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bda-6-steffo/unimore_bda_6/__main__.py

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import logging
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import pymongo.errors
import gc
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from .log import install_general_log_handlers
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install_general_log_handlers()
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from .config import config, TARGET_RUNS, MAXIMUM_RUNS
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from .database import mongo_client_from_config, reviews_collection, sample_reviews_polar, sample_reviews_varied
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from .analysis import NLTKSentimentAnalyzer, TensorflowCategorySentimentAnalyzer, TensorflowPolarSentimentAnalyzer, ThreeCheat
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from .analysis.base import TrainingFailedError, EvaluationResults
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from .tokenizer import PlainTokenizer, LowercaseTokenizer, NLTKWordTokenizer, PottsTokenizer, PottsTokenizerWithNegation, HuggingBertTokenizer
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from .gathering import Caches
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log = logging.getLogger(__name__)
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def main():
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log.info("Started unimore-bda-6 in %s mode!", "DEBUG" if __debug__ else "PRODUCTION")
log.debug("Validating configuration...")
config.proxies.resolve()
log.debug("Ensuring there are no leftover caches...")
Caches.ensure_clean()
with mongo_client_from_config() as db:
try:
db.admin.command("ping")
except pymongo.errors.ServerSelectionTimeoutError:
log.fatal("MongoDB database is not available, exiting...")
exit(1)
reviews = reviews_collection(db)
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for sample_func in [
sample_reviews_polar,
sample_reviews_varied,
]:
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slog = logging.getLogger(f"{__name__}.{sample_func.__name__}")
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slog.debug("Selected sample_func: %s", sample_func.__name__)
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for SentimentAnalyzer in [
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# ThreeCheat,
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NLTKSentimentAnalyzer,
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TensorflowPolarSentimentAnalyzer,
TensorflowCategorySentimentAnalyzer,
]:
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slog = logging.getLogger(f"{__name__}.{sample_func.__name__}.{SentimentAnalyzer.__name__}")
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slog.debug("Selected SentimentAnalyzer: %s", SentimentAnalyzer.__name__)
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for Tokenizer in [
PlainTokenizer,
LowercaseTokenizer,
NLTKWordTokenizer,
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PottsTokenizer,
PottsTokenizerWithNegation,
HuggingBertTokenizer,
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]:
log.debug("Running garbage collection...")
garbage_count = gc.collect()
log.debug("Collected %d pieces of garbage!", garbage_count)
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slog = logging.getLogger(f"{__name__}.{sample_func.__name__}.{SentimentAnalyzer.__name__}.{Tokenizer.__name__}")
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slog.debug("Selected Tokenizer: %s", Tokenizer.__name__)
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runs = 0
successful_runs = 0
cumulative_evaluation_results = EvaluationResults()
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while True:
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slog = logging.getLogger(f"{__name__}.{sample_func.__name__}.{SentimentAnalyzer.__name__}.{Tokenizer.__name__}")
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if successful_runs >= TARGET_RUNS.__wrapped__:
slog.info("Reached target of %d runs, moving on...", TARGET_RUNS.__wrapped__)
break
if runs >= MAXIMUM_RUNS.__wrapped__:
slog.fatal("Exceeded %d runs, giving up and exiting...", MAXIMUM_RUNS.__wrapped__)
break
runs += 1
slog = logging.getLogger(f"{__name__}.{sample_func.__name__}.{SentimentAnalyzer.__name__}.{Tokenizer.__name__}.{runs}")
slog.debug("Run #%d", runs)
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try:
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slog.debug("Instantiating %s with %s...", SentimentAnalyzer.__name__, Tokenizer.__name__)
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sa = SentimentAnalyzer(tokenizer=Tokenizer())
except TypeError:
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slog.warning("%s is not supported by %s, skipping run...", SentimentAnalyzer.__name__, Tokenizer.__name__)
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break
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with Caches.from_database_samples(collection=reviews, sample_func=sample_func) as datasets:
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try:
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slog.info("Training sentiment analyzer: %s", sa)
sa.train(training_dataset_func=datasets.training, validation_dataset_func=datasets.validation)
except TrainingFailedError:
slog.error("Training failed, trying again with a different dataset...")
continue
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else:
slog.info("Training succeeded!")
slog.info("Evaluating sentiment analyzer: %s", sa)
evaluation_results = sa.evaluate(evaluation_dataset_func=datasets.evaluation)
slog.info("Evaluation results: %s", evaluation_results)
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successful_runs += 1
cumulative_evaluation_results += evaluation_results
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break
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slog.info("Cumulative evaluation results: %s", cumulative_evaluation_results)
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if __name__ == "__main__":
main()