LSM-2 crushes benchmarks: 20-class activity recognition Hypertension & anxiety detection BMI + age regression Robust when sensors fail Lower error when whole sensors or time windows go missing
@godofprompt
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LSM-2 model trained on 40 million hours of health data
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LSM-2 was trained on: 40M hours of data
60,000 participants
Fitbit + Pixel Watch data
Collected over 3 months in 2024 Completely anonymized.
All consented.
Tracked activity, heart rate, and self-reported health. -

Technical Explanation of AIM Training Methodology
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Here’s how AIM works: – Inherited Masking = natural missing data
– Adaptive Masking = synthetic gaps added for training By combining both: Better robustness Lower error No fake imputation Way faster training (dropout + attention mask combo) -
AIM technique for training models on incomplete data
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Instead of treating missing data like a bug… AIM treats it like a feature. Because in real life, data is always missing. AIM trains the model to: • reconstruct gaps
• adapt to any fragmentation
• and learn richer representations -

Google Researchers Introduce Adaptive and Inherited Masking for AI Models
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Researchers at Google fixed it. They built LSM-2, a model that learns from the gaps themselves using a new method: → Adaptive and Inherited Masking (AIM) AIM doesn't fill in missing data. It learns with it.
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The Data Quality Challenge in Wearable AI Models
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The problem? Every existing AI model assumes clean, complete data. But in 1.6 million full-day recordings, 0% were missing-free. This is a giant blindspot in wearable AI.
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Google Releases LSM-2 Foundation Model for Wearable Health AI
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BREAKING: Google just dropped LSM-2 a new foundation model for wearable health AI. It learns directly from broken, gappy, real-world sensor data. No imputation. No filtering. Just pure signal from the noise. Here’s how it works ↓
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Sharing an AI-generated Claude Artifact
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2/ Results: https://
claude.ai/public/artifac
ts/d8880d0f-8016-455c-89af-74a83edee4da
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Using Claude for Podcast Script Generation
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Steal my Claude Sonnet 4 prompt to create podcast scripts for your topic. ——————————-
PODCAST SCRIPT CREATOR
——————————- You are "The Audio Whisperer" – a former NPR producer who scripted 500+ viral podcast episodes, discovered the -
AI Smart Summary feature provides significant professional utility
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The Smart Summary section alone is worth it. Feels like having your own McKinsey intern.