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Added tests for api and load_audio
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@ -10,11 +10,13 @@ import torch
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from torch import nn
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from torch import nn
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from batdetect2 import api
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from batdetect2 import api
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import io
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PKG_DIR = os.path.dirname(os.path.dirname(os.path.abspath(__file__)))
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PKG_DIR = os.path.dirname(os.path.dirname(os.path.abspath(__file__)))
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TEST_DATA_DIR = os.path.join(PKG_DIR, "example_data", "audio")
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TEST_DATA_DIR = os.path.join(PKG_DIR, "example_data", "audio")
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TEST_DATA = glob(os.path.join(TEST_DATA_DIR, "*.wav"))
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TEST_DATA = glob(os.path.join(TEST_DATA_DIR, "*.wav"))
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DATA_DIR = os.path.join(os.path.dirname(__file__), "data")
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def test_load_model_with_default_params():
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def test_load_model_with_default_params():
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"""Test loading model with default parameters."""
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"""Test loading model with default parameters."""
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@ -280,3 +282,28 @@ def test_process_file_with_empty_predictions_does_not_fail(
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assert results is not None
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assert results is not None
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assert len(results["pred_dict"]["annotation"]) == 0
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assert len(results["pred_dict"]["annotation"]) == 0
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def test_process_file_file_id_defaults_to_basename():
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"""Test that no detections are made above the nyquist frequency."""
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# Recording donated by @@kdarras
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basename = "20230322_172000_selec2.wav"
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path = os.path.join(DATA_DIR, basename)
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output = api.process_file(path)
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predictions = output["pred_dict"]
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id = predictions["id"]
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assert id == basename
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def test_bytesio_file_id_defaults_to_md5():
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"""Test that no detections are made above the nyquist frequency."""
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# Recording donated by @@kdarras
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basename = "20230322_172000_selec2.wav"
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path = os.path.join(DATA_DIR, basename)
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with open(path, "rb") as f:
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data = io.BytesIO(f.read())
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output = api.process_file(data)
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predictions = output["pred_dict"]
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id = predictions["id"]
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assert id == "7ade9ebf1a9fe5477ff3a2dc57001929"
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@ -7,7 +7,9 @@ from hypothesis import strategies as st
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from batdetect2.detector import parameters
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from batdetect2.detector import parameters
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from batdetect2.utils import audio_utils, detector_utils
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from batdetect2.utils import audio_utils, detector_utils
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import io
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import io
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import requests
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import os
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DATA_DIR = os.path.join(os.path.dirname(__file__), "data")
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@given(duration=st.floats(min_value=0.1, max_value=2))
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@given(duration=st.floats(min_value=0.1, max_value=2))
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def test_can_compute_correct_spectrogram_width(duration: float):
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def test_can_compute_correct_spectrogram_width(duration: float):
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@ -144,3 +146,48 @@ def test_get_samplerate_using_bytesio():
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expected_sample_rate = 500000
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expected_sample_rate = 500000
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assert expected_sample_rate == sample_rate
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assert expected_sample_rate == sample_rate
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def test_load_audio_using_bytes():
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filename = "example_data/audio/20170701_213954-MYOMYS-LR_0_0.5.wav"
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with open(filename, "rb") as f:
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audio_bytes = io.BytesIO(f.read())
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sample_rate, audio_data = audio_utils.load_audio(audio_bytes, time_exp_fact=1, target_samp_rate=parameters.TARGET_SAMPLERATE_HZ)
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expected_sample_rate, expected_audio_data = audio_utils.load_audio(filename, time_exp_fact=1, target_samp_rate=parameters.TARGET_SAMPLERATE_HZ)
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assert expected_sample_rate == sample_rate
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assert np.array_equal(audio_data, expected_audio_data)
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def test_get_samplerate_using_bytesio_2():
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basename = "20230322_172000_selec2.wav"
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path = os.path.join(DATA_DIR, basename)
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with open(path, "rb") as f:
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audio_bytes = io.BytesIO(f.read())
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sample_rate = audio_utils.get_samplerate(audio_bytes)
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expected_sample_rate = 192_000
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assert expected_sample_rate == sample_rate
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def test_load_audio_using_bytes_2():
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basename = "20230322_172000_selec2.wav"
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path = os.path.join(DATA_DIR, basename)
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with open(path, "rb") as f:
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data = io.BytesIO(f.read())
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sample_rate, audio_data = audio_utils.load_audio(data, time_exp_fact=1, target_samp_rate=parameters.TARGET_SAMPLERATE_HZ)
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expected_sample_rate, expected_audio_data = audio_utils.load_audio(path, time_exp_fact=1, target_samp_rate=parameters.TARGET_SAMPLERATE_HZ)
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assert expected_sample_rate == sample_rate
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assert np.array_equal(audio_data, expected_audio_data)
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