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InsectSet459: an open dataset of insect sounds for bioacoustic machine learning

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arxiv 2503.15074 v1 pith:VO6GYAGO submitted 2025-03-19 cs.SD eess.AS

classification cs.SDeess.AS
keywords insectdatasetaudiolearningchallengingdeepfrequenciesmethods
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Automatic recognition of insect sound could help us understand changing biodiversity trends around the world -- but insect sounds are challenging to recognize even for deep learning. We present a new dataset comprised of 26399 audio files, from 459 species of Orthoptera and Cicadidae. It is the first large-scale dataset of insect sound that is easily applicable for developing novel deep-learning methods. Its recordings were made with a variety of audio recorders using varying sample rates to capture the extremely broad range of frequencies that insects produce. We benchmark performance with two state-of-the-art deep learning classifiers, demonstrating good performance but also significant room for improvement in acoustic insect classification. This dataset can serve as a realistic test case for implementing insect monitoring workflows, and as a challenging basis for the development of audio representation methods that can handle highly variable frequencies and/or sample rates.

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  1. ECOSoundSet: a finely annotated dataset for the automated acoustic identification of Orthoptera and Cicadidae in North, Central and temperate Western Europe

    cs.SD 2025-04 conditional novelty 7.0 of 10

    ECOSoundSet provides 10,653 recordings spanning 200 orthopteran and 24 cicada species in northwestern and central Europe, including fine-grained labels and a train/val/test split for bioacoustic machine learning.

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