Stacks a Colab-like JupyterLab and Studio experience on top of the
existing Blackwell image. Additive only: the training stack, CUDA/torch
pinning, and the Studio/JupyterLab/sshd service trio are unchanged.
JupyterLab labextension (prebuilt in a throwaway builder stage, so the
runtime image stays Node-free):
- Unsloth Dark (Monokai) theme, adaptive light/dark by system preference
- Colab-style ArrowDown/Up cell navigation
- top-bar Unsloth logo (stock Jupyter logo disabled and locked)
- #@title lines render as collapsible Heading-2 form bars
- Ctrl+A in a cell output selects only that output, not the whole
notebook (the old behaviour ran notebook:select-all and was laggy)
- right activity bar hidden by default
- overrides.json: per-cell run button without auto-advance, labeled
Restart and Run All, windowing off so collapsing an output does not
snap to the cell top, news/update prompts suppressed
Studio and login branding: Unsloth favicon, page logo, and a dark
Unsloth login page that rotates through the curated Studio sloth
stickers (fail-soft to the logo).
Notebook organization and Colab compatibility (base image):
- categorized folder view built from relative symlinks mirroring the
README sections, rebuilt each boot; real .ipynb files never moved,
and the symlink tree is invisible to the sync state machine
- AMD-* notebooks shown only on an AMD/HIP host (autodetected)
- Docker-only strip of the Colab "Run all on Colab" intro sentence
from unedited notebooks (upstream notebooks unchanged)
- hoist %%capture above a leading #@title form so the cell runs
- the per-cell transformers-sidecar log is silent unless
UNSLOTH_ENABLE_LOGGING=1
Dependency pinning and naming: the curated notebook extras are pinned to
their resolved versions for reproducible rebuilds; decord is split into
its own fail-soft install (no aarch64 wheel). The lean base image is
renamed from :base to :core.
Adds tests/validate_studio_features.py, a static self-test for the
labextension plugins, overrides keys, and branding wiring.
124 lines
6.4 KiB
Bash
Executable file
124 lines
6.4 KiB
Bash
Executable file
#!/usr/bin/env bash
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# Convenience wrapper for `docker run unsloth/unsloth`. Sets the flags that
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# people most often forget and that cause the most confusing failures:
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#
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# --gpus all Without this, no GPU is attached and the container's
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# entrypoint will refuse to start.
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# --ipc=host PyTorch DataLoader workers need ample /dev/shm. The
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# default 64MB causes "DataLoader worker (pid X) exited
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# unexpectedly" on any non-trivial dataset.
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# --ulimit memlock=-1 Unlimited pinned memory for NCCL / CUDA pinned host
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# buffers. Without this, multi-GPU training stalls.
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# --ulimit stack=64MB Larger thread stack for libtorch (some kernels OOM
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# the default 8MB stack).
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#
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# Plus mounts the host Hugging Face cache and Triton JIT cache so model
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# downloads and compiled kernels persist across container runs.
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#
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# Usage:
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# bash docker/run.sh # interactive python REPL
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# bash docker/run.sh bash # shell in the container
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# bash docker/run.sh python /workspace/smoke_test.py # run the smoke test
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# bash docker/run.sh python /workspace/host/train.py # run your training script
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# ($PWD is mounted at
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# /workspace/host)
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#
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# The full image (unsloth/unsloth:latest) starts Studio (8000) + JupyterLab
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# (8888) by default; publish the ports when you want them:
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# UNSLOTH_PORTS="-p 8000:8000 -p 8888:8888" bash docker/run.sh
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# JupyterLab on the lean core image (unsloth/unsloth:core):
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# UNSLOTH_PORTS="-p 8888:8888" UNSLOTH_IMAGE=unsloth/unsloth:core \
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# bash docker/run.sh jupyter lab --ip 0.0.0.0 --port 8888 --allow-root
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# CPU-only hosts (Docker Desktop on macOS, Windows without WSL2 GPU, plain
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# CPU Linux): no --gpus and set UNSLOTH_ALLOW_CPU=1. Training is unavailable
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# but Studio chat / Data Recipes, Jupyter and GGUF tooling work:
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# UNSLOTH_GPUS=none UNSLOTH_ALLOW_CPU=1 \
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# UNSLOTH_PORTS="-p 8000:8000 -p 8888:8888" bash docker/run.sh
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#
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# Overridable env:
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# UNSLOTH_IMAGE=unsloth/unsloth:latest image and tag to pull/run
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# UNSLOTH_GPUS=all GPUs to expose ("all" | "0" | "0,1"
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# | "none" to run without GPU)
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# UNSLOTH_ALLOW_CPU= set to 1 to allow GPU-less runs
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# UNSLOTH_PORTS= extra -p publish flags, e.g.
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# "-p 8000:8000 -p 8888:8888"
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# HF_HOME=$HOME/.cache/huggingface host HF cache dir to mount
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# TRITON_CACHE_DIR=$HOME/.cache/unsloth-triton
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# host Triton cache dir to mount
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# UNSLOTH_WORKDIR=$PWD host dir mounted at /workspace/host
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set -euo pipefail
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IMAGE="${UNSLOTH_IMAGE:-unsloth/unsloth:latest}"
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GPUS="${UNSLOTH_GPUS:-all}"
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# Translate index selectors to Docker's `device=` form. The header docstring
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# advertises UNSLOTH_GPUS values like "0" and "0,1" but Docker reads a bare
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# integer for --gpus as a COUNT, not an INDEX, so `UNSLOTH_GPUS=0` would
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# expose zero GPUs and the entrypoint would refuse to start. `all` and
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# already-quoted `device=...` / `"device=..."` selectors pass through.
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# "none" omits --gpus entirely (CPU mode; pair with UNSLOTH_ALLOW_CPU=1).
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GPU_FLAG=(--gpus "$GPUS")
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case "$GPUS" in
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none) GPU_FLAG=() ;;
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all|"") ;;
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\"device=*|device=*) ;;
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*[!0-9]*) GPU_FLAG=(--gpus "\"device=${GPUS}\"") ;; # comma list / UUID
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*) GPU_FLAG=(--gpus "\"device=${GPUS}\"") ;; # bare integer index
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esac
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HF_CACHE="${HF_HOME:-$HOME/.cache/huggingface}"
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TRITON_CACHE="${TRITON_CACHE_DIR:-$HOME/.cache/unsloth-triton}"
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WORK_DIR="${UNSLOTH_WORKDIR:-$PWD}"
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mkdir -p "$HF_CACHE" "$TRITON_CACHE"
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# Warn early if the host doesn't have the nvidia runtime registered.
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# We let `docker run` fail loudly rather than abort here -- some setups
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# (rootless docker, custom runtimes) report runtimes differently.
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if ! docker info 2>/dev/null | grep -qi 'Runtimes:.*nvidia'; then
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printf "\033[1;33mWARN:\033[0m 'docker info' does not list 'nvidia' as a runtime.\n" >&2
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printf " If --gpus all fails below, install nvidia-container-toolkit:\n" >&2
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printf " https://docs.nvidia.com/datacenter/cloud-native/container-toolkit/install-guide.html\n\n" >&2
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fi
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# Forward common secrets only if they're set in the host environment.
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# Empty strings would shadow whatever is already inside the image.
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# IMPORTANT: use the dash-only form `-e VAR` (no `=VALUE`). Docker reads
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# the value from the parent shell, so the literal secret never lands in
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# argv where it would be visible to any user on the host via
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# `ps auxe` / `/proc/<pid>/cmdline` for the lifetime of the docker CLI
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# process.
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declare -a ENV_FORWARD=(-e HF_HUB_ENABLE_HF_TRANSFER=1)
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[[ -n "${HF_TOKEN:-}" ]] && ENV_FORWARD+=(-e HF_TOKEN)
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[[ -n "${WANDB_API_KEY:-}" ]] && ENV_FORWARD+=(-e WANDB_API_KEY)
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[[ -n "${UNSLOTH_LICENSE:-}" ]] && ENV_FORWARD+=(-e UNSLOTH_LICENSE)
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[[ -n "${UNSLOTH_ALLOW_CPU:-}" ]] && ENV_FORWARD+=(-e UNSLOTH_ALLOW_CPU)
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# Extra publish flags for the service ports (Studio 8000, Jupyter 8888).
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declare -a PORT_FLAGS=()
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if [[ -n "${UNSLOTH_PORTS:-}" ]]; then
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# shellcheck disable=SC2206 # intentional word splitting of "-p X -p Y"
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PORT_FLAGS=(${UNSLOTH_PORTS})
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fi
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# Only attach -t when our own stdin/stdout are a TTY; CI / piped invocations
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# otherwise hit `the input device is not a TTY` and never reach the entrypoint.
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TTY_FLAG=()
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if [ -t 0 ] && [ -t 1 ]; then
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TTY_FLAG=(-it)
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fi
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# Avoid `set -x` here so the literal HF_TOKEN / WANDB_API_KEY / UNSLOTH_LICENSE
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# values do not get echoed to stdout/CI logs. The forwarded env vars are
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# already in ENV_FORWARD; printing them again was a secret leak.
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# The ${arr[@]+"${arr[@]}"} form keeps empty arrays nounset-safe on
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# bash 3.2 (macOS /bin/bash), where a bare "${empty[@]}" trips set -u.
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exec docker run --rm ${TTY_FLAG[@]+"${TTY_FLAG[@]}"} \
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${GPU_FLAG[@]+"${GPU_FLAG[@]}"} \
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--ipc=host \
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--ulimit memlock=-1 \
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--ulimit stack=67108864 \
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-v "$HF_CACHE":/workspace/.cache/huggingface \
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-v "$TRITON_CACHE":/workspace/.cache/triton \
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-v "$WORK_DIR":/workspace/host \
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"${ENV_FORWARD[@]}" \
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${PORT_FLAGS[@]+"${PORT_FLAGS[@]}"} \
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"$IMAGE" "$@"
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