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Towards Learning Orientated Assessment for Non-native Learner Spoken…
mi.eng.cam.ac.uk/~kmk/presentations/ALTA_Sheffield_20190306.pdf8 Mar 2019: 300 300. 25.5. 400 24.5. 400 24.4. ASR on Non-native Speech (2). • ... Thai dh d 7.24 oh aa 5.21. 30. • Top 2 recurrent substitution errors for speakers in each L1. -
LEARNING BETWEEN DIFFERENT TEACHER AND STUDENT MODELS IN ASR ...
mi.eng.cam.ac.uk/~mjfg/ALTA/ASRU2019_TS.pdf20 Dec 2019: The derivatives of the per-frame. observation log-likelihoods with respects to the parameters are [24]. ... Work in [24] suggests several methods to improve gra-dient descent training of a GMM. -
BI-DIRECTIONAL LATTICE RECURRENT NEURAL NETWORKSFOR CONFIDENCE…
mi.eng.cam.ac.uk/~ar527/ragni_icassp2019.pdf5 Feb 2019: may include embeddings [24], acoustic andlanguage model scores and other information. ... 24] T. Mikolov, I. Sutskever, K. Chen, S. S. Corrado, and J. -
Applying Deep Learning in Non-native Spoken English Assessment
mi.eng.cam.ac.uk/~kmk/presentations/APSIPA2019_Knill_Keynote.pdf21 Nov 2019: 1.0 indicates within one CEFR grade-level. 24/45. Assessment System Performance. • ... 1.0 indicates within one CEFR grade-level. 24/45. Performance Analysis. 25/45. -
CONFIDENCE ESTIMATION AND DELETION PREDICTION USINGBIDIRECTIONAL…
mi.eng.cam.ac.uk/~mjfg/ALTA/publications/SLT2018_ragni.pdf31 Aug 2019: Thesefeatures may include various statistics extracted from audio, acousticmodels, language models and lattices [24]. ... 24] T. Schaaf and T. Kemp, “Confidence measures for spontaneousspeech recognition,” in ICASSP, 1997. -
SEQUENCE TEACHER-STUDENT TRAINING OF ACOUSTIC MODELS FOR…
mi.eng.cam.ac.uk/~mjfg/ALTA/publications/wang_slt18.pdf25 Feb 2019: It calculates the denominator by directly applying forward-backward computations [23, 24] on an unpruned denominator graphon GPU hardware. ... In Proc. ICASSP, volume 2,pages 605–608, 1996. [24] P. C. Woodland and D. -
BI-DIRECTIONAL LATTICE RECURRENT NEURAL NETWORKSFOR CONFIDENCE…
mi.eng.cam.ac.uk/~mjfg/ALTA/publications/ICASSP2019_li.pdf31 Aug 2019: may include embeddings [24], acoustic andlanguage model scores and other information. ... 24] T. Mikolov, I. Sutskever, K. Chen, S. S. Corrado, and J. -
POUDEL, LIWICKI, CIPOLLA: FAST-SCNN: FAST SEGMENTATION NETWORK 1…
mi.eng.cam.ac.uk/~cipolla/publications/inproceedings/2019-BMVC-Fast-SCNN.pdf12 Aug 2019: 1.1 ContributionsCurrently, semantic segmentation is typically addressed by a DCNN [2, 18, 24, 30]. ... arXiv:1801.04381 [cs], 2018. [24] E. Shelhamer, J. Long, and T. Darrell. -
IMPROVED AUTO-MARKING CONFIDENCE FOR SPOKEN LANGUAGE ASSESSMENT M.…
mi.eng.cam.ac.uk/~mjfg/ALTA/publications/vecchio_slt18.pdf25 Feb 2019: AUCr =AUCmodel AUCradom. AUCoptimal AUCradom. (24). where AUCradom, AUCoptimal and AUCmodel represent thearea under the random, optimal and model back-off curvesrespectively. -
To appear Proc. ICASSP. c©2019 IEEE. Personal use of ...
mi.eng.cam.ac.uk/~mjfg/ALTA/publications/Knill_ICASSP2019_AcceptedPaper.pdf3 Mar 2019: 24.3 23.6 21.0 25.2. -
CONVCRFS: CONVOLUTIONAL CRFS FOR SEMANTIC SEGMENTATION 1…
mi.eng.cam.ac.uk/~cipolla/publications/inproceedings/2019-BMVC-Convolutional-CRF.pdf12 Aug 2019: The CNN is trained for 200 epochs using a batch size of 16 and the adam optimizer [16].The initial learning rate is set to 5105 and polynomially decreased [7, 24] ... Springer, 2014. [24] Wei Liu, Andrew Rabinovich, and Alexander C Berg. -
POUDEL, LIWICKI, CIPOLLA: FAST-SCNN: FAST SEGMENTATION NETWORK 1…
mi.eng.cam.ac.uk/~cipolla/archive/Publications/inproceedings/2019-BMVC-Fast-SCNN.pdf12 Aug 2019: 1.1 ContributionsCurrently, semantic segmentation is typically addressed by a DCNN [2, 18, 24, 30]. ... arXiv:1801.04381 [cs], 2018. [24] E. Shelhamer, J. Long, and T. Darrell. -
A Differential Volumetric Approach to Multi-View Photometric Stereo…
mi.eng.cam.ac.uk/~cipolla/publications/inproceedings/2019-ICCV-Differential-MVPS.pdf12 Aug 2019: Additional realistic ef-fects such as ambient light ([24]) can also be included in theproposed model. ... 2. [24] Fotios Logothetis, Roberto Mecca, Yvain Quéau, andRoberto Cipolla. Near-field photometric stereo in ambientlight. -
Creatures great and SMAL: Recovering theshape and motion of ...
mi.eng.cam.ac.uk/~cipolla/publications/inproceedings/2018-ACCV-3D-animal-shape.pdf12 Aug 2019: The learning rate was decayedby 5% every 10k iterations. Training until convergence took 24 hours on a NvidiaTitan X GPU. ... In: Computer Vision and Pattern Regognition (CVPR). (2018). 24. Wiles, O., Zisserman, A.: Silnet : Single- and multi-view -
SegNet: A Deep Convolutional Encoder-DecoderArchitecture for Image…
mi.eng.cam.ac.uk/~cipolla/publications/article/2017-PAMI-SegNet.pdf11 Sep 2019: We conclude in Section 6. 2 LITERATURE REVIEW. Semantic pixel-wise segmentation is an active topic ofresearch, fuelled by challenging datasets [20], [21], [22], [24],[25]. ... In more recent work [24], both class segmentationand support relationships are -
Orientation-Aware Semantic Segmentation on Icosahedron Spheres Chao…
mi.eng.cam.ac.uk/~cipolla/publications/inproceedings/2019-ICCV-Segmentation-Icosahedron.pdf12 Aug 2019: pedestrian” and“cyclist”) which we attribute to unbalanced dataset. Futurework will incorporate better architectures such as [30, 24]for improved segmentation of small objects. ... In CVPR’16, pages 3234–3243, 2016. [24] Mark Sandler, Andrew -
Multi-Task Learning Using Uncertainty to Weigh Losses for Scene…
mi.eng.cam.ac.uk/~cipolla/publications/inproceedings/2018-CVPR-multi-task-learning.pdf11 Sep 2019: toward feature space analysis. IEEE Transactions on pattern. analysis and machine intelligence, 24(5):603–619, 2002. ... ference on, pages 7304–7308. IEEE, 2013. 1. [24] A. Kendall and Y. -
CONVCRFS: CONVOLUTIONAL CRFS FOR SEMANTIC SEGMENTATION 1…
mi.eng.cam.ac.uk/~cipolla/archive/Publications/inproceedings/2019-BMVC-Convolutional-CRF.pdf12 Aug 2019: The CNN is trained for 200 epochs using a batch size of 16 and the adam optimizer [16].The initial learning rate is set to 5105 and polynomially decreased [7, 24] ... Springer, 2014. [24] Wei Liu, Andrew Rabinovich, and Alexander C Berg. -
A Differential Volumetric Approach to Multi-View Photometric Stereo…
mi.eng.cam.ac.uk/~cipolla/archive/Publications/inproceedings/2019-ICCV-Differential-MVPS.pdf12 Aug 2019: Additional realistic ef-fects such as ambient light ([24]) can also be included in theproposed model. ... 2. [24] Fotios Logothetis, Roberto Mecca, Yvain Quéau, andRoberto Cipolla. Near-field photometric stereo in ambientlight. -
Creatures great and SMAL: Recovering theshape and motion of ...
mi.eng.cam.ac.uk/~cipolla/archive/Publications/inproceedings/2018-ACCV-3D-animal-shape.pdf12 Aug 2019: The learning rate was decayedby 5% every 10k iterations. Training until convergence took 24 hours on a NvidiaTitan X GPU. ... In: Computer Vision and Pattern Regognition (CVPR). (2018). 24. Wiles, O., Zisserman, A.: Silnet : Single- and multi-view -
SegNet: A Deep Convolutional Encoder-DecoderArchitecture for Image…
mi.eng.cam.ac.uk/~cipolla/archive/Publications/article/2017-PAMI-SegNet.pdf11 Sep 2019: We conclude in Section 6. 2 LITERATURE REVIEW. Semantic pixel-wise segmentation is an active topic ofresearch, fuelled by challenging datasets [20], [21], [22], [24],[25]. ... In more recent work [24], both class segmentationand support relationships are -
Orientation-Aware Semantic Segmentation on Icosahedron Spheres Chao…
mi.eng.cam.ac.uk/~cipolla/archive/Publications/inproceedings/2019-ICCV-Segmentation-Icosahedron.pdf12 Aug 2019: pedestrian” and“cyclist”) which we attribute to unbalanced dataset. Futurework will incorporate better architectures such as [30, 24]for improved segmentation of small objects. ... In CVPR’16, pages 3234–3243, 2016. [24] Mark Sandler, Andrew -
RODDICK, KENDALL, CIPOLLA: ORTHOGRAPHIC FEATURE TRANSFORM 1…
mi.eng.cam.ac.uk/~cipolla/publications/inproceedings/2019-BMVC-Orthographic-Feature-Transform.pdf12 Aug 2019: Other workswhich explore the idea of dense 3D proposals in the world space are 3DOP [3] and Phamand Jeon [24], which rely on explicit estimates of depth using stereo geometry. ... Master’sthesis, Czech Technical University in Prague, 2017. [24] Cuong -
Multi-Task Learning Using Uncertainty to Weigh Losses for Scene…
mi.eng.cam.ac.uk/~cipolla/archive/Publications/inproceedings/2018-CVPR-multi-task-learning.pdf11 Sep 2019: toward feature space analysis. IEEE Transactions on pattern. analysis and machine intelligence, 24(5):603–619, 2002. ... ference on, pages 7304–7308. IEEE, 2013. 1. [24] A. Kendall and Y. -
RODDICK, KENDALL, CIPOLLA: ORTHOGRAPHIC FEATURE TRANSFORM 1…
mi.eng.cam.ac.uk/~cipolla/archive/Publications/inproceedings/2019-BMVC-Orthographic-Feature-Transform.pdf12 Aug 2019: Other workswhich explore the idea of dense 3D proposals in the world space are 3DOP [3] and Phamand Jeon [24], which rely on explicit estimates of depth using stereo geometry. ... Master’sthesis, Czech Technical University in Prague, 2017. [24] Cuong
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