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[Hotfix][Pixtral] Fix multiple images bugs #8415

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merged 16 commits into from
Sep 12, 2024

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patrickvonplaten
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@patrickvonplaten patrickvonplaten commented Sep 12, 2024

FILL IN THE PR DESCRIPTION HERE

FIX #8382
FIX #8411

This PR fixes a couple bugs that arrive from using chunked pre-filling and previously incorrect image processing.

This PR makes sure that all images are pre-processed correctly and adds a bunch of aggressive tests.

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@DarkLight1337
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Would be great if you could add a test to avoid similar regressions!

@@ -2,63 +2,156 @@

Run `pytest tests/models/test_mistral.py`.
"""
import uuid
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Add many more aggressive tests

@patrickvonplaten patrickvonplaten changed the title Fix Pixtral init [Pixtral] Fix multiple images bugs Sep 12, 2024
@patrickvonplaten patrickvonplaten changed the title [Pixtral] Fix multiple images bugs [Hotfix][Pixtral] Fix multiple images bugs Sep 12, 2024
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DarkLight1337 commented Sep 12, 2024

The tests fail to pass when I run them locally.

_______________________________________________________________________________ test_chat[bfloat16-8192-mistralai/Pixtral-12B-2409] ________________________________________________________________________________

vllm_runner = <class 'tests.conftest.VllmRunner'>, max_model_len = 8192, model = 'mistralai/Pixtral-12B-2409', dtype = 'bfloat16'

    @pytest.mark.parametrize("model", MODELS)
    @pytest.mark.parametrize("max_model_len", [8192, 65536])
    @pytest.mark.parametrize("dtype", ["bfloat16"])
    def test_chat(
        vllm_runner,
        max_model_len: int,
        model: str,
        dtype: str,
    ) -> None:
    
        with vllm_runner(model,
                         dtype=dtype,
                         tokenizer_mode="mistral",
                         enable_chunked_prefill=False,
                         max_model_len=max_model_len,
                         limit_mm_per_prompt=LIMIT_MM_PER_PROMPT) as vllm_model:
            results = []
            for msg in MSGS:
                outputs = vllm_model.model.chat(msg,
                                                sampling_params=SAMPLING_PARAMS)
    
                results.append(outputs[0].outputs[0].text)
    
>           assert results == EXPECTED
E           AssertionError: assert ['The image s... green park.'] == ['The image s... green park.']
E             
E             At index 1 diff: '1. A black dog with a curious expression sits on a wooden floor.\n2. A vast mountain range stretches across the horizon under a cloudy sky.' != '1. A black dog with floppy ears sits attentively on a wooden surface.\n2. A vast mountain range with rugged peaks stretches under a cloudy sky.'
E             Use -v to get more diff

tests/models/test_pixtral.py:114: AssertionError

@patrickvonplaten
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The tests fail to pass when I run them locally.

Hmm I see what device to you run them on? Tested on H100 - for me they are passing

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patrickvonplaten commented Sep 12, 2024

The tests fail to pass when I run them locally.

Hmm I see what device to you run them on? Tested on H100 - for me they are passing

Guess it's going to be quite difficult to get exactly the same results here across different devices and given that flash attention is not that deterministic of an operation - any tips on how to deal with this on the tests?

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The tests fail to pass when I run them locally.

Hmm I see what device to you run them on? Tested on H100 - for me they are passing

I'm running the test on a single L40. (I can't fit max_model_len=65536 so can only run the smaller tests)

@patrickvonplaten
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The tests fail to pass when I run them locally.

Hmm I see what device to you run them on? Tested on H100 - for me they are passing

I'm running the test on a single L40. (I can't fit max_model_len=65536 so can only run the smaller tests)

Ok yes that doesn't surprise me. From your test failure it seems like the first test case passes but then the longer / more complicated tests fails. We could add device-dependent expected values? Not sure. Wdyt?

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DarkLight1337 commented Sep 12, 2024

The tests fail to pass when I run them locally.

Hmm I see what device to you run them on? Tested on H100 - for me they are passing

I'm running the test on a single L40. (I can't fit max_model_len=65536 so can only run the smaller tests)

I think the output is still reasonable. Since the goal of this PR is to avoid crashing the model rather than having perfect output, we can reduce the number of tokens to match for now (at least until we have a HF version to test against).

For the test to be able to run in CI, we may need to split the model via tensor parallel. This is more complicated so I wouldn't enforce that in this PR.

@patrickvonplaten
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The tests fail to pass when I run them locally.

Hmm I see what device to you run them on? Tested on H100 - for me they are passing

I'm running the test on a single L40. (I can't fit max_model_len=65536 so can only run the smaller tests)

I think the output is still reasonable. Since the goal of this PR is to avoid crashing the model rather than having perfect output, we can reduce the number of tokens to match for now (at least until we have a HF version to test against).

I'll comment out the more extreme tests and for now will just them locally when needed

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Wrapped the more extreme tests in a is_h100 wrapper - does that work?

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Imo that's too device-specific. If you're able to extract the logprobs information, it would be better to check against the golden output via check_logprobs_close.

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As for the OOM issue, we can address that via TP in another PR.

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Imo that's too device-specific. If you're able to extract the logprobs information, it would be better to check against the golden output via check_logprobs_close.

Hmm what is the golden output for you then? Think vLLM should represent the official implementation here

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You can use your H100 output as the golden one. Checking the logprobs is less strict so the test should still pass on other devices.

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You can use your H100 output as the golden one. Checking the logprobs is less strict so the test should still pass on other devices.

Do you check that logprobs are within a range? If the output is different for temperature=0.0, the logprobs also quite certainly won't match no? In my experience it's quite difficult to get outputs to exactly match over different devices except for small inputs. I can try to extract the logprobs, but they also won't match between L40 and H100 I'm afraid

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DarkLight1337 commented Sep 12, 2024

You can use your H100 output as the golden one. Checking the logprobs is less strict so the test should still pass on other devices.

Do you check that logprobs are within a range? If the output is different for temperature=0.0, the logprobs also quite certainly won't match no? In my experience it's quite difficult to get outputs to exactly match over different devices except for small inputs. I can try to extract the logprobs, but they also won't match between L40 and H100 I'm afraid

We just check that for each token outputted by vLLM, the selected token is within the top-k logprobs of the reference (golden) output. You can use the check_logprobs_close utility function for this.

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You can use your H100 output as the golden one. Checking the logprobs is less strict so the test should still pass on other devices.

Do you check that logprobs are within a range? If the output is different for temperature=0.0, the logprobs also quite certainly won't match no? In my experience it's quite difficult to get outputs to exactly match over different devices except for small inputs. I can try to extract the logprobs, but they also won't match between L40 and H100 I'm afraid

We just check that for each token outputted by vLLM, the selected token is within the top-k logprobs of the reference (golden) output. You can use the check_logprobs_close utility function for this.

Gotcha!

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patrickvonplaten commented Sep 12, 2024

You can use your H100 output as the golden one. Checking the logprobs is less strict so the test should still pass on other devices.

Do you check that logprobs are within a range? If the output is different for temperature=0.0, the logprobs also quite certainly won't match no? In my experience it's quite difficult to get outputs to exactly match over different devices except for small inputs. I can try to extract the logprobs, but they also won't match between L40 and H100 I'm afraid

We just check that for each token outputted by vLLM, the selected token is within the top-k logprobs of the reference (golden) output. You can use the check_logprobs_close utility function for this.

Gotcha!

Actually sorry even this won't work because errors accumulate and then context changes and the ouput results is very different. E.g. for second example, I can get:

Gold output:

"1. A black dog with floppy ears sits attentively on a wooden surface.\n2. A vast mountain range with rugged peaks stretches under a cloudy sky.",

and

L40:

"1. A black dog with floppy ears sits attentively on a wooden surface.\n2. A vast mountain range stretches across the horizon under a cloudy sky."

Here the first different word is "with" vs. "stretches". "stretches" will be in the topk range of logprobs of "with" but the next words will not be. Currently each of the two tests run a simple test on every device where results match. Just the more difficult tests are only run on H100 so on L40 still two tests are run.

Thoughts?

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DarkLight1337 commented Sep 12, 2024

Hmm, from my understanding check_logprobs_close compares the logprobs only for the first mismatch, then exits early such that the test passes if those logprobs are consistent enough. The remaining tokens are skipped and thus should not fail the test.

@simon-mo simon-mo mentioned this pull request Sep 12, 2024
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I've run the new test on H100 and it all passed for me too, so I'm giving this a green light. As for the refactor work on the test so that it can run on the L40 machines on our CI, let's do that in a later PR given our timeline for the patch release.

Thanks for fixing!

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Just added the logprobs tests as explained by @DarkLight1337 - think it indeed makes more sense! Would be great if it passes also on a L40. Thanks for the reviews!

@ywang96 ywang96 added the ready ONLY add when PR is ready to merge/full CI is needed label Sep 12, 2024
@ywang96 ywang96 merged commit d31174a into vllm-project:main Sep 12, 2024
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Co-authored-by: Adam Lugowski <[email protected]>

[Bugfix] Correct adapter usage for cohere and jamba (vllm-project#8292)

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Add NVIDIA Meetup slides, announce AMD meetup, and add contact info (vllm-project#8319)

[Bugfix] Fix missing `post_layernorm` in CLIP (vllm-project#8155)

[CI/Build] enable ccache/scccache for HIP builds (vllm-project#8327)

[Frontend] Clean up type annotations for mistral tokenizer (vllm-project#8314)

[CI/Build] Enabling kernels tests for AMD, ignoring some of then that fail (vllm-project#8130)

Fix ppc64le buildkite job (vllm-project#8309)

[Spec Decode] Move ops.advance_step to flash attn advance_step (vllm-project#8224)

[Misc] remove peft as dependency for prompt models (vllm-project#8162)

[MISC] Keep chunked prefill enabled by default with long context when prefix caching is enabled (vllm-project#8342)

[Bugfix] lookahead block table with cuda graph max capture (vllm-project#8340)

[Bugfix] Ensure multistep lookahead allocation is compatible with cuda graph max capture (vllm-project#8340)

[Core/Bugfix] pass VLLM_ATTENTION_BACKEND to ray workers (vllm-project#8172)

[CI/Build][Kernel] Update CUTLASS to 3.5.1 tag (vllm-project#8043)

[Misc] Skip loading extra bias for Qwen2-MOE GPTQ models (vllm-project#8329)

[Bugfix] Fix InternVL2 vision embeddings process with pipeline parallel (vllm-project#8299)

[Hardware][NV] Add support for ModelOpt static scaling checkpoints. (vllm-project#6112)

[model] Support for Llava-Next-Video model (vllm-project#7559)

Co-authored-by: Roger Wang <[email protected]>
Co-authored-by: Cyrus Leung <[email protected]>
Co-authored-by: Cyrus Leung <[email protected]>

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[Model][VLM] Add Qwen2-VL model support (vllm-project#7905)

Co-authored-by: Roger Wang <[email protected]>
Co-authored-by: DarkLight1337 <[email protected]>

[Hardware][Intel] Support compressed-tensor W8A8 for CPU backend (vllm-project#7257)

[CI/Build] Excluding test_moe.py from AMD Kernels tests for investigation (vllm-project#8373)

[Bugfix] Add missing attributes in mistral tokenizer (vllm-project#8364)

[Kernel][Misc] register ops to prevent graph breaks (vllm-project#6917)

Co-authored-by: Sage Moore <[email protected]>

[Misc] Move device options to a single place (vllm-project#8322)

[Speculative Decoding] Test refactor (vllm-project#8317)

Co-authored-by: youkaichao <[email protected]>

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Co-authored-by: Roger Wang <[email protected]>

Bump version to v0.6.1 (vllm-project#8379)

[MISC] Dump model runner inputs when crashing (vllm-project#8305)

[misc] remove engine_use_ray (vllm-project#8126)

[TPU] Use Ray for default distributed backend (vllm-project#8389)

Fix the AMD weight loading tests (vllm-project#8390)

[Bugfix]: Fix the logic for deciding if tool parsing is used (vllm-project#8366)

[Gemma2] add bitsandbytes support for Gemma2 (vllm-project#8338)

[Misc] Raise error when using encoder/decoder model with cpu backend (vllm-project#8355)

[Misc] Use RoPE cache for MRoPE (vllm-project#8396)

[torch.compile] hide slicing under custom op for inductor (vllm-project#8384)

[Hotfix][VLM] Fixing max position embeddings for Pixtral (vllm-project#8399)

[Bugfix] Fix InternVL2 inference with various num_patches (vllm-project#8375)

Co-authored-by: DarkLight1337 <[email protected]>

[Model] Support multiple images for qwen-vl (vllm-project#8247)

Signed-off-by: Alex-Brooks <[email protected]>
Co-authored-by: Cyrus Leung <[email protected]>
Co-authored-by: DarkLight1337 <[email protected]>

[BugFix] lazy init _copy_stream to avoid torch init wrong gpu instance (vllm-project#8403)

[BugFix] Fix Duplicate Assignment in Hermes2ProToolParser (vllm-project#8423)

[Bugfix] Offline mode fix (vllm-project#8376)

Signed-off-by: Joe Runde <[email protected]>

[multi-step] add flashinfer backend (vllm-project#7928)

[Core] Add engine option to return only deltas or final output (vllm-project#7381)

[Bugfix] multi-step + flashinfer: ensure cuda graph compatible  (vllm-project#8427)

[Hotfix][Core][VLM] Disable chunked prefill by default and prefix caching for multimodal models (vllm-project#8425)

[CI/Build] Disable multi-node test for InternVL2 (vllm-project#8428)

[Hotfix][Pixtral] Fix multiple images bugs (vllm-project#8415)

[Bugfix] Fix weight loading issue by rename variable. (vllm-project#8293)

[Misc] Update Pixtral example (vllm-project#8431)

[BugFix] fix group_topk (vllm-project#8430)

[Core] Factor out input preprocessing to a separate class (vllm-project#7329)

[Bugfix] Mapping physical device indices for e2e test utils (vllm-project#8290)

[Bugfix] Bump fastapi and pydantic version (vllm-project#8435)

[CI/Build] Update pixtral tests to use JSON (vllm-project#8436)

[Bugfix] Fix async log stats (vllm-project#8417)

[bugfix] torch profiler bug for single gpu with GPUExecutor (vllm-project#8354)

bump version to v0.6.1.post1 (vllm-project#8440)

[CI/Build] Enable InternVL2 PP test only on single node (vllm-project#8437)

[doc] recommend pip instead of conda (vllm-project#8446)

[Misc] Skip loading extra bias for Qwen2-VL GPTQ-Int8 (vllm-project#8442)

[misc][ci] fix quant test (vllm-project#8449)

[Installation] Gate FastAPI version for Python 3.8 (vllm-project#8456)

[plugin][torch.compile] allow to add custom compile backend (vllm-project#8445)

[CI/Build] Reorganize models tests (vllm-project#7820)

[Doc] Add oneDNN installation to CPU backend documentation (vllm-project#8467)

[HotFix] Fix final output truncation with stop string + streaming (vllm-project#8468)

bump version to v0.6.1.post2 (vllm-project#8473)

[Hardware][intel GPU] bump up ipex version to 2.3 (vllm-project#8365)

Co-authored-by: Yan Ma <[email protected]>

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[Model] support minicpm3 (vllm-project#8297)

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[torch.compile] fix functionalization (vllm-project#8480)

[torch.compile] add a flag to disable custom op (vllm-project#8488)

[TPU] Implement multi-step scheduling (vllm-project#8489)

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[Kernel] Enable 8-bit weights in Fused Marlin MoE (vllm-project#8032)

Co-authored-by: Dipika <[email protected]>

[Frontend] Expose revision arg in OpenAI server (vllm-project#8501)

[BugFix] Fix clean shutdown issues (vllm-project#8492)

[Bugfix][Kernel] Fix build for sm_60 in GGUF kernel (vllm-project#8506)

[Kernel] AQ AZP 3/4: Asymmetric quantization kernels (vllm-project#7270)

[doc] update doc on testing and debugging (vllm-project#8514)

[Bugfix] Bind api server port before starting engine (vllm-project#8491)

[perf bench] set timeout to debug hanging (vllm-project#8516)

[misc] small qol fixes for release process (vllm-project#8517)

[Bugfix] Fix 3.12 builds on main (vllm-project#8510)

Signed-off-by: Joe Runde <[email protected]>

[refactor] remove triton based sampler (vllm-project#8524)

[Frontend] Improve Nullable kv Arg Parsing (vllm-project#8525)

Signed-off-by: Alex-Brooks <[email protected]>

[Misc][Bugfix] Disable guided decoding for mistral tokenizer (vllm-project#8521)

[torch.compile] register allreduce operations as custom ops (vllm-project#8526)

[Misc] Limit to ray[adag] 2.35 to avoid backward incompatible change (vllm-project#8509)

Signed-off-by: Rui Qiao <[email protected]>

[Benchmark] Support sample from HF datasets and image input for benchmark_serving (vllm-project#8495)

[Encoder decoder] Add cuda graph support during decoding for encoder-decoder models (vllm-project#7631)

[Feature][kernel] tensor parallelism with bitsandbytes quantization (vllm-project#8434)

[Model] Add mistral function calling format to all models loaded with "mistral" format (vllm-project#8515)

Co-authored-by: Cyrus Leung <[email protected]>

[Misc] Don't dump contents of kvcache tensors on errors (vllm-project#8527)

[Bugfix] Fix TP > 1 for new granite (vllm-project#8544)

Signed-off-by: Joe Runde <[email protected]>

[doc] improve installation doc (vllm-project#8550)

Co-authored-by: Andy Dai <[email protected]>

[CI/Build] Excluding kernels/test_gguf.py from ROCm (vllm-project#8520)

[Kernel] Change interface to Mamba causal_conv1d_update for continuous batching (vllm-project#8012)

[CI/Build] fix Dockerfile.cpu on podman (vllm-project#8540)

[Misc] Add argument to disable FastAPI docs (vllm-project#8554)

[CI/Build] Avoid CUDA initialization (vllm-project#8534)

[CI/Build] Update Ruff version (vllm-project#8469)

Signed-off-by: Aaron Pham <[email protected]>
Co-authored-by: Cyrus Leung <[email protected]>

[Core][Bugfix][Perf] Introduce `MQLLMEngine` to avoid `asyncio` OH (vllm-project#8157)

Co-authored-by: Nick Hill <[email protected]>
Co-authored-by: [email protected] <[email protected]>
Co-authored-by: Robert Shaw <[email protected]>
Co-authored-by: Simon Mo <[email protected]>

[Core] *Prompt* logprobs support in Multi-step (vllm-project#8199)

[Core] zmq: bind only to 127.0.0.1 for local-only usage (vllm-project#8543)

Signed-off-by: Russell Bryant <[email protected]>

[Model] Support Solar Model (vllm-project#8386)

Co-authored-by: Michael Goin <[email protected]>

[AMD][ROCm]Quantization methods on ROCm; Fix _scaled_mm call (vllm-project#8380)

Co-authored-by: Alexei-V-Ivanov-AMD <[email protected]>
Co-authored-by: Michael Goin <[email protected]>

[Kernel] Change interface to Mamba selective_state_update for continuous batching (vllm-project#8039)

[BugFix] Nonzero exit code if MQLLMEngine startup fails (vllm-project#8572)

[Bugfix] add `dead_error` property to engine client (vllm-project#8574)

Signed-off-by: Joe Runde <[email protected]>

[Kernel] Remove marlin moe templating on thread_m_blocks (vllm-project#8573)

Co-authored-by: [email protected]

[Bugfix] [Encoder-Decoder] Bugfix for encoder specific metadata construction during decode of encoder-decoder models.  (vllm-project#8545)

Revert "[Misc][Bugfix] Disable guided decoding for mistral tokenizer" (vllm-project#8593)

[Bugfix] fixing sonnet benchmark bug in benchmark_serving.py (vllm-project#8616)

[MISC] remove engine_use_ray in benchmark_throughput.py (vllm-project#8615)

[Frontend] Use MQLLMEngine for embeddings models too (vllm-project#8584)

[Kernel][Amd] Add fp8 kv cache support for rocm custom paged attention (vllm-project#8577)

[Core] simplify logits resort in _apply_top_k_top_p (vllm-project#8619)

[Doc] Add documentation for GGUF quantization (vllm-project#8618)

Create SECURITY.md (vllm-project#8642)

[CI/Build] Re-enabling Entrypoints tests on ROCm, excluding ones that fail (vllm-project#8551)

[Misc] guard against change in cuda library name (vllm-project#8609)

[Bugfix] Fix Phi3.5 mini and MoE LoRA inference (vllm-project#8571)

[bugfix] [AMD] add multi-step advance_step to ROCmFlashAttentionMetadata (vllm-project#8474)

[Core] Support Lora lineage and base model metadata management (vllm-project#6315)

[Model] Add OLMoE (vllm-project#7922)

[CI/Build] Removing entrypoints/openai/test_embedding.py test from ROCm build (vllm-project#8670)

[Bugfix] Validate SamplingParam n is an int (vllm-project#8548)

[Misc] Show AMD GPU topology in `collect_env.py` (vllm-project#8649)

[Bugfix] Config got an unexpected keyword argument 'engine' (vllm-project#8556)

[Bugfix][Core] Fix tekken edge case for mistral tokenizer (vllm-project#8640)

[Doc] neuron documentation update (vllm-project#8671)

Signed-off-by: omrishiv <[email protected]>

[Hardware][AWS] update neuron to 2.20 (vllm-project#8676)

Signed-off-by: omrishiv <[email protected]>

[Bugfix] Fix incorrect llava next feature size calculation (vllm-project#8496)

[Core] Rename `PromptInputs` and `inputs`(vllm-project#8673)

[MISC] add support custom_op check (vllm-project#8557)

Co-authored-by: youkaichao <[email protected]>

[Core] Factor out common code in `SequenceData` and `Sequence` (vllm-project#8675)

[beam search] add output for manually checking the correctness (vllm-project#8684)

[Kernel] Build flash-attn from source (vllm-project#8245)

[VLM] Use `SequenceData.from_token_counts` to create dummy data (vllm-project#8687)

[Doc] Fix typo in AMD installation guide (vllm-project#8689)

[Kernel][Triton][AMD] Remove tl.atomic_add from awq_gemm_kernel, 2-5x speedup MI300, minor improvement for MI250 (vllm-project#8646)

[dbrx] refactor dbrx experts to extend FusedMoe class (vllm-project#8518)

[Kernel][Bugfix] Delete some more useless code in marlin_moe_ops.cu (vllm-project#8643)

[Bugfix] Refactor composite weight loading logic (vllm-project#8656)

[ci][build] fix vllm-flash-attn (vllm-project#8699)

[Model] Refactor BLIP/BLIP-2 to support composite model loading (vllm-project#8407)

[Misc] Use NamedTuple in Multi-image example (vllm-project#8705)

Signed-off-by: Alex-Brooks <[email protected]>

[MISC] rename CudaMemoryProfiler to DeviceMemoryProfiler (vllm-project#8703)

[Model][VLM] Add LLaVA-Onevision model support (vllm-project#8486)

Co-authored-by: litianjian <[email protected]>
Co-authored-by: Cyrus Leung <[email protected]>
Co-authored-by: Roger Wang <[email protected]>
Co-authored-by: DarkLight1337 <[email protected]>

[SpecDec][Misc] Cleanup, remove bonus token logic. (vllm-project#8701)

[build] enable existing pytorch (for GH200, aarch64, nightly) (vllm-project#8713)

[misc] upgrade mistral-common (vllm-project#8715)

[Bugfix] Avoid some bogus messages RE CUTLASS's revision when building (vllm-project#8702)

[Bugfix] Fix CPU CMake build (vllm-project#8723)

Co-authored-by: Yuan <[email protected]>

[Bugfix] fix docker build for xpu (vllm-project#8652)

[Core][Frontend] Support Passing Multimodal Processor Kwargs (vllm-project#8657)

Signed-off-by: Alex-Brooks <[email protected]>

[Hardware][CPU] Refactor CPU model runner (vllm-project#8729)

[Bugfix][CPU] fix missing input intermediate_tensors in the cpu_model_runner (vllm-project#8733)

[Model] Support pp for qwen2-vl (vllm-project#8696)

[VLM] Fix paligemma, fuyu and persimmon with transformers 4.45 : use config.text_config.vocab_size (vllm-project#8707)

[CI/Build] use setuptools-scm to set __version__ (vllm-project#4738)

Co-authored-by: youkaichao <[email protected]>

[Kernel] (2/N) Machete - Integrate into CompressedTensorsWNA16 and GPTQMarlin (vllm-project#7701)

Co-authored-by: mgoin <[email protected]>
Co-authored-by: Divakar Verma <[email protected]>
Co-authored-by: Tyler Michael Smith <[email protected]>

[Kernel][LoRA]  Add assertion for punica sgmv kernels (vllm-project#7585)

[Core] Allow IPv6 in VLLM_HOST_IP with zmq (vllm-project#8575)

Signed-off-by: Russell Bryant <[email protected]>

Fix typical acceptance sampler with correct recovered token ids (vllm-project#8562)

Add output streaming support to multi-step + async while ensuring RequestOutput obj reuse (vllm-project#8335)

[Hardware][AMD] ROCm6.2 upgrade (vllm-project#8674)

Fix tests in test_scheduler.py that fail with BlockManager V2 (vllm-project#8728)

re-implement beam search on top of vllm core (vllm-project#8726)

Co-authored-by: Brendan Wong <[email protected]>

Revert "[Core] Rename `PromptInputs` to `PromptType`, and `inputs` to `prompt`" (vllm-project#8750)

[MISC] Skip dumping inputs when unpicklable (vllm-project#8744)

[Core][Model] Support loading weights by ID within models (vllm-project#7931)

[Model] Expose Phi3v num_crops as a mm_processor_kwarg (vllm-project#8658)

Signed-off-by: Alex-Brooks <[email protected]>
Co-authored-by: Cyrus Leung <[email protected]>
Co-authored-by: DarkLight1337 <[email protected]>

[Bugfix] Fix potentially unsafe custom allreduce synchronization (vllm-project#8558)

[Kernel] Split Marlin MoE kernels into multiple files (vllm-project#8661)

Co-authored-by: mgoin <[email protected]>

[Frontend] Batch inference for llm.chat() API  (vllm-project#8648)

Co-authored-by: Cyrus Leung <[email protected]>
Co-authored-by: Cyrus Leung <[email protected]>
Co-authored-by: Roger Wang <[email protected]>
Co-authored-by: Roger Wang <[email protected]>

[Bugfix] Fix torch dynamo fixes caused by `replace_parameters` (vllm-project#8748)

[CI/Build] fix setuptools-scm usage (vllm-project#8771)

[misc] soft drop beam search (vllm-project#8763)

[[Misc]Upgrade bitsandbytes to the latest version 0.44.0 (vllm-project#8768)

[Core][Bugfix] Support prompt_logprobs returned with speculative decoding (vllm-project#8047)

Signed-off-by: Travis Johnson <[email protected]>

[Core] Adding Priority Scheduling (vllm-project#5958)

[Bugfix] Use heartbeats instead of health checks (vllm-project#8583)

Fix test_schedule_swapped_simple in test_scheduler.py (vllm-project#8780)

[Bugfix][Kernel] Implement acquire/release polyfill for Pascal (vllm-project#8776)

Fix tests in test_chunked_prefill_scheduler which fail with BlockManager V2 (vllm-project#8752)

[BugFix] Propagate 'trust_remote_code' setting in internvl and minicpmv (vllm-project#8250)

[Hardware][CPU] Enable mrope and support Qwen2-VL on CPU backend (vllm-project#8770)

[Bugfix] load fc bias from config for eagle (vllm-project#8790)

[Frontend] OpenAI server: propagate usage accounting to FastAPI middleware layer (vllm-project#8672)

[Bugfix] Ray 2.9.x doesn't expose available_resources_per_node (vllm-project#8767)

Signed-off-by: darthhexx <[email protected]>

[Misc] Fix minor typo in scheduler (vllm-project#8765)

[CI/Build][Bugfix][Doc][ROCm] CI fix and doc update after ROCm 6.2 upgrade (vllm-project#8777)

[Kernel] Fullgraph and opcheck tests (vllm-project#8479)

[[Misc]] Add extra deps for openai server image (vllm-project#8792)

[VLM][Bugfix] internvl with num_scheduler_steps > 1 (vllm-project#8614)

rename PromptInputs and inputs with backward compatibility (vllm-project#8760)

[Frontend] MQLLMEngine supports profiling. (vllm-project#8761)

[Misc] Support FP8 MoE for compressed-tensors (vllm-project#8588)

Revert "rename PromptInputs and inputs with backward compatibility (vllm-project#8760) (vllm-project#8810)

[Model] Add support for the multi-modal Llama 3.2 model (vllm-project#8811)

Co-authored-by: simon-mo <[email protected]>
Co-authored-by: Chang Su <[email protected]>
Co-authored-by: Simon Mo <[email protected]>
Co-authored-by: Roger Wang <[email protected]>
Co-authored-by: Roger Wang <[email protected]>

[Doc] Update doc for Transformers 4.45 (vllm-project#8817)

[Misc] Support quantization of MllamaForCausalLM (vllm-project#8822)

[Misc] Update config loading for Qwen2-VL and remove Granite (vllm-project#8837)

[Build/CI] Upgrade to gcc 10 in the base build Docker image (vllm-project#8814)

[Docs] Add README to the build docker image (vllm-project#8825)

[CI/Build] Fix missing ci dependencies (vllm-project#8834)

[misc][installation] build from source without compilation (vllm-project#8818)

[ci] Soft fail Entrypoints, Samplers, LoRA, Decoder-only VLM (vllm-project#8872)

Signed-off-by: kevin <[email protected]>

[Bugfix] Include encoder prompts len to non-stream api usage response (vllm-project#8861)

[Misc] Change dummy profiling and BOS fallback warns to log once (vllm-project#8820)

[Bugfix] Fix print_warning_once's line info (vllm-project#8867)

fix validation: Only set tool_choice `auto` if at least one tool is provided (vllm-project#8568)

[Bugfix] Fixup advance_step.cu warning (vllm-project#8815)

[BugFix] Fix test breakages from transformers 4.45 upgrade (vllm-project#8829)

[Installation] Allow lower versions of FastAPI to maintain Ray 2.9 compatibility (vllm-project#8764)

[Feature] Add support for Llama 3.1 and 3.2 tool use (vllm-project#8343)

Signed-off-by: Max de Bayser <[email protected]>

[Core] rename`PromptInputs` and `inputs` (vllm-project#8876)

[misc] fix collect env (vllm-project#8894)

[MISC] Fix invalid escape sequence '\' (vllm-project#8830)

Signed-off-by: Peter Pan <[email protected]>

[Bugfix][VLM] Fix Fuyu batching inference with `max_num_seqs>1` (vllm-project#8892)

[TPU] Update pallas.py to support trillium (vllm-project#8871)

[torch.compile] use empty tensor instead of None for profiling (vllm-project#8875)

[Kernel] AQ AZP 4/4: Integrate asymmetric quantization to linear method (vllm-project#7271)

[Bugfix] fix for deepseek w4a16 (vllm-project#8906)

Co-authored-by: mgoin <[email protected]>

[Core] Multi-Step + Single Step Prefills via Chunked Prefill code path (vllm-project#8378)

Co-authored-by: Varun Sundar Rabindranath <[email protected]>

[misc][distributed] add VLLM_SKIP_P2P_CHECK flag (vllm-project#8911)

[Core] Priority-based scheduling in async engine (vllm-project#8850)

[misc] fix wheel name (vllm-project#8919)

[Bugfix][Intel] Fix XPU Dockerfile Build (vllm-project#7824)

Signed-off-by: tylertitsworth <[email protected]>
Co-authored-by: youkaichao <[email protected]>

[Misc] Remove vLLM patch of `BaichuanTokenizer` (vllm-project#8921)

[Bugfix] Fix code for downloading models from modelscope (vllm-project#8443)

[Bugfix] Fix PP for Multi-Step (vllm-project#8887)

[CI/Build] Update models tests & examples (vllm-project#8874)

Co-authored-by: Roger Wang <[email protected]>

[Frontend] Make beam search emulator temperature modifiable (vllm-project#8928)

Co-authored-by: Eduard Balzin <[email protected]>

[Bugfix] Support testing prefill throughput with benchmark_serving.py --hf-output-len 1 (vllm-project#8891)

[doc] organize installation doc and expose per-commit docker (vllm-project#8931)

[Core] Improve choice of Python multiprocessing method (vllm-project#8823)

Signed-off-by: Russell Bryant <[email protected]>
Co-authored-by: youkaichao <[email protected]>

[Bugfix] Block manager v2 with preemption and lookahead slots (vllm-project#8824)

[Bugfix] Fix Marlin MoE act order when is_k_full == False (vllm-project#8741)

Co-authored-by: Tyler Michael Smith <[email protected]>

[CI/Build] Add test decorator for minimum GPU memory (vllm-project#8925)

[Build/CI] Set FETCHCONTENT_BASE_DIR to one location for better caching (vllm-project#8930)

[Model] Support Qwen2.5-Math-RM-72B (vllm-project#8896)

[Model][LoRA]LoRA support added for MiniCPMV2.5 (vllm-project#7199)

[BugFix] Fix seeded random sampling with encoder-decoder models (vllm-project#8870)

Co-authored-by: Roger Wang <[email protected]>

[Misc] Fix typo in BlockSpaceManagerV1 (vllm-project#8944)

[Frontend] Added support for HF's new `continue_final_message` parameter (vllm-project#8942)

[Kernel][Model] Varlen prefill + Prefill chunking support for mamba kernels and Jamba model (vllm-project#8533)
Alvant pushed a commit to compressa-ai/vllm that referenced this pull request Oct 26, 2024
garg-amit pushed a commit to garg-amit/vllm that referenced this pull request Oct 28, 2024
KuntaiDu pushed a commit to KuntaiDu/vllm that referenced this pull request Nov 20, 2024
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