Update NURC-SP_ENTOA_TTS.py
Browse files- NURC-SP_ENTOA_TTS.py +49 -38
NURC-SP_ENTOA_TTS.py
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import csv
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import datasets
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from datasets import BuilderConfig, GeneratorBasedBuilder, DatasetInfo, SplitGenerator, Split
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_PROMPTS_URLS = {
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"dev": "automatic/validation.csv",
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@@ -24,13 +27,11 @@ _PATH_TO_CLIPS = {
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"train": "train",
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}
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class NurcSPConfig(BuilderConfig):
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def __init__(self, prompts_type="original", **kwargs):
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super().__init__(**kwargs)
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self.prompts_type = prompts_type
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class NurcSPDataset(GeneratorBasedBuilder):
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BUILDER_CONFIGS = [
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NurcSPConfig(name="original", description="Original audio prompts", prompts_type="original"),
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@@ -62,13 +63,19 @@ class NurcSPDataset(GeneratorBasedBuilder):
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)
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def _split_generators(self, dl_manager):
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if self.config.prompts_type == "filtered":
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prompts_urls = _PROMPTS_FILTERED_URLS
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prompts_path = dl_manager.download(prompts_urls)
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archive = dl_manager.download(_ARCHIVES)
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return [
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SplitGenerator(
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@@ -90,50 +97,54 @@ class NurcSPDataset(GeneratorBasedBuilder):
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]
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def _generate_examples(self, prompts_path, path_to_clips, audio_files):
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examples = {}
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with open(prompts_path, "r") as f:
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csv_reader = csv.DictReader(f)
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for row in csv_reader:
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"audio_name": audio_name,
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"file_path": file_path,
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"text": text,
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"start_time": start_time,
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"end_time": end_time,
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"duration": duration,
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"quality": quality,
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"speech_genre": speech_genre,
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"speech_style": speech_style,
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"variety": variety,
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"accent": accent,
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"sex": sex,
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"age_range": age_range,
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"num_speakers": num_speakers,
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"speaker_id": speaker_id,
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}
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inside_clips_dir = False
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id_ = 0
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for path, f in audio_files:
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if path.startswith(path_to_clips):
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inside_clips_dir = True
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if path in examples:
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audio = {"path": path, "bytes": f.read()}
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yield id_, {**examples[path], "audio": audio}
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id_ += 1
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elif inside_clips_dir:
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break
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import csv
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import datasets
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from datasets import BuilderConfig, GeneratorBasedBuilder, DatasetInfo, SplitGenerator, Split
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import logging
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# Set up logging
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logging.basicConfig(level=logging.INFO)
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logger = logging.getLogger(__name__)
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_PROMPTS_URLS = {
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"dev": "automatic/validation.csv",
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"train": "train",
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}
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class NurcSPConfig(BuilderConfig):
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def __init__(self, prompts_type="original", **kwargs):
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super().__init__(**kwargs)
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self.prompts_type = prompts_type
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class NurcSPDataset(GeneratorBasedBuilder):
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BUILDER_CONFIGS = [
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NurcSPConfig(name="original", description="Original audio prompts", prompts_type="original"),
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)
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def _split_generators(self, dl_manager):
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logger.info(f"Using prompts_type: {self.config.prompts_type}")
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prompts_urls = _PROMPTS_URLS
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if self.config.prompts_type == "filtered":
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prompts_urls = _PROMPTS_FILTERED_URLS
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logger.info(f"Downloading prompts from: {prompts_urls}")
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prompts_path = dl_manager.download(prompts_urls)
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logger.info(f"Downloaded prompts to: {prompts_path}")
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logger.info(f"Downloading archives from: {_ARCHIVES}")
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archive = dl_manager.download(_ARCHIVES)
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logger.info(f"Downloaded archives to: {archive}")
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return [
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SplitGenerator(
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]
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def _generate_examples(self, prompts_path, path_to_clips, audio_files):
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logger.info(f"Generating examples from prompts_path: {prompts_path}")
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logger.info(f"Looking for clips in: {path_to_clips}")
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examples = {}
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example_count = 0
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# Read CSV file
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with open(prompts_path, "r") as f:
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csv_reader = csv.DictReader(f)
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for row in csv_reader:
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examples[row['file_path']] = {
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"audio_name": row['audio_name'],
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"file_path": row['file_path'],
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"text": row['text'],
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"start_time": row['start_time'],
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"end_time": row['end_time'],
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"duration": row['duration'],
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"quality": row['quality'],
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"speech_genre": row['speech_genre'],
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"speech_style": row['speech_style'],
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"variety": row['variety'],
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"accent": row['accent'],
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"sex": row['sex'],
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"age_range": row['age_range'],
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"num_speakers": row['num_speakers'],
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"speaker_id": row['speaker_id'],
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}
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example_count += 1
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logger.info(f"Found {example_count} examples in CSV")
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inside_clips_dir = False
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id_ = 0
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matched_files = 0
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for path, f in audio_files:
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logger.debug(f"Processing archive file: {path}")
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if path.startswith(path_to_clips):
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inside_clips_dir = True
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logger.debug(f"Found file in clips directory: {path}")
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if path in examples:
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audio = {"path": path, "bytes": f.read()}
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matched_files += 1
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yield id_, {**examples[path], "audio": audio}
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id_ += 1
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elif inside_clips_dir:
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break
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logger.info(f"Matched {matched_files} audio files with CSV entries")
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if matched_files == 0:
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logger.warning("No audio files were matched with CSV entries!")
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