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Training and evaluation data, with the modality, task and licence stated up front. Listed live from the Hugging Face Hub.

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01malaiwah /glm53-flash-fidelity-root-v1 fidelity--glm53flash.malaiwah.root.bf16 A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from zai-org/GLM-5.3-Flash-BF16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same cut… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/glm53-flash-fidelity-root-v1.tabularn<1K0 likes286 downloads19d agoHugging Face02malaiwah /qwen38-27b-fidelity-root-v1 Qwen3.8-27B BF16 root fidelity dataset (hidden form) A root capture of Qwen/Qwen3.8-27B at revision 1d4bf0f2ff6012fd82039f2fa52739d0dd7c60c0 — 18 shards, no quantization_config, a genuinely unquantized reference — over the sealed suite-v5 shard-0 token panel (512 contexts x 2048 tokens = 1,048,064 scored positions). What this is for Quantization fidelity is usually reported as a KL divergence against a teacher. If the teacher was captured on a different stack than… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/qwen38-27b-fidelity-root-v1.tabularn<1K0 likes135 downloads25d agoHugging Face03malaiwah /glm52-fidelity-root-v1 fidelity--glm52.malaiwah.root.bf16 A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from zai-org/GLM-5.2. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same cut as… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/glm52-fidelity-root-v1.tabularn<1K0 likes116 downloads19d agoHugging Face04malaiwah /qwen3-5-tiny-fidelity-root-v1 qwen3_5 random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/qwen3-5-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same cut… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/qwen3-5-tiny-fidelity-root-v1.tabularn<1K0 likes116 downloads17d agoHugging Face05malaiwah /deepseek-v4-tiny-fidelity-root-v1 deepseek-v4 random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/deepseek-v4-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it).… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/deepseek-v4-tiny-fidelity-root-v1.tabularn<1K0 likes112 downloads17d agoHugging Face06malaiwah /qwen3-5-gguf-tiny-fidelity-root-v1 qwen35-gguf random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/qwen3-5-gguf-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it).… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/qwen3-5-gguf-tiny-fidelity-root-v1.tabularn<1K0 likes109 downloads17d agoHugging Face07malaiwah /fruit-fidelity-root-v1 GLM-5.2-SIQ-Fruit — root fidelity dataset (hidden form) This is the reference yardstick for the GLM-5.2-SIQ-Fruit family: one bf16 forward pass of malaiwah/GLM-5.2-SIQ-Fruit-bf16 over a sealed 16-window token panel, captured at the lm_head input and sealed so that anybody can compare a quantized capture against it without the weights, without our infrastructure, and without re-running the reference. Fruit is a 5.04B-parameter / 0.46B-active GLM-5.2-architecture serving proxy… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/fruit-fidelity-root-v1.tabularn<1K0 likes107 downloads26d agoHugging Face08malaiwah /glm5-next-tiny-fidelity-root-v1 glm5_next random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/glm5-next-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/glm5-next-tiny-fidelity-root-v1.tabularn<1K0 likes106 downloads17d agoHugging Face09malaiwah /qwen4-exp-tiny-fidelity-root-v1 qwen4_exp random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/qwen4-exp-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/qwen4-exp-tiny-fidelity-root-v1.tabularn<1K0 likes106 downloads17d agoHugging Face10malaiwah /k2-horizon-tiny-fidelity-root-v1 k2-horizon random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/k2-horizon-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it).… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/k2-horizon-tiny-fidelity-root-v1.tabularn<1K0 likes105 downloads17d agoHugging Face11malaiwah /minimax-m2-tiny-fidelity-root-v1 minimax-m2 random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/minimax-m2-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it).… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/minimax-m2-tiny-fidelity-root-v1.tabularn<1K0 likes99 downloads17d agoHugging Face12malaiwah /kimi-k25-tiny-fidelity-root-v1 kimi-k25 random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/kimi-k25-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/kimi-k25-tiny-fidelity-root-v1.tabularn<1K0 likes97 downloads17d agoHugging Face13malaiwah /minimax-m3-tiny-fidelity-root-v1 minimax-m3 random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/minimax-m3-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it).… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/minimax-m3-tiny-fidelity-root-v1.tabularn<1K0 likes95 downloads17d agoHugging Face14malaiwah /glm-moe-dsa-tiny-fidelity-root-v1 glm_moe_dsa random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/glm-moe-dsa-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it).… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/glm-moe-dsa-tiny-fidelity-root-v1.tabularn<1K0 likes93 downloads17d agoHugging Face15malaiwah /kimi-k3-tiny-fidelity-root-v1 kimi-k3 random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/kimi-k3-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same cut… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/kimi-k3-tiny-fidelity-root-v1.tabularn<1K0 likes93 downloads17d agoHugging Face16malaiwah /glm53-fixture-0.1B-fidelity-root-v1 GLM-5.3-Flash-0.1B fixture — root fidelity dataset (hidden form) The numbers in this dataset are meaningless as model quality. The weights it was captured from are random. inference-optimization/GLM-5.3-Flash-0.1B-A0.1B is an architectural fixture: it has GLM-5.3-Flash's config shape and its exact 154,880-token vocabulary, and none of its training. Nothing here says anything about GLM-5.3-Flash, about quantization quality, or about any model. What it is for: being a small… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/glm53-fixture-0.1B-fidelity-root-v1.tabularn<1K0 likes78 downloads26d agoHugging Face17malaiwah /spark2-5-tiny-fidelity-root-v1 spark2-5 random CPU fixture root A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/spark2-5-tiny-random-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/spark2-5-tiny-fidelity-root-v1.tabularn<1K0 likes78 downloads17d agoHugging Face18malaiwah /fruit-fidelity-root-container-v1 fruit-fidelity-root-container-v1 A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/GLM-5.2-SIQ-Fruit-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same cut… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/fruit-fidelity-root-container-v1.tabularn<1K0 likes73 downloads24d agoHugging Face19malaiwah /fruit-fidelity-root-runpod-v1 fidelity--fruit.malaiwah.root.bf16 A root fidelity dataset in hidden form, produced by engines/tools/hf_capture.py from malaiwah/GLM-5.2-SIQ-Fruit-bf16. The cut the final hidden state handed to lm_head -- after the text model's final norm and immediately before the head matmul -- captured as the head module's input via torch.nn.Module.register_forward_pre_hook; replay applies the head ONLY (no final norm at replay time: the capture already sits after it). Same cut… See the full description on the dataset page: https://huggingface.co/datasets/malaiwah/fruit-fidelity-root-runpod-v1.tabularn<1K0 likes68 downloads21d agoHugging Face

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