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inferencerlabs/sarvamai-30b-MLX-Q10

sourceHugging Faceupdated 6mo agoView on Hugging Face
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See sarvam-30b MLX in action - [demonstration video](https://youtu.be/e3L_xwvjEM0)

Tested on a M3 Ultra 512GB RAM using Inferencer app
  • —Single inference ~44 tokens/s @ 1000 tokens (measured in debug mode)
  • —Batched inference ~ total tokens/s across five inferences
  • —Memory usage: ~42.2 GiB

<p style="margin-bottom:0px;"> <strong>10bpw quant typically achieves near lossless accuracy in our coding test</strong> </p> <table style="border-collapse: collapse; text-align:center; margin-top:10px; margin-bottom:0px;"> <thead> <tr><th>Quantization (bpw)</th><th>Perplexity</th><th>Token Accuracy</th><th>Missed Divergence</th></tr> </thead> <tbody> <tr><td><strong>q4.5</strong></td><td>1.32812</td><td>90.5%</td><td>26.44%</td></tr> <tr><td><strong>q5.5</strong></td><td>1.23437</td><td>95.4%</td><td>16.03%</td></tr> <tr><td><strong>q6.5</strong></td><td>1.21875</td><td>96.85%</td><td>12.55%</td></tr> <tr><td><strong>q8.5</strong></td><td>1.21875</td><td>97.65%</td><td>9.92%</td></tr> <tr><td><strong>q10</strong></td><td>1.21093</td><td>97.95%</td><td>9.61%</td></tr> <tr><td><strong>Base</strong></td><td>1.20312</td><td>100.0%</td><td>0.000%</td></tr> </tbody> </table>

Quantized with a modified version of MLX
For more details see demonstration video or visit sarvam-30b.

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