speech recognition in english and mandarin

Reference 5

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This paper cites Hoffman, David Pfau, Tom Schaul, and Nando de Freitas.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Hoffman, David Pfau, Tom Schaul, and Nando de Freitas

Reference 6

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This paper cites Defining Benchmarks for Continual Few-Shot Learning.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Defining Benchmarks for Continual Few-Shot Learning

Reference 7

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This paper cites On the texture bias for few-shot cnn segmentation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures On the texture bias for few-shot cnn segmentation

Reference 8

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This paper cites Hyperfields: Towards zero-shot generation of nerfs from text, 2023.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Hyperfields: Towards zero-shot generation of nerfs from text, 2023

Reference 9

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This paper cites Hypernetwork designs for improved classification and robust meta-learning, 2020.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Hypernetwork designs for improved classification and robust meta-learning, 2020

Reference 10

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This paper cites Online meta-learning via learning with layer-distributed memory.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Online meta-learning via learning with layer-distributed memory

Reference 11

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This paper cites Meta-DRN: Meta-Learning for 1-Shot Image Segmentation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Meta-DRN: Meta-Learning for 1-Shot Image Segmentation

Reference 12

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This paper cites Pixelnet: Representation of the pixels, by the pixels, and for the pixels, 2017.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Pixelnet: Representation of the pixels, by the pixels, and for the pixels, 2017

Reference 13

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Mip-nerf: A multiscale representation for anti-aliasing neural radiance fields

Reference 14

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Mip- nerf 360: Unbounded anti-aliased neural radiance fields

Reference 15

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This paper cites Rae, Simon Osindero, and Timothy P.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Rae, Simon Osindero, and Timothy P

Reference 16

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Stanley, Jeff Clune, and Nick Cheney

Reference 17

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures On the optimization of a synaptic learning rule

Reference 18

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Practical recommendations for gradient-based training of deep architectures

Reference 19

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Henriques, Philip H

Reference 20

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Stylegan knows normal, depth, albedo, and more

Reference 21

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Online Fast Adaptation and Knowledge Accumulation: a New Approach to Continual Learning

Reference 22

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This paper cites Unsupervised learning of visual features by contrasting cluster assignments.Advances in neural information processing systems, 33:9912–9924, 2020.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Unsupervised learning of visual features by contrasting cluster assignments.Advances in neural information processing systems, 33:9912–9924, 2020

Reference 23

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This paper cites Deep local shapes: Learning local sdf priors for detailed 3d reconstruction.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Deep local shapes: Learning local sdf priors for detailed 3d reconstruction

Reference 24

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Chang, Thomas Funkhouser, Leonidas Guibas, Pat Hanrahan, Qixing Huang, Zimo Li, Silvio Savarese, Manolis Savva, Shuran Song, Hao Su, Jianxiong Xiao, Li Yi, and Fisher Yu

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Principled weight initialization for hyper- networks

Reference 26

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Tensorf: Tensorial radiance fields, 2022

Reference 28

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Fantasia3d: Disentangling geometry and appearance for high-quality text-to-3d content creation, 2023

Reference 29

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures A simple frame- work for contrastive learning of visual representations

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures A Closer Look at Few-shot Classification

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Improved Baselines with Momentum Contrastive Learning

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Dynamic convolution: Attention over convolution kernels

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This paper cites Stylizing 3d scene via implicit representation and hypernetwork, 2021.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Stylizing 3d scene via implicit representation and hypernetwork, 2021

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This paper cites Chemberta: Large-scale self-supervised pretraining for molecular property prediction, 2020.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Chemberta: Large-scale self-supervised pretraining for molecular property prediction, 2020

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures 3d u-net: learning dense volumetric segmentation from sparse annotation

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Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures T-cell antigen receptor genes and t-cell recognition

Reference 37

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Observation d8c75c46-d71a-4c18-93cf-e3471eec5669 · outbound

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

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Imagenet: A large- scale hierarchical image database

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Observation c2cd2bda-88d7-42a8-909e-92fe849e8d0e · outbound

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

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Imagenet: A large- scale hierarchical image database

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Observation 81caf0a5-f4c8-4dea-8ebd-8ad84555219f · outbound

This paper cites BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding

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Observation eaecd39c-280a-4e7b-91ef-cea63b2eb9f7 · outbound

This paper cites Improved Regularization of Convolutional Neural Networks with Cutout.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Improved Regularization of Convolutional Neural Networks with Cutout

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Observation 7e6aa4fe-a18c-4afd-bb20-9dafeeee3ad9 · outbound

This paper cites Diffusion models beat gans on image synthesis.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Diffusion models beat gans on image synthesis

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Observation 971311d1-fa17-48f2-8423-e7b9aa1c0cde · outbound

This paper cites Unsupervised visual representation learning by context prediction.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Unsupervised visual representation learning by context prediction

Reference 43

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source=pdf_text observed=2026-08-06T19:32:54.119319Z digest=sha256:4abeeca59e240f30904ca772a40f6b8b01966bb708330ffc2388a8d27acb4289

Observation 0d48261f-54b6-4411-bf8d-671f33225963 · outbound

This paper cites Machine learning methods for small data challenges in molecular science.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Machine learning methods for small data challenges in molecular science

Reference 44

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source=pdf_text observed=2026-08-06T19:32:54.122322Z digest=sha256:d20a0fea74f72556e3a2ecdc838ed51799c3b08237cd8d203b69c266972d4a22

Observation 5695ead0-d0b7-4054-97b5-c67c08b48822 · outbound

This paper cites Hyperdiffu- sion: Generating implicit neural fields with weight-space diffusion.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Hyperdiffu- sion: Generating implicit neural fields with weight-space diffusion

Reference 45

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source=pdf_text observed=2026-08-06T19:32:54.125388Z digest=sha256:0fce1a74ab5cd42cc21166a56bc38bf27bcad02200f4caed2eae0180daf9594b

Observation 2605aa44-6830-43c2-b407-a9fc59af0714 · outbound

This paper cites Kiloneus: A versatile neural implicit surface representation for real-time rendering, 2022.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Kiloneus: A versatile neural implicit surface representation for real-time rendering, 2022

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source=pdf_text observed=2026-08-06T19:32:54.129137Z digest=sha256:0d6070f456bb4f39956e80fb9da5b17efee6144495a2ffb8c901f6a2def8aaf9

Observation 31901585-b223-4d70-8c62-0219a2da2a86 · outbound

This paper cites Model-agnostic meta-learning for fast adaptation of deep networks.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Model-agnostic meta-learning for fast adaptation of deep networks

Reference 47

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source=pdf_text observed=2026-08-06T19:32:54.132150Z digest=sha256:c7f918e0c76da014aab0480d5e172e0a6e390dd61adca0fa331383b5f94a5974

Observation 6b6e89cb-5773-4220-9d42-cd030aace000 · outbound

This paper cites Kakade, and Sergey Levine.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Kakade, and Sergey Levine

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source=pdf_text observed=2026-08-06T19:32:54.135968Z digest=sha256:625ab96d2107c809e66bdae261f0753ae4165ab5fe6e907ee1ffd5f8ba38939a

Observation c122f53e-bf4a-4aca-88ef-cafab756fe45 · outbound

This paper cites Nerf: Neural radiance field in 3d vision, a comprehensive review, 2022.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Nerf: Neural radiance field in 3d vision, a comprehensive review, 2022

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source=pdf_text observed=2026-08-06T19:32:54.139737Z digest=sha256:00de25f3d89b00dcf76d1f8d8012bccbab63a04d5812e1836b029635aa77440f

Observation a6232755-2b3d-4e20-be23-24161ae80453 · outbound

This paper cites Fast r-cnn.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Fast r-cnn

Reference 50

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source=pdf_text observed=2026-08-06T19:32:54.143072Z digest=sha256:4678ac1387f94809abca16aa0d3259192f837583e2f7d6b8accae5529a3f0c49

Observation 37450394-7e1f-4a26-b11f-a51b3c507a5d · outbound

This paper cites Evolving modular fast-weight networks for control.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Evolving modular fast-weight networks for control

Reference 51

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source=pdf_text observed=2026-08-06T19:32:54.147413Z digest=sha256:e34f981883a946511766553f2eff6b38660b644bd373b2ddd9f744571d8942dc

Observation 23e523ff-9250-4fd0-9fe6-428781bdfdb3 · outbound

This paper cites Neural Turing Machines.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Neural Turing Machines

Reference 52

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source=pdf_text observed=2026-08-06T19:32:54.150746Z digest=sha256:9ed253838a24dcf0aad391348af18aae547f6b4ea23562c66a00b6dd80179af7

Observation 00aeaea4-ff2b-447b-bd02-3e7081203cd3 · outbound

This paper cites Development or dreamfield delusions: Assessing casino gambling’s costs and benefits.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Development or dreamfield delusions: Assessing casino gambling’s costs and benefits

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source=pdf_text observed=2026-08-06T19:32:54.153929Z digest=sha256:104cc12e69390388b04ff7f98f8d9c61217c55086219b2c4d77af06ffa2dcce6

Observation ee3ab87f-eb6d-4959-ab69-4927fa2738bd · outbound

This paper cites Snapnet-r: Consistent 3d multi-view semantic labeling for robotics.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Snapnet-r: Consistent 3d multi-view semantic labeling for robotics

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source=pdf_text observed=2026-08-06T19:32:54.157360Z digest=sha256:b8cb2aea51d47d5747c6b21014676040652bd6510871578bffce00ccb9ab6b48

Observation 44ef741d-55c8-4c5d-98c0-1b0e6a2dc0c9 · outbound

This paper cites An investigation of model-free planning.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures An investigation of model-free planning

Reference 55

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source=pdf_text observed=2026-08-06T19:32:54.160807Z digest=sha256:f2f6a7fee4dd1b295c83396bf2709ec42428954a0583e3f9e4a4fa93d7bfe16d

Observation 55e6e52c-9a3c-4f20-804d-1fc382a41644 · outbound

This paper cites Spottune: transfer learning through adaptive fine-tuning.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Spottune: transfer learning through adaptive fine-tuning

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source=pdf_text observed=2026-08-06T19:32:54.164099Z digest=sha256:4182268c49e17e1dfa9dcc097655b347c9676e6fec73b49913ab00884730c07d

Observation 10f55d32-955c-47fc-9b8b-769205a85628 · outbound

This paper cites HyperNetworks.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures HyperNetworks

Reference 57

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source=pdf_text observed=2026-08-06T19:32:54.167973Z digest=sha256:ad97a8bc730f816ce94ad351f35177f5b27de3c14cbcac8c08c0435b49281561

Observation 5f537f7a-a69c-4393-91d9-e05d971ed05a · outbound

This paper cites an unresolved cited work.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Unresolved cited work

Reference 58

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source=pdf_text observed=2026-08-06T19:32:54.171082Z digest=sha256:c49c02f0b32fd3cdde993cf1bbf1121cd6b5d417331d3796a59e3d9117b53e64

Observation c02c2113-875d-45d5-a8d8-b4a709247859 · outbound

This paper cites Masked autoencoders are scalable vision learners.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Masked autoencoders are scalable vision learners

Reference 59

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source=pdf_text observed=2026-08-06T19:32:54.173487Z digest=sha256:6fcadbfd04d63f64be3652d6fa282496312ebdc606e0f35cc5bb1d72ee951545

Observation 4e3adccc-06d4-4c40-bf48-a71f01388adc · outbound

This paper cites Momentum Contrast for Unsupervised Visual Representation Learning.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Momentum Contrast for Unsupervised Visual Representation Learning

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source=pdf_text observed=2026-08-06T19:32:54.176374Z digest=sha256:a8471447db564e81cb8bd0580ca5fe9f2810cf609ac095bbca2506deb06a83b8

Observation 6b3b12ce-9249-4e5d-b0c2-6266a1b6fb99 · outbound

This paper cites Mask r-cnn.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Mask r-cnn

Reference 61

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source=pdf_text observed=2026-08-06T19:32:54.179796Z digest=sha256:54691be0df737f1cc81a8b957f4cd569f6632e4747d5374ed278e6b822f7b08f

Observation b5eae914-d85b-4954-80d8-466d98b75990 · outbound

This paper cites Deep residual learning for image recognition.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Deep residual learning for image recognition

Reference 62

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source=pdf_text observed=2026-08-06T19:32:54.182537Z digest=sha256:a5af9c0028dd665f347738fc2f11f16e773e748ac19b64cd52862aaf35c0b899

Observation 56fa57f6-ff03-4c98-b863-1af1746663e8 · outbound

This paper cites Deep residual learning for image recognition.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Deep residual learning for image recognition

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source=pdf_text observed=2026-08-06T19:32:54.184887Z digest=sha256:2931ae5de2e8a9821c5fc378f0de2c2847ea1459f9a8663fc2657d5166d6a19f

Observation fcfb74f5-afa6-427c-b08b-fdb06a1fec1c · outbound

This paper cites On the Effectiveness of Adapter-based Tuning for Pretrained Language Model Adaptation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures On the Effectiveness of Adapter-based Tuning for Pretrained Language Model Adaptation

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source=pdf_text observed=2026-08-06T19:32:54.188288Z digest=sha256:7e8542acd221f4b430225de0a189b34f93a156fccc24a964f26d8d08b3e7abab

Observation 0a95f90f-aa28-47ce-a1b4-d9e903434f63 · outbound

This paper cites Denoising diffusion probabilistic models.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Denoising diffusion probabilistic models

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source=pdf_text observed=2026-08-06T19:32:54.191529Z digest=sha256:a1a658d8a12c85da8b8aa0cd0088eb6e0cbf3e905130a8d5305d0bfb21b92765

Observation 3815d854-e7e8-468e-bd69-5f8330a9d49b · outbound

This paper cites Long short-term memory.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Long short-term memory

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source=pdf_text observed=2026-08-06T19:32:54.194338Z digest=sha256:4b4a4635bc0f78ed43e5c7f7f9538a5f7d0f18165fedc13b4d83f8f37aadc1b4

Observation 8e23f21b-19de-4900-8643-7a8674c753ac · outbound

This paper cites Learning to learn using gradient descent.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Learning to learn using gradient descent

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source=pdf_text observed=2026-08-06T19:32:54.197107Z digest=sha256:280d7c097e2cc91fc9c42e0462dbba048e3b7123ff4773237df141d393ff58fa

Observation 8868e35f-edee-4477-a088-b5e6a0526cd8 · outbound

This paper cites Avatarclip: Zero-shot text-driven generation and animation of 3d avatars.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Avatarclip: Zero-shot text-driven generation and animation of 3d avatars

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source=pdf_text observed=2026-08-06T19:32:54.201329Z digest=sha256:672970acb6851ac4f8a3e5d4078a5ce96c085eac7a59c918518d2c0d05c4e202

Observation af796a3b-8c71-414c-b493-f2dffa307f6b · outbound

This paper cites Equivariant diffusion for molecule generation in 3d, 2022.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Equivariant diffusion for molecule generation in 3d, 2022

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source=pdf_text observed=2026-08-06T19:32:54.205036Z digest=sha256:a5639a1b39d641d42b3f95f9318e1fa0a978b75e9b9b39ef36394d917564eada

Observation 4da49965-3032-4721-adf3-258a5eacc9ff · outbound

This paper cites Meta-Learning in Neural Networks: A Survey.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Meta-Learning in Neural Networks: A Survey

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Observation 9f29867c-a415-4e45-b3a7-1bc8e85ed404 · outbound

This paper cites Universal Language Model Fine-tuning for Text Classification.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Universal Language Model Fine-tuning for Text Classification

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source=pdf_text observed=2026-08-06T19:32:54.211808Z digest=sha256:3547118edb57551642b5ecc5ed1f928b47134244be701febae80f9c5477f8a6d

Observation 43d4f527-a493-46c0-98d9-aa1d89cf50bf · outbound

This paper cites Attention-based multi-context guiding for few-shot semantic segmentation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Attention-based multi-context guiding for few-shot semantic segmentation

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source=pdf_text observed=2026-08-06T19:32:54.214889Z digest=sha256:c529c3b52e08971b90de1b667967265e4d369eecc4e2b9ba03b3a1853a81896b

Observation 355fe682-5a28-4b73-9d68-35710d6b2efe · outbound

This paper cites Supervoxel convolution for online 3d semantic segmentation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Supervoxel convolution for online 3d semantic segmentation

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source=pdf_text observed=2026-08-06T19:32:54.217371Z digest=sha256:4987b1105701c9ea26c137e68782f52cb2bb75021b2c13d74a38f085e5d3d4af

Observation c305831b-cb47-4ce0-9375-135a7bf7a30f · outbound

This paper cites Self-challenging improves cross-domain generalization.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Self-challenging improves cross-domain generalization

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source=pdf_text observed=2026-08-06T19:32:54.221234Z digest=sha256:9a5b51e51b725cc570834721c8b7e348cb6f126fb63b76023f0752c44b1b4748

Observation abf486d0-5987-40dd-9bb5-62e5fbf5de8a · outbound

This paper cites Can we predict t cell specificity with digital biology and machine learning? Nature Reviews Immunology, pages 1–11, 2023.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Can we predict t cell specificity with digital biology and machine learning? Nature Reviews Immunology, pages 1–11, 2023

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source=pdf_text observed=2026-08-06T19:32:54.223661Z digest=sha256:c37abdc15df4097ce72d448661ae8df512fe5bfbcce3a8ad343c232d4390ee3f

Observation 3316143d-b7b7-4256-8216-c7c51b8467f3 · outbound

This paper cites Averaging Weights Leads to Wider Optima and Better Generalization.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Averaging Weights Leads to Wider Optima and Better Generalization

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source=pdf_text observed=2026-08-06T19:32:54.226699Z digest=sha256:f02542b54adcc6cbdbbf8e52f86522eb7a68560e867217d57212118227bff9ec

Observation 8bb58740-6ad5-44b4-9c18-6df102815379 · outbound

This paper cites Barron, Pieter Abbeel, and Ben Poole.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Barron, Pieter Abbeel, and Ben Poole

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source=pdf_text observed=2026-08-06T19:32:54.230453Z digest=sha256:44ce8bb750835636b7907656b3cf8c4e8f4cec2c6793ea71a972111405a73062

Observation c110fe16-4662-4a9c-b598-830876b5f60e · outbound

This paper cites Putting nerf on a diet: Semantically consistent few-shot view synthesis.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Putting nerf on a diet: Semantically consistent few-shot view synthesis

Reference 78

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Observation cd26108d-7f30-4652-8d51-f8d322cdd2b8 · outbound

This paper cites Meta-learning representations for continual learning.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Meta-learning representations for continual learning

Reference 79

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source=pdf_text observed=2026-08-06T19:32:54.236364Z digest=sha256:0091b1d551c27abd7cec967da66afe53c48c0698d110ca50097d9c82a3d46bfc

Observation e4433f34-62f9-49f3-9c1d-0430880e7d9b · outbound

This paper cites Transfer learning from speaker verification to multispeaker text-to-speech synthesis.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Transfer learning from speaker verification to multispeaker text-to-speech synthesis

Reference 80

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source=pdf_text observed=2026-08-06T19:32:54.240308Z digest=sha256:a783c1ceedb2a2294a26fb9b919731b9e256f8c1dbffc3bb4f546201d48c3d9a

Observation 984f4ace-2185-4bf8-a018-260c3b238663 · outbound

This paper cites Human learning and memory.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Human learning and memory

Reference 81

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source=pdf_text observed=2026-08-06T19:32:54.243487Z digest=sha256:8ebbc03da6f6769447d5725f5b3312e5b419218773b4ed412c16aa41494d6286

Observation f18b2814-4e33-42e7-a433-46cc50fd17b6 · outbound

This paper cites Shap-e: Generating conditional 3d implicit functions, 2023.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Shap-e: Generating conditional 3d implicit functions, 2023

Reference 82

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source=pdf_text observed=2026-08-06T19:32:54.247257Z digest=sha256:fd28536d3a3e6d4ad76feba1a89315371564016a91866e0097504196b3a003bb

Observation 3d2492d6-ecd2-444b-aa4c-5891b62250bb · outbound

This paper cites Lerf: Language embedded radiance fields.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Lerf: Language embedded radiance fields

Reference 83

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source=pdf_text observed=2026-08-06T19:32:54.250135Z digest=sha256:cce6fbab909c90f835d935ebe94366e53c1c4d3c935204568884a7a9fcbc5ddf

Observation 218747ff-0a69-4014-b2f1-1231d20dc927 · outbound

This paper cites Kingma and Jimmy Ba.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Kingma and Jimmy Ba

Reference 84

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source=pdf_text observed=2026-08-06T19:32:54.252993Z digest=sha256:5978132fdab866c021c3f9247e987e7b824b914ec8f14c0445e403d327ffef4d

Observation 21afddff-a95b-489c-8b04-0dfcddb9c584 · outbound

This paper cites Overcoming catastrophic forgetting in neural networks.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Overcoming catastrophic forgetting in neural networks

Reference 85

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source=pdf_text observed=2026-08-06T19:32:54.256056Z digest=sha256:0982df3b183d7bfca44a2cb13c939dfb5a0909793c7a80c460e07a3a0b05c9f6

Observation ef54feef-ef75-4208-bffe-0ccc07a83b3a · outbound

This paper cites Meta Learning Backpropagation And Improving It.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Meta Learning Backpropagation And Improving It

Reference 86

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source=pdf_text observed=2026-08-06T19:32:54.259374Z digest=sha256:9324fd57038c609fdea0e1814ce1b1e050d9b5692bd92c0fd0388c657026b024

Observation 688c9580-4a69-410f-bd9c-8a3181337ccf · outbound

This paper cites Decomposing nerf for editing via feature field distillation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Decomposing nerf for editing via feature field distillation

Reference 87

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source=pdf_text observed=2026-08-06T19:32:54.262780Z digest=sha256:4ca730d7cadeeeec223ce45e8293994652cf393fc68c265a85d75d4e274a0f77

Observation af0c06cf-5ef6-4c63-aa0a-a366e86baa33 · outbound

This paper cites Learning multiple layers of features from tiny images, 2009.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Learning multiple layers of features from tiny images, 2009

Reference 88

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source=pdf_text observed=2026-08-06T19:32:54.265819Z digest=sha256:134df2c7f10029d52048df50a7d09a0d55ec8421a170e48950c7e19a8201e2d0

Observation 2d4f7ea3-ce3b-40fc-8c9c-3e5ac977e205 · outbound

This paper cites Imagenet classification with deep convolutional neural networks.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Imagenet classification with deep convolutional neural networks

Reference 89

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source=pdf_text observed=2026-08-06T19:32:54.269154Z digest=sha256:5a56bfc85a20284ddd760132abd651a219e0f9cda5415a241f069fb6505c0e1d

Observation 7163ac85-3641-4d81-b982-f18b728461ad · outbound

This paper cites Role of cognitive factors in the acquisition of cognitive skill.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Role of cognitive factors in the acquisition of cognitive skill

Reference 90

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source=pdf_text observed=2026-08-06T19:32:54.271587Z digest=sha256:19640791391ad6f5783f8caa72a13059f036356857d016ae77c6063207608b88

Observation 728ed3cd-e9e5-4d92-b615-0d11a0749160 · outbound

This paper cites Omniglot git repo, 2015.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Omniglot git repo, 2015

Reference 91

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source=pdf_text observed=2026-08-06T19:32:54.274006Z digest=sha256:8434ecc3f8f3849d034fb59bf2901313d3cbb591d76f0a169b7037851b595d6c

Observation 998bb67d-7b26-4fba-83e7-2902b2692ee6 · outbound

This paper cites Human-level concept learning through probabilistic program induction.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Human-level concept learning through probabilistic program induction

Reference 92

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source=pdf_text observed=2026-08-06T19:32:54.277516Z digest=sha256:f4ab16f515477902afa745134d6acd4bfb98ad7b06aeddf4dad718445bbd3452

Observation 76d47ec9-39dc-40cd-8614-afb7b273807a · outbound

This paper cites Colorization as a proxy task for visual understanding.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Colorization as a proxy task for visual understanding

Reference 93

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source=pdf_text observed=2026-08-06T19:32:54.280031Z digest=sha256:18737edb4e4d9854d95fe50c6c7f316da47c4d82f46d5ff563dab242fae2226a

Observation 41fcc85a-18ab-4897-9510-e116c02f25a4 · outbound

This paper cites Deeper, broader and artier domain generalization.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Deeper, broader and artier domain generalization

Reference 94

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source=pdf_text observed=2026-08-06T19:32:54.282290Z digest=sha256:e9e79ed1baa786dd5ecd217f8ca9620b47d8f8693eac628cc0ac67d3117ca52e

Observation 21910a93-84de-4411-957b-4c167d11ab6b · outbound

This paper cites Learning to generalize: Meta-learning for domain generalization.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Learning to generalize: Meta-learning for domain generalization

Reference 95

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source=pdf_text observed=2026-08-06T19:32:54.285462Z digest=sha256:562574056a4a280b4a2edb86bccfb08f412d150ab6a8898d230de8c9e1f60632

Observation 321c9587-ebb5-4c36-8206-9a56a1376bd4 · outbound

This paper cites Referring image segmentation via recurrent refinement networks.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Referring image segmentation via recurrent refinement networks

Reference 96

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source=pdf_text observed=2026-08-06T19:32:54.288973Z digest=sha256:2d9402ed33d679b5afd5d3cf154ccd84c38b17c018699d46e8275b23657f3516

Observation c984569c-27e3-4600-92d5-48c4fd865127 · outbound

This paper cites Fss-1000: A 1000-class dataset for few-shot segmentation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Fss-1000: A 1000-class dataset for few-shot segmentation

Reference 97

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source=pdf_text observed=2026-08-06T19:32:54.292212Z digest=sha256:f9f14ed2fdaf30a8294a7a1d1f47c329783d059c4266804778e0753480ff1f6c

Observation 1f9d5112-b011-4abc-9af4-185bae7352fc · outbound

This paper cites Meta-SGD: Learning to Learn Quickly for Few-Shot Learning.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Meta-SGD: Learning to Learn Quickly for Few-Shot Learning

Reference 98

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source=pdf_text observed=2026-08-06T19:32:54.294985Z digest=sha256:524cf2b2a273e6a5d7c20e8df9d370520a6426f2c2d95e7facbfabf7d90235a1

Observation 17d79b07-9858-4366-b831-e452282ddebf · outbound

This paper cites Magic3D: High-Resolution Text-to-3D Content Creation.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Magic3D: High-Resolution Text-to-3D Content Creation

Reference 99

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source=pdf_text observed=2026-08-06T19:32:54.298796Z digest=sha256:62539ab49ed88cdaa24e868328b8b10210648cf44d9fae9d510946b61e1a85f1

Observation 774da49e-0364-4e2a-ab42-3d27b9e1f9bd · outbound

This paper cites Lee, and Michael I.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Lee, and Michael I

Reference 100

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source=pdf_text observed=2026-08-06T19:32:54.302737Z digest=sha256:0ac6e3c76046feef371bb54840df194b53869224237c1d8d8f541b31de863fc0

Observation 532c0dc8-8603-4ab7-a6ea-bdb4aae84ed1 · outbound

This paper cites Audio self-supervised learning: A survey.

Acquiring and Adapting Priors for Novel Tasks via Neural Meta-Architectures Audio self-supervised learning: A survey

Reference 101

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source=pdf_text observed=2026-08-06T19:32:54.306268Z digest=sha256:9648c50aa575ea078c8a2b556eedafb4da2d9e153a1b06e53fcd3c7f38008930

Pith citing papers

No inbound Pith citation observations are available.