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Error code: DatasetGenerationCastError Exception: DatasetGenerationCastError Message: An error occurred while generating the dataset All the data files must have the same columns, but at some point there are 1 new columns ({'score'}) This happened while the json dataset builder was generating data using zip://asm_train.json::/tmp/hf-datasets-cache/heavy/datasets/32350809506324-config-parquet-and-info-ai4bharat-Aksharantar-b37e448d/downloads/3c3f99420a34268b8e9c098500c8f2a2b060e17ebbe6b65d63bebb608ea7313e Please either edit the data files to have matching columns, or separate them into different configurations (see docs at https://hf.co/docs/hub/datasets-manual-configuration#multiple-configurations) Traceback: Traceback (most recent call last): File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 2011, in _prepare_split_single writer.write_table(table) File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/arrow_writer.py", line 585, in write_table pa_table = table_cast(pa_table, self._schema) File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/table.py", line 2302, in table_cast return cast_table_to_schema(table, schema) File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/table.py", line 2256, in cast_table_to_schema raise CastError( datasets.table.CastError: Couldn't cast unique_identifier: string native word: string english word: string source: string score: double to {'unique_identifier': Value(dtype='string', id=None), 'native word': Value(dtype='string', id=None), 'english word': Value(dtype='string', id=None), 'source': Value(dtype='string', id=None)} because column names don't match During handling of the above exception, another exception occurred: Traceback (most recent call last): File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 1321, in compute_config_parquet_and_info_response parquet_operations = convert_to_parquet(builder) File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 935, in convert_to_parquet builder.download_and_prepare( File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 1027, in download_and_prepare self._download_and_prepare( File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 1122, in _download_and_prepare self._prepare_split(split_generator, **prepare_split_kwargs) File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 1882, in _prepare_split for job_id, done, content in self._prepare_split_single( File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 2013, in _prepare_split_single raise DatasetGenerationCastError.from_cast_error( datasets.exceptions.DatasetGenerationCastError: An error occurred while generating the dataset All the data files must have the same columns, but at some point there are 1 new columns ({'score'}) This happened while the json dataset builder was generating data using zip://asm_train.json::/tmp/hf-datasets-cache/heavy/datasets/32350809506324-config-parquet-and-info-ai4bharat-Aksharantar-b37e448d/downloads/3c3f99420a34268b8e9c098500c8f2a2b060e17ebbe6b65d63bebb608ea7313e Please either edit the data files to have matching columns, or separate them into different configurations (see docs at https://hf.co/docs/hub/datasets-manual-configuration#multiple-configurations)
Need help to make the dataset viewer work? Make sure to review how to configure the dataset viewer, and open a discussion for direct support.
unique_identifier
string | native word
string | english word
string | source
string |
---|---|---|---|
asm1
|
লক্ষীনগৰস্থিত
|
lakhyeenogorsthito
|
AK-Freq
|
asm2
|
চতুৰ্থ
|
soturtho
|
AK-Freq
|
asm3
|
এইখন
|
eikhan
|
AK-Freq
|
asm4
|
প্ৰতিমূৰ্তিসমূহ
|
protimurtixomuh
|
AK-Freq
|
asm5
|
প্ৰতিযোগিতাতে
|
protijugitate
|
AK-Freq
|
asm6
|
নিয়া
|
niya
|
AK-Freq
|
asm7
|
আঁচন
|
aason
|
AK-Freq
|
asm8
|
দেউতালৈ
|
deutaloi
|
AK-Freq
|
asm9
|
ঈগলনেষ্ট
|
eaglenest
|
AK-Freq
|
asm10
|
সিহঁতক
|
xeehotok
|
AK-Freq
|
asm11
|
পূর্বাঞ্চলজুৰি
|
poorbancholjuri
|
AK-Freq
|
asm12
|
পৰিদৰ্শক
|
poridorxok
|
AK-Freq
|
asm13
|
হেৰুৱাইছিলো
|
heruwaisilu
|
AK-Freq
|
asm14
|
সদস্যসকলে
|
sodoxyosokole
|
AK-Freq
|
asm15
|
সংক্রান্তিৰ
|
xongkrantir
|
AK-Freq
|
asm16
|
শিক্ষাগতভাৱে
|
xikhyagotobhabe
|
AK-Freq
|
asm17
|
কৰিলো
|
korilu
|
AK-Freq
|
asm18
|
তচেন
|
tosen
|
AK-Freq
|
asm19
|
গোৰ্খাসকলক
|
gurkhahokolok
|
AK-Freq
|
asm20
|
ছাত্ৰগৰাকীক
|
satrogorakik
|
AK-Freq
|
asm21
|
প্ৰতিযোগীগৰাকীক
|
protizugeegorakeek
|
AK-Freq
|
asm22
|
ভালেসংখ্যক
|
bhalexonkhyok
|
AK-Freq
|
asm23
|
বাক্য
|
bakyo
|
AK-Freq
|
asm24
|
তাৎপৰ্য্যপূৰ্ণৰূপে
|
tatporzyopurnorupe
|
AK-Freq
|
asm25
|
প্ৰতিনিধিয়ে
|
protinidhiye
|
AK-Freq
|
asm26
|
কার্যক্রমৰ
|
karzokromor
|
AK-Freq
|
asm27
|
কোকৰাঝাৰত
|
kokrajharot
|
AK-Freq
|
asm28
|
নামিলেই
|
namilae
|
AK-Freq
|
asm29
|
ভোলাৰামে
|
bhularame
|
AK-Freq
|
asm30
|
ৰাজ্যপাল
|
rajjyopal
|
AK-Freq
|
asm31
|
টকামানৰ
|
tokamanor
|
AK-Freq
|
asm32
|
আন্দোলনত
|
aandulonot
|
AK-Freq
|
asm33
|
ঐচিছক
|
oisichok
|
AK-Freq
|
asm34
|
আঁঠুৱাটোৰ
|
athuwatur
|
AK-Freq
|
asm35
|
দুর্নীতি
|
durneeti
|
AK-Freq
|
asm36
|
মুখ্য
|
mukhyo
|
AK-Freq
|
asm37
|
শাসিত
|
xasito
|
AK-Freq
|
asm38
|
উপৰিও
|
upario
|
AK-Freq
|
asm39
|
আবৃত্তিও
|
abrittiu
|
AK-Freq
|
asm40
|
কাৰ্যসূচীৰপৰা
|
karzyoxusirpora
|
AK-Freq
|
asm41
|
লাহে
|
lahe
|
AK-Freq
|
asm42
|
কাৰ্যসূচীৰ
|
karzoxuseer
|
AK-Freq
|
asm43
|
তেতিয়ালৈকে
|
tetiyaloike
|
AK-Freq
|
asm44
|
মিনিটতকৈ
|
minitotkoy
|
AK-Freq
|
asm45
|
য়হা
|
yaha
|
AK-Freq
|
asm46
|
এমৰ
|
emor
|
AK-Freq
|
asm47
|
শিল্পীগৰাকীৰ
|
xilpeegorakeer
|
AK-Freq
|
asm48
|
বেগ
|
beg
|
AK-Freq
|
asm49
|
ঘটাৰ
|
ghotar
|
AK-Freq
|
asm50
|
সামান্য
|
xamanyo
|
AK-Freq
|
asm51
|
শুদ্ধ
|
xuddho
|
AK-Freq
|
asm52
|
ৰাভাই
|
rabhai
|
AK-Freq
|
asm53
|
খালৈআটি
|
khaaloiaati
|
AK-Freq
|
asm54
|
প্ৰশিক্ষকসকল
|
prosikhyokhokol
|
AK-Freq
|
asm55
|
সর্বাধিক
|
xorbadhik
|
AK-Freq
|
asm56
|
মিঃ
|
mih
|
AK-Freq
|
asm57
|
ৰফী
|
rofi
|
AK-Freq
|
asm58
|
টাকৈ
|
takoy
|
AK-Freq
|
asm59
|
কাজকে
|
kajoke
|
AK-Freq
|
asm60
|
স্বাস্থ্যমন্ত্ৰীয়ে
|
swasthyomontreeye
|
AK-Freq
|
asm61
|
এমৰ
|
amor
|
AK-Freq
|
asm62
|
ভোলাৰামে
|
vularame
|
AK-Freq
|
asm63
|
বসুদেৱৰ
|
bosudebor
|
AK-Freq
|
asm64
|
নিৰ্মাণ
|
nirman
|
AK-Freq
|
asm65
|
প্রতিক্রিয়াৰ
|
protikriyaar
|
AK-Freq
|
asm66
|
নিয়াত
|
niyaat
|
AK-Freq
|
asm67
|
বিক্ৰীৰ
|
bikreer
|
AK-Freq
|
asm68
|
কেঁচা
|
kesaa
|
AK-Freq
|
asm69
|
নিৰ্মমভাবে
|
nirmombhabe
|
AK-Freq
|
asm70
|
বিভাগকেইটাৰ
|
bivagkeytar
|
AK-Freq
|
asm71
|
বাৰিষা
|
barixa
|
AK-Freq
|
asm72
|
বিস্ফোৰণকেইটাত
|
bishforonkeitat
|
AK-Freq
|
asm73
|
সকীয়াই
|
xokeeyai
|
AK-Freq
|
asm74
|
ফটকা
|
fotoka
|
AK-Freq
|
asm75
|
নহয়
|
nohoy
|
AK-Freq
|
asm76
|
মহোৎসৱস্থলীত
|
mohutxowstholit
|
AK-Freq
|
asm77
|
শুভেচ্ছাবাৰ্তা
|
xubhessabarta
|
AK-Freq
|
asm78
|
দানবীৰ
|
daanbir
|
AK-Freq
|
asm79
|
খোজেপতি
|
khujepoti
|
AK-Freq
|
asm80
|
আগুৱাই
|
aguwai
|
AK-Freq
|
asm81
|
আপত্তি
|
aapottee
|
AK-Freq
|
asm82
|
পশ্চিম
|
poschim
|
AK-Freq
|
asm83
|
ৱাই
|
y
|
AK-Freq
|
asm84
|
ভোটকেন্দ্রত
|
bhotkendrot
|
AK-Freq
|
asm85
|
ৰইল
|
royl
|
AK-Freq
|
asm86
|
বসুদেৱৰ
|
boxudebor
|
AK-Freq
|
asm87
|
প্রতিনিধি
|
protinidhi
|
AK-Freq
|
asm88
|
পণ্ডিচেৰীত
|
pondicherryt
|
AK-Freq
|
asm89
|
ইতিহাসেৰে
|
itihaaxere
|
AK-Freq
|
asm90
|
উৎসৱৰ
|
utsovor
|
AK-Freq
|
asm91
|
ডিমা
|
dimaa
|
AK-Freq
|
asm92
|
শিক্ষাৰ্থীসকললৈ
|
xikhyarthixokololoi
|
AK-Freq
|
asm93
|
নগৰত
|
nogorot
|
AK-Freq
|
asm94
|
ভাষমান
|
bhaxoman
|
AK-Freq
|
asm95
|
দহটি
|
dohti
|
AK-Freq
|
asm96
|
শিক্ষাবিদগৰাকী
|
xikhyabidgoraki
|
AK-Freq
|
asm97
|
মুখলৈ
|
mukholoi
|
AK-Freq
|
asm98
|
বাউন্সাৰ
|
bouncer
|
AK-Freq
|
asm99
|
নিৰুক্ত
|
nirookto
|
AK-Freq
|
asm100
|
এৰি
|
eri
|
AK-Freq
|
Dataset Card for Aksharantar
Dataset Summary
Aksharantar is the largest publicly available transliteration dataset for 20 Indic languages. The corpus has 26M Indic language-English transliteration pairs.
Supported Tasks and Leaderboards
[More Information Needed]
Languages
Assamese (asm) | Hindi (hin) | Maithili (mai) | Marathi (mar) | Punjabi (pan) | Tamil (tam) |
Bengali (ben) | Kannada (kan) | Malayalam (mal) | Nepali (nep) | Sanskrit (san) | Telugu (tel) |
Bodo(brx) | Kashmiri (kas) | Manipuri (mni) | Oriya (ori) | Sindhi (snd) | Urdu (urd) |
Gujarati (guj) | Konkani (kok) | Dogri (doi) |
Dataset Structure
Data Instances
A random sample from Hindi (hin) Train dataset.
{
'unique_identifier': 'hin1241393',
'native word': 'स्वाभिमानिक',
'english word': 'swabhimanik',
'source': 'IndicCorp',
'score': -0.1028788579
}
Data Fields
unique_identifier
(string): 3-letter language code followed by a unique number in each set (Train, Test, Val).native word
(string): A word in Indic language.english word
(string): Transliteration of native word in English (Romanised word).source
(string): Source of the data.score
(num): Character level log probability of indic word given roman word by IndicXlit (model). Pairs with average threshold of the 0.35 are considered.For created data sources, depending on the destination/sampling method of a pair in a language, it will be one of:
- Dakshina Dataset
- IndicCorp
- Samanantar
- Wikidata
- Existing sources
- Named Entities Indian (AK-NEI)
- Named Entities Foreign (AK-NEF)
- Data from Uniform Sampling method. (Ak-Uni)
- Data from Most Frequent words sampling method. (Ak-Freq)
Data Splits
Subset | asm-en | ben-en | brx-en | guj-en | hin-en | kan-en | kas-en | kok-en | mai-en | mal-en | mni-en | mar-en | nep-en | ori-en | pan-en | san-en | sid-en | tam-en | tel-en | urd-en |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Training | 179K | 1231K | 36K | 1143K | 1299K | 2907K | 47K | 613K | 283K | 4101K | 10K | 1453K | 2397K | 346K | 515K | 1813K | 60K | 3231K | 2430K | 699K |
Validation | 4K | 11K | 3K | 12K | 6K | 7K | 4K | 4K | 4K | 8K | 3K | 8K | 3K | 3K | 9K | 3K | 8K | 9K | 8K | 12K |
Test | 5531 | 5009 | 4136 | 7768 | 5693 | 6396 | 7707 | 5093 | 5512 | 6911 | 4925 | 6573 | 4133 | 4256 | 4316 | 5334 | - | 4682 | 4567 | 4463 |
Dataset Creation
Information in the paper. Aksharantar: Towards building open transliteration tools for the next billion users
Curation Rationale
[More Information Needed]
Source Data
Initial Data Collection and Normalization
Information in the paper. Aksharantar: Towards building open transliteration tools for the next billion users
Who are the source language producers?
[More Information Needed]
Annotations
Information in the paper. Aksharantar: Towards building open transliteration tools for the next billion users
Annotation process
Information in the paper. Aksharantar: Towards building open transliteration tools for the next billion users
Who are the annotators?
Information in the paper. Aksharantar: Towards building open transliteration tools for the next billion users
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
This data is released under the following licensing scheme:
- Manually collected data: Released under CC-BY license.
- Mined dataset (from Samanantar and IndicCorp): Released under CC0 license.
- Existing sources: Released under CC0 license.
CC-BY License

CC0 License Statement

- We do not own any of the text from which this data has been extracted.
- We license the actual packaging of the mined data under the Creative Commons CC0 license (“no rights reserved”).
- To the extent possible under law, AI4Bharat has waived all copyright and related or neighboring rights to Aksharantar manually collected data and existing sources.
- This work is published from: India.
Citation Information
@misc{madhani2022aksharantar,
title={Aksharantar: Towards Building Open Transliteration Tools for the Next Billion Users},
author={Yash Madhani and Sushane Parthan and Priyanka Bedekar and Ruchi Khapra and Anoop Kunchukuttan and Pratyush Kumar and Mitesh Shantadevi Khapra},
year={2022},
eprint={},
archivePrefix={arXiv},
primaryClass={cs.CL}
}
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