aidataservices.inAI data collection · India

ML Research Groups · Speech Emotion Recognition

Speech Emotion Recognition Data for ML Research Groups

Academic and industrial research teams building benchmarks and studying low-resource Indian languages, where documentation and reproducibility matter as much as volume. Detecting frustration, satisfaction and escalation in Indian-language customer conversations.

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AI team reviewing dataset dashboards — Speech Emotion Recognition Data for ML Research Groups
Buyer
ML Research Groups
Use case
Speech Emotion Recognition
Metric
Per-class F1
01

Where the two meet

Low-resource languages have no usable public data at all That is a speech emotion recognition problem, and it is solved by data shaped like this:

  • Elicited and natural emotional speech
  • Multi-rater emotion labels with adjudication
  • Balanced across emotion classes
ML Research Groups · Speech Emotion RecognitionWhat goes wrongWhat they check before signingLow-resource languages have no usable pub…lic data at all…Datasets without documented collection pr…otocols cannot be cited or reproduced…Ethics and consent requirements are stric…ter than commercial norms…Is the collection protocol documented wel…l enough to publish?…Are speaker demographics reported in aggr…egate for dataset cards?…Can the data be released openly, and unde…r what consent terms?…We quote against the right-hand column, not the pitch.
02

Your evaluation criteria

  • Is the collection protocol documented well enough to publish?
  • Are speaker demographics reported in aggregate for dataset cards?
  • Can the data be released openly, and under what consent terms?
Audio waveforms being prepared as ASR training data — supporting speech emotion recognition data for ml research groups
Audio waveforms being prepared as ASR training data
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Metrics

  • Per-class F1
  • Inter-rater agreement on labels
  • Escalation detection latency
04

Pitfalls

  • Acted emotion only
  • Single-rater labels on an inherently subjective task
05

Contract points

  • Open-release-compatible consent
  • Dataset card material provided with delivery
  • Attribution and citation terms

Frequently asked

What does a first engagement look like?

Usually a scoped pilot: one language, an evaluation set plus a first training batch, delivered in three to five weeks, followed by the full programme.

Can you match our existing vendor's schema?

Yes. Working to your schema avoids a conversion pass and keeps deliveries comparable across vendors.

How is provenance documented?

Per-item contributor records and consent mapped to IDs in the manifest.

Send your requirement

Language, volume, metric, deadline.

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