WHAM!: Extending Speech Separation to Noisy Environments
Paper
• 1907.01160 • Published
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This is a mirror of the WHAM!48kHz noise dataset. The original files were segmented and converted from WAV to Opus to reduce the size and accelerate streaming.
import io
import soundfile as sf
from datasets import Features, Value, load_dataset
for item in load_dataset(
"philgzl/wham",
split="train",
streaming=True,
features=Features({"audio": Value("binary"), "name": Value("string")}),
):
print(item["name"])
buffer = io.BytesIO(item["audio"])
x, fs = sf.read(buffer)
# do stuff...
@inproceedings{wichern2019wham,
title = {{WHAM!}: {Extending} speech separation to noisy environments},
author = {Wichern, Gordon and Antognini, Joe and Flynn, Michael and Zhu, Licheng Richard and McQuinn, Emmett and Crow, Dwight and Manilow, Ethan and Roux, Jonathan Le},
booktitle = {Proc. Interspeech},
pages = {1368--1372},
year = {2019},
}