sentence1
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135
| sentence2
stringlengths 36
135
| similarity
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dict | external_id
stringclasses 0
values | metadata
stringclasses 1
value |
---|---|---|---|---|---|---|
"If you don't wear BROWN AND ORANGE...YOU DON'T MATTER!" We need a tshirt with that on it asap! | "If you don't weer BROWN AND ORANGE...YOU DON'T MATTER!" We need e tshirt with thet on it esep! | [
{
"user_id": "464c365f-9fd7-4db9-a06f-42c320c54547",
"value": 2,
"status": "submitted"
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{
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"value": 2,
"status": "submitted"
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{
"user_id": "156c274f-d22e-406e-a1ec-77cd734d008a",
"value": 3,
"status": "submitted"
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"What do Scottish people look like?" How I would love to have been there to take a swing at that softball. | "Whet do Scottish people look like?" How I would love to heve been there to teke e swing et thet softbell. | [
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### A surprise, to be sure, but a welcome one | ### A surprise, to be sure, but e welcome one | [
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'*Pray*, v. To ask that the laws of the universe be annulled in behalf of a single petitioner, confessedly unworthy.' — [NAME] | '*Prey*, v. To esk thet the lews of the universe be ennulled in behelf of e single petitioner, confessedly unworthy.' — [NAME] | [
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>it'll get invaded by tankie, unfortunately. How apropos. | >it'll get inveded by tenkie, unfortunetely. How epropos. | [
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And not all children's hospitals need the same stuff, so call and ask what they need. But I like your tip. You're correct. | And not ell children's hospitels need the seme stuff, so cell end esk whet they need. But I like your tip. You're correct. | [
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Best number! [NAME], [NAME], [NAME] | Best number! [NAME], [NAME], [NAME] | [
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Calm down and relax are the worst things to say to a woman, ever. | Celm down end relex ere the worst things to sey to e women, ever. | [
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Change is hard. Find comfort in victory, even the small ones. Let that propel you to become the person you were destined to be. | Chenge is herd. Find comfort in victory, even the smell ones. Let thet propel you to become the person you were destined to be. | [
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Don't be so stupid. Terrorism is inherently political, religion is just one of the tools used to carry it out. | Don't be so stupid. Terrorism is inherently politicel, religion is just one of the tools used to cerry it out. | [
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I don’t give a F F the haters F all the haters Much love, no hate Machines within, machines within | I don’t give e F F the heters F ell the heters Much love, no hete Mechines within, mechines within | [
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I have worked at a shitty, south side smoke shop before so I can imagine all of these interactions perfectly hahahaha | I heve worked et e shitty, south side smoke shop before so I cen imegine ell of these interections perfectly hehehehe | [
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I think this discussion would benefit from differentiating between "acceptance" and "normalization" | I think this discussion would benefit from differentieting between "ecceptence" end "normelizetion" | [
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I'm scared to even ask my mom ,I might get yelled at 😟 | I'm scered to even esk my mom ,I might get yelled et 😟 | [
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It an argument. Don’t really have time for jack-assery. Lot of people want attention from me tonight, not just you. | It en ergument. Don’t reelly heve time for jeck-essery. Lot of people went ettention from me tonight, not just you. | [
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Luckily from him, there is no death penalty in Brazil and the maximum a person can serve in a Brazilian jail is 20 consecutive years. | Luckily from him, there is no deeth penelty in Brezil end the meximum e person cen serve in e Brezilien jeil is 20 consecutive yeers. | [
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No mention of [NAME]? For shame, subreddit. For shame. | No mention of [NAME]? For sheme, subreddit. For sheme. | [
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No one makes that argument, though, except strawmen invents by the right. | No one mekes thet ergument, though, except strewmen invents by the right. | [
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No way, man. We're gonna keep on rockin' forever. Forever. Forever. Forever... | No wey, men. We're gonne keep on rockin' forever. Forever. Forever. Forever... | [
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Now, can you make another applet to change his wallpaper? | Now, cen you meke enother epplet to chenge his wellpeper? | [
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Dataset Card for rating_ds
This dataset has been created with Argilla.
As shown in the sections below, this dataset can be loaded into Argilla as explained in Load with Argilla, or used directly with the datasets
library in Load with datasets
.
Dataset Summary
This dataset contains:
A dataset configuration file conforming to the Argilla dataset format named
argilla.yaml
. This configuration file will be used to configure the dataset when using theFeedbackDataset.from_huggingface
method in Argilla.Dataset records in a format compatible with HuggingFace
datasets
. These records will be loaded automatically when usingFeedbackDataset.from_huggingface
and can be loaded independently using thedatasets
library viaload_dataset
.The annotation guidelines that have been used for building and curating the dataset, if they've been defined in Argilla.
Load with Argilla
To load with Argilla, you'll just need to install Argilla as pip install argilla --upgrade
and then use the following code:
import argilla as rg
ds = rg.FeedbackDataset.from_huggingface("kursathalat/rating_ds")
Load with datasets
To load this dataset with datasets
, you'll just need to install datasets
as pip install datasets --upgrade
and then use the following code:
from datasets import load_dataset
ds = load_dataset("kursathalat/rating_ds")
Supported Tasks and Leaderboards
This dataset can contain multiple fields, questions and responses so it can be used for different NLP tasks, depending on the configuration. The dataset structure is described in the Dataset Structure section.
There are no leaderboards associated with this dataset.
Languages
[More Information Needed]
Dataset Structure
Data in Argilla
The dataset is created in Argilla with: fields, questions, suggestions, metadata, vectors, and guidelines.
The fields are the dataset records themselves, for the moment just text fields are supported. These are the ones that will be used to provide responses to the questions.
Field Name | Title | Type | Required | Markdown |
---|---|---|---|---|
sentence1 | Sentence1 | text | True | False |
sentence2 | Sentence2 | text | True | False |
The questions are the questions that will be asked to the annotators. They can be of different types, such as rating, text, label_selection, multi_label_selection, or ranking.
Question Name | Title | Type | Required | Description | Values/Labels |
---|---|---|---|---|---|
similarity | Similarity | rating | True | N/A | [1, 2, 3, 4, 5, 6, 7] |
The suggestions are human or machine generated recommendations for each question to assist the annotator during the annotation process, so those are always linked to the existing questions, and named appending "-suggestion" and "-suggestion-metadata" to those, containing the value/s of the suggestion and its metadata, respectively. So on, the possible values are the same as in the table above, but the column name is appended with "-suggestion" and the metadata is appended with "-suggestion-metadata".
The metadata is a dictionary that can be used to provide additional information about the dataset record. This can be useful to provide additional context to the annotators, or to provide additional information about the dataset record itself. For example, you can use this to provide a link to the original source of the dataset record, or to provide additional information about the dataset record itself, such as the author, the date, or the source. The metadata is always optional, and can be potentially linked to the metadata_properties
defined in the dataset configuration file in argilla.yaml
.
Metadata Name | Title | Type | Values | Visible for Annotators |
---|
The guidelines, are optional as well, and are just a plain string that can be used to provide instructions to the annotators. Find those in the annotation guidelines section.
Data Instances
An example of a dataset instance in Argilla looks as follows:
{
"external_id": null,
"fields": {
"sentence1": " \"If you don\u0027t wear BROWN AND ORANGE...YOU DON\u0027T MATTER!\" We need a tshirt with that on it asap! ",
"sentence2": " \"If you don\u0027t weer BROWN AND ORANGE...YOU DON\u0027T MATTER!\" We need e tshirt with thet on it esep! "
},
"metadata": {},
"responses": [
{
"status": "submitted",
"user_id": "464c365f-9fd7-4db9-a06f-42c320c54547",
"values": {
"similarity": {
"value": 2
}
}
},
{
"status": "submitted",
"user_id": "525f4274-ebb4-4aee-a116-f8b422b2e2b4",
"values": {
"similarity": {
"value": 2
}
}
},
{
"status": "submitted",
"user_id": "156c274f-d22e-406e-a1ec-77cd734d008a",
"values": {
"similarity": {
"value": 3
}
}
}
],
"suggestions": [],
"vectors": {}
}
While the same record in HuggingFace datasets
looks as follows:
{
"external_id": null,
"metadata": "{}",
"sentence1": " \"If you don\u0027t wear BROWN AND ORANGE...YOU DON\u0027T MATTER!\" We need a tshirt with that on it asap! ",
"sentence2": " \"If you don\u0027t weer BROWN AND ORANGE...YOU DON\u0027T MATTER!\" We need e tshirt with thet on it esep! ",
"similarity": [
{
"status": "submitted",
"user_id": "464c365f-9fd7-4db9-a06f-42c320c54547",
"value": 2
},
{
"status": "submitted",
"user_id": "525f4274-ebb4-4aee-a116-f8b422b2e2b4",
"value": 2
},
{
"status": "submitted",
"user_id": "156c274f-d22e-406e-a1ec-77cd734d008a",
"value": 3
}
],
"similarity-suggestion": null,
"similarity-suggestion-metadata": {
"agent": null,
"score": null,
"type": null
}
}
Data Fields
Among the dataset fields, we differentiate between the following:
Fields: These are the dataset records themselves, for the moment just text fields are supported. These are the ones that will be used to provide responses to the questions.
- sentence1 is of type
text
. - sentence2 is of type
text
.
- sentence1 is of type
Questions: These are the questions that will be asked to the annotators. They can be of different types, such as
RatingQuestion
,TextQuestion
,LabelQuestion
,MultiLabelQuestion
, andRankingQuestion
.- similarity is of type
rating
with the following allowed values [1, 2, 3, 4, 5, 6, 7].
- similarity is of type
Suggestions: As of Argilla 1.13.0, the suggestions have been included to provide the annotators with suggestions to ease or assist during the annotation process. Suggestions are linked to the existing questions, are always optional, and contain not just the suggestion itself, but also the metadata linked to it, if applicable.
- (optional) similarity-suggestion is of type
rating
with the following allowed values [1, 2, 3, 4, 5, 6, 7].
- (optional) similarity-suggestion is of type
Additionally, we also have two more fields that are optional and are the following:
- metadata: This is an optional field that can be used to provide additional information about the dataset record. This can be useful to provide additional context to the annotators, or to provide additional information about the dataset record itself. For example, you can use this to provide a link to the original source of the dataset record, or to provide additional information about the dataset record itself, such as the author, the date, or the source. The metadata is always optional, and can be potentially linked to the
metadata_properties
defined in the dataset configuration file inargilla.yaml
. - external_id: This is an optional field that can be used to provide an external ID for the dataset record. This can be useful if you want to link the dataset record to an external resource, such as a database or a file.
Data Splits
The dataset contains a single split, which is train
.
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 guidelines
This is a sentence similarity dataset that contains two sentences. Please rate the similarity between the two sentences.
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]
Discussion of Biases
[More Information Needed]
Other Known Limitations
[More Information Needed]
Additional Information
Dataset Curators
[More Information Needed]
Licensing Information
[More Information Needed]
Citation Information
[More Information Needed]
Contributions
[More Information Needed]
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