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Paper Citation Record · LEDGER

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications

As of 8 August 2026, this Paper Citation Record lists 100 of 198 outbound references and 0 inbound Pith citation observations for arXiv:2506.16044.

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

pith.paper-citation-record.v1
2506.16044 v1

Coverage vector

measured 100 of 198 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-06T23:49:20.871407Z

measured 100 of 100 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+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 198 outbound references displayed

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  • verified fuzzy0
  • unresolved95
  • parse uncertain0
  • malformed identifier0
  • metadata mismatch1

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Outbound references

Observation c30fbfb9-5fde-4a4c-bc7c-bd1750d8bb4d · outbound

This paper cites Progress and prospects of shared control in human-robot interaction,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Progress and prospects of shared control in human-robot interaction,

Reference 1

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source=pdf_text observed=2026-08-06T23:49:09.355667Z digest=sha256:d85dff6217adedad343411ecf954c443fa8cab2b8f706367f9d405d2cc4e6981

Observation ee87937c-edf4-41ac-8480-ff3f2c24b6ce · outbound

This paper cites Toward human-centered shared autonomy AI paradigms for human-robot teaming in healthcare.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Toward human-centered shared autonomy AI paradigms for human-robot teaming in healthcare

Reference 2

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source=pdf_text observed=2026-08-06T23:49:09.489304Z digest=sha256:22055f49b5f73861c0bc81de4426e293889a6419a677d35a15e39b6179df3f3b

Observation f1247c6a-4238-4be9-8425-296d4d90deab · outbound

This paper cites A review of intent detection, arbitration, and communication aspects of shared control for physical human-robot interaction,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A review of intent detection, arbitration, and communication aspects of shared control for physical human-robot interaction,

Reference 3

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Observation 919d5a63-a949-4219-b854-60f3c1c4763a · outbound

This paper cites The Sense of Agency in Assistive Robotics Using Shared Autonomy.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications The Sense of Agency in Assistive Robotics Using Shared Autonomy

Reference 4

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Observation 076c330c-dcf4-42c8-8101-ef28896640a5 · outbound

This paper cites Brain–computer interfaces for communication and control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Brain–computer interfaces for communication and control,

Reference 5

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Observation c6996708-ebdc-4726-a549-178130d4c4a5 · outbound

This paper cites The extraction of neural information from the surface EMG for the control of upper-limb prostheses: emerging avenues and challenges,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications The extraction of neural information from the surface EMG for the control of upper-limb prostheses: emerging avenues and challenges,

Reference 6

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source=pdf_text observed=2026-08-06T23:49:09.942781Z digest=sha256:38b2544e1fa145c992f8da124b244b0e5e98c76a3886a21c43d4e192755bf431

Observation 42f09914-0568-4b54-9ee4-b28c9300d981 · outbound

This paper cites Decoding human motor intent from electromyography for shared human-robot control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Decoding human motor intent from electromyography for shared human-robot control,

Reference 7

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source=pdf_text observed=2026-08-06T23:49:10.046149Z digest=sha256:ee7c1b0352869cc4bd4a1d25f1136e09e6f5db39d71a33e54c9b758741a62225

Observation 8b2fa2b8-4128-4716-9e15-de39e176d9e7 · outbound

This paper cites Combining brain–computer interfaces and assistive technologies: state-of-the-art and challenges,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Combining brain–computer interfaces and assistive technologies: state-of-the-art and challenges,

Reference 8

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Observation aae7eae5-53ab-4d02-9ad1-de30c7ed9af9 · outbound

This paper cites Review of control strategies for robotic movement training after neurologic injury,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Review of control strategies for robotic movement training after neurologic injury,

Reference 9

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Observation b198afe2-7c54-4c27-8c47-28c82aecb290 · outbound

This paper cites On the EU Artificial Intelligence Act and the need to protect people with disabilities from algorithmic discrimination: Mind the gap,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications On the EU Artificial Intelligence Act and the need to protect people with disabilities from algorithmic discrimination: Mind the gap,

Reference 11

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source=pdf_text observed=2026-08-06T23:49:10.556491Z digest=sha256:59d8f0b35bb9063036d05b0b09f06f60604d47236c0489bd261eed39baeb2f0e

Observation ab038230-c0bb-43da-87b7-6f5dd3e236c8 · outbound

This paper cites Challenges in shared autonomy,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Challenges in shared autonomy,

Reference 12

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source=pdf_text observed=2026-08-06T23:49:10.704073Z digest=sha256:294f3b229614b6987b45f03ee08629222c46ba9a1fd86e6758d7e844e235692f

Observation 13e5630d-f5eb-4d1b-a5ea-6c27311aca3c · outbound

This paper cites Assistive robotic manipulation through shared autonomy and a body-machine interface,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Assistive robotic manipulation through shared autonomy and a body-machine interface,

Reference 13

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source=pdf_text observed=2026-08-06T23:49:10.826341Z digest=sha256:df13604887b0e42272bd9c7375921e7688807005ccf316c480539e1ea4e96411

Observation 9218dbfa-ec83-4315-967e-90655207d08c · outbound

This paper cites Co-adaptive brain–computer interfaces: a review of algorithms and methods,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Co-adaptive brain–computer interfaces: a review of algorithms and methods,

Reference 14

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Observation d5a79c82-5a17-4140-932d-20635a2d1e86 · outbound

This paper cites Learning Multimodal AI Algorithms for Amplifying Limited User Input into High-dimensional Control Space.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Learning Multimodal AI Algorithms for Amplifying Limited User Input into High-dimensional Control Space

Reference 15

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source=pdf_text observed=2026-08-06T23:49:11.091584Z digest=sha256:51e96181223103fd115bde23b299d9cbd4fd6604654a7ad14ee892c680182d58

Observation 23505bc2-c629-4a50-aab2-cd14785465ab · outbound

This paper cites Human-robot cross-training: A human factors approach to human-robot teaming,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Human-robot cross-training: A human factors approach to human-robot teaming,

Reference 16

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Observation 66effe28-c79d-424a-93dd-ed92a21753d4 · outbound

This paper cites Toward a framework for levels of robot autonomy in human-robot interaction,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Toward a framework for levels of robot autonomy in human-robot interaction,

Reference 17

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Observation 51dbdf8e-763e-4956-9f9d-547b6cd95294 · outbound

This paper cites Biosignal-based co-adaptive user-machine interfaces for motor control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Biosignal-based co-adaptive user-machine interfaces for motor control,

Reference 18

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Observation 7a23c907-a465-4855-ad1f-fdcc252a9b5b · outbound

This paper cites Automation and accountability in complex systems,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Automation and accountability in complex systems,

Reference 19

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Observation afabbcef-ed68-43ce-889a-9d0732f10434 · outbound

This paper cites Human-automation interaction,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Human-automation interaction,

Reference 20

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Observation 6f8f8e5b-4f97-4a76-a17c-4439b0c5e798 · outbound

This paper cites Continuous role adaptation for human-robot shared control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Continuous role adaptation for human-robot shared control,

Reference 21

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Observation 10392cb3-f564-4fbd-b315-00f2b1a69673 · outbound

This paper cites Human-robot role arbitration via differential game theory,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Human-robot role arbitration via differential game theory,

Reference 22

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Observation 9ee68d79-eeb2-4a0a-9d5f-b7c6ade3e018 · outbound

This paper cites Emulation of computer mouse control with a noninvasive brain-computer interface,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Emulation of computer mouse control with a noninvasive brain-computer interface,

Reference 23

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Observation 1ed85aac-f2dd-4a0b-9499-7d89c3108b35 · outbound

This paper cites A hybrid brain-muscle-machine interface for stroke rehabilitation: Usability and functionality validation in a 2-week intensive intervention,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A hybrid brain-muscle-machine interface for stroke rehabilitation: Usability and functionality validation in a 2-week intensive intervention,

Reference 24

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Observation f7da59e8-1242-48bb-aff3-4fef419023da · outbound

This paper cites Probabilistic human intent recognition for shared autonomy in assistive robotics,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Probabilistic human intent recognition for shared autonomy in assistive robotics,

Reference 25

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Observation 625db9db-63b1-40f6-9e8b-0938fe6a86a7 · outbound

This paper cites Adaptive impedance controller for human-robot arbitration based on cooperative differential game theory,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Adaptive impedance controller for human-robot arbitration based on cooperative differential game theory,

Reference 26

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Observation e28edc9b-2f0b-4975-ab99-ff1b8f0a4769 · outbound

This paper cites Progress and prospects of shared control in human-robot interaction,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Progress and prospects of shared control in human-robot interaction,

Reference 27

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Observation 6b53b56b-6b88-48ad-b0d6-7b6c51d658ca · outbound

This paper cites The role of roles: Physical cooperation between humans and robots,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications The role of roles: Physical cooperation between humans and robots,

Reference 28

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Observation e3f13344-20dd-4c3e-9021-bf0c3d760568 · outbound

This paper cites A framework to describe, analyze and generate interactive motor behaviors,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A framework to describe, analyze and generate interactive motor behaviors,

Reference 29

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source=pdf_text observed=2026-08-06T23:49:12.948126Z digest=sha256:ad77686c8a567a51be44c839175e6323caefa0934f120db2f32e73b18f9cb96f

Observation 0a976cae-e190-4911-9540-f95ded53028a · outbound

This paper cites A policy-blending formalism for shared control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A policy-blending formalism for shared control,

Reference 30

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source=pdf_text observed=2026-08-06T23:49:13.093613Z digest=sha256:77de83f5874f8fce70b5800923475b3c14cb7079c254b892cbf650fa4546ef61

Observation 5546a0ad-63c6-41e4-8f31-1683317db761 · outbound

This paper cites A survey on real-time biosignal processing systems for bci applications,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A survey on real-time biosignal processing systems for bci applications,

Reference 31

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Observation b065b0f6-c931-4e49-8f24-5970761e51fb · outbound

This paper cites Supervisory control of multiple robots: human-performance issues and user-interface design,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Supervisory control of multiple robots: human-performance issues and user-interface design,

Reference 32

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Observation c36c14ed-98a3-4ac4-8f32-32a0dbf790ce · outbound

This paper cites Probabilistic human intent recognition for shared autonomy in assistive robotics,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Probabilistic human intent recognition for shared autonomy in assistive robotics,

Reference 33

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source=pdf_text observed=2026-08-06T23:49:13.523592Z digest=sha256:43ab496e5a868e817b80b9a82cef4b14615d31c2ac182c2405da8a5a38cadd0c

Observation e1cce1de-79bd-4f20-b2d0-dc8ca19c21b6 · outbound

This paper cites Machine learning for human activity recognition: A comprehensive review,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Machine learning for human activity recognition: A comprehensive review,

Reference 34

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source=pdf_text observed=2026-08-06T23:49:13.652557Z digest=sha256:1a41417cf2c915db4209bdb3b1c28ba7e11d8470e9efb81fd11429ef1e026b70

Observation ace1fedd-7b42-437b-a2bc-d1abadee605a · outbound

This paper cites Inferring human intent and predicting human action in human–robot collaboration,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Inferring human intent and predicting human action in human–robot collaboration,

Reference 35

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source=pdf_text observed=2026-08-06T23:49:13.760785Z digest=sha256:992c9cadf608c56c9e801e8e1f3de15c367ba38684948e59e71b8e39e73a31e9

Observation ef01d5ee-e9f2-4662-b386-4c2ddc77b3b3 · outbound

This paper cites A survey on eeg signal processing: Preprocessing, feature extraction, and classification,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A survey on eeg signal processing: Preprocessing, feature extraction, and classification,

Reference 36

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source=pdf_text observed=2026-08-06T23:49:13.842843Z digest=sha256:6cd5b2e7fc35bb227df4c482ee8aba0becf209d063c27f6177e3ca8915543185

Observation f06c9277-0f1e-4665-a7c1-e948cd007cf3 · outbound

This paper cites Multimodal fusion of emg and vision for human grasp intent inference in prosthetic hand control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Multimodal fusion of emg and vision for human grasp intent inference in prosthetic hand control,

Reference 37

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source=pdf_text observed=2026-08-06T23:49:13.943581Z digest=sha256:98806cc27976c3f244edfa9791ac14bf5c68ddc2f227424b973abdcc46674c9c

Observation b842d2d9-ed8a-4604-b705-746fec4afe28 · outbound

This paper cites Assistive control of robot arms via adaptive shared autonomy,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Assistive control of robot arms via adaptive shared autonomy,

Reference 38

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Observation 4a119176-bfe2-4d7c-a6c5-4d921cb8a835 · outbound

This paper cites Active Intent Disambiguation for Shared Control Robots.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Active Intent Disambiguation for Shared Control Robots

Reference 39

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source=pdf_text observed=2026-08-06T23:49:14.203130Z digest=sha256:9cb172cd4d21dea0677e2505cc6bf57cfcfe27394ee78ec8fcf14d5ec980f490

Observation a34d878c-1d90-46a7-8bc4-9555698def84 · outbound

This paper cites Joint cognitive systems: The foundations of cognitive systems engineering,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Joint cognitive systems: The foundations of cognitive systems engineering,

Reference 40

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source=pdf_text observed=2026-08-06T23:49:14.339258Z digest=sha256:272982ab541ebaa7dd99598de2314c35d8b2665a847ab4d02b32df4550ed4441

Observation 70537794-b46f-4c61-a1e2-72b7d10e0040 · outbound

This paper cites The future of work with robots and ai,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications The future of work with robots and ai,

Reference 41

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source=pdf_text observed=2026-08-06T23:49:14.419650Z digest=sha256:8dde2ae02d9bdc7dfb28a0a8c6818ecc415eba7f94530371fb60040208d3987b

Observation 30235050-6058-4ba4-9ac6-f0a64f09a276 · outbound

This paper cites The proactive agent: A new metaphor for human–ai interaction,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications The proactive agent: A new metaphor for human–ai interaction,

Reference 42

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source=pdf_text observed=2026-08-06T23:49:14.540224Z digest=sha256:a91be104fb169bc46e692e93a0e248fb1db6abf46dd91dccc15c28d1b633d4a9

Observation f0f4caa1-aae2-4b0e-8c5a-2089f777e3f5 · outbound

This paper cites Anticipatory robot control for efficient human-robot collaboration,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Anticipatory robot control for efficient human-robot collaboration,

Reference 43

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source=pdf_text observed=2026-08-06T23:49:14.676413Z digest=sha256:d0f2911717dc5d44049116d545f7a76e6e54a7ce5e33d4ba116b77bedbfd7f25

Observation a39de54b-fced-4d11-961a-a00280cf2f0e · outbound

This paper cites A survey of affective brain-computer interfaces: principles, state-of-the-art, and challenges,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A survey of affective brain-computer interfaces: principles, state-of-the-art, and challenges,

Reference 45

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source=pdf_text observed=2026-08-06T23:49:14.923960Z digest=sha256:38607a89bd1a00dafd156d3d19ef29cfcb935d57e07db7ed924574cacaac049c

Observation c77efc8d-3779-422c-b6fa-ad29f4c7f83e · outbound

This paper cites The Bridge Between Chiral Lagrangians and QCD Sum-Rules.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications The Bridge Between Chiral Lagrangians and QCD Sum-Rules

Reference 46

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metadata mismatch
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-08-06T23:49:15.073384Z digest=sha256:0afef38d5402859aeb00f6b5de824d972ee58a221d29b46b4890935c09d8f7c1

Observation 818b2d47-5033-4daa-92e0-58007e6386c2 · outbound

This paper cites A comprehensive review of eeg-based brain–computer interface paradigms,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A comprehensive review of eeg-based brain–computer interface paradigms,

Reference 47

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source=pdf_text observed=2026-08-06T23:49:15.177912Z digest=sha256:74d6ab6e34ea2821a90a264caee06ce28ea646a9c8b154115a89e5da4d706d20

Observation 75e0a60d-cef2-4538-9678-fb46e8274c36 · outbound

This paper cites A usability study of low-cost wireless brain-computer interface for cursor control using online linear model,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A usability study of low-cost wireless brain-computer interface for cursor control using online linear model,

Reference 48

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source=pdf_text observed=2026-08-06T23:49:15.305120Z digest=sha256:3fd9dec87cb34d70ee1355455830d183aa3b811353d1190a1eb8c2abc06b222c

Observation 4b29b340-f95d-46a2-948b-a79c9d9c71cb · outbound

This paper cites Sequence-based manipulation of robotic arm control in brain machine interface,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Sequence-based manipulation of robotic arm control in brain machine interface,

Reference 49

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source=pdf_text observed=2026-08-06T23:49:15.426583Z digest=sha256:97f05710a8bd80f351644ab9385e43c45fbbf3d0d9baec2ee747b47b856d7aa3

Observation 56f18df8-fd9f-4081-88b2-6ea2d3815a40 · outbound

This paper cites Shared autonomy for assistive robotic manipulation with a brain-computer interface: Theory and experiments,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Shared autonomy for assistive robotic manipulation with a brain-computer interface: Theory and experiments,

Reference 50

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source=pdf_text observed=2026-08-06T23:49:15.590184Z digest=sha256:5456a3f96255daafd3907b8b7f030832bed60eabdaabc8c4cb4b9799c47d93da

Observation c8bf1a4d-5bf0-48fe-bc2d-265a920ee56e · outbound

This paper cites A review of classification algorithms for eeg-based brain–computer interfaces: a 10 year update,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A review of classification algorithms for eeg-based brain–computer interfaces: a 10 year update,

Reference 51

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source=pdf_text observed=2026-08-06T23:49:15.752868Z digest=sha256:7be06b886102880529f2fa14a066a66f2b9ee7149e8e9632b4c76b3a103ee3ba

Observation 8eeb5dcc-8529-4436-8499-2ffc0524e741 · outbound

This paper cites Eeg-based brain–computer interfaces,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Eeg-based brain–computer interfaces,

Reference 52

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source=pdf_text observed=2026-08-06T23:49:15.862576Z digest=sha256:00ad8fb3b9d07762be0abfad6095486cfbc5f3e70de34de573bf89a084e2d6d3

Observation d1b33f2f-8bb2-4a0d-9e9c-80d1d101a8ab · outbound

This paper cites Human-centered shared autonomy in brain–computer interfaces: A survey,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Human-centered shared autonomy in brain–computer interfaces: A survey,

Reference 53

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source=pdf_text observed=2026-08-06T23:49:15.981151Z digest=sha256:879a6bff5de64b5fc17f03db899237e5b1d357fdd1b0e91a0d95ad608c045346

Observation 8b5453a7-6050-4dd0-a5d2-5bc640f270cb · outbound

This paper cites Plug-and-play control of a brain–computer interface through neural map stabilization,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Plug-and-play control of a brain–computer interface through neural map stabilization,

Reference 54

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source=pdf_text observed=2026-08-06T23:49:16.090509Z digest=sha256:d937f2d06f4f02836774732b8b621e5d2bdf43399a93314117bcb256d5b6413a

Observation 78bc9e78-c10e-44d3-bdd5-14f4a4bb1d28 · outbound

This paper cites Sampling representational plasticity of simple imagined movements across days enables long-term neuroprosthetic control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Sampling representational plasticity of simple imagined movements across days enables long-term neuroprosthetic control,

Reference 55

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source=pdf_text observed=2026-08-06T23:49:16.197246Z digest=sha256:40c080925ce94eba1c58964aade4e44840eb32db54598c827ab2b62169cf86c8

Observation 5380a7b4-ef10-4f31-ab1a-a21dd55617e9 · outbound

This paper cites Event-related eeg/meg synchronization and desynchronization: basic principles,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Event-related eeg/meg synchronization and desynchronization: basic principles,

Reference 56

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source=pdf_text observed=2026-08-06T23:49:16.288205Z digest=sha256:5d7dad09a58a634902df21d11250dbf3dc7293881ab6ef4d1dc2972ba96dabac

Observation 62cb9759-805e-4f71-bb98-ac3a42e17085 · outbound

This paper cites Processing of myoelectric signals for controlling powered limb prostheses,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Processing of myoelectric signals for controlling powered limb prostheses,

Reference 57

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source=pdf_text observed=2026-08-06T23:49:16.388500Z digest=sha256:3e9753c6e513807548bd738e1d5c3419ede2cd3d8deb9990b8d675772ca10735

Observation 4256f85d-38b0-49e9-ab46-7fea6b6f9e34 · outbound

This paper cites Bci2000: a general-purpose brain-computer interface (bci) system,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Bci2000: a general-purpose brain-computer interface (bci) system,

Reference 58

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source=pdf_text observed=2026-08-06T23:49:16.506686Z digest=sha256:faf9c0463a075312688dee0117a2fa1e2b48ef613a34339d49967912a60a11bf

Observation ce21ea0b-9498-4a2a-9490-d22008ca58d2 · outbound

This paper cites Combining eeg and emg for improved intention recognition in upper-limb prosthesis control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Combining eeg and emg for improved intention recognition in upper-limb prosthesis control,

Reference 59

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source=pdf_text observed=2026-08-06T23:49:16.624552Z digest=sha256:f39617b68ac0e8d1d664d92f1e2ce346955298aef083e6c433430e646006f206

Observation b04d018c-e813-494a-affb-c419a6f23004 · outbound

This paper cites Brain-computer interface controlled robotic gait orthosis,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Brain-computer interface controlled robotic gait orthosis,

Reference 60

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source=pdf_text observed=2026-08-06T23:49:16.769396Z digest=sha256:4d0e200c091347d201dfc9f10022991d5b7c86f56a48ab9d72573f55708741fe

Observation 64a237d4-2226-48e6-b8cf-b914436f37e4 · outbound

This paper cites Hybrid human-machine interface for gait decoding through bayesian fusion of eeg and emg classifiers,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Hybrid human-machine interface for gait decoding through bayesian fusion of eeg and emg classifiers,

Reference 61

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source=pdf_text observed=2026-08-06T23:49:16.926063Z digest=sha256:8cfbe4a47478e174e7df99b707f7e6ed541757fd5bc58f5929ac11fa8110006d

Observation 77aa9980-b404-4f22-8b66-1668de4c2140 · outbound

This paper cites Towards passive brain–computer interfaces: applying brain–computer interface technology to human–machine systems in general,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Towards passive brain–computer interfaces: applying brain–computer interface technology to human–machine systems in general,

Reference 62

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source=pdf_text observed=2026-08-06T23:49:17.044607Z digest=sha256:f02b8d72f14058cba446834acc84b692aac6ac370bdbf6e1eee4a201cc8e128b

Observation 09268d69-33e0-4176-97b4-8f760901bf39 · outbound

This paper cites Bci demographics: how many (and what kinds of) people can use an ssvep bci?.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Bci demographics: how many (and what kinds of) people can use an ssvep bci?

Reference 63

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source=pdf_text observed=2026-08-06T23:49:17.179391Z digest=sha256:3ca5fc11cad4876232cba30a974e7b6cbd8b92c90ea7822b14688bdc8a1cda84

Observation 39b1048e-a338-4e94-ac6c-c44157af7ae5 · outbound

This paper cites Eeglab: an open source toolbox for analysis of single-trial eeg dynamics including independent component analysis,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Eeglab: an open source toolbox for analysis of single-trial eeg dynamics including independent component analysis,

Reference 64

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source=pdf_text observed=2026-08-06T23:49:17.308103Z digest=sha256:8a6198683b8029d67cb1646b69e76aa065c0ab056129018f32c9460d51fca386

Observation a58e8d1d-1f16-4df0-a078-4b198e87085d · outbound

This paper cites Methods for artifact detection and removal from scalp eeg: a review,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Methods for artifact detection and removal from scalp eeg: a review,

Reference 65

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source=pdf_text observed=2026-08-06T23:49:17.484023Z digest=sha256:dafa53ac07ed15364286dff039e551a85d019ff121f9b46377ed6e62b8671532

Observation ac135e29-8fc1-462a-8ffa-484559b1dec5 · outbound

This paper cites Measuring phase synchrony in brain signals,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Measuring phase synchrony in brain signals,

Reference 66

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source=pdf_text observed=2026-08-06T23:49:17.598012Z digest=sha256:79ac6bae2907e1e7c57b3a89bed24e0d10cc444a049ef353f82c3be4ed55d06f

Observation 07e23473-fd19-4f80-bc40-6259da44c965 · outbound

This paper cites Optimizing spatial filters for robust eeg single-trial analysis,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Optimizing spatial filters for robust eeg single-trial analysis,

Reference 67

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source=pdf_text observed=2026-08-06T23:49:17.692396Z digest=sha256:6f0752271e17651d9ad28d8393ab2dbc808068e11956888bc59f79a1c7c4f08e

Observation d25e7735-89fb-4a3d-b45d-73637201e05e · outbound

This paper cites Filter bank common spatial pattern (fbcsp) in brain–computer interface,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Filter bank common spatial pattern (fbcsp) in brain–computer interface,

Reference 68

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source=pdf_text observed=2026-08-06T23:49:17.802707Z digest=sha256:609f90f7e4ad5d8ec614c031f0ee899e5bbaa7b6503c2fe16087fcf84aae1600

Observation 04850e30-6eb7-4856-9aff-3f6d0bb3c3f3 · outbound

This paper cites A new strategy for multifunction myoelectric control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A new strategy for multifunction myoelectric control,

Reference 69

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source=pdf_text observed=2026-08-06T23:49:17.928297Z digest=sha256:b1d3a51235eab8f8271316d4f402baaf1901e690abb3bfecfb050f5dc1fe463d

Observation 04b9d5ee-62d9-476a-861c-2acc46e04e12 · outbound

This paper cites Classification of the myoelectric signal using time-frequency based representations,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Classification of the myoelectric signal using time-frequency based representations,

Reference 70

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source=pdf_text observed=2026-08-06T23:49:18.075554Z digest=sha256:37206a676167ef13fbf416162378a2a3a62f9b0f633144f523bcf121cc9c6aed

Observation 3c1cfedd-c4d8-4d35-8dfb-5de4418df6a0 · outbound

This paper cites Feature extraction and selection for myoelectric control based on wearable emg sensors,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Feature extraction and selection for myoelectric control based on wearable emg sensors,

Reference 71

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source=pdf_text observed=2026-08-06T23:49:18.222035Z digest=sha256:21b7c9c76e7817de3875691b67ea2aa4e9ceb5444ca7e000f57f9edc415a7535

Observation bdbf4f83-b9b3-405c-b0b7-58b258b09a3d · outbound

This paper cites Eegnet: a compact convolutional neural network for eeg-based brain–computer interfaces,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Eegnet: a compact convolutional neural network for eeg-based brain–computer interfaces,

Reference 72

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source=pdf_text observed=2026-08-06T23:49:18.339363Z digest=sha256:6eacc1d138fb0f0fa7dcb38d8d56a38b063f0f62ffc520bc897b2b7ddd3e73f2

Observation 59b177de-af19-4d21-957b-e8e6e8faf366 · outbound

This paper cites Chrononet: A deep recurrent neural network for abnormal eeg identification,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Chrononet: A deep recurrent neural network for abnormal eeg identification,

Reference 73

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source=pdf_text observed=2026-08-06T23:49:18.489138Z digest=sha256:cd370ef401cb1d1a892dad12264a282ea8cd5600103a1875092c0494441b73e9

Observation f6177f24-b416-4b46-94eb-1fe09e39eab8 · outbound

This paper cites Deep learning with convolutional neural networks for eeg decoding and visualization,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Deep learning with convolutional neural networks for eeg decoding and visualization,

Reference 74

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source=pdf_text observed=2026-08-06T23:49:18.646192Z digest=sha256:70ad933b970ebb8709acde4b1c7edd9f389f96133b489105aed1e192d1a33fe9

Observation ee3f7153-e8b6-4e22-bb69-89f5ea2c1470 · outbound

This paper cites Towards adaptive classification for bci,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Towards adaptive classification for bci,

Reference 75

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source=pdf_text observed=2026-08-06T23:49:18.770109Z digest=sha256:cbc27d824d2cb8a840b9b8d8263eb832164c410cfe31d673668845ca51d6eb2c

Observation 816e5620-e609-432a-9b39-f498c4193e41 · outbound

This paper cites Towards a cure for bci illiteracy,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Towards a cure for bci illiteracy,

Reference 76

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source=pdf_text observed=2026-08-06T23:49:18.890006Z digest=sha256:30019523d0f49aab81903c867b97a6114116444ba73c7956467b44d8df238430

Observation c129cd0e-1a53-473a-94b9-bb8c2336ac14 · outbound

This paper cites Brain-machine interfaces: a tale of two learners,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Brain-machine interfaces: a tale of two learners,

Reference 77

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source=pdf_text observed=2026-08-06T23:49:19.031628Z digest=sha256:06c860502236489f81df1bc83450698c9711d2f22bab89539fb5ca97fa64fa91

Observation 0a98e3b9-2d9e-4089-92f7-bcfcdbc7cc88 · outbound

This paper cites A real-time interface based on the p300 speller,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A real-time interface based on the p300 speller,

Reference 78

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source=pdf_text observed=2026-08-06T23:49:19.161473Z digest=sha256:4631e2e2adc7768c82124f233cfe49dac19fa4a3b72d84373c1c85f51448aac3

Observation b79b17ed-3e4f-4762-bae2-cd61175706e3 · outbound

This paper cites Toward self-paced brain–computer communication: navigation through virtual worlds,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Toward self-paced brain–computer communication: navigation through virtual worlds,

Reference 79

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source=pdf_text observed=2026-08-06T23:49:19.235498Z digest=sha256:16ea0f3d860b37bf77dd2efefe1cb5799c94044e96744a22c732cb5358c3ed55

Observation bf4bbb5b-a60f-4c38-b435-7797e30d84d4 · outbound

This paper cites an unresolved cited work.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Unresolved cited work

Reference 80

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source=pdf_text observed=2026-08-06T23:49:19.295095Z digest=sha256:7f2bc9ffd4dd075697b6f6d83f45fc17af702a1cc2756a1842b07d41cb0f0fb2

Observation 36fd2b80-e922-4b49-ae38-4ee153528069 · outbound

This paper cites an unresolved cited work.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Unresolved cited work

Reference 81

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source=pdf_text observed=2026-08-06T23:49:19.347825Z digest=sha256:44864a3012b3f0c8609b23625463f6bc35eeb5756bb399cd4a25a05973b785bf

Observation be9911c3-f57a-4784-87a5-c34a08668e77 · outbound

This paper cites Brain–computer interface spellers: A review,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Brain–computer interface spellers: A review,

Reference 82

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source=pdf_text observed=2026-08-06T23:49:19.427199Z digest=sha256:2fdd496a1cd2d189833fb2a81f26bbafeef90e7a32c90fe61d419ce2bf91bfbf

Observation 60737d0e-ee40-40d5-bc3b-72426892896a · outbound

This paper cites Toward enhanced p300 speller performance,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Toward enhanced p300 speller performance,

Reference 83

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source=pdf_text observed=2026-08-06T23:49:19.494837Z digest=sha256:d656b91c1ad14168433a448a22f4266eafe861d55fe536c327e4b0cc865469ed

Observation df1d572d-ed01-4dc6-8458-90a2317a4e6a · outbound

This paper cites The berlin brain–computer interface: non-medical uses of bci technology,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications The berlin brain–computer interface: non-medical uses of bci technology,

Reference 84

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source=pdf_text observed=2026-08-06T23:49:19.556622Z digest=sha256:094f32b299460e6fd25d56d88130c640eecdb8482488bd8dcd119cd92c5727c8

Observation bc6d547c-a378-4867-baaf-874b9d477713 · outbound

This paper cites Learning Representations from EEG with Deep Recurrent-Convolutional Neural Networks.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Learning Representations from EEG with Deep Recurrent-Convolutional Neural Networks

Reference 85

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source=pdf_text observed=2026-08-06T23:49:19.647557Z digest=sha256:02a194a1feafc2223e4b04198037066290c7a0ac391090cd50d49ce28374b051

Observation 76cbb95c-87a9-4d4d-be44-8079fc84f4a8 · outbound

This paper cites Convolutional neural network for multi-category rapid serial visual presentation bci,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Convolutional neural network for multi-category rapid serial visual presentation bci,

Reference 86

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source=pdf_text observed=2026-08-06T23:49:19.740129Z digest=sha256:5479aadd7de73b4cd299d52f1b8a57333f18fdde4c3bdee78a609083fcdb80ed

Observation b9bf89d6-c0b2-481b-b49d-50d8b457a263 · outbound

This paper cites Eeg emotion recognition using dynamical graph convolutional neural networks,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Eeg emotion recognition using dynamical graph convolutional neural networks,

Reference 87

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source=pdf_text observed=2026-08-06T23:49:19.804597Z digest=sha256:4ebb5abb296411f77ec58dade594b58e58be28e958593d2c81251242ec5d3324

Observation 4bef0f18-8f21-45cd-b815-1817e0806573 · outbound

This paper cites Investigating critical frequency bands and channels for eeg-based emotion recognition with deep neural networks,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Investigating critical frequency bands and channels for eeg-based emotion recognition with deep neural networks,

Reference 88

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source=pdf_text observed=2026-08-06T23:49:19.876926Z digest=sha256:304f6d932431f487fd5fd7c9bb1684007ffd4b966e6f4fb4966e079103c0387c

Observation 56240831-8537-4617-8ed2-e424a7eb8a84 · outbound

This paper cites Transfer learning in brain-computer interfaces,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Transfer learning in brain-computer interfaces,

Reference 89

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source=pdf_text observed=2026-08-06T23:49:19.933151Z digest=sha256:b56e04b144096881e6eb80fcb26de250a394e7380a40b7fbe90fd54cf8f17c8a

Observation 2698eafd-ffdf-40aa-abd6-f03c6ecb7977 · outbound

This paper cites Composite common spatial pattern for subject-to-subject transfer,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Composite common spatial pattern for subject-to-subject transfer,

Reference 90

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source=pdf_text observed=2026-08-06T23:49:19.987108Z digest=sha256:bca7d9dcf9c099a81c12425b4cacbdc048d262ef9de308d16e0e83382dc8edbc

Observation 1bb127d8-283a-41a7-b864-13426a9079b8 · outbound

This paper cites Closed-loop decoder adaptation shapes neural plasticity for skillful neuroprosthetic control,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Closed-loop decoder adaptation shapes neural plasticity for skillful neuroprosthetic control,

Reference 91

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source=pdf_text observed=2026-08-06T23:49:20.030383Z digest=sha256:5ca9e750baeda04c4ecb9972052e750eae077e13aed2fc0ca3e239bb17a8562d

Observation 865682f4-d540-4a44-9e5d-a4ef6253c829 · outbound

This paper cites Learning algorithms for human–machine interfaces,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Learning algorithms for human–machine interfaces,

Reference 92

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source=pdf_text observed=2026-08-06T23:49:20.108066Z digest=sha256:d46260c0d347e3a22073994f9790bbeb1bc047d8256574d7c1dc32a81efe734e

Observation 0d781d05-3452-420b-9347-dc0c61e0a3b2 · outbound

This paper cites Development of nasa-tlx (task load index): Results of empirical and theoretical research,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Development of nasa-tlx (task load index): Results of empirical and theoretical research,

Reference 93

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source=pdf_text observed=2026-08-06T23:49:20.173030Z digest=sha256:5e6212cd096259882a6faaacc9613a84c600e0d91f72e8f368c7fe7ea0022e5b

Observation 3d7670a4-bb28-41bb-b6e8-d81d9b1c3e00 · outbound

This paper cites Sus-a quick and dirty usability scale,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Sus-a quick and dirty usability scale,

Reference 94

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source=pdf_text observed=2026-08-06T23:49:20.227274Z digest=sha256:0ed70e6af14a7aa4bc9adea17f5aafcbdda8a9904d0fb6ca9bc1a97b40354ad3

Observation 771509ab-b9a7-4639-988a-c4ad34d97433 · outbound

This paper cites Rehabilitation of upper limb motor impairment in stroke: a narrative review on the prevalence, risk factors, and economic statistics of stroke and state of the art therapies,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Rehabilitation of upper limb motor impairment in stroke: a narrative review on the prevalence, risk factors, and economic statistics of stroke and state of the art therapies,

Reference 95

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source=pdf_text observed=2026-08-06T23:49:20.281597Z digest=sha256:0d29a86ba3952a10ebb6626e5af8ebfffb236c9e69dd1218caf048ebd3fcc1f8

Observation 251c39a4-3071-4649-8e70-dc22e35b3e61 · outbound

This paper cites Robotic assistive and rehabilitation devices leading to motor recovery in upper limb: a systematic review,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Robotic assistive and rehabilitation devices leading to motor recovery in upper limb: a systematic review,

Reference 96

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source=pdf_text observed=2026-08-06T23:49:20.370682Z digest=sha256:b37226bbc65e3e64f47d0caf8fa614f027772bbc5a9a991b436387df648ed8fb

Observation 2e2de039-dc01-4921-8cb8-1bcad94ce262 · outbound

This paper cites A review on upper limb rehabilitation robots,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A review on upper limb rehabilitation robots,

Reference 97

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source=pdf_text observed=2026-08-06T23:49:20.434849Z digest=sha256:ffeb7255316bc7f7c227f5856948b8d0885195047587285c874ee73c53d8d333

Observation c1c8dcbe-36dd-4cff-9b00-a61f7038f6ec · outbound

This paper cites A survey on robotic devices for upper limb rehabilitation,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications A survey on robotic devices for upper limb rehabilitation,

Reference 98

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source=pdf_text observed=2026-08-06T23:49:20.512016Z digest=sha256:7a650f8c4f45ddb1b69a39a9f44165d83dfcb0ca2d38f765607ffc39c8f7f3cc

Observation d5338551-9448-4a33-850d-5221abfc1cb4 · outbound

This paper cites Affordable robotics for upper limb stroke rehabilitation in developing countries: a systematic review,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Affordable robotics for upper limb stroke rehabilitation in developing countries: a systematic review,

Reference 99

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source=pdf_text observed=2026-08-06T23:49:20.607317Z digest=sha256:d334aca3394396143a519a19b348d1f38351e6b24ba88c02bcf663172566dac4

Observation 8bae9c30-665b-4d87-a687-fa08cc4232f7 · outbound

This paper cites Development of robot-based upper limb devices for rehabilitation purposes: a systematic review,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Development of robot-based upper limb devices for rehabilitation purposes: a systematic review,

Reference 100

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source=pdf_text observed=2026-08-06T23:49:20.691779Z digest=sha256:c916284cf3bfbe88418203d3df823380a3882b66eb4f5bc11046856ca3f224d7

Observation c6fcd118-b53e-43cc-a56c-09d74d84a8ec · outbound

This paper cites Affordable stroke therapy in high-, low-and middle-income countries: From theradrive to rehab cares, a compact robot gym,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Affordable stroke therapy in high-, low-and middle-income countries: From theradrive to rehab cares, a compact robot gym,

Reference 101

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source=pdf_text observed=2026-08-06T23:49:20.763505Z digest=sha256:ffc521a3950107efc3921f97781de534db0b7ad4c2b9dd84c5afee59b4fa2a42

Observation e1713066-9485-4c11-b8ce-38a2813762c8 · outbound

This paper cites Robotic devices for movement therapy after stroke: current status and challenges to clinical acceptance,.

Human-Centered Shared Autonomy for Motor Planning, Learning, and Control Applications Robotic devices for movement therapy after stroke: current status and challenges to clinical acceptance,

Reference 102

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source=pdf_text observed=2026-08-06T23:49:20.871407Z digest=sha256:7af81095342a0538ccde454a13a08dc93717e8bb09d564a46043b5f1dc6a5d95

Pith citing papers

No inbound Pith citation observations are available.