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  Nergrit Corpus is a dataset collection of Indonesian Named Entity Recognition (NER), Statement Extraction,
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  and Sentiment Analysis developed by PT Gria Inovasi Teknologi (GRIT).
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  The Named Entity Recognition contains 18 entities as follow:
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- 'CRD': Cardinal
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- 'DAT': Date
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- 'EVT': Event
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- 'FAC': Facility
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- 'GPE': Geopolitical Entity
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- 'LAW': Law Entity (such as Undang-Undang)
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- 'LOC': Location
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- 'MON': Money
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- 'NOR': Political Organization
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- 'ORD': Ordinal
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- 'ORG': Organization
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- 'PER': Person
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- 'PRC': Percent
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- 'PRD': Product
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- 'QTY': Quantity
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- 'REG': Religion
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- 'TIM': Time
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- 'WOA': Work of Art
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- 'LAN': Language
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  ## Languages
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  ## Supported Tasks
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  Named Entity Recognition
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-
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  ## Dataset Usage
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  ### Using `datasets` library
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  ```
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- from datasets import load_dataset
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- dset = datasets.load_dataset("SEACrowd/nergrit", trust_remote_code=True)
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  ```
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  ### Using `seacrowd` library
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  ```import seacrowd as sc
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  # Load the dataset using the default config
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- dset = sc.load_dataset("nergrit", schema="seacrowd")
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  # Check all available subsets (config names) of the dataset
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- print(sc.available_config_names("nergrit"))
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  # Load the dataset using a specific config
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- dset = sc.load_dataset_by_config_name(config_name="<config_name>")
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  ```
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-
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- More details on how to load the `seacrowd` library can be found [here](https://github.com/SEACrowd/seacrowd-datahub?tab=readme-ov-file#how-to-use).
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-
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  ## Dataset Homepage
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  Nergrit Corpus is a dataset collection of Indonesian Named Entity Recognition (NER), Statement Extraction,
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  and Sentiment Analysis developed by PT Gria Inovasi Teknologi (GRIT).
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  The Named Entity Recognition contains 18 entities as follow:
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+ 'CRD': Cardinal
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+ 'DAT': Date
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+ 'EVT': Event
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+ 'FAC': Facility
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+ 'GPE': Geopolitical Entity
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+ 'LAW': Law Entity (such as Undang-Undang)
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+ 'LOC': Location
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+ 'MON': Money
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+ 'NOR': Political Organization
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+ 'ORD': Ordinal
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+ 'ORG': Organization
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+ 'PER': Person
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+ 'PRC': Percent
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+ 'PRD': Product
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+ 'QTY': Quantity
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+ 'REG': Religion
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+ 'TIM': Time
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+ 'WOA': Work of Art
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+ 'LAN': Language
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  ## Languages
 
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  ## Supported Tasks
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  Named Entity Recognition
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+
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  ## Dataset Usage
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  ### Using `datasets` library
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  ```
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+ from datasets import load_dataset
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+ dset = datasets.load_dataset("SEACrowd/nergrit", trust_remote_code=True)
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  ```
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  ### Using `seacrowd` library
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  ```import seacrowd as sc
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  # Load the dataset using the default config
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+ dset = sc.load_dataset("nergrit", schema="seacrowd")
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  # Check all available subsets (config names) of the dataset
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+ print(sc.available_config_names("nergrit"))
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  # Load the dataset using a specific config
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+ dset = sc.load_dataset_by_config_name(config_name="<config_name>")
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  ```
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+
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+ More details on how to load the `seacrowd` library can be found [here](https://github.com/SEACrowd/seacrowd-datahub?tab=readme-ov-file#how-to-use).
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+
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  ## Dataset Homepage
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