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audio
audioduration (s)
59.9
60
label
class label
3 classes
0airport
0airport
0airport
0airport
0airport
0airport
0airport
0airport
0airport
0airport
1street
1street
1street
1street
1street
1street
1street
1street
1street
1street
1street
2subway
2subway
2subway
2subway
2subway
2subway
2subway
2subway
2subway
2subway

Speech-Free Background Noise Dataset — Real-World, Non-Synthetic (50+ Hours)

Dataset summary

50+ hours of real-world urban environmental/ambient background noise (field recordings) without intelligible speech (speech-free), from three scenes: airport, street, subway. The dataset is non-synthetic and intended for speech enhancement via noise augmentation and sound event detection (SED) as “clean background”/negative class

Purpose and usage scenarios

  • Speech enhancement: adding ambient/background noise to clean speech
  • Sound Event Detection: background samples without target events/speech; negative samples and false alarm rate estimation
  • Filtering/noise reduction: training noise reduction models without the risk of intelligible speech leakage

Noise Environments

  • airport: terminals, corridors, gates, baggage areas — ambient/background noise
  • street: sidewalks and roadways; traffic, wind, footsteps, street music as indistinct background ambient noise
  • subway: platform, train car, passageways; braking/acceleration, tunnel rumble, doors, announcements as indistinct background noise

Features:

  • Only real-world field recordings. No synthetic mixes; non-synthetic source audio
  • No intelligible speech (speech-free). Natural crowd murmur allowed only when no single utterance is intelligible
  • Only noise. Music, dominant speech, and close-up announcements are excluded
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