Dieter
@kagglingdieter.bsky.social
170 followers 14 following 8 posts
deep learner @nvidia, PhD mathematics, current rank @kaggle: 1
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kagglingdieter.bsky.social
Very happy to be back to #1 on kaggle 😁
kagglingdieter.bsky.social
The solution in an ensemble of segmentation (3D Unets with ResNet & B3 encoders) and object detection models (SegResNet and DynUnet backbones) from MONAI.
We accelerate model inference with TensorRT to achieve 200% speedup compared to eager PyTorch runtime
kagglingdieter.bsky.social
This competition challenged us to detect and classify five classes of protein complexes within a real-world cryoET dataset—pushing the boundaries of deep learning in structural biology.
kagglingdieter.bsky.social
Cryo-electron tomography (cryoET) generates high-resolution 3D tomograms, capturing proteins in their native, highly crowded cellular environment. It has immense potential to unlock the mysteries of the cell.
kagglingdieter.bsky.social
Excited to share that Eugene Khvedchenia and I secured 🏆 1st place out of 950 teams in the CryoET Object Identification Competition hosted by the Chan Zuckerberg Institute for Advanced Biological Imaging (CZII) on Kaggle! www.kaggle.com/competitions...
kagglingdieter.bsky.social
With 12h to go people are desperate at @kaggle.com Cryo competition
Reposted by Dieter
simjeg.bsky.social
💡 We've just released KV cache quantization in kvpress, our open source package for KV cache compression. Check it out : github.com/NVIDIA/kvpress.

Special thanks for Arthur Zucker and Marc Sun from @huggingface.bsky.social for their support 🤗
Reposted by Dieter
machine.learning.bio
GPUs are *fast* at aligning protein sequences (and profiles!). 178x faster than JackHMMER!

In ColabFold, 23x faster end-to-end compared to AlphaFold2 reaching the same accuracy!

You get immediate speedups for all methods leveraging MSAs, from DCA, to PoET, and even AlphaFold3!