studio: load cached GGUF models when fully offline (#5505)
* studio: load cached GGUF models when fully offline
When huggingface.co is unreachable, GGUF model loads fail in three distinct
places even though the bits are already in ~/.cache/huggingface/hub. Each
failure has a different surface symptom:
1. list_gguf_variants() raises straight through HTTPException(500), so the
variant dropdown shows 'Failed to list GGUF variants'.
2. detect_gguf_model_remote() silently returns None after retries fail. The
caller then treats a GGUF-only repo as non-GGUF and routes it through the
transformers/MLX path. On Apple Silicon this surfaces as 'Unsloth currently
only works on NVIDIA, AMD and Intel GPUs.'
3. _download_gguf() loses list_repo_files() to the network and falls back to a
filename heuristic ('{repo}-{variant}.gguf'). When the repo name does not
echo the filenames (e.g. repo 'Qwen3.6-27B-MTP-GGUF' contains a file
'Qwen3.6-27B-UD-Q4_K_XL.gguf' with no MTP), hf_hub_download cannot find
that invented filename in the cache and aborts.
Fix in three layers:
- list_gguf_variants / detect_gguf_model_remote: honor HF_HUB_OFFLINE and
fall back to scanning the local HF cache snapshot when the API throws.
detect_gguf_model_remote still keeps its retry loop for transient flakes;
the cache fallback only kicks in after every attempt fails.
- _download_gguf: when list_repo_files() fails, look up variant -> real
filename inside the cached snapshot before resorting to the heuristic.
- llama_cpp.load_model / inference worker startup: when DNS for
huggingface.co fails (2s probe), set HF_HUB_OFFLINE=1 for the process so
every hf_hub_download call below resolves from cache instantly instead of
spending ~25s on five exponential retries.
Online behavior is unchanged: the API is tried first and only used to fail
over. The cache scan is a strict subset of what list_local_gguf_variants
already does today for local paths.
* [pre-commit.ci] auto fixes from pre-commit.com hooks
for more information, see https://pre-commit.ci
* studio: tighten inline comments on offline GGUF fallback
* studio: address review feedback on offline GGUF fallback
Fixes from the review pass on #5505:
* ruff F823 (lint CI red): the late `import os` at the bottom of
LlamaCppBackend.load_model made `os` a function-local name, so my
new `os.environ` reference at the top of the same method was a
use-before-bind. Surfaces at runtime as
'cannot access local variable os where it is not associated with a value'
and is why the Mac/Windows Studio API jobs were failing too. The
env-var mutation has been moved into a module-level contextmanager,
so load_model no longer touches `os` directly.
* Codex P1: cache variant match now uses the relative path, not the
basename. Layouts like `BF16/foo.gguf` (variant token only in
parent dir) were silently skipped, falling through to the bogus
`{repo}-{variant}.gguf` heuristic and failing offline loads of
models stored under quant-named subdirs.
* Codex P1: HF_HUB_OFFLINE no longer persists past one model load.
llama_cpp.load_model now uses a contextmanager that probes DNS,
sets HF_HUB_OFFLINE/TRANSFORMERS_OFFLINE only when DNS is dead,
and pops them in finally (preserving any prior user setting of
TRANSFORMERS_OFFLINE). Pre-existing user-set HF_HUB_OFFLINE is
respected as a no-op. worker.py keeps the startup probe because the
orchestrator spawns a fresh worker per load -- comment updated to
make that lifecycle explicit, and a warning is now logged.
* Gemini: cache-dir lookup centralized in `_iter_hf_cache_snapshots`.
Three near-identical copies (in list/detect helpers and the
llama_cpp offline scan) now go through one helper.
* Gemini: `huggingface_hub.utils.is_offline_mode` does not exist in
1.x (verified locally); `huggingface_hub.constants.HF_HUB_OFFLINE`
is snapshot-at-import-time and does not reflect runtime mutations.
Manual env-var parsing kept.
* socket probe now saves and restores the prior default timeout
instead of unconditionally setting None on exit, so it composes
with caller code that already configured a timeout.
* worker.py probe now logs a warning when offline mode is auto-enabled
so debugging the case isn't blind.
* studio: regression tests for offline GGUF cache fallback
Lock in the offline fallback path from #5505 so future refactors can't
silently regress either bug. 26 tests, 0.55 s, no network/GPU/subprocess.
Covers:
* _iter_hf_cache_snapshots: missing cache, missing repo, missing
snapshots/, newest-mtime ordering, case-insensitive repo match.
* _list_gguf_variants_from_hf_cache and the list_gguf_variants
online/offline-env/API-exception/reraise paths.
* _detect_gguf_from_hf_cache and detect_gguf_model_remote 3x-fail
fallback. Pre-existing RepositoryNotFoundError early-return preserved.
* Codex P1 #1 regression: BF16/foo.gguf (quant only in subdir name)
must resolve via _detect_gguf_from_hf_cache, which now matches the
snapshot-relative path rather than the basename.
* _probe_dns_dead: returns True/False, restores prior socket timeout.
* Codex P1 #2 regression: _hf_offline_if_dns_dead sets env only inside
the block, restores on exit (including on exception), re-probes DNS
on the next call so a transient hiccup cannot lock the long-lived
LlamaCppBackend singleton offline. Honors a user-set HF_HUB_OFFLINE
as a no-op. Preserves a user-set TRANSFORMERS_OFFLINE across exit.
Follows the existing studio backend test stub pattern (loggers /
structlog / httpx stubs + backend dir on sys.path).
* [pre-commit.ci] auto fixes from pre-commit.com hooks
for more information, see https://pre-commit.ci
* studio: extend offline cache fallback to _download_mmproj and quant label
Two follow-up fixes from the review pass on #5505:
* _download_mmproj() now mirrors _download_gguf()'s offline path:
when list_repo_files() fails, scan the local HF cache snapshot for
any GGUF whose basename starts with mmproj-. Without this, offline
vision GGUF loads succeed at the main weight (the existing PR fix)
but the mmproj returns None and llama-server starts without vision
support. Same _iter_hf_cache_snapshots helper, F16 preference and
fallback to the first match are preserved.
* _extract_quant_label() now considers parent directory segments when
the basename has no quant token. Layouts like BF16/foo.gguf are
already documented in this file and are returned by the new
snapshot-relative-path filter in _download_gguf; before this fix
their variant label collapsed to "foo" (the last hyphen segment of
the basename). Regex is the same; the search just walks parent
segments innermost-first if the basename misses.
Tests (studio/backend/tests/test_offline_gguf_cache_fallback.py):
* TestExtractQuantLabelSubdir: basename quant unchanged, quant-only-
in-parent, UD- prefix in parent, deeper nesting picks the
innermost matching segment.
* TestDownloadMmprojOfflineCacheFallback: cache fallback returns the
mmproj when list_repo_files fails, F16 preference holds when both
variants are in cache, no-mmproj cache returns None.
* httpx stub now prefers the real package when installed (the CI
install list already includes it) and falls back to the stub only
when httpx is genuinely missing. Newer huggingface_hub imports
HTTPError/Response/Request at module load, so the previous
fixed-set stub broke when those names were added upstream.
26 existing cases plus 7 new = 33 pass in 0.74s.
* [pre-commit.ci] auto fixes from pre-commit.com hooks
for more information, see https://pre-commit.ci
* Fix/adjust offline cache + DNS probe per PR #5505 review
Four review findings tightened, with regression tests:
- list_local_gguf_variants subdir collapse (P1 codex 10:08): pass the
snapshot-relative path to _extract_quant_label so BF16/foo.gguf and
Q4_K_M/foo.gguf produce distinct labels instead of folding to the same
basename pseudo-quant.
- list_gguf_variants cache fallback (P2 codex 12:10): surface
RepositoryNotFoundError / GatedRepoError / RevisionNotFoundError /
EntryNotFoundError to the caller instead of masking with stale cache,
matching detect_gguf_model_remote.
- _detect_gguf_from_hf_cache mmproj (P2 codex 12:10): exclude mmproj
files from the candidate list so a partial cache with only a vision
projector cannot route the projector as the main model.
- _probe_dns_dead global timeout (P2 codex 13:06): run the gethostbyname
on a daemon thread with join timeout so concurrent sockets in the same
interpreter never inherit a process-wide socket.setdefaulttimeout
mutation. Same shape applied in worker.py's startup probe.
* Make llama-server health check tolerant of warmup races
Two layered fixes for the Windows GGUF smoke CI Tool calling Tests
flake that exit-22'd on a single httpx.ReadError during llama-server
warmup. The 'windows-latest -> windows-2025-vs2026' image rollout is
hitting main with the identical symptom.
A. _wait_for_health: catch httpx.ReadError, RemoteProtocolError,
WriteError alongside ConnectError and TimeoutException. A TCP RST
mid-read while llama-server is still binding the port (WinError
10054) is a 'still warming up' signal, not fatal. The existing
_process.poll() check still wins for real crashes.
B. _drain_stdout + spawn: tee llama-server stdout/stderr to a
per-launch log file at ~/.unsloth/studio/logs/llama-server/
<port>.log. Any future subprocess crash leaves a forensic trace
on disk even when Studio's traceback only captures the symptom
(ReadError) and not the cause. Best-effort: a logging-side OSError
never blocks the load.
Regression coverage: TestWaitForHealthRetriesOnReadError pins the
retry behaviour for the three new exception types and verifies that a
real process exit still short-circuits the loop.
* [pre-commit.ci] auto fixes from pre-commit.com hooks
for more information, see https://pre-commit.ci
* ci(windows): retry inference/load + collect llama-server logs
Composite fix for the Tool calling Tests flake that exit-22'd on a
single httpx.ReadError during llama-server warm-up. The
windows-latest -> windows-2025-vs2026 runner image rollout has been
hitting main with the identical symptom.
- All three jobs (openai-anthropic, tool-calling, json-images) now
retry POST /api/inference/load up to 3 times with 10s backoff and
preserve the response body for post-mortem. One transient 500 no
longer fails the whole job.
- A new "Collect llama-server logs" step copies the per-launch
llama-server stdout teed by Studio under ~/.unsloth/studio/logs/
llama-server/ into the workspace, and the upload-artifact step
now includes logs/llama-server/*.log so any future subprocess
crash leaves a forensic trace.
---------
Co-authored-by: shimmyshimmer <shimmyshimmer@users.noreply.github.com>
Co-authored-by: pre-commit-ci[bot] <66853113+pre-commit-ci[bot]@users.noreply.github.com>
Co-authored-by: Daniel Han <danielhanchen@gmail.com>
This commit is contained in:
parent
f7bd05ad13
commit
3ff6204aa7
5 changed files with 1299 additions and 53 deletions
107
.github/workflows/studio-windows-inference-smoke.yml
vendored
107
.github/workflows/studio-windows-inference-smoke.yml
vendored
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@ -258,11 +258,26 @@ jobs:
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- name: Load the GGUF (HF repo + variant, served from HF_HOME cache)
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run: |
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curl -fs -X POST "http://127.0.0.1:${STUDIO_PORT}/api/inference/load" \
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-H "Authorization: Bearer $TOKEN" -H 'content-type: application/json' \
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--max-time 600 \
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-d "{\"model_path\":\"$GGUF_REPO\",\"gguf_variant\":\"$GGUF_VARIANT\",\"is_lora\":false,\"max_seq_length\":2048}" \
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| jq '{status, display_name, is_gguf, context_length}'
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# Retry the load step a few times so a transient TCP RST during
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# llama-server warm-up (Windows runner image churn,
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# windows-latest -> windows-2025-vs2026 rollout) doesn't fail
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# the whole job. The Studio backend's _wait_for_health now
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# catches httpx.ReadError too; this retry layer covers the
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# cases the backend can't recover from on its own.
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LOAD_OK=0
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for attempt in 1 2 3; do
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HTTP=$(curl -s -o /tmp/load.json -w '%{http_code}' \
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-X POST "http://127.0.0.1:${STUDIO_PORT}/api/inference/load" \
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-H "Authorization: Bearer $TOKEN" -H 'content-type: application/json' \
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--max-time 600 \
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-d "{\"model_path\":\"$GGUF_REPO\",\"gguf_variant\":\"$GGUF_VARIANT\",\"is_lora\":false,\"max_seq_length\":2048}")
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if [ "$HTTP" = "200" ]; then LOAD_OK=1; break; fi
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echo "::warning::/api/inference/load attempt $attempt returned $HTTP; response:"
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cat /tmp/load.json || true
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sleep 10
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done
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[ "$LOAD_OK" = "1" ] || { echo "::error::/api/inference/load failed 3 attempts"; exit 22; }
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jq '{status, display_name, is_gguf, context_length}' /tmp/load.json
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- name: Multi-turn determinism via OpenAI + Anthropic SDKs
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env:
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@ -350,6 +365,19 @@ jobs:
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shell: cmd
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run: echo Stop Studio (no-op; runner reclaims STUDIO_PID=%STUDIO_PID% at job end)
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- name: Collect llama-server logs
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if: always()
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shell: bash
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# Copy llama-server's own stdout/stderr (teed by Studio under
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# ~/.unsloth/studio/logs/llama-server/) into the workspace so
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# upload-artifact can pick it up. Crucial for diagnosing a
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# subprocess crash where Studio's traceback only shows the
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# symptom (httpx ReadError) but not the cause.
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run: |
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mkdir -p logs/llama-server
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cp -v ~/.unsloth/studio/logs/llama-server/*.log logs/llama-server/ 2>/dev/null || \
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echo "no llama-server logs to collect"
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- name: Upload logs
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if: always()
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uses: actions/upload-artifact@043fb46d1a93c77aae656e7c1c64a875d1fc6a0a # v7.0.1
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@ -358,6 +386,7 @@ jobs:
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path: |
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logs/studio.log
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logs/install.log
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logs/llama-server/*.log
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retention-days: 7
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# ─────────────────────────────────────────────────────────────────────
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@ -561,11 +590,21 @@ jobs:
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# a normal path.
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GGUF_PATH="${GITHUB_WORKSPACE//\\//}/gguf-cache/${GGUF_FILE}"
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ls -lh "$GGUF_PATH"
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curl -fs -X POST "http://127.0.0.1:${STUDIO_PORT}/api/inference/load" \
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-H "Authorization: Bearer $TOKEN" -H 'content-type: application/json' \
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--max-time 600 \
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-d "{\"model_path\":\"$GGUF_PATH\",\"is_lora\":false,\"max_seq_length\":2048}" \
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| jq '{status, display_name}'
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# Retry: same rationale as the OpenAI/Anthropic job.
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LOAD_OK=0
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for attempt in 1 2 3; do
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HTTP=$(curl -s -o /tmp/load.json -w '%{http_code}' \
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-X POST "http://127.0.0.1:${STUDIO_PORT}/api/inference/load" \
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-H "Authorization: Bearer $TOKEN" -H 'content-type: application/json' \
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--max-time 600 \
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-d "{\"model_path\":\"$GGUF_PATH\",\"is_lora\":false,\"max_seq_length\":2048}")
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if [ "$HTTP" = "200" ]; then LOAD_OK=1; break; fi
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echo "::warning::/api/inference/load attempt $attempt returned $HTTP; response:"
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cat /tmp/load.json || true
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sleep 10
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done
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[ "$LOAD_OK" = "1" ] || { echo "::error::/api/inference/load failed 3 attempts"; exit 22; }
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jq '{status, display_name}' /tmp/load.json
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- name: Tool calling, server-side tools, thinking on/off
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env:
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@ -768,6 +807,19 @@ jobs:
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shell: cmd
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run: echo Stop Studio (no-op; runner reclaims STUDIO_PID=%STUDIO_PID% at job end)
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- name: Collect llama-server logs
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if: always()
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shell: bash
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# Copy llama-server's own stdout/stderr (teed by Studio under
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# ~/.unsloth/studio/logs/llama-server/) into the workspace so
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# upload-artifact can pick it up. Crucial for diagnosing a
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# subprocess crash where Studio's traceback only shows the
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# symptom (httpx ReadError) but not the cause.
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run: |
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mkdir -p logs/llama-server
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cp -v ~/.unsloth/studio/logs/llama-server/*.log logs/llama-server/ 2>/dev/null || \
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echo "no llama-server logs to collect"
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- name: Upload logs
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if: always()
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uses: actions/upload-artifact@043fb46d1a93c77aae656e7c1c64a875d1fc6a0a # v7.0.1
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@ -776,6 +828,7 @@ jobs:
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path: |
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logs/studio.log
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logs/install.log
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logs/llama-server/*.log
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retention-days: 7
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# ─────────────────────────────────────────────────────────────────────
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@ -970,11 +1023,21 @@ jobs:
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-H 'content-type: application/json' \
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-d "{\"username\":\"unsloth\",\"password\":\"$NEW\"}" | jq -r .access_token)
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echo "API_KEY=$TOKEN" >> "$GITHUB_ENV"
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curl -fs -X POST "http://127.0.0.1:${STUDIO_PORT}/api/inference/load" \
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-H "Authorization: Bearer $TOKEN" -H 'content-type: application/json' \
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--max-time 900 \
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-d "{\"model_path\":\"$GGUF_REPO\",\"gguf_variant\":\"$GGUF_VARIANT\",\"is_lora\":false,\"max_seq_length\":2048}" \
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| jq '{status, display_name, is_vision}'
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# Retry: same rationale as the OpenAI/Anthropic and Tool calling jobs.
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LOAD_OK=0
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for attempt in 1 2 3; do
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HTTP=$(curl -s -o /tmp/load.json -w '%{http_code}' \
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-X POST "http://127.0.0.1:${STUDIO_PORT}/api/inference/load" \
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-H "Authorization: Bearer $TOKEN" -H 'content-type: application/json' \
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--max-time 900 \
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-d "{\"model_path\":\"$GGUF_REPO\",\"gguf_variant\":\"$GGUF_VARIANT\",\"is_lora\":false,\"max_seq_length\":2048}")
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if [ "$HTTP" = "200" ]; then LOAD_OK=1; break; fi
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echo "::warning::/api/inference/load attempt $attempt returned $HTTP; response:"
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cat /tmp/load.json || true
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sleep 10
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done
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[ "$LOAD_OK" = "1" ] || { echo "::error::/api/inference/load failed 3 attempts"; exit 22; }
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jq '{status, display_name, is_vision}' /tmp/load.json
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- name: JSON schema decoding + image input
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env:
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@ -1156,6 +1219,19 @@ jobs:
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shell: cmd
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run: echo Stop Studio (no-op; runner reclaims STUDIO_PID=%STUDIO_PID% at job end)
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- name: Collect llama-server logs
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if: always()
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shell: bash
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# Copy llama-server's own stdout/stderr (teed by Studio under
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# ~/.unsloth/studio/logs/llama-server/) into the workspace so
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# upload-artifact can pick it up. Crucial for diagnosing a
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# subprocess crash where Studio's traceback only shows the
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# symptom (httpx ReadError) but not the cause.
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run: |
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mkdir -p logs/llama-server
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cp -v ~/.unsloth/studio/logs/llama-server/*.log logs/llama-server/ 2>/dev/null || \
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echo "no llama-server logs to collect"
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- name: Upload logs
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if: always()
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uses: actions/upload-artifact@043fb46d1a93c77aae656e7c1c64a875d1fc6a0a # v7.0.1
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@ -1164,4 +1240,5 @@ jobs:
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path: |
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logs/studio.log
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logs/install.log
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logs/llama-server/*.log
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retention-days: 7
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Reference in a new issue