Speaker adaptation for word prominence detection:
Saved in:
Main Author: | |
---|---|
Format: | Thesis Book |
Language: | English |
Published: |
Aachen
Shaker Verlag
2018
|
Edition: | 1. Auflage |
Series: | Berichte aus der Informationstechnik
|
Subjects: | |
Online Access: | Inhaltsverzeichnis |
Physical Description: | XI, 122 Seiten Illustrationen, Diagramme 21 cm x 14.8 cm, 206 g |
ISBN: | 9783844059212 3844059210 |
Staff View
MARC
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245 | 1 | 0 | |a Speaker adaptation for word prominence detection |c Andrea Schnall |
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264 | 1 | |a Aachen |b Shaker Verlag |c 2018 | |
300 | |a XI, 122 Seiten |b Illustrationen, Diagramme |c 21 cm x 14.8 cm, 206 g | ||
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490 | 0 | |a Berichte aus der Informationstechnik | |
502 | |b Dissertation |c Technische Universität Darmstadt |d 2018 | ||
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653 | |a Prosody | ||
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Record in the Search Index
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adam_text | C O N TEN TS
LIST O F SYM B OLS V I
A B STRACT V III
1 IN TROD U CTION 1
1.1 CONTRIBUTION
............................................................................
5
1.2 OUTLINE OF THE
DISSERTATION....................................................... 6
2 W ORD PROM IN EN CE D ETE CTIO N IN SPOKEN DIALOG SY STEM S 8
2.1 P RO S O D Y
.....................................................................................
8
2.2 WORD
PROMINENCE......................................................................
9
2.3 WORD PROMINENCE D E TE C TIO N
.................................................... 10
2.3.1 PROSODY IN SPOKEN DIALOG SYSTEM S
..............................
10
2.3.2 FEATURE T Y P E S
................................................................ 12
2.3.3 SYLLABLE OR WORD LEVEL
................................................. 12
2.4 SPEAKER ADAPTATION FOR WORD PROMINENCE D E TE C TIO N
............
13
2.5 S U M M A RY
.............................................
13
3 S Y STEM ARCH ITECTU RE AND COM P ON EN TS 15
3.1 PROPOSED SYSTEM A RC H ITE C TU RE
................................................. 15
3.2 DATA S E T
.....................................................................................
17
3.2.1 SETTING OF THE USED DATA S E T
........................................ 18
3.2.2 A
NNOTATIONS...................................................................
20
3.2.3 SYLLABLE OR WORD LEVEL
................................................. 20
3.3 F E A TU RE
S.....................................................................................
21
3.3.1 AUDIO F E A TU R E S
............................................................. 21
3.3.2 VISUAL F E A TU RE S
............................................................. 23
3.3.3 F U N CTIO N
ALS...................................................................
24
3.3.4 CONTEXT F E A TU R E S
.......................................................... 24
3.3.5 FEATURE NORM
ALIZATION................................................. 25
3.3.6 PRINCIPAL COMPONENT ANALYSIS, P C A
........................
26
3.4 CLASSIFICATION METHODS FOR WORD PROMINENCE DETECTION . . . 27
3.4.1 SUPPORT VECTOR MACHINES, SV M
...................................
28
3.4.2 GAUSSIAN MIXTURE MODELS, G M M ............................... 32
3.4.3 CONDITIONAL RANDOM FIELDS, CRF .......................... 33
3.4.4 DEEP NEURAL NETWORKS, D N N .....................................
35
3.4.5 CLASSIFICATION PERFORMANCE M EASUREM ENT
..................
35
3.5 EXPERIMENTAL S E TU P
...................................................................
37
3.6 S U M M A RY
..................................................................................
38
4 IN TEGRATIN G CO N TEX T INFORM ATION 39
4.1 S TATE-OF-THE-ART
.........................................................................
40
4.2 INCLUDING SEQUENCE IN FO RM ATIO N
.............................................. 41
4.2.1 M ETHODS
.........................................................................
41
4.2.2 CONTEXT
REGIONS............................................................. 42
4.3 FEATURE C OM
BINATIONS.............................................................
44
4.4 EXPERIM ENTS
...............................................................................
45
4.4.1 DIFFERENT FEATURE COMBINATIONS AND CLASSIFIERS .... 45
4.4.2 DIFFERENT CONTEXT REGIONS
..............................
46
4.4.3 PARTIAL FEATURE C O N TE X
T................................................. 48
4.4.4 CONTEXT L A B E L
................................................................ 51
4.4.5 JAPANESE DATA S E T
.......................................................... 53
4.5 DISCUSSION
..................................................................................
53
4.6 CONCLUSION & S U M M A RY
.......................................................... 54
5 S P EAKER-D EP EN D EN T VS. SP EAK ER-IN D EP EN D EN T TRAINING 56
5.1 STATE-OF-THE A R T
.........................................................................
56
5.2 EXPERIMENTS O VERVIEW
............................................................. 59
5.3 FEATURE PERFORM
ANCE................................................................ 59
5.3.1 SPEAKER-DEPENDENT TR A IN IN G
........................................ 60
5.3.2 SPEAKER-INDEPENDENT TRAINING, MODEL TRAINED ON ONE
S P E A K E R
.........................................................................
63
5.3.3 SPEAKER-INDEPENDENT TRAINING, TRAINED ON A SET OF
SPEAKERS
.........................................................................
65
5.3.4 SPEAKER-INDEPENDENT TRAINING, FEATURE CHOICE .... 67
5.4 DIFFERENT CLASSIFIERS FOR SPEAKER-INDEPENDENT TRAINING .... 69
5.5 CONCLUSION & S U M M A RY
.......................................................... 74
6 S V M BASED SPEAKER AD AP TATION 76
6.1 SVM ADAPTATION - STATE OF THE A R T
........................................ 80
6.2 FEATURE-SPACE M L L R
................................................................
81
6.2.1 ROW-BY-ROW ITERATION
..................................................
84
6.3 ADAPTATION TO SVM DECISION BOUNDARY
...................................
85
6.3.1 FEATURE-SPACE SVM ADAPTATION, FS V M A
..................
85
6.3.2 MODEL-BASED SVM ADAPTATION, S V M A
.......................
86
6.3.3 GAUSSIAN REGULARIZED FEATURE-SPACE SVM ADAPTA
TION, GRFSVMA 87
6.3.4 SPARSENESS REGULARIZATION
........................................... 88
6.3.5 METHOD OVERVIEW
.......................................................... 89
6.4 VALIDATION ON ARTIFICIAL DATA E X A M P LE
..................................... 89
6.5 EXPERIMENTAL S E TU P
................................................................... 91
6.5.1 P G A
...............................................................................
92
6.6 EXPERIM
ENTS...............................................................................
93
6.6.1 DIFFERENT NUMBER OF GAUSSIANS
.................................
94
6.6.2 DIFFERENT WEIGHTING OF PARAM ETERS
..............................
97
6.6.3 DIFFERENT SPEAKER TY P E S
...................................................
100
6.7 DISCUSSION A D A P TA TIO N
................................................................102
6.8 CONCLUSION & S U M M A RY
.............................................................104
7 C ON CLU SION 106
7.1 S U M M A RY
.....................................................................................
106
7.2 FUTURE W O RK
..................................................................................
108
B IBLIOGRAP HY 110
IN DEX
121
|
any_adam_object | 1 |
author | Schnall, Andrea 1986- |
author_GND | (DE-588)1159790655 |
author_facet | Schnall, Andrea 1986- |
author_role | aut |
author_sort | Schnall, Andrea 1986- |
author_variant | a s as |
building | Verbundindex |
bvnumber | BV045001841 |
classification_rvk | ZN 6070 ES 945 |
ctrlnum | (OCoLC)1039098081 (DE-599)DNB1155609492 |
discipline | Sprachwissenschaft Elektrotechnik / Elektronik / Nachrichtentechnik Literaturwissenschaft |
edition | 1. Auflage |
format | Thesis Book |
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genre | (DE-588)4113937-9 Hochschulschrift gnd-content |
genre_facet | Hochschulschrift |
id | DE-604.BV045001841 |
illustrated | Illustrated |
indexdate | 2024-07-10T08:06:39Z |
institution | BVB |
isbn | 9783844059212 3844059210 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-030393966 |
oclc_num | 1039098081 |
open_access_boolean | |
owner | DE-83 |
owner_facet | DE-83 |
physical | XI, 122 Seiten Illustrationen, Diagramme 21 cm x 14.8 cm, 206 g |
publishDate | 2018 |
publishDateSearch | 2018 |
publishDateSort | 2018 |
publisher | Shaker Verlag |
record_format | marc |
series2 | Berichte aus der Informationstechnik |
spelling | Schnall, Andrea 1986- Verfasser (DE-588)1159790655 aut Speaker adaptation for word prominence detection Andrea Schnall 1. Auflage Aachen Shaker Verlag 2018 XI, 122 Seiten Illustrationen, Diagramme 21 cm x 14.8 cm, 206 g txt rdacontent n rdamedia nc rdacarrier Berichte aus der Informationstechnik Dissertation Technische Universität Darmstadt 2018 Sprachdialogsystem (DE-588)1028331231 gnd rswk-swf Berühmte Persönlichkeit (DE-588)4191412-0 gnd rswk-swf Radiale Basisfunktion (DE-588)4380647-8 gnd rswk-swf Automatische Klassifikation (DE-588)4120957-6 gnd rswk-swf Merkmalsextraktion (DE-588)4314440-8 gnd rswk-swf Automatische Sprechererkennung (DE-588)4143704-4 gnd rswk-swf Kontextbezogenes System (DE-588)4739720-2 gnd rswk-swf Sprecheradaption (DE-588)4327834-6 gnd rswk-swf Support-Vektor-Maschine (DE-588)4505517-8 gnd rswk-swf Prosody SVM Speaker Adaptation Word Prominence Detection fMLLR (DE-588)4113937-9 Hochschulschrift gnd-content Sprachdialogsystem (DE-588)1028331231 s Automatische Sprechererkennung (DE-588)4143704-4 s Sprecheradaption (DE-588)4327834-6 s Support-Vektor-Maschine (DE-588)4505517-8 s Radiale Basisfunktion (DE-588)4380647-8 s Berühmte Persönlichkeit (DE-588)4191412-0 s Kontextbezogenes System (DE-588)4739720-2 s Automatische Klassifikation (DE-588)4120957-6 s Merkmalsextraktion (DE-588)4314440-8 s DE-604 DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=030393966&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Schnall, Andrea 1986- Speaker adaptation for word prominence detection Sprachdialogsystem (DE-588)1028331231 gnd Berühmte Persönlichkeit (DE-588)4191412-0 gnd Radiale Basisfunktion (DE-588)4380647-8 gnd Automatische Klassifikation (DE-588)4120957-6 gnd Merkmalsextraktion (DE-588)4314440-8 gnd Automatische Sprechererkennung (DE-588)4143704-4 gnd Kontextbezogenes System (DE-588)4739720-2 gnd Sprecheradaption (DE-588)4327834-6 gnd Support-Vektor-Maschine (DE-588)4505517-8 gnd |
subject_GND | (DE-588)1028331231 (DE-588)4191412-0 (DE-588)4380647-8 (DE-588)4120957-6 (DE-588)4314440-8 (DE-588)4143704-4 (DE-588)4739720-2 (DE-588)4327834-6 (DE-588)4505517-8 (DE-588)4113937-9 |
title | Speaker adaptation for word prominence detection |
title_auth | Speaker adaptation for word prominence detection |
title_exact_search | Speaker adaptation for word prominence detection |
title_full | Speaker adaptation for word prominence detection Andrea Schnall |
title_fullStr | Speaker adaptation for word prominence detection Andrea Schnall |
title_full_unstemmed | Speaker adaptation for word prominence detection Andrea Schnall |
title_short | Speaker adaptation for word prominence detection |
title_sort | speaker adaptation for word prominence detection |
topic | Sprachdialogsystem (DE-588)1028331231 gnd Berühmte Persönlichkeit (DE-588)4191412-0 gnd Radiale Basisfunktion (DE-588)4380647-8 gnd Automatische Klassifikation (DE-588)4120957-6 gnd Merkmalsextraktion (DE-588)4314440-8 gnd Automatische Sprechererkennung (DE-588)4143704-4 gnd Kontextbezogenes System (DE-588)4739720-2 gnd Sprecheradaption (DE-588)4327834-6 gnd Support-Vektor-Maschine (DE-588)4505517-8 gnd |
topic_facet | Sprachdialogsystem Berühmte Persönlichkeit Radiale Basisfunktion Automatische Klassifikation Merkmalsextraktion Automatische Sprechererkennung Kontextbezogenes System Sprecheradaption Support-Vektor-Maschine Hochschulschrift |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=030393966&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT schnallandrea speakeradaptationforwordprominencedetection |