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--- |
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annotations_creators: |
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- expert-generated |
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language_creators: |
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- expert-generated |
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language: |
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|
- de |
|
|
- en |
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|
- es |
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|
- fr |
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|
- it |
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license: |
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|
- cc-by-sa-4.0 |
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|
multilinguality: |
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|
- multilingual |
|
|
size_categories: |
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|
- 10K<n<100K |
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|
source_datasets: |
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- original |
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task_categories: |
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|
- text-generation |
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|
- fill-mask |
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|
- text-classification |
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task_ids: |
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- dialogue-modeling |
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- language-modeling |
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|
- masked-language-modeling |
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paperswithcode_id: null |
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pretty_name: MIAM |
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configs: |
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- dihana |
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- ilisten |
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- loria |
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- maptask |
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- vm2 |
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tags: |
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- dialogue-act-classification |
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dataset_info: |
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- config_name: dihana |
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|
features: |
|
|
- name: Speaker |
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|
dtype: string |
|
|
- name: Utterance |
|
|
dtype: string |
|
|
- name: Dialogue_Act |
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|
dtype: string |
|
|
- name: Dialogue_ID |
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|
dtype: string |
|
|
- name: File_ID |
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|
dtype: string |
|
|
- name: Label |
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|
dtype: |
|
|
class_label: |
|
|
names: |
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|
0: Afirmacion |
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|
1: Apertura |
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2: Cierre |
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|
3: Confirmacion |
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|
4: Espera |
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5: Indefinida |
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6: Negacion |
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|
7: No_entendido |
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|
8: Nueva_consulta |
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|
9: Pregunta |
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|
10: Respuesta |
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|
- name: Idx |
|
|
dtype: int32 |
|
|
splits: |
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|
- name: train |
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|
num_bytes: 1946735 |
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|
num_examples: 19063 |
|
|
- name: validation |
|
|
num_bytes: 216498 |
|
|
num_examples: 2123 |
|
|
- name: test |
|
|
num_bytes: 238446 |
|
|
num_examples: 2361 |
|
|
download_size: 1777267 |
|
|
dataset_size: 2401679 |
|
|
- config_name: ilisten |
|
|
features: |
|
|
- name: Speaker |
|
|
dtype: string |
|
|
- name: Utterance |
|
|
dtype: string |
|
|
- name: Dialogue_Act |
|
|
dtype: string |
|
|
- name: Dialogue_ID |
|
|
dtype: string |
|
|
- name: Label |
|
|
dtype: |
|
|
class_label: |
|
|
names: |
|
|
0: AGREE |
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|
1: ANSWER |
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|
2: CLOSING |
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|
3: ENCOURAGE-SORRY |
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|
4: GENERIC-ANSWER |
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|
5: INFO-REQUEST |
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|
6: KIND-ATTITUDE_SMALL-TALK |
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|
7: OFFER-GIVE-INFO |
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|
8: OPENING |
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|
9: PERSUASION-SUGGEST |
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|
10: QUESTION |
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|
11: REJECT |
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|
12: SOLICITATION-REQ_CLARIFICATION |
|
|
13: STATEMENT |
|
|
14: TALK-ABOUT-SELF |
|
|
- name: Idx |
|
|
dtype: int32 |
|
|
splits: |
|
|
- name: train |
|
|
num_bytes: 244336 |
|
|
num_examples: 1986 |
|
|
- name: validation |
|
|
num_bytes: 33988 |
|
|
num_examples: 230 |
|
|
- name: test |
|
|
num_bytes: 145376 |
|
|
num_examples: 971 |
|
|
download_size: 349993 |
|
|
dataset_size: 423700 |
|
|
- config_name: loria |
|
|
features: |
|
|
- name: Speaker |
|
|
dtype: string |
|
|
- name: Utterance |
|
|
dtype: string |
|
|
- name: Dialogue_Act |
|
|
dtype: string |
|
|
- name: Dialogue_ID |
|
|
dtype: string |
|
|
- name: File_ID |
|
|
dtype: string |
|
|
- name: Label |
|
|
dtype: |
|
|
class_label: |
|
|
names: |
|
|
0: ack |
|
|
1: ask |
|
|
2: find_mold |
|
|
3: find_plans |
|
|
4: first_step |
|
|
5: greet |
|
|
6: help |
|
|
7: inform |
|
|
8: inform_engine |
|
|
9: inform_job |
|
|
10: inform_material_space |
|
|
11: informer_conditioner |
|
|
12: informer_decoration |
|
|
13: informer_elcomps |
|
|
14: informer_end_manufacturing |
|
|
15: kindAtt |
|
|
16: manufacturing_reqs |
|
|
17: next_step |
|
|
18: 'no' |
|
|
19: other |
|
|
20: quality_control |
|
|
21: quit |
|
|
22: reqRep |
|
|
23: security_policies |
|
|
24: staff_enterprise |
|
|
25: staff_job |
|
|
26: studies_enterprise |
|
|
27: studies_job |
|
|
28: todo_failure |
|
|
29: todo_irreparable |
|
|
30: 'yes' |
|
|
- name: Idx |
|
|
dtype: int32 |
|
|
splits: |
|
|
- name: train |
|
|
num_bytes: 1208730 |
|
|
num_examples: 8465 |
|
|
- name: validation |
|
|
num_bytes: 133829 |
|
|
num_examples: 942 |
|
|
- name: test |
|
|
num_bytes: 149855 |
|
|
num_examples: 1047 |
|
|
download_size: 1221132 |
|
|
dataset_size: 1492414 |
|
|
- config_name: maptask |
|
|
features: |
|
|
- name: Speaker |
|
|
dtype: string |
|
|
- name: Utterance |
|
|
dtype: string |
|
|
- name: Dialogue_Act |
|
|
dtype: string |
|
|
- name: Dialogue_ID |
|
|
dtype: string |
|
|
- name: File_ID |
|
|
dtype: string |
|
|
- name: Label |
|
|
dtype: |
|
|
class_label: |
|
|
names: |
|
|
0: acknowledge |
|
|
1: align |
|
|
2: check |
|
|
3: clarify |
|
|
4: explain |
|
|
5: instruct |
|
|
6: query_w |
|
|
7: query_yn |
|
|
8: ready |
|
|
9: reply_n |
|
|
10: reply_w |
|
|
11: reply_y |
|
|
- name: Idx |
|
|
dtype: int32 |
|
|
splits: |
|
|
- name: train |
|
|
num_bytes: 1910120 |
|
|
num_examples: 25382 |
|
|
- name: validation |
|
|
num_bytes: 389879 |
|
|
num_examples: 5221 |
|
|
- name: test |
|
|
num_bytes: 396947 |
|
|
num_examples: 5335 |
|
|
download_size: 1729021 |
|
|
dataset_size: 2696946 |
|
|
- config_name: vm2 |
|
|
features: |
|
|
- name: Utterance |
|
|
dtype: string |
|
|
- name: Dialogue_Act |
|
|
dtype: string |
|
|
- name: Speaker |
|
|
dtype: string |
|
|
- name: Dialogue_ID |
|
|
dtype: string |
|
|
- name: Label |
|
|
dtype: |
|
|
class_label: |
|
|
names: |
|
|
0: ACCEPT |
|
|
1: BACKCHANNEL |
|
|
2: BYE |
|
|
3: CLARIFY |
|
|
4: CLOSE |
|
|
5: COMMIT |
|
|
6: CONFIRM |
|
|
7: DEFER |
|
|
8: DELIBERATE |
|
|
9: DEVIATE_SCENARIO |
|
|
10: EXCLUDE |
|
|
11: EXPLAINED_REJECT |
|
|
12: FEEDBACK |
|
|
13: FEEDBACK_NEGATIVE |
|
|
14: FEEDBACK_POSITIVE |
|
|
15: GIVE_REASON |
|
|
16: GREET |
|
|
17: INFORM |
|
|
18: INIT |
|
|
19: INTRODUCE |
|
|
20: NOT_CLASSIFIABLE |
|
|
21: OFFER |
|
|
22: POLITENESS_FORMULA |
|
|
23: REJECT |
|
|
24: REQUEST |
|
|
25: REQUEST_CLARIFY |
|
|
26: REQUEST_COMMENT |
|
|
27: REQUEST_COMMIT |
|
|
28: REQUEST_SUGGEST |
|
|
29: SUGGEST |
|
|
30: THANK |
|
|
- name: Idx |
|
|
dtype: int32 |
|
|
splits: |
|
|
- name: train |
|
|
num_bytes: 1869254 |
|
|
num_examples: 25060 |
|
|
- name: validation |
|
|
num_bytes: 209390 |
|
|
num_examples: 2860 |
|
|
- name: test |
|
|
num_bytes: 209032 |
|
|
num_examples: 2855 |
|
|
download_size: 1641453 |
|
|
dataset_size: 2287676 |
|
|
--- |
|
|
|
|
|
# Dataset Card for MIAM |
|
|
|
|
|
## Table of Contents |
|
|
- [Dataset Description](#dataset-description) |
|
|
- [Dataset Summary](#dataset-summary) |
|
|
- [Supported Tasks and Leaderboards](#supported-tasks-and-leaderboards) |
|
|
- [Languages](#languages) |
|
|
- [Dataset Structure](#dataset-structure) |
|
|
- [Data Instances](#data-instances) |
|
|
- [Data Fields](#data-fields) |
|
|
- [Data Splits](#data-splits) |
|
|
- [Dataset Creation](#dataset-creation) |
|
|
- [Curation Rationale](#curation-rationale) |
|
|
- [Source Data](#source-data) |
|
|
- [Annotations](#annotations) |
|
|
- [Personal and Sensitive Information](#personal-and-sensitive-information) |
|
|
- [Considerations for Using the Data](#considerations-for-using-the-data) |
|
|
- [Social Impact of Dataset](#social-impact-of-dataset) |
|
|
- [Discussion of Biases](#discussion-of-biases) |
|
|
- [Other Known Limitations](#other-known-limitations) |
|
|
- [Additional Information](#additional-information) |
|
|
- [Dataset Curators](#dataset-curators) |
|
|
- [Licensing Information](#licensing-information) |
|
|
- [Citation Information](#citation-information) |
|
|
- [Contributions](#contributions) |
|
|
|
|
|
## Dataset Description |
|
|
|
|
|
- **Homepage:** [N/A] |
|
|
- **Repository:** [N/A] |
|
|
- **Paper:** [N/A] |
|
|
- **Leaderboard:** [N/A] |
|
|
- **Point of Contact:** [N/A] |
|
|
|
|
|
### Dataset Summary |
|
|
|
|
|
Multilingual dIalogAct benchMark is a collection of resources for training, evaluating, and |
|
|
analyzing natural language understanding systems specifically designed for spoken language. Datasets |
|
|
are in English, French, German, Italian and Spanish. They cover a variety of domains including |
|
|
spontaneous speech, scripted scenarios, and joint task completion. All datasets contain dialogue act |
|
|
labels. |
|
|
|
|
|
### Supported Tasks and Leaderboards |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
|
### Languages |
|
|
|
|
|
English, French, German, Italian, Spanish. |
|
|
|
|
|
## Dataset Structure |
|
|
|
|
|
### Data Instances |
|
|
|
|
|
#### Dihana Corpus |
|
|
For the `dihana` configuration one example from the dataset is: |
|
|
``` |
|
|
{ |
|
|
'Speaker': 'U', |
|
|
'Utterance': 'Hola , quería obtener el horario para ir a Valencia', |
|
|
'Dialogue_Act': 9, # 'Pregunta' ('Request') |
|
|
'Dialogue_ID': '0', |
|
|
'File_ID': 'B209_BA5c3', |
|
|
} |
|
|
``` |
|
|
|
|
|
#### iLISTEN Corpus |
|
|
For the `ilisten` configuration one example from the dataset is: |
|
|
``` |
|
|
{ |
|
|
'Speaker': 'T_11_U11', |
|
|
'Utterance': 'ok, grazie per le informazioni', |
|
|
'Dialogue_Act': 6, # 'KIND-ATTITUDE_SMALL-TALK' |
|
|
'Dialogue_ID': '0', |
|
|
} |
|
|
``` |
|
|
|
|
|
#### LORIA Corpus |
|
|
For the `loria` configuration one example from the dataset is: |
|
|
``` |
|
|
{ |
|
|
'Speaker': 'Samir', |
|
|
'Utterance': 'Merci de votre visite, bonne chance, et à la prochaine !', |
|
|
'Dialogue_Act': 21, # 'quit' |
|
|
'Dialogue_ID': '5', |
|
|
'File_ID': 'Dial_20111128_113927', |
|
|
} |
|
|
``` |
|
|
|
|
|
#### HCRC MapTask Corpus |
|
|
For the `maptask` configuration one example from the dataset is: |
|
|
``` |
|
|
{ |
|
|
'Speaker': 'f', |
|
|
'Utterance': 'is it underneath the rope bridge or to the left', |
|
|
'Dialogue_Act': 6, # 'query_w' |
|
|
'Dialogue_ID': '0', |
|
|
'File_ID': 'q4ec1', |
|
|
} |
|
|
``` |
|
|
|
|
|
#### VERBMOBIL |
|
|
For the `vm2` configuration one example from the dataset is: |
|
|
``` |
|
|
{ |
|
|
'Utterance': 'ja was sind viereinhalb Stunden Bahngerüttel gegen siebzig Minuten Turbulenzen im Flugzeug', |
|
|
'Utterance': 'Utterance', |
|
|
'Dialogue_Act': 'Dialogue_Act', # 'INFORM' |
|
|
'Speaker': 'A', |
|
|
'Dialogue_ID': '66', |
|
|
} |
|
|
``` |
|
|
|
|
|
### Data Fields |
|
|
|
|
|
For the `dihana` configuration, the different fields are: |
|
|
- `Speaker`: identifier of the speaker as a string. |
|
|
- `Utterance`: Utterance as a string. |
|
|
- `Dialogue_Act`: Dialog act label of the utterance. It can be one of 'Afirmacion' (0) [Feedback_positive], 'Apertura' (1) [Opening], 'Cierre' (2) [Closing], 'Confirmacion' (3) [Acknowledge], 'Espera' (4) [Hold], 'Indefinida' (5) [Undefined], 'Negacion' (6) [Feedback_negative], 'No_entendido' (7) [Request_clarify], 'Nueva_consulta' (8) [New_request], 'Pregunta' (9) [Request] or 'Respuesta' (10) [Reply]. |
|
|
- `Dialogue_ID`: identifier of the dialogue as a string. |
|
|
- `File_ID`: identifier of the source file as a string. |
|
|
|
|
|
For the `ilisten` configuration, the different fields are: |
|
|
- `Speaker`: identifier of the speaker as a string. |
|
|
- `Utterance`: Utterance as a string. |
|
|
- `Dialogue_Act`: Dialog act label of the utterance. It can be one of 'AGREE' (0), 'ANSWER' (1), 'CLOSING' (2), 'ENCOURAGE-SORRY' (3), 'GENERIC-ANSWER' (4), 'INFO-REQUEST' (5), 'KIND-ATTITUDE_SMALL-TALK' (6), 'OFFER-GIVE-INFO' (7), 'OPENING' (8), 'PERSUASION-SUGGEST' (9), 'QUESTION' (10), 'REJECT' (11), 'SOLICITATION-REQ_CLARIFICATION' (12), 'STATEMENT' (13) or 'TALK-ABOUT-SELF' (14). |
|
|
- `Dialogue_ID`: identifier of the dialogue as a string. |
|
|
|
|
|
For the `loria` configuration, the different fields are: |
|
|
- `Speaker`: identifier of the speaker as a string. |
|
|
- `Utterance`: Utterance as a string. |
|
|
- `Dialogue_Act`: Dialog act label of the utterance. It can be one of 'ack' (0), 'ask' (1), 'find_mold' (2), 'find_plans' (3), 'first_step' (4), 'greet' (5), 'help' (6), 'inform' (7), 'inform_engine' (8), 'inform_job' (9), 'inform_material_space' (10), 'informer_conditioner' (11), 'informer_decoration' (12), 'informer_elcomps' (13), 'informer_end_manufacturing' (14), 'kindAtt' (15), 'manufacturing_reqs' (16), 'next_step' (17), 'no' (18), 'other' (19), 'quality_control' (20), 'quit' (21), 'reqRep' (22), 'security_policies' (23), 'staff_enterprise' (24), 'staff_job' (25), 'studies_enterprise' (26), 'studies_job' (27), 'todo_failure' (28), 'todo_irreparable' (29), 'yes' (30) |
|
|
- `Dialogue_ID`: identifier of the dialogue as a string. |
|
|
- `File_ID`: identifier of the source file as a string. |
|
|
|
|
|
For the `maptask` configuration, the different fields are: |
|
|
- `Speaker`: identifier of the speaker as a string. |
|
|
- `Utterance`: Utterance as a string. |
|
|
- `Dialogue_Act`: Dialog act label of the utterance. It can be one of 'acknowledge' (0), 'align' (1), 'check' (2), 'clarify' (3), 'explain' (4), 'instruct' (5), 'query_w' (6), 'query_yn' (7), 'ready' (8), 'reply_n' (9), 'reply_w' (10) or 'reply_y' (11). |
|
|
- `Dialogue_ID`: identifier of the dialogue as a string. |
|
|
- `File_ID`: identifier of the source file as a string. |
|
|
|
|
|
For the `vm2` configuration, the different fields are: |
|
|
- `Utterance`: Utterance as a string. |
|
|
- `Dialogue_Act`: Dialogue act label of the utterance. It can be one of 'ACCEPT' (0), 'BACKCHANNEL' (1), 'BYE' (2), 'CLARIFY' (3), 'CLOSE' (4), 'COMMIT' (5), 'CONFIRM' (6), 'DEFER' (7), 'DELIBERATE' (8), 'DEVIATE_SCENARIO' (9), 'EXCLUDE' (10), 'EXPLAINED_REJECT' (11), 'FEEDBACK' (12), 'FEEDBACK_NEGATIVE' (13), 'FEEDBACK_POSITIVE' (14), 'GIVE_REASON' (15), 'GREET' (16), 'INFORM' (17), 'INIT' (18), 'INTRODUCE' (19), 'NOT_CLASSIFIABLE' (20), 'OFFER' (21), 'POLITENESS_FORMULA' (22), 'REJECT' (23), 'REQUEST' (24), 'REQUEST_CLARIFY' (25), 'REQUEST_COMMENT' (26), 'REQUEST_COMMIT' (27), 'REQUEST_SUGGEST' (28), 'SUGGEST' (29), 'THANK' (30). |
|
|
- `Speaker`: Speaker as a string. |
|
|
- `Dialogue_ID`: identifier of the dialogue as a string. |
|
|
|
|
|
### Data Splits |
|
|
|
|
|
| Dataset name | Train | Valid | Test | |
|
|
| ------------ | ----- | ----- | ---- | |
|
|
| dihana | 19063 | 2123 | 2361 | |
|
|
| ilisten | 1986 | 230 | 971 | |
|
|
| loria | 8465 | 942 | 1047 | |
|
|
| maptask | 25382 | 5221 | 5335 | |
|
|
| vm2 | 25060 | 2860 | 2855 | |
|
|
|
|
|
## Dataset Creation |
|
|
|
|
|
### Curation Rationale |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
|
### Source Data |
|
|
|
|
|
#### Initial Data Collection and Normalization |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
|
#### Who are the source language producers? |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
|
### Annotations |
|
|
|
|
|
#### Annotation process |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
|
#### Who are the annotators? |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
|
### Personal and Sensitive Information |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
|
## Considerations for Using the Data |
|
|
|
|
|
### Social Impact of Dataset |
|
|
|
|
|
[More Information Needed] |
|
|
|
|
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### Discussion of Biases |
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[More Information Needed] |
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### Other Known Limitations |
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[More Information Needed] |
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## Additional Information |
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### Dataset Curators |
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Anonymous. |
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### Licensing Information |
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This work is licensed under a [Creative Commons Attribution-NonCommercial-ShareAlike 4.0 Unported License](https://creativecommons.org/licenses/by-sa/4.0/). |
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### Citation Information |
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``` |
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@inproceedings{colombo-etal-2021-code, |
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title = "Code-switched inspired losses for spoken dialog representations", |
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author = "Colombo, Pierre and |
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Chapuis, Emile and |
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Labeau, Matthieu and |
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Clavel, Chlo{\'e}", |
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booktitle = "Proceedings of the 2021 Conference on Empirical Methods in Natural Language Processing", |
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month = nov, |
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year = "2021", |
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address = "Online and Punta Cana, Dominican Republic", |
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publisher = "Association for Computational Linguistics", |
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url = "https://aclanthology.org/2021.emnlp-main.656", |
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doi = "10.18653/v1/2021.emnlp-main.656", |
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pages = "8320--8337", |
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abstract = "Spoken dialogue systems need to be able to handle both multiple languages and multilinguality inside a conversation (\textit{e.g} in case of code-switching). In this work, we introduce new pretraining losses tailored to learn generic multilingual spoken dialogue representations. The goal of these losses is to expose the model to code-switched language. In order to scale up training, we automatically build a pretraining corpus composed of multilingual conversations in five different languages (French, Italian, English, German and Spanish) from OpenSubtitles, a huge multilingual corpus composed of 24.3G tokens. We test the generic representations on MIAM, a new benchmark composed of five dialogue act corpora on the same aforementioned languages as well as on two novel multilingual tasks (\textit{i.e} multilingual mask utterance retrieval and multilingual inconsistency identification). Our experiments show that our new losses achieve a better performance in both monolingual and multilingual settings.", |
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} |
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``` |
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### Contributions |
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Thanks to [@eusip](https://github.com/eusip) and [@PierreColombo](https://github.com/PierreColombo) for adding this dataset. |