generate_composition_testset.py
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"""生成曲去重评估测试集。
从音频目录随机抽取若干首参照歌入库,对每首用 ffmpeg 生成多个变换版本,
覆盖曲去重测试样本类型.md 中第一类(数字信号变换)和第三类(困难正样本)的可合成部分。
负样本从未入库的 holdout 歌曲生成,以匹配最终接口 duplicate true/false 语义。
用法:
python scripts/generate_composition_testset.py \
--audio-dir /Volumes/移动硬盘/composition_test \
--negative-audio-dir /Volumes/移动硬盘/composition_drop \
--out-dir composition_testset_20 \
--num-songs 20 \
--num-negative-songs 20 \
--negative-variants \
--seed 123
输出:
reference.csv — 参照曲(原始文件),需提前入库
queries.csv — 查询曲,带 variant 和 expected 标注
"""
import argparse
import csv
import logging
import random
import subprocess
import sys
from pathlib import Path
try:
from tqdm import tqdm
except ImportError:
tqdm = None
def _tqdm(iterable, **kwargs):
if tqdm is not None:
return tqdm(iterable, **kwargs)
total = kwargs.get("total", None) or (len(iterable) if hasattr(iterable, "__len__") else None)
desc = kwargs.get("desc", "")
class _Simple:
def __init__(self):
self._i = 0
def __iter__(self):
for item in iterable:
self._i += 1
if total:
print(f"\r{desc}: {self._i}/{total}", end="", flush=True)
yield item
if total:
print()
return _Simple()
logger = logging.getLogger(__name__)
# --------------------------------------------------------------------------
# 第一类:数字信号变换
# --------------------------------------------------------------------------
DSP_VARIANTS: list[tuple[str, str]] = [
# Pitch Shift(±1、±2 半音)
# aresample=22050 先把源文件归一化到 22050Hz,再用 asetrate 计算正确的变调偏移,
# 避免源文件为 44100/48000Hz 等非 22050Hz 时 asetrate 基准算错导致时长异常。
("pitch_up1", "aresample=22050,asetrate=22050*1.0595,aresample=22050"), # +1 半音
("pitch_up2", "aresample=22050,asetrate=22050*1.1225,aresample=22050"), # +2 半音
("pitch_down1", "aresample=22050,asetrate=22050*0.9439,aresample=22050"), # -1 半音
("pitch_down2", "aresample=22050,asetrate=22050*0.8909,aresample=22050"), # -2 半音
# Tempo Shift
("tempo_slow", "atempo=0.90"), # 0.9x
("tempo_fast", "atempo=1.10"), # 1.1x
("tempo_faster","atempo=1.20"), # 1.2x
# EQ 变换
("lowpass", "lowpass=f=4000"), # 低通
("highpass", "highpass=f=800"), # 高通
("eq_mid", "equalizer=f=1000:width_type=o:width=2:g=-6"), # 中频衰减
# 压缩编码往返(编码为 mp3 再解回 wav,模拟有损压缩引入的失真)
("codec_320k", "acodec=libmp3lame,b:a=320k"),
("codec_128k", "acodec=libmp3lame,b:a=128k"),
]
# --------------------------------------------------------------------------
# 第三类:困难正样本(可合成部分)
# --------------------------------------------------------------------------
HARD_POSITIVE_VARIANTS: list[tuple[str, str]] = [
# 前奏删减:从 20% 处开始截取(模拟删前奏版本)
("trim_intro", None), # 特殊处理,用 -ss 参数
# 只保留副歌:截取中间 40%(模拟短视频截段)
("chorus_only", None), # 特殊处理,用 -ss + -t 参数
# Pitch + Tempo 叠加(模拟 Live 版同时有调整)
("pitch_up1_tempo_slow", "aresample=22050,asetrate=22050*1.0595,aresample=22050,atempo=0.92"),
]
# 负样本变体只使用相对温和的处理,避免把负样本评估变成极端音质测试。
NEGATIVE_VARIANTS: list[tuple[str, str | None]] = [
("negative_lowpass", "lowpass=f=4000"),
("negative_codec_128k", "acodec=libmp3lame,b:a=128k"),
]
# 片段拼接负样本:每个样本从几首不同歌曲各取一段拼接,测试系统对多曲混合音频的误报率。
SPLICE_SONGS_PER_SAMPLE = 3 # 每个拼接样本使用的源歌曲数
SPLICE_FRAGMENT_SECS = 20.0 # 每段截取时长(秒)
def _ffmpeg_variant(src: Path, dst: Path, af: str) -> bool:
"""普通 audio filter 变换。"""
# 压缩编码往返需要两步:先编码为 mp3,再解回 wav
if "acodec" in af:
import tempfile
with tempfile.NamedTemporaryFile(suffix=".mp3", delete=False) as tmp:
tmp_mp3 = Path(tmp.name)
ok1 = _run_ffmpeg([
"ffmpeg", "-y", "-i", str(src),
"-ar", "22050", "-ac", "1",
"-codec:a", "libmp3lame", "-b:a", af.split("b:a=")[1],
str(tmp_mp3),
])
if not ok1:
return False
ok2 = _run_ffmpeg([
"ffmpeg", "-y", "-i", str(tmp_mp3),
"-ar", "22050", "-ac", "1",
str(dst),
])
tmp_mp3.unlink(missing_ok=True)
return ok2
cmd = [
"ffmpeg", "-y", "-i", str(src),
"-af", af,
"-ar", "22050", "-ac", "1",
str(dst),
]
return _run_ffmpeg(cmd)
def _ffmpeg_splice(sources: list[Path], dst: Path, fragment_secs: float = SPLICE_FRAGMENT_SECS) -> bool:
"""从多首歌曲各取一段片段,拼接为单个音频文件。
每段从歌曲 20%~60% 处随机取起点,避开开头和结尾。
使用 filter_complex concat 在一次 ffmpeg 调用内完成,无临时文件。
"""
inputs: list[str] = []
filter_parts: list[str] = []
for i, src in enumerate(sources):
duration = _probe_duration(src)
if duration is None:
return False
usable_end = max(0.0, duration - fragment_secs)
start_min = min(duration * 0.20, usable_end)
start_max = min(duration * 0.60, usable_end)
ss = random.uniform(start_min, start_max) if start_max > start_min else start_min
inputs += ["-i", str(src)]
filter_parts.append(
f"[{i}]atrim=start={ss:.3f}:duration={fragment_secs:.3f},aresample=22050[seg{i}]"
)
n = len(sources)
concat_inputs = "".join(f"[seg{i}]" for i in range(n))
filter_parts.append(f"{concat_inputs}concat=n={n}:v=0:a=1[out]")
cmd = [
"ffmpeg", "-y",
*inputs,
"-filter_complex", ";".join(filter_parts),
"-map", "[out]",
"-ar", "22050", "-ac", "1",
str(dst),
]
return _run_ffmpeg(cmd)
def _ffmpeg_trim(src: Path, dst: Path, start_ratio: float, duration_ratio: float) -> bool:
"""按相对位置截取片段。需要先探测时长。"""
duration = _probe_duration(src)
if duration is None:
return False
ss = duration * start_ratio
t = duration * duration_ratio
return _run_ffmpeg([
"ffmpeg", "-y", "-i", str(src),
"-ss", f"{ss:.3f}", "-t", f"{t:.3f}",
"-ar", "22050", "-ac", "1",
str(dst),
])
def _probe_duration(src: Path) -> float | None:
result = subprocess.run(
["ffprobe", "-v", "error", "-show_entries", "format=duration",
"-of", "default=noprint_wrappers=1:nokey=1", str(src)],
capture_output=True, text=True,
)
try:
return float(result.stdout.strip())
except ValueError:
return None
def _run_ffmpeg(cmd: list[str]) -> bool:
result = subprocess.run(cmd, capture_output=True)
return result.returncode == 0
def _song_id(path: Path) -> str:
return path.stem.split("_")[0]
def _discover_wavs(audio_dir: Path) -> list[Path]:
return [
f for f in sorted(audio_dir.rglob("*.wav"))
if f.is_file() and not f.name.startswith("._")
]
def main() -> None:
logging.basicConfig(level=logging.INFO, format="%(asctime)s [%(levelname)s] %(message)s")
parser = argparse.ArgumentParser()
parser.add_argument("--audio-dir", required=True)
parser.add_argument(
"--negative-audio-dir",
default="/Volumes/移动硬盘/lyric_audio_type11",
help="负样本来源目录;会排除 --audio-dir 中已存在的 song_id",
)
parser.add_argument("--out-dir", required=True)
parser.add_argument("--num-songs", type=int, default=20, help="抽取歌曲数量")
parser.add_argument("--num-negative-songs", type=int, default=20, help="抽取未入库负样本歌曲数量")
parser.add_argument(
"--negative-variants",
action="store_true",
help="为负样本额外生成 codec/lowpass 变体",
)
parser.add_argument("--seed", type=int, default=42)
args = parser.parse_args()
audio_dir = Path(args.audio_dir)
negative_audio_dir = Path(args.negative_audio_dir)
out_dir = Path(args.out_dir)
out_dir.mkdir(parents=True, exist_ok=True)
variants_dir = out_dir / "variants"
variants_dir.mkdir(exist_ok=True)
all_wavs = _discover_wavs(audio_dir)
negative_wavs = _discover_wavs(negative_audio_dir)
if len(negative_wavs) < args.num_negative_songs:
logger.error(
"负样本目录下只有 %d 个 wav,少于 --num-negative-songs = %d",
len(negative_wavs),
args.num_negative_songs,
)
sys.exit(1)
# 从参照目录中排除负样本目录已有的 song_id,避免参照曲与负样本重叠
negative_song_ids = {_song_id(wav) for wav in negative_wavs}
all_wavs = [wav for wav in all_wavs if _song_id(wav) not in negative_song_ids]
if len(all_wavs) < args.num_songs:
logger.error(
"参照目录排除负样本 song_id 后只有 %d 个 wav,少于 --num-songs = %d",
len(all_wavs),
args.num_songs,
)
sys.exit(1)
random.seed(args.seed)
selected = random.sample(all_wavs, args.num_songs)
negative_selected = random.sample(negative_wavs, args.num_negative_songs)
logger.info(
"已抽取 %d 首参照歌,%d 首未入库负样本歌(负样本来源: %s,已排除 %d 个负样本 song_id)",
len(selected),
len(negative_selected),
negative_audio_dir,
len(negative_song_ids),
)
ref_rows = []
query_rows = []
for wav in _tqdm(selected, desc="生成正样本变体", total=len(selected)):
song_id = _song_id(wav)
ref_rows.append({
"song_id": song_id,
"audio_path": str(wav),
"variant": "original",
})
# 第一类:DSP 变换
for variant_name, af in DSP_VARIANTS:
dst = variants_dir / f"{song_id}_{variant_name}.wav"
ok = _ffmpeg_variant(wav, dst, af)
if not ok:
logger.warning("DSP 变换失败,跳过: %s %s", wav.name, variant_name)
continue
query_rows.append({
"song_id": song_id,
"audio_path": str(dst),
"variant": variant_name,
"sample_class": "dsp",
"expected_song_id": song_id,
"expected": "duplicate",
})
# 第三类:困难正样本
for variant_name, af in HARD_POSITIVE_VARIANTS:
dst = variants_dir / f"{song_id}_{variant_name}.wav"
if variant_name == "trim_intro":
ok = _ffmpeg_trim(wav, dst, start_ratio=0.20, duration_ratio=0.80)
elif variant_name == "chorus_only":
ok = _ffmpeg_trim(wav, dst, start_ratio=0.30, duration_ratio=0.40)
else:
ok = _ffmpeg_variant(wav, dst, af)
if not ok:
logger.warning("困难正样本生成失败,跳过: %s %s", wav.name, variant_name)
continue
query_rows.append({
"song_id": song_id,
"audio_path": str(dst),
"variant": variant_name,
"sample_class": "hard_positive",
"expected_song_id": song_id,
"expected": "duplicate",
})
# Boolean 接口负样本:查询音频不能在 reference.csv 入库集合中。
# expected_song_id 留空,表示没有目标重复曲;评测只看最终 duplicate true/false。
for wav in _tqdm(negative_selected, desc="生成负样本变体", total=len(negative_selected)):
song_id = _song_id(wav)
query_rows.append({
"song_id": song_id,
"audio_path": str(wav),
"variant": "negative_original",
"sample_class": "negative",
"expected_song_id": "",
"expected": "not_duplicate",
})
if not args.negative_variants:
continue
for variant_name, af in NEGATIVE_VARIANTS:
dst = variants_dir / f"{song_id}_{variant_name}.wav"
ok = _ffmpeg_variant(wav, dst, af)
if not ok:
logger.warning("负样本变换失败,跳过: %s %s", wav.name, variant_name)
continue
query_rows.append({
"song_id": song_id,
"audio_path": str(dst),
"variant": variant_name,
"sample_class": "negative",
"expected_song_id": "",
"expected": "not_duplicate",
})
# 片段拼接负样本:数量与其他负样本变体保持一致
if args.negative_variants and len(negative_selected) >= SPLICE_SONGS_PER_SAMPLE:
for i in _tqdm(range(len(negative_selected)), desc="生成片段拼接负样本", total=len(negative_selected)):
srcs = random.sample(negative_selected, SPLICE_SONGS_PER_SAMPLE)
splice_id = f"splice_{i:04d}"
dst = variants_dir / f"{splice_id}_negative_splice.wav"
ok = _ffmpeg_splice(srcs, dst)
if not ok:
logger.warning("片段拼接生成失败,跳过: splice %d", i)
continue
query_rows.append({
"song_id": splice_id,
"audio_path": str(dst),
"variant": "negative_splice",
"sample_class": "negative",
"expected_song_id": "",
"expected": "not_duplicate",
})
ref_path = out_dir / "reference.csv"
query_path = out_dir / "queries.csv"
fieldnames = ["song_id", "audio_path", "variant", "sample_class", "expected_song_id", "expected"]
with ref_path.open("w", newline="", encoding="utf-8") as f:
writer = csv.DictWriter(f, fieldnames=["song_id", "audio_path", "variant"])
writer.writeheader()
writer.writerows(ref_rows)
with query_path.open("w", newline="", encoding="utf-8") as f:
writer = csv.DictWriter(f, fieldnames=fieldnames)
writer.writeheader()
writer.writerows(query_rows)
pos = sum(1 for r in query_rows if r["expected"] == "duplicate")
neg = sum(1 for r in query_rows if r["expected"] == "not_duplicate")
logger.info("参照集: %s (%d 条)", ref_path, len(ref_rows))
logger.info("查询集: %s (%d 条,正样本 %d,负样本 %d)", query_path, len(query_rows), pos, neg)
# 按 sample_class 统计
from collections import Counter
by_class = Counter(r["sample_class"] for r in query_rows)
for cls, cnt in sorted(by_class.items()):
logger.info(" %-20s %d 条", cls, cnt)
if __name__ == "__main__":
main()