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Paper Citation Record · LEDGER

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers

As of 22 August 2026, this Paper Citation Record lists 76 of 76 outbound references and 0 inbound Pith citation observations for arXiv:2603.23723.

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2603.23723 v2

Coverage vector

measured 76 of 76 reference resolution

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measured 76 of 76 standing notices

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

76 of 76 outbound references displayed

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Outbound references

Observation ee69361e-afe4-40db-84b2-7ea689b47d5d · outbound

This paper cites Some experiments on the recognition of speech, with one and two ears,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Some experiments on the recognition of speech, with one and two ears,

Reference 1

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Observation 5e05d736-96d3-459b-b225-888eb763e09a · outbound

This paper cites Neural target speech extraction: An overview,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Neural target speech extraction: An overview,

Reference 2

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Observation 78731d87-57e1-4c11-9e26-8a22e0758512 · outbound

This paper cites Multi-channel speech separation using spatially selective deep non-linear filters,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Multi-channel speech separation using spatially selective deep non-linear filters,

Reference 3

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Observation fedab810-e774-4770-bc5a-d81ba15107a8 · outbound

This paper cites Spatially selective speaker separation using a DNN with a location dependent feature extraction,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Spatially selective speaker separation using a DNN with a location dependent feature extraction,

Reference 4

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Observation d6b6239b-84db-480e-aca9-ce635782dc0b · outbound

This paper cites Insights into deep non-linear filters for im- proved multi-channel speech enhancement,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Insights into deep non-linear filters for im- proved multi-channel speech enhancement,

Reference 5

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Observation 7c44709b-169b-40d3-93ff-250b091ac5d4 · outbound

This paper cites End-to-end DOA-guided speech extraction in noisy multi-talker scenarios,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers End-to-end DOA-guided speech extraction in noisy multi-talker scenarios,

Reference 6

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Observation 45c87fd2-5a4f-47ae-a46e-e98d8031c838 · outbound

This paper cites All neural low- latency directional speech extraction,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers All neural low- latency directional speech extraction,

Reference 7

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Observation 279522c4-a177-4e1b-b16d-3ac12afac8e8 · outbound

This paper cites ReZero: Region-customizable sound extraction,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers ReZero: Region-customizable sound extraction,

Reference 8

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Observation dda3c1fc-9a22-427d-aad2-95d883660893 · outbound

This paper cites Multichannel-to-multichannel target sound extraction using direction and timestamp clues,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Multichannel-to-multichannel target sound extraction using direction and timestamp clues,

Reference 9

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Observation 33dc0c9f-3cf9-4c6c-b6d6-85757e3c0d5d · outbound

This paper cites Location-aware target speaker extraction for hearing aids,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Location-aware target speaker extraction for hearing aids,

Reference 10

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Observation 766a63cc-10dc-4467-8524-bee44c5fa861 · outbound

This paper cites Continuous speech separation: Dataset and analysis,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Continuous speech separation: Dataset and analysis,

Reference 11

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Observation 7bcda0f7-0e26-4360-b011-b3ad0825631a · outbound

This paper cites The fifth ’CHiME’ speech separation and recognition challenge: Dataset, task and base- lines,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers The fifth ’CHiME’ speech separation and recognition challenge: Dataset, task and base- lines,

Reference 12

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Observation 3e56abaf-a973-449e-9b48-133fb1173ced · outbound

This paper cites Steering deep non-linear spatially selective filters for weakly guided extraction of moving speakers in dynamic scenarios,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Steering deep non-linear spatially selective filters for weakly guided extraction of moving speakers in dynamic scenarios,

Reference 13

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Observation 935d93cf-aefd-4c2a-ba6e-353e7c333528 · outbound

This paper cites Self-steering deep non-linear spatially selective filters for efficient extraction of moving speakers under weak guidance,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Self-steering deep non-linear spatially selective filters for efficient extraction of moving speakers under weak guidance,

Reference 14

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Observation 18f07475-e2ae-48db-b279-f491d0a5c387 · outbound

This paper cites Adaptive rotary steering with joint autoregression for robust extraction of closely moving speakers in dynamic scenarios,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Adaptive rotary steering with joint autoregression for robust extraction of closely moving speakers in dynamic scenarios,

Reference 15

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Observation 9a946ab7-f424-4396-b4f8-74647a2f6076 · outbound

This paper cites Robust sound source tracking using SRP-PHAT and 3D convolutional neural networks,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Robust sound source tracking using SRP-PHAT and 3D convolutional neural networks,

Reference 16

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Observation 7ffcc3f0-eaa6-446d-b85d-44d07d9e6dd6 · outbound

This paper cites Exploiting temporal context in CNN based multisource DoA estimation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Exploiting temporal context in CNN based multisource DoA estimation,

Reference 17

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Observation cb044c9e-8063-4872-b038-87aed62d3c28 · outbound

This paper cites SRP-DNN: Learning direct-path phase difference for multiple moving sound source localization,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers SRP-DNN: Learning direct-path phase difference for multiple moving sound source localization,

Reference 18

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Observation d7f907ae-e77d-48fe-9443-a3e297e383bf · outbound

This paper cites FN-SSL: Full-band and narrow-band fusion for sound source localization,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers FN-SSL: Full-band and narrow-band fusion for sound source localization,

Reference 19

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Observation adaf68ee-d742-4a61-9787-6bbae715e1ff · outbound

This paper cites TF-Mamba: A time-frequency network for sound source localization,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers TF-Mamba: A time-frequency network for sound source localization,

Reference 20

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Observation 56c34e62-b9c9-4bfd-9e13-054bfd6966d0 · outbound

This paper cites A convolutional recurrent neural network for real-time speech enhancement,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers A convolutional recurrent neural network for real-time speech enhancement,

Reference 21

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Observation fece998f-58e1-4b36-9f4e-8e61cdf15c31 · outbound

This paper cites Real time speech enhancement in the waveform domain,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Real time speech enhancement in the waveform domain,

Reference 22

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Observation 165299e8-d76f-48d6-a69a-24987a9ae63e · outbound

This paper cites Towards efficient models for real-time deep noise suppression,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Towards efficient models for real-time deep noise suppression,

Reference 23

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Observation d52a1fac-5d43-44a6-8127-d8469af18f22 · outbound

This paper cites Conv-TasNet: Surpassing ideal time–frequency magnitude masking for speech separation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Conv-TasNet: Surpassing ideal time–frequency magnitude masking for speech separation,

Reference 24

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Observation 144f0c58-3480-4a32-98a8-70ccf12e99e0 · outbound

This paper cites An investigation of incorporating Mamba for speech enhancement,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers An investigation of incorporating Mamba for speech enhancement,

Reference 25

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Observation 6e16f423-0b06-4d33-9b2f-52e48566095e · outbound

This paper cites Iterative autoregression: A novel trick to improve your low-latency speech enhancement model,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Iterative autoregression: A novel trick to improve your low-latency speech enhancement model,

Reference 26

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Observation c5b7d636-5042-45fc-8ba5-07247f6a66d8 · outbound

This paper cites PARIS: Pseudo-autoregressive siamese training for online speech separation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers PARIS: Pseudo-autoregressive siamese training for online speech separation,

Reference 27

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Observation 602d12e5-07c4-474d-8e6b-51b5cdac9e22 · outbound

This paper cites ARiSE: Auto-regressive multi- channel speech enhancement,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers ARiSE: Auto-regressive multi- channel speech enhancement,

Reference 28

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Observation c65b9c72-8fae-4eb6-940a-1c36a07f7539 · outbound

This paper cites A wrapped Kalman filter for azimuthal speaker tracking,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers A wrapped Kalman filter for azimuthal speaker tracking,

Reference 29

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Observation 422f8c83-e3d1-4fda-8e04-686589201289 · outbound

This paper cites Particle filtering algorithms for tracking an acoustic source in a reverberant environment,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Particle filtering algorithms for tracking an acoustic source in a reverberant environment,

Reference 30

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Observation 7a8ca5bb-8f57-4d16-8a06-283993dfbd4a · outbound

This paper cites Social force model for pedestrian dynamics,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Social force model for pedestrian dynamics,

Reference 31

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Observation 28b2f17c-0a6b-4eea-8838-9a73f36215de · outbound

This paper cites Benesty, G.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Benesty, G

Reference 32

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Observation e256661e-9c44-49b0-a8f5-a478969c9af4 · outbound

This paper cites S ¨arkk¨a,Bayesian Filtering and Smoothing.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers S ¨arkk¨a,Bayesian Filtering and Smoothing

Reference 33

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Observation cb629f12-d681-4107-99d0-b321fc7899df · outbound

This paper cites A new approach to linear filtering and prediction problems,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers A new approach to linear filtering and prediction problems,

Reference 34

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Observation e70cf4e6-4467-41ec-851e-f88e2faf32e9 · outbound

This paper cites Survey of maneuvering target tracking. Part I. Dynamic models,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Survey of maneuvering target tracking. Part I. Dynamic models,

Reference 35

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Observation 04f5a10a-33e0-43b0-a1f3-cc929b8134ce · outbound

This paper cites Particle filtering approaches for multiple acoustic source detection and 2-D direction of arrival estimation using a single acoustic vector sensor,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Particle filtering approaches for multiple acoustic source detection and 2-D direction of arrival estimation using a single acoustic vector sensor,

Reference 36

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Observation 94c5b0b5-7cf2-4858-b8db-8d86cff6b7ff · outbound

This paper cites Particle filter algorithm for DoA tracking using co-prime array,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Particle filter algorithm for DoA tracking using co-prime array,

Reference 37

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source=pdf_text observed=2026-08-02T17:38:15.983779Z digest=sha256:2146203e0fe7a38630ac8e17bab636ca303036ab73ddeb432afa822f4a911432

Observation 889cc773-1818-492f-a7ed-a3168d227135 · outbound

This paper cites Multichannel source separation and tracking with phase dif- ferences by random sample consensus,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Multichannel source separation and tracking with phase dif- ferences by random sample consensus,

Reference 38

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source=pdf_text observed=2026-08-02T17:38:15.987779Z digest=sha256:a35e12ae4634fb4b37010f6f702c9997b6bf370551358fa72b7b885eeb622605

Observation 8c62378b-dffc-45a5-afa7-0e3815d9d904 · outbound

This paper cites A low complexity weighted least squares narrowband DOA estimator for arbitrary array geometries,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers A low complexity weighted least squares narrowband DOA estimator for arbitrary array geometries,

Reference 39

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source=pdf_text observed=2026-08-02T17:38:15.991931Z digest=sha256:c2b27efc5c5cd68006b60935b33fbbec0ccc9d247cd4c46742423741231b06e1

Observation def22d75-953a-4843-8512-fb561331ffa8 · outbound

This paper cites an unresolved cited work.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Unresolved cited work

Reference 40

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source=pdf_text observed=2026-08-02T17:38:15.996426Z digest=sha256:6c2a1d9d0946d49281e2c7169c3188454fe74b6d4a4811efbbd45d40e7613097

Observation 65296b05-cb74-49e2-9f09-eabb54d3b439 · outbound

This paper cites Novel approach to nonlinear/non-Gaussian Bayesian state estimation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Novel approach to nonlinear/non-Gaussian Bayesian state estimation,

Reference 41

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source=pdf_text observed=2026-08-02T17:38:16.000266Z digest=sha256:9dcf1172324a0bde490d3c3b34b70c3df77810e080b9117256ce1ccf19e207a5

Observation 660f57e0-5846-4e5b-a588-a322750ece1f · outbound

This paper cites A tutorial on particle filters for online nonlinear/non-Gaussian Bayesian tracking,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers A tutorial on particle filters for online nonlinear/non-Gaussian Bayesian tracking,

Reference 42

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source=pdf_text observed=2026-08-02T17:38:16.004522Z digest=sha256:d686651d87213e44a33fbd4cf4e5dc3ff5d8305e5a665f062b180fa71fedb77c

Observation a773220f-0cdb-45ab-b2d1-50b760ecb59e · outbound

This paper cites DOA-estimation based on a complex Watson kernel method,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers DOA-estimation based on a complex Watson kernel method,

Reference 43

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source=pdf_text observed=2026-08-02T17:38:16.008766Z digest=sha256:70517e21b4ee3ec9bdb5b5681920216c50191aff07b35c3a7fd1099f3eb8382d

Observation 1b20af9a-a3bc-43ad-84af-1ea524c2b452 · outbound

This paper cites Target speaker localization based on the complex Watson mixture model and time-frequency selection neural network,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Target speaker localization based on the complex Watson mixture model and time-frequency selection neural network,

Reference 44

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source=pdf_text observed=2026-08-02T17:38:16.013094Z digest=sha256:ca60baac92f12100f4a4239b846fc7cd9645d438dfa8659769ec053f7ded1b78

Observation 6fc88b72-b8db-44ca-8d8b-1b5bbcbfb02f · outbound

This paper cites On optimal multichannel mean-squared error estimators for speech enhancement,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers On optimal multichannel mean-squared error estimators for speech enhancement,

Reference 45

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source=pdf_text observed=2026-08-02T17:38:16.017545Z digest=sha256:4740102049021ebb02e78df8ab8d8d2228821cb125acf6264951a0e5541b1e83

Observation 04d75ef4-413d-4f6f-8db6-94f17d9bd064 · outbound

This paper cites an unresolved cited work.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Unresolved cited work

Reference 46

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source=pdf_text observed=2026-08-02T17:38:16.021724Z digest=sha256:6fbd1be29e9af939d18ab2869f915e7e73b26cb0b2df1c3f5795075bc0b69437

Observation 38977103-5366-4645-8573-c1e485fc2258 · outbound

This paper cites Particle filter with integrated voice activity detection for acoustic source tracking,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Particle filter with integrated voice activity detection for acoustic source tracking,

Reference 47

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source=pdf_text observed=2026-08-02T17:38:16.026087Z digest=sha256:fae30d1290613fed531ae3ac2e02e74017aed0c59052c17b3d973c960ffc4faf

Observation 3fee10fc-fb48-45ed-94d1-0da44dae1ee1 · outbound

This paper cites GCC-Speaker: Target speaker localization with optimal speaker-dependent weighting in multi-speaker scenarios,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers GCC-Speaker: Target speaker localization with optimal speaker-dependent weighting in multi-speaker scenarios,

Reference 48

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source=pdf_text observed=2026-08-02T17:38:16.030178Z digest=sha256:4e1f6a06b2b38a0bf92adfa74ee0e6ea8569f3687fd7c33d7521ecb5e7388d18

Observation b9f7d58c-a8a1-4e6c-9a3d-755e8aa67159 · outbound

This paper cites LocSelect: Target speaker localization with an auditory selective hearing mechanism,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers LocSelect: Target speaker localization with an auditory selective hearing mechanism,

Reference 49

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source=pdf_text observed=2026-08-02T17:38:16.034259Z digest=sha256:4545c21fb8d40c8240307ab8ed479d817a96e12d687c378c9dc136086531b191

Observation ee37fec2-36a0-4e0e-83b6-29105fa7860e · outbound

This paper cites Robust frame-level speaker localization in reverberant and noisy envi- ronments by exploiting phase difference losses,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Robust frame-level speaker localization in reverberant and noisy envi- ronments by exploiting phase difference losses,

Reference 50

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source=pdf_text observed=2026-08-02T17:38:16.038404Z digest=sha256:15e8a5c1df6ae4a8bc4abec8b5d2b8c72ca582226569974e990c663ad21ceee9

Observation 18471bbb-4a4b-4dd0-b959-25b0813f3c57 · outbound

This paper cites Librispeech: An ASR corpus based on public domain audio books,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Librispeech: An ASR corpus based on public domain audio books,

Reference 51

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source=pdf_text observed=2026-08-02T17:38:16.042495Z digest=sha256:940f12e7ec15af6ff6a935150bb76795b4487ce6f2a2c710b41daeec6a10bc9f

Observation c674ac4e-9480-45ce-87b1-90c720f8e70a · outbound

This paper cites LibriMix: An open-source dataset for generalizable speech separation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers LibriMix: An open-source dataset for generalizable speech separation,

Reference 52

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source=pdf_text observed=2026-08-02T17:38:16.046741Z digest=sha256:ab2b9588fc215436e8f2d8e558073eeb3e92715fc31acdcbc27558e203c434d8

Observation 27b19f25-9c7f-4c10-b915-c59fd2a99d56 · outbound

This paper cites gpuRIR: A Python library for room impulse response simulation with GPU acceleration,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers gpuRIR: A Python library for room impulse response simulation with GPU acceleration,

Reference 53

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source=pdf_text observed=2026-08-02T17:38:16.056103Z digest=sha256:e844f871db48aa4ac42771024bec6d1c9bd6398b89008cdcfab5633d94b37afd

Observation 643cb670-5b60-435d-bd42-a7347f56b255 · outbound

This paper cites Image method for efficiently simulating small- room acoustics,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Image method for efficiently simulating small- room acoustics,

Reference 54

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source=pdf_text observed=2026-08-02T17:38:16.060094Z digest=sha256:d1ab376b94a77a2b5ebadbb98ea5ee4c4be1261a68c48898ddd7d643f48059ad

Observation 136c13c8-7027-4a96-901a-eca603b3b334 · outbound

This paper cites Generating sensor signals in isotropic noise fields,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Generating sensor signals in isotropic noise fields,

Reference 55

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source=pdf_text observed=2026-08-02T17:38:16.064192Z digest=sha256:99944db8345b08b26b671a2e1f5e95d1541afcbe39650723bc69b153874cfb8e

Observation f16afa6a-2da7-4e9c-8474-10dede4b7b44 · outbound

This paper cites Mask-based neural beamforming for moving speakers with self-attention-based tracking,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Mask-based neural beamforming for moving speakers with self-attention-based tracking,

Reference 56

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source=pdf_text observed=2026-08-02T17:38:16.068270Z digest=sha256:acaa2b8ae8ffea105530b7457389d2a42ece4f664efab4abbeb122728088dc4d

Observation 84800092-5db8-4008-8ae9-0f51bd753267 · outbound

This paper cites Array geometry-robust attention-based neural beamformer for moving speakers,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Array geometry-robust attention-based neural beamformer for moving speakers,

Reference 57

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source=pdf_text observed=2026-08-02T17:38:16.072019Z digest=sha256:39e73e775d021bdd486702aaffc4d1ac08d10ff74d46d1c5a1a844e3cc0d3c07

Observation 55c988a7-63e2-4c9a-ab26-25299f1ff135 · outbound

This paper cites Characterization of moving sound sources direction-of-arrival estimation using different deep learning architectures,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Characterization of moving sound sources direction-of-arrival estimation using different deep learning architectures,

Reference 58

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source=pdf_text observed=2026-08-02T17:38:16.077621Z digest=sha256:34c81d3c811a6100bee12b1024574783d837c1e16027a33eb185837297bfb8af

Observation c4fe63c5-a5df-4108-bb52-f4202fba74e3 · outbound

This paper cites Goldstein, J.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Goldstein, J

Reference 59

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Observation 3a0d40bb-127b-475d-a7c0-628fac5e0b8c · outbound

This paper cites Outdoor walking speeds of apparently healthy adults: A systematic review and meta-analysis,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Outdoor walking speeds of apparently healthy adults: A systematic review and meta-analysis,

Reference 60

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Observation f31c5547-b84c-42db-9f0f-68f36cb66569 · outbound

This paper cites Specification of the social force pedestrian model by evolutionary adjustment to video tracking data,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Specification of the social force pedestrian model by evolutionary adjustment to video tracking data,

Reference 61

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source=pdf_text observed=2026-08-02T17:38:16.090857Z digest=sha256:cf2ccd7f2f9cc0094c48c64eb67d79fbe6def206d5a133b518ba3e4c57ea7c16

Observation 629a19dc-9ef8-45f3-8fe5-446e86002cb5 · outbound

This paper cites SpatialNet: Extensively learning spatial information for multichannel joint speech separation, denoising and dereverberation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers SpatialNet: Extensively learning spatial information for multichannel joint speech separation, denoising and dereverberation,

Reference 62

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source=pdf_text observed=2026-08-02T17:38:16.095481Z digest=sha256:41e1cace6dfbb6f30f07a10259c68e5ac7f10a840aa1cc7197e05b1b75cd2fe1

Observation b0bd374a-9269-4c22-b604-e19a2042c100 · outbound

This paper cites Mamba: Linear-time sequence modeling with selective state spaces,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Mamba: Linear-time sequence modeling with selective state spaces,

Reference 63

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source=pdf_text observed=2026-08-02T17:38:16.099439Z digest=sha256:1bb4218b822cc5d5e9fa0736df45d8409c9c436feb3a8401a6b5adda37ddd1eb

Observation d33a53dd-9c82-4168-b24e-713dcec5731b · outbound

This paper cites Multichannel long-term streaming neural speech enhancement for static and moving speakers,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Multichannel long-term streaming neural speech enhancement for static and moving speakers,

Reference 64

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source=pdf_text observed=2026-08-02T17:38:16.103642Z digest=sha256:2c6f44e7204b5642f36c36d22e36b36fb58c0585af3ca31159ac1cfafed2c7e5

Observation 0fd51d49-ffe1-42a6-90bb-b078bbd8fcb1 · outbound

This paper cites Leveraging sound source trajectories for universal sound separation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Leveraging sound source trajectories for universal sound separation,

Reference 65

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source=pdf_text observed=2026-08-02T17:38:16.108144Z digest=sha256:17a38d7568120283530613f47de106359548eaf1deeaebc06fde9f8239035b43

Observation 82651d90-30f3-4be2-b6f1-877e4a9cf815 · outbound

This paper cites Recurrent deep stacking networks for supervised speech separation,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Recurrent deep stacking networks for supervised speech separation,

Reference 66

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source=pdf_text observed=2026-08-02T17:38:16.112137Z digest=sha256:de57019eca0286b6fd4f64c4f12bc989533caa0057cf06c5b6f1971d747bc894

Observation b1d7bbb7-3c05-4883-b124-a7ec0c166823 · outbound

This paper cites Perceptual evaluation of speech quality (PESQ)-a new method for speech quality assessment of telephone networks and codecs,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Perceptual evaluation of speech quality (PESQ)-a new method for speech quality assessment of telephone networks and codecs,

Reference 67

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source=pdf_text observed=2026-08-02T17:38:16.116229Z digest=sha256:d3f422ee1e0d430bd7d88fdda2d312a968da708483783bdd94aaf6edad1ab06c

Observation 8270d47f-f88f-4909-8d83-b0db5a9ae679 · outbound

This paper cites An algorithm for predicting the intelligibility of speech masked by modulated noise maskers,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers An algorithm for predicting the intelligibility of speech masked by modulated noise maskers,

Reference 68

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source=pdf_text observed=2026-08-02T17:38:16.120741Z digest=sha256:add182c68a8e5812acdb8b5130e16f6945384131718a92f5fb0933b656f12c72

Observation d9762e82-a8cb-46dc-990d-5dd05c616458 · outbound

This paper cites Sound event localization and detection of overlapping sources using convolutional recurrent neural networks,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Sound event localization and detection of overlapping sources using convolutional recurrent neural networks,

Reference 69

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source=pdf_text observed=2026-08-02T17:38:16.125143Z digest=sha256:69a35ee72148762dae26734df67f6081745960367513df15ea029a6df6afed09

Observation 89f775c4-e22d-43ca-9310-1e3c6d94a8f5 · outbound

This paper cites 6DoF SELD: Sound event localization and detection using microphones and motion tracking sensors on self-motioning human,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers 6DoF SELD: Sound event localization and detection using microphones and motion tracking sensors on self-motioning human,

Reference 70

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source=pdf_text observed=2026-08-02T17:38:16.129271Z digest=sha256:4413810b25152ba373081dd4d98f777bb37e1481640ee7b7fd90d17b2f9d8a70

Observation debe19d3-596f-4faa-b17a-ea84762b030b · outbound

This paper cites The LOCATA challenge: Acoustic source localization and tracking,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers The LOCATA challenge: Acoustic source localization and tracking,

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source=pdf_text observed=2026-08-02T17:38:16.133225Z digest=sha256:049230a8061ffb21a8d541c1d18edc7baf27a875521471d52603619c9a8fb635

Observation cfdf87fc-730d-4fbc-92c3-0802a6d63b4c · outbound

This paper cites SDR – Half- baked or well done?.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers SDR – Half- baked or well done?

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Observation e7a31caf-0005-41fd-98a4-90ef989a15e9 · outbound

This paper cites Fairbanks,Voice and Articulation Drillbook.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers Fairbanks,Voice and Articulation Drillbook

Reference 73

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Observation 427d97d9-d5b7-419f-a4ef-fbfadac37598 · outbound

This paper cites NISQA: A deep CNN- self-attention model for multidimensional speech quality prediction with crowdsourced datasets,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers NISQA: A deep CNN- self-attention model for multidimensional speech quality prediction with crowdsourced datasets,

Reference 74

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Observation 939fb81f-73c0-4b11-9966-a9d900853f15 · outbound

This paper cites NeMo: A toolkit for building AI applica- tions using neural modules,.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers NeMo: A toolkit for building AI applica- tions using neural modules,

Reference 75

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source=pdf_text observed=2026-08-02T17:38:16.149221Z digest=sha256:d689c08bc424b8867b126c35adc0507692ca85e66b5a6fd8bc642e2f5e074c8b

Observation 3b04f370-561f-4dec-bdea-985215ab7392 · outbound

This paper cites LibriMix: An Open-Source Dataset for Generalizable Speech Separation.

Autoregressive Guidance of Deep Spatially Selective Filters using Bayesian Tracking for Efficient Extraction of Moving Speakers LibriMix: An Open-Source Dataset for Generalizable Speech Separation

Reference 2020

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Pith citing papers

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