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The dataset generation failed
Error code:   DatasetGenerationError
Exception:    TypeError
Message:      int() argument must be a string, a bytes-like object or a real number, not 'NoneType'
Traceback:    Traceback (most recent call last):
                File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1531, in _prepare_split_single
                  for key, record in generator:
                                     ^^^^^^^^^
                File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 613, in wrapped
                  for item in generator(*args, **kwargs):
                              ~~~~~~~~~^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/packaged_modules/webdataset/webdataset.py", line 127, in _generate_examples
                  for example_idx, example in enumerate(self._get_pipeline_from_tar(tar_path, tar_iterator)):
                                              ~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/packaged_modules/webdataset/webdataset.py", line 32, in _get_pipeline_from_tar
                  for filename, f in tar_iterator:
                                     ^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/utils/track.py", line 49, in __iter__
                  for x in self.generator(*self.args):
                           ~~~~~~~~~~~~~~^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/utils/file_utils.py", line 1405, in _iter_from_urlpath
                  with xopen(urlpath, "rb", download_config=download_config, block_size=0) as f:
                       ~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/utils/file_utils.py", line 982, in xopen
                  file_obj = fs.open(paths[0], mode)
                File "<string>", line 3, in open
                File "/usr/local/lib/python3.14/unittest/mock.py", line 1176, in __call__
                  return self._mock_call(*args, **kwargs)
                         ~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/unittest/mock.py", line 1180, in _mock_call
                  return self._execute_mock_call(*args, **kwargs)
                         ~~~~~~~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/unittest/mock.py", line 1247, in _execute_mock_call
                  result = effect(*args, **kwargs)
                File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 786, in wrapped
                  tracker.files[urlpath] = {"read": 0, "size": int(f.size)}
                                                               ~~~^^^^^^^^
              TypeError: int() argument must be a string, a bytes-like object or a real number, not 'NoneType'
              
              The above exception was the direct cause of the following exception:
              
              Traceback (most recent call last):
                File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 1369, in compute_config_parquet_and_info_response
                  parquet_operations, partial, estimated_dataset_info = stream_convert_to_parquet(
                                                                        ~~~~~~~~~~~~~~~~~~~~~~~~~^
                      builder, max_dataset_size_bytes=max_dataset_size_bytes
                      ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                  )
                  ^
                File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 948, in stream_convert_to_parquet
                  builder._prepare_split(split_generator=splits_generators[split], file_format="parquet")
                  ~~~~~~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1393, in _prepare_split
                  for job_id, done, content in self._prepare_split_single(
                                               ~~~~~~~~~~~~~~~~~~~~~~~~~~^
                      gen_kwargs=gen_kwargs, job_id=job_id, **_prepare_split_args
                      ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                  ):
                  ^
                File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1571, in _prepare_split_single
                  raise DatasetGenerationError("An error occurred while generating the dataset") from e
              datasets.exceptions.DatasetGenerationError: An error occurred while generating the dataset

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orig.mp3
audio
sidon.mp3
audio
cbx.mp3
audio
json
dict
__key__
string
__url__
string
{ "accent": null, "age": "20s to early 30s", "audio": "audio/k320_age1_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Speak with a serene, untouchable grace, ensuring every word is enunciated perfectly.", "role": "High Elf Diplomat" }, "contemporary":...
k320_age1_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 50s to 70s", "audio": "audio/k321_age3_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Speak as if the words are heavy stones being placed into a foundation; slow and deliberate.", "role": "Ancient Knight or Hermit Wizard" },...
k321_age3_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 40s to early 60s", "audio": "audio/k73_age2_bg1.mp3", "best_version": "sidon", "casting": { "classic_fantasy": { "direction": "Speak as if reading from a forbidden tome in a candlelit library, emphasizing the sibilant sounds.", "role": "The Last Archivist" },...
k73_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early to Mid 20s", "audio": "audio/k60_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver lines with a sense of timelessness and gentle, ancient authority.", "role": "Elven Chronicler" }, "contemporary": { "dir...
k60_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early 20s to 30s", "audio": "audio/k34_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Speak with a detached but alluring wisdom, as if reflecting the listener's own thoughts.", "role": "Enchanted Mirror" }, "contemporary...
k34_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early to mid-20s", "audio": "audio/k162_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Speak as if the trees themselves are whispering a secret to a lost traveler.", "role": "Benevolent Forest Spirit" }, "contemporary": ...
k162_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 20s to Early 40s", "audio": "audio/k182_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver with a sense of ancient history being revealed, emphasizing the weight of every word.", "role": "The Wise Chronicler" }, ...
k182_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early to mid-20s", "audio": "audio/k469_age1_bg1.mp3", "best_version": "cbx", "casting": { "classic_fantasy": { "direction": "Deliver lines with a light, airy touch that suggests a being of pure light or magic.", "role": "Enchanted Forest Spirit" }, "contempor...
k469_age1_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early 20s (Synthetic)", "audio": "audio/k360_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver prophecies with a cold, beautiful precision that feels detached from mortal concerns.", "role": "Enchanted Mirror" }, "c...
k360_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 20s to Mid 30s", "audio": "audio/k181_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the lore with the weight of history but the clarity of a modern broadcast.", "role": "Omniscient Narrator" }, "contemporar...
k181_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "8 to 12 years old", "audio": "audio/k465_age1_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the prophecy with absolute certainty and no emotional attachment to the outcome.", "role": "The Oracle of the Glass Tower" }, ...
k465_age1_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early to mid-20s", "audio": "audio/k187_age1_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver lines with a distant, ethereal calm, as if speaking from another realm.", "role": "Enchanted Mirror or Elven Spirit" }, "cont...
k187_age1_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 40s to Early 60s", "audio": "audio/k104_age3_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the royal decree with unwavering poise and a sense of historical importance.", "role": "The King's Herald" }, "contempor...
k104_age3_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early 30s", "audio": "audio/k212_age2_bg1.mp3", "best_version": "sidon", "casting": { "classic_fantasy": { "direction": "Deliver lines with timeless patience and a hint of detached, immortal wisdom.", "role": "Elven Archivist" }, "contemporary": { "direc...
k212_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 40s to Mid 50s", "audio": "audio/k3_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver lines with solemn weight and slow, deliberate pacing to emphasize wisdom.", "role": "High Council Elder" }, "contemporary": ...
k3_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "40s to 50s", "audio": "audio/k532_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the King's decree with absolute formality and no hint of personal emotion.", "role": "Royal Herald" }, "contemporary": { "dir...
k532_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Mature Adult (40s to 50s)", "audio": "audio/k487_age3_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the prophecy with absolute stillness, as if you have seen the rise and fall of empires a thousand times.", "role": "Ancient ...
k487_age3_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early to mid-20s", "audio": "audio/k415_age1_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the lines as if recording the final history of a dying kingdom.", "role": "Weary Elven Scribe" }, "contemporary": { "di...
k415_age1_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early 20s to 30s", "audio": "audio/k123_age1_bg1.mp3", "best_version": "cbx", "casting": { "classic_fantasy": { "direction": "Deliver ancient prophecies with the indifference of a stone tablet that has found its voice.", "role": "The Sentient Archive" }, "cont...
k123_age1_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early 40s", "audio": "audio/k165_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Speak with the slow, inevitable weight of centuries, as if every word is a growing root.", "role": "Ancient Tree Spirit" }, "contemporary": ...
k165_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "30s to 45", "audio": "audio/k309_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the opening prologue of a world's history with weight, gravitas, and absolute certainty.", "role": "The Unseen Chronicler" }, "conte...
k309_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 50s to 70s", "audio": "audio/k381_age3_bg1.mp3", "best_version": "cbx", "casting": { "classic_fantasy": { "direction": "Speak as if recounting a memory from centuries ago, letting the words drift like smoke.", "role": "The Last Dragon Rider" }, "contempor...
k381_age3_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Young Adult (20s to 30s)", "audio": "audio/k458_age2_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver lines with a sense of timeless detachment, as if speaking from another plane of existence.", "role": "Forest Spirit or Magica...
k458_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Late 50s to Early 70s", "audio": "audio/k107_age3_bg1.mp3", "best_version": "orig", "casting": { "classic_fantasy": { "direction": "Deliver the lines with a sense of lost glory and heavy burden, letting the rasp emphasize the character's age.", "role": "The Fallen Kin...
k107_age3_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
{ "accent": null, "age": "Early 20s", "audio": "audio/k225_age2_bg1.mp3", "best_version": "sidon", "casting": { "classic_fantasy": { "direction": "Deliver the history of the realm with a sense of timeless, detached wisdom.", "role": "Elven Chronicler" }, "contemporary": { "direct...
k225_age2_bg1
hf://datasets/TTS-AGI/moss-reference-voices-consolidated@71184046ff5bf57b7f6425456f2c4886b7790ed5/data/voices-0000.tar
End of preview.

MOSS reference voices — consolidated (6,064 voices)

6,064 reference voices for casting MOSS-VA-v2 voice-acting generations. Every voice was auto-annotated by Gemini (name, tagline, language, accent, age/gender read, register, timbre, distinctive features, emotional range, casting suggestions for 4 genres, free-text tags, search text) and scored on 99 measured dimensions: 57 VoiceNet voice-quality axes (timbre/prosody/register/speaking-style, e.g. brightness, roughness, warmth, formality, ASMR-ness, narration-ness…), 40 Empathic-Insight emotion axes (amusement, distress, anger, longing, …), plus genuineness (does it sound like a real human recording) and burst-blend (how cleanly non-speech vocal bursts blend into the speech). Each voice ships with three audio variants and per-variant DNSMOS, so a consumer can pick the best-sounding take per voice.

Repository is private. Research use.

Live search UI: https://projects.laion.ai/moss-reference-voice-search/ — code + reproducer under search_tool/ in this repo.

Composition

Counts by source (= meta.json[i]["source"], also the cid prefix):

source (cid prefix) count what it is
emolia 3,000 EmoLia — real, multilingual emotional speech corpus, speaker-clustered to representative samples. Traceable id (emolia_c*).
char 1,336 Character voices — mined from clusters of generated MOSS-VA-v2 character audio; for each cluster Gemini was shown 3 samples + auto-scores and picked the single most representative one. Opaque id (k<n>_age<n>_bg<n>), synthetic.
refvoice 956 Reinterpreted reference voices — real+AI source snippets clustered, then re-interpreted by our model into a new, distinct speaker (see provenance note below). Opaque id, synthetic.
mediathek 472 German-Mediathek-derived — public German broadcast-media clusters, reinterpreted into new distinct German speakers. Opaque id, synthetic.
anime 300 Japanese-anime-derived — voice cloned/reinterpreted from joujiboi/japanese-anime-speech-v2 clusters, English delivery. Opaque id, synthetic.
total 6,064

Language/accent are populated for the voices where Gemini could identify one from the audio (4,727 of 6,064 non-null; predominantly English (4,250) and German (473), the latter almost entirely the Mediathek family). Gender read (meta.json[i]["gender"]): Male 4,262 · Female 1,675 · Androgynous 109 · Non-human 8 · a handful of Masculine/Feminine/null edge cases.

The three audio variants — and why

Each voice has three parallel renders of the same demo clip:

variant tar suffix what it is
orig <cid>.orig.mp3 The original demo clip as generated/collected.
sidon <cid>.sidon.mp3 SIDON-denoised + loudness-normalized version of orig. Removes background noise and hiss, but denoising can itself introduce artifacts (metallic ringing, over-smoothing) on some clips.
cbx <cid>.cbx.mp3 Chatterbox self-conversion: the sidon clip re-synthesized through Chatterbox voice-conversion using itself as the target voice. This is an artifact-cleanup pass — it tends to smooth over denoising artifacts SIDON introduced, at the cost of occasionally softening some texture.

Finding (see annotations/dnsmos_stats.json): at the dataset level, mean DNSMOS-OVRL is essentially tied across variants — orig 3.343, sidon 3.346, cbx 3.344 — so no single variant is best on average. But per-voice, ~62% of voices are improved by one of the two processed variants over the raw original (win-rate: orig 38.2%, sidon 32.0%, cbx 29.8% — i.e. sidon or cbx wins on 61.8% of voices). Which variant wins is voice-specific, not predictable in aggregate — use the precomputed best_version field (argmax DNSMOS per voice) shipped in every per-sample record and in metadata.parquet to pick the best take for a given voice, rather than defaulting to one variant dataset-wide.

File layout

data/voices-0000.tar … voices-0011.tar   # WebDataset shards, ~505-506 voices each, ~2 GB total
metadata.parquet                          # flat index, one row per voice (see below)
annotations/
  dims.npy            # (6064, 99) float32 — 99-dim scores on the ORIGINAL (orig) audio
  dims_enh.npy        # (6064, 99) float32 — 99-dim scores on the SIDON (sidon) audio
  dim_catalog.json    # the 99-dim schema: [{i, code, name, group, desc}, ...]
  dnsmos.json         # {cid: {orig, sidon, cbx}} DNSMOS-OVRL per variant, all 6064 voices
  dnsmos_stats.json   # dataset-level DNSMOS summary (mean + win% per variant)
search_tool/
  server/server.py, server/API.md, server/dim_catalog.json   # FastAPI search server (BM25 / embedding / VoiceCLAP + 99-dim filters)
  docs/index.html                                             # static demo search page
  pipeline/            # the scripts that built this dataset end-to-end (SIDON, Chatterbox, DNSMOS, dim scoring, VoiceCLAP, assembly)
  README.md            # how to reconstruct a runnable DS_DIR from this repo and run the server
README.md              # this file

WebDataset shards (data/*.tar)

Each tar holds a whole number of voices; members for one voice are contiguous:

<cid>.orig.mp3     # original demo clip
<cid>.sidon.mp3    # SIDON-denoised + loudness-normalized
<cid>.cbx.mp3      # Chatterbox self-conversion of the sidon clip
<cid>.json         # full per-voice record (see below)

The <cid>.json record = the voice's full meta.json entry (name, tagline, gender, age, language, accent, register, timbre_profile, distinctive_features, emotional_range, casting {classic_fantasy, sci_fi, mystery_horror, contemporary}, tags, search_text, legacy scores, source) plus:

{
  "dnsmos": {"orig": 3.44, "sidon": 3.40, "cbx": 3.29},
  "best_version": "orig",
  "dims_raw": [ /* 99 floats, order = annotations/dim_catalog.json, scored on orig audio */ ],
  "dims_enh": [ /* 99 floats, same order, scored on sidon audio */ ]
}

Load with WebDataset:

import webdataset as wds

ds = wds.WebDataset(
    "hf://datasets/TTS-AGI/moss-reference-voices-consolidated/data/voices-{0000..0011}.tar"
).decode()

for sample in ds:
    cid = sample["__key__"]
    orig_mp3 = sample["orig.mp3"]     # bytes
    sidon_mp3 = sample["sidon.mp3"]
    cbx_mp3 = sample["cbx.mp3"]
    rec = sample["json"]
    print(cid, rec["name"], rec["best_version"])

(Requires huggingface_hub's hf:// support, or hf_hub_download each tar locally first and point WebDataset at the local glob.)

metadata.parquet — flat index

One row per voice, for fast filtering/joining without touching audio: cid, name, gender, age, language, accent, tagline, tags, source, dnsmos_orig, dnsmos_sidon, dnsmos_cbx, best_version, shard, plus key 99-dim values (both orig-scored and _enh = sidon-scored) for the dimensions most people filter/sort on: dim_GEND, dim_AGEV, dim_GENU, dim_BLEND, dim_BKGN, dim_VALN, dim_AROU, dim_WARM (+ _enh variants). Full 99-dim vectors live in annotations/dims.npy / dims_enh.npy (row i = metadata.parquet row i, same order as meta.json) and in every tar sample's dims_raw/dims_enh.

import pandas as pd
df = pd.read_parquet("metadata.parquet")
loud_masculine = df[(df.dim_GEND > 4) & (df.dnsmos_orig > 3.4)]

99-dim schema

annotations/dim_catalog.json is a list of 99 {i, code, name, group, desc} entries, group{emonet (40), voicenet (57), quality (2)}. Key codes used in metadata.parquet: GEND (perceived gender, higher = more masculine), AGEV (perceived age), GENU (genuineness — sounds like a real human recording), BLEND (vocal-burst blend quality), BKGN (background noise level), VALN/AROU (emotional valence/arousal), WARM (vocal warmth). dims.npy rows are scored on the orig audio, dims_enh.npy on the sidon audio — compare the two to see how denoising shifted a voice's measured profile.

DNSMOS

annotations/dnsmos.json = {cid: {orig, sidon, cbx}}, DNSMOS-OVRL (0–5, higher = better perceived audio quality) computed independently per variant for all 6,064 voices. annotations/dnsmos_stats.json has the dataset-level means and per-variant win-rates referenced above.

License

CC-by-4.0

Search

See search_tool/ for the full FastAPI search server (BM25 / sentence-embedding / VoiceCLAP text→audio similarity, with optional AND-filters over any of the 99 dimensions), the pipeline scripts that produced this dataset end-to-end (SIDON enhancement, Chatterbox self-conversion, DNSMOS scoring, 99-dim scoring, VoiceCLAP embedding, dataset assembly), and a live-demo reproducer README. Live instance: https://projects.laion.ai/moss-reference-voice-search/.

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