Text Generation
Transformers
TensorBoard
Safetensors
English
qwen3
byte-level
pretraining
symbolic
text-generation-inference
Instructions to use dotlabs/void.1 with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Libraries
- Transformers
How to use dotlabs/void.1 with Transformers:
# Use a pipeline as a high-level helper from transformers import pipeline pipe = pipeline("text-generation", model="dotlabs/void.1")# pip install -U transformers accelerate # Load model directly from transformers import AutoTokenizer, AutoModelForCausalLM tokenizer = AutoTokenizer.from_pretrained("dotlabs/void.1") model = AutoModelForCausalLM.from_pretrained("dotlabs/void.1", device_map="auto") - Notebooks
- Google Colab
- Kaggle
- Local Apps Settings
- vLLM
How to use dotlabs/void.1 with vLLM:
Install from pip and serve model
# Install vLLM from pip: pip install vllm # Start the vLLM server: vllm serve "dotlabs/void.1" # Call the server using curl (OpenAI-compatible API): curl -X POST "http://localhost:8000/v1/completions" \ -H "Content-Type: application/json" \ --data '{ "model": "dotlabs/void.1", "prompt": "Once upon a time,", "max_tokens": 512, "temperature": 0.5 }'Use Docker
docker model run hf.co/dotlabs/void.1
- SGLang
How to use dotlabs/void.1 with SGLang:
Install from pip and serve model
# Install SGLang from pip: pip install sglang # Start the SGLang server: python3 -m sglang.launch_server \ --model-path "dotlabs/void.1" \ --host 0.0.0.0 \ --port 30000 # Call the server using curl (OpenAI-compatible API): curl -X POST "http://localhost:30000/v1/completions" \ -H "Content-Type: application/json" \ --data '{ "model": "dotlabs/void.1", "prompt": "Once upon a time,", "max_tokens": 512, "temperature": 0.5 }'Use Docker images
docker run --gpus all \ --shm-size 32g \ -p 30000:30000 \ -v ~/.cache/huggingface:/root/.cache/huggingface \ --env "HF_TOKEN=<secret>" \ --ipc=host \ lmsysorg/sglang:latest \ python3 -m sglang.launch_server \ --model-path "dotlabs/void.1" \ --host 0.0.0.0 \ --port 30000 # Call the server using curl (OpenAI-compatible API): curl -X POST "http://localhost:30000/v1/completions" \ -H "Content-Type: application/json" \ --data '{ "model": "dotlabs/void.1", "prompt": "Once upon a time,", "max_tokens": 512, "temperature": 0.5 }' - Docker Model Runner
How to use dotlabs/void.1 with Docker Model Runner:
docker model run hf.co/dotlabs/void.1
Update TensorBoard training metrics
Browse files
benchmark_cache/shard_scheduler.json
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"tokens_per_second": 598315.063954628,
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"note": "Bounded fresh sample; full-page latency is an extrapolation.",
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"source": "rewrite6",
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"tokens_per_second": 8533.957213384612,
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"note": "Bounded fresh sample; full-page latency is an extrapolation.",
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"required_token_positions_per_second":
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"source": "openmath",
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"tokens_per_second": 380144.35761751566,
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"note": "Bounded fresh sample; full-page latency is an extrapolation.",
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{
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"source": "ultra_qa",
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"tokens_per_second": 43742.16556775435,
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"note": "Bounded fresh sample; full-page latency is an extrapolation.",
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"required_token_positions_per_second":
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{
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"source": "ultra_style",
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"tokens_per_second": 22018.86276523721,
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"note": "Bounded fresh sample; full-page latency is an extrapolation.",
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"estimated_pages_for_buffer": 1,
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"required_token_positions_per_second":
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{
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"source": "cortex",
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"read_seconds": 0.04061180899998362,
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"tokens_per_second": 910315.184299418,
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"note": "Bounded fresh sample; full-page latency is an extrapolation.",
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"estimated_pages_for_buffer":
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"required_token_positions_per_second":
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],
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"gpu_measurement": "Selected forward/backward estimate; replaced by live successful update timings.",
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"shard_benchmark_scope": "Local packing/read measurements; upload capacity measured only on real data commits. Targets larger than available pages are sample-limited.",
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"estimated_fresh_generation_batch_seconds": 2.558590814491007,
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"selected": {
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"prefetch_capacity_limit": 512,
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"batch_memory_estimate_bytes": 720750,
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"producer_batch_seconds": 0.
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"producer_p95_seconds": 0.
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"gpu_update_seconds": 0.
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"producer_batches_per_second":
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"gpu_batches_per_second": 1.
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"producer_headroom":
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"sustainable": true,
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"buffer_seconds": 60.
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"shard_target_mib": 16,
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"upload_pages_per_commit":
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"max_pending_pages": 4096,
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"generation_bytes_per_second":
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"upload_bytes_per_second":
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"upload_sustainable": true,
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"logical_page_rows": 4096,
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"logical_cortex_page_rows": 128,
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"estimated_full_shards_per_hour": 78.
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"selection_policy": "Smallest shard within 90% of measured local peak, enlarged to amortize 30 seconds of measured page production; bounded to 256 MiB."
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},
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"upload_measurements": [
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{
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"seconds": 1.2100134370048181,
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"bytes": 12201541,
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"pages": 35,
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"shards": 4
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},
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{
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"seconds": 1.149907068000175,
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"bytes": 11779236,
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"bytes": 2735426,
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"pages": 37,
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"cache_key": {
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"note": "Bounded fresh sample; full-page latency is an extrapolation.",
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{
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"source": "rewrite6",
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{
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"source": "openmath",
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"tokens_per_second": 380144.35761751566,
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"gpu_measurement": "Selected forward/backward estimate; replaced by live successful update timings.",
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metrics/void-byte-v1/1791143623306220418-eb05a537/train.jsonl
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{"step": 724100, "loss": 0.5540884733200073, "lr": 8e-05, "grad_norm": 0.22176082356154947, "recovery_retries": 0, "loss_scale": 1.0, "microbatch": 90, "input_bytes_and_specials": 105988236583, "tokens_per_second": 152912.49624472822, "data_wait_s": 1.2636999599635601e-05, "gpu_peak_gb": 89.37899398803711}
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runs/void-byte-v1/events.out.tfevents.1791143623.3eb6ddb3-ffce-42e5-bd48-c0d653189e98-8pb7d.369.0.1791143623306220418-eb05a537
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