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Qwen2.5-7B-INT8-SlideSparse-2_10/README.md ADDED
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1
+ ---
2
+ language:
3
+ - zh
4
+ - en
5
+ - fr
6
+ - es
7
+ - pt
8
+ - de
9
+ - it
10
+ - ru
11
+ - ja
12
+ - ko
13
+ - vi
14
+ - th
15
+ - ar
16
+ - id
17
+ - tr
18
+ - fa
19
+ - nl
20
+ - pl
21
+ - cs
22
+ - he
23
+ - sv
24
+ - fi
25
+ - da
26
+ - no
27
+ - el
28
+ - bg
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+ - uk
30
+ - ur
31
+ - sr
32
+ - ms
33
+ - zsm
34
+ - nld
35
+ base_model:
36
+ - Qwen/Qwen2.5-7B-Instruct
37
+ pipeline_tag: text-generation
38
+ tags:
39
+ - qwen
40
+ - qwen2_5
41
+ - qwen2_5_instruct
42
+ - w8a8
43
+ - int8
44
+ - vllm
45
+ - conversational
46
+ - text-generation-inference
47
+ - compressed-tensors
48
+ license: apache-2.0
49
+ license_name: apache-2.0
50
+ name: RedHatAI/Qwen2.5-7B-Instruct-quantized.w8a8
51
+ description: This model was obtained by quantizing the weights and activations of Qwen2.5-7B-Instruct to INT8 data type.
52
+ readme: https://huggingface.co/RedHatAI/Qwen2.5-7B-Instruct-quantized.w8a8/main/README.md
53
+ tasks:
54
+ - text-to-text
55
+ provider: Alibaba Cloud
56
+ license_link: https://www.apache.org/licenses/LICENSE-2.0
57
+ validated_on:
58
+ - RHOAI 2.20
59
+ - RHAIIS 3.0
60
+ - RHELAI 1.5
61
+ ---
62
+
63
+ <h1 style="display: flex; align-items: center; gap: 10px; margin: 0;">
64
+ Qwen2.5-7B-Instruct-quantized.w8a8
65
+ <img src="https://www.redhat.com/rhdc/managed-files/Catalog-Validated_model_0.png" alt="Model Icon" width="40" style="margin: 0; padding: 0;" />
66
+ </h1>
67
+
68
+ <a href="https://www.redhat.com/en/products/ai/validated-models" target="_blank" style="margin: 0; padding: 0;">
69
+ <img src="https://www.redhat.com/rhdc/managed-files/Validated_badge-Dark.png" alt="Validated Badge" width="250" style="margin: 0; padding: 0;" />
70
+ </a>
71
+
72
+ ## Model Overview
73
+ - **Model Architecture:** Qwen2
74
+ - **Input:** Text
75
+ - **Output:** Text
76
+ - **Model Optimizations:**
77
+ - **Activation quantization:** INT8
78
+ - **Weight quantization:** INT8
79
+ - **Intended Use Cases:** Intended for commercial and research use multiple languages. Similarly to [Qwen2.5-7B](https://huggingface.co/Qwen/Qwen2.5-7B), this models is intended for assistant-like chat.
80
+ - **Out-of-scope:** Use in any manner that violates applicable laws or regulations (including trade compliance laws).
81
+ - **Release Date:** 10/09/2024
82
+ - **Version:** 1.0
83
+ - **Validated on:** RHOAI 2.20, RHAIIS 3.0, RHELAI 1.5
84
+ - **License(s):** [apache-2.0](https://huggingface.co/Qwen/Qwen2.5-7B/blob/main/LICENSE)
85
+ - **Model Developers:** Neural Magic
86
+
87
+ ### Model Optimizations
88
+
89
+ This model was obtained by quantizing activations and weights of [Qwen2.5-7B-Instruct](https://huggingface.co/Qwen/Qwen2.5-7B-Instruct) to INT8 data type.
90
+ This optimization reduces the number of bits used to represent weights and activations from 16 to 8, reducing GPU memory requirements (by approximately 50%) and increasing matrix-multiply compute throughput (by approximately 2x).
91
+ Weight quantization also reduces disk size requirements by approximately 50%.
92
+
93
+ Only weights and activations of the linear operators within transformers blocks are quantized.
94
+ Weights are quantized with a symmetric static per-channel scheme, whereas activations are quantized with a symmetric dynamic per-token scheme.
95
+ A combination of the [SmoothQuant](https://arxiv.org/abs/2211.10438) and [GPTQ](https://arxiv.org/abs/2210.17323) algorithms is applied for quantization, as implemented in the [llm-compressor](https://github.com/vllm-project/llm-compressor) library.
96
+
97
+ ## Deployment
98
+
99
+ This model can be deployed efficiently using the [vLLM](https://docs.vllm.ai/en/latest/) backend, as shown in the example below.
100
+
101
+ ```python
102
+ from vllm import LLM, SamplingParams
103
+ from transformers import AutoTokenizer
104
+
105
+ model_id = "RedHatAI/Qwen2.5-7B-Instruct-quantized.w8a8"
106
+ number_gpus = 1
107
+ max_model_len = 8192
108
+
109
+ sampling_params = SamplingParams(temperature=0.7, top_p=0.8, max_tokens=256)
110
+
111
+ tokenizer = AutoTokenizer.from_pretrained(model_id)
112
+
113
+ messages = [
114
+ {"role": "user", "content": "Give me a short introduction to large language model."},
115
+ ]
116
+
117
+ prompts = tokenizer.apply_chat_template(messages, tokenize=False)
118
+
119
+ llm = LLM(model=model_id, tensor_parallel_size=number_gpus, max_model_len=max_model_len)
120
+
121
+ outputs = llm.generate(prompts, sampling_params)
122
+
123
+ generated_text = outputs[0].outputs[0].text
124
+ print(generated_text)
125
+ ```
126
+
127
+ vLLM aslo supports OpenAI-compatible serving. See the [documentation](https://docs.vllm.ai/en/latest/) for more details.
128
+
129
+ <details>
130
+ <summary>Deploy on <strong>Red Hat AI Inference Server</strong></summary>
131
+
132
+ ```bash
133
+ podman run --rm -it --device nvidia.com/gpu=all -p 8000:8000 \
134
+ --ipc=host \
135
+ --env "HUGGING_FACE_HUB_TOKEN=$HF_TOKEN" \
136
+ --env "HF_HUB_OFFLINE=0" -v ~/.cache/vllm:/home/vllm/.cache \
137
+ --name=vllm \
138
+ registry.access.redhat.com/rhaiis/rh-vllm-cuda \
139
+ vllm serve \
140
+ --tensor-parallel-size 8 \
141
+ --max-model-len 32768 \
142
+ --enforce-eager --model RedHatAI/Qwen2.5-7B-Instruct-quantized.w8a8
143
+ ```
144
+ ​​See [Red Hat AI Inference Server documentation](https://docs.redhat.com/en/documentation/red_hat_ai_inference_server/) for more details.
145
+ </details>
146
+
147
+ <details>
148
+ <summary>Deploy on <strong>Red Hat Enterprise Linux AI</strong></summary>
149
+
150
+ ```bash
151
+ # Download model from Red Hat Registry via docker
152
+ # Note: This downloads the model to ~/.cache/instructlab/models unless --model-dir is specified.
153
+ ilab model download --repository docker://registry.redhat.io/rhelai1/qwen2-5-7b-instruct-quantized-w8a8:1.5
154
+ ```
155
+
156
+ ```bash
157
+ # Serve model via ilab
158
+ ilab model serve --model-path ~/.cache/instructlab/models/qwen2-5-7b-instruct-quantized-w8a8
159
+
160
+ # Chat with model
161
+ ilab model chat --model ~/.cache/instructlab/models/qwen2-5-7b-instruct-quantized-w8a8
162
+ ```
163
+ See [Red Hat Enterprise Linux AI documentation](https://docs.redhat.com/en/documentation/red_hat_enterprise_linux_ai/1.4) for more details.
164
+ </details>
165
+
166
+ <details>
167
+ <summary>Deploy on <strong>Red Hat Openshift AI</strong></summary>
168
+
169
+ ```python
170
+ # Setting up vllm server with ServingRuntime
171
+ # Save as: vllm-servingruntime.yaml
172
+ apiVersion: serving.kserve.io/v1alpha1
173
+ kind: ServingRuntime
174
+ metadata:
175
+ name: vllm-cuda-runtime # OPTIONAL CHANGE: set a unique name
176
+ annotations:
177
+ openshift.io/display-name: vLLM NVIDIA GPU ServingRuntime for KServe
178
+ opendatahub.io/recommended-accelerators: '["nvidia.com/gpu"]'
179
+ labels:
180
+ opendatahub.io/dashboard: 'true'
181
+ spec:
182
+ annotations:
183
+ prometheus.io/port: '8080'
184
+ prometheus.io/path: '/metrics'
185
+ multiModel: false
186
+ supportedModelFormats:
187
+ - autoSelect: true
188
+ name: vLLM
189
+ containers:
190
+ - name: kserve-container
191
+ image: quay.io/modh/vllm:rhoai-2.20-cuda # CHANGE if needed. If AMD: quay.io/modh/vllm:rhoai-2.20-rocm
192
+ command:
193
+ - python
194
+ - -m
195
+ - vllm.entrypoints.openai.api_server
196
+ args:
197
+ - "--port=8080"
198
+ - "--model=/mnt/models"
199
+ - "--served-model-name={{.Name}}"
200
+ env:
201
+ - name: HF_HOME
202
+ value: /tmp/hf_home
203
+ ports:
204
+ - containerPort: 8080
205
+ protocol: TCP
206
+ ```
207
+
208
+ ```python
209
+ # Attach model to vllm server. This is an NVIDIA template
210
+ # Save as: inferenceservice.yaml
211
+ apiVersion: serving.kserve.io/v1beta1
212
+ kind: InferenceService
213
+ metadata:
214
+ annotations:
215
+ openshift.io/display-name: Qwen2.5-7B-Instruct-quantized.w8a8 # OPTIONAL CHANGE
216
+ serving.kserve.io/deploymentMode: RawDeployment
217
+ name: Qwen2.5-7B-Instruct-quantized.w8a8 # specify model name. This value will be used to invoke the model in the payload
218
+ labels:
219
+ opendatahub.io/dashboard: 'true'
220
+ spec:
221
+ predictor:
222
+ maxReplicas: 1
223
+ minReplicas: 1
224
+ model:
225
+ modelFormat:
226
+ name: vLLM
227
+ name: ''
228
+ resources:
229
+ limits:
230
+ cpu: '2' # this is model specific
231
+ memory: 8Gi # this is model specific
232
+ nvidia.com/gpu: '1' # this is accelerator specific
233
+ requests: # same comment for this block
234
+ cpu: '1'
235
+ memory: 4Gi
236
+ nvidia.com/gpu: '1'
237
+ runtime: vllm-cuda-runtime # must match the ServingRuntime name above
238
+ storageUri: oci://registry.redhat.io/rhelai1/modelcar-qwen2-5-7b-instruct-quantized-w8a8:1.5
239
+ tolerations:
240
+ - effect: NoSchedule
241
+ key: nvidia.com/gpu
242
+ operator: Exists
243
+ ```
244
+
245
+ ```bash
246
+ # make sure first to be in the project where you want to deploy the model
247
+ # oc project <project-name>
248
+ # apply both resources to run model
249
+ # Apply the ServingRuntime
250
+ oc apply -f vllm-servingruntime.yaml
251
+ # Apply the InferenceService
252
+ oc apply -f qwen-inferenceservice.yaml
253
+ ```
254
+
255
+ ```python
256
+ # Replace <inference-service-name> and <cluster-ingress-domain> below:
257
+ # - Run `oc get inferenceservice` to find your URL if unsure.
258
+ # Call the server using curl:
259
+ curl https://<inference-service-name>-predictor-default.<domain>/v1/chat/completions
260
+ -H "Content-Type: application/json" \
261
+ -d '{
262
+ "model": "Qwen2.5-7B-Instruct-quantized.w8a8",
263
+ "stream": true,
264
+ "stream_options": {
265
+ "include_usage": true
266
+ },
267
+ "max_tokens": 1,
268
+ "messages": [
269
+ {
270
+ "role": "user",
271
+ "content": "How can a bee fly when its wings are so small?"
272
+ }
273
+ ]
274
+ }'
275
+ ```
276
+
277
+ See [Red Hat Openshift AI documentation](https://docs.redhat.com/en/documentation/red_hat_openshift_ai/2025) for more details.
278
+ </details>
279
+
280
+ ## Creation
281
+
282
+ <details>
283
+ <summary>Creation details</summary>
284
+ This model was created with [llm-compressor](https://github.com/vllm-project/llm-compressor) by running the code snippet below.
285
+
286
+
287
+ ```python
288
+ from transformers import AutoModelForCausalLM, AutoTokenizer
289
+ from llmcompressor.modifiers.quantization import GPTQModifier
290
+ from llmcompressor.modifiers.smoothquant import SmoothQuantModifier
291
+ from llmcompressor.transformers import oneshot
292
+ from datasets import load_dataset
293
+
294
+ # Load model
295
+ model_stub = "Qwen/Qwen2.5-7B-Instruct"
296
+ model_name = model_stub.split("/")[-1]
297
+
298
+ num_samples = 512
299
+ max_seq_len = 8192
300
+
301
+ tokenizer = AutoTokenizer.from_pretrained(model_stub)
302
+
303
+ model = AutoModelForCausalLM.from_pretrained(
304
+ model_stub,
305
+ device_map="auto",
306
+ torch_dtype="auto",
307
+ )
308
+
309
+ def preprocess_fn(example):
310
+ return {"text": tokenizer.apply_chat_template(example["messages"], add_generation_prompt=False, tokenize=False)}
311
+
312
+ ds = load_dataset("neuralmagic/LLM_compression_calibration", split="train")
313
+ ds = ds.map(preprocess_fn)
314
+
315
+ # Configure the quantization algorithm and scheme
316
+ recipe = [
317
+ SmoothQuantModifier(
318
+ smoothing_strength=0.8,
319
+ mappings=[
320
+ [["re:.*q_proj", "re:.*k_proj", "re:.*v_proj"], "re:.*input_layernorm"],
321
+ [["re:.*gate_proj", "re:.*up_proj"], "re:.*post_attention_layernorm"],
322
+ [["re:.*down_proj"], "re:.*up_proj"],
323
+ ],
324
+ ),
325
+ GPTQModifier(
326
+ ignore=["lm_head"],
327
+ sequential_targets=["Qwen2DecoderLayer"],
328
+ dampening_frac=0.01,
329
+ targets="Linear",
330
+ scheme="W8A8",
331
+ ),
332
+ ]
333
+
334
+ # Apply quantization
335
+ oneshot(
336
+ model=model,
337
+ dataset=ds,
338
+ recipe=recipe,
339
+ max_seq_length=max_seq_len,
340
+ num_calibration_samples=num_samples,
341
+ )
342
+
343
+ # Save to disk in compressed-tensors format
344
+ save_path = model_name + "-quantized.w8a8"
345
+ model.save_pretrained(save_path)
346
+ tokenizer.save_pretrained(save_path)
347
+ print(f"Model and tokenizer saved to: {save_path}")
348
+ ```
349
+ </details>
350
+
351
+ ## Evaluation
352
+
353
+ The model was evaluated on the [OpenLLM](https://huggingface.co/spaces/open-llm-leaderboard/open_llm_leaderboard) leaderboard tasks (version 1) with the [lm-evaluation-harness](https://github.com/EleutherAI/lm-evaluation-harness/tree/387Bbd54bc621086e05aa1b030d8d4d5635b25e6) (commit 387Bbd54bc621086e05aa1b030d8d4d5635b25e6) and the [vLLM](https://docs.vllm.ai/en/stable/) engine, using the following command:
354
+ ```
355
+ lm_eval \
356
+ --model vllm \
357
+ --model_args pretrained="neuralmagic/Qwen2.5-7B-Instruct-quantized.w8a8",dtype=auto,gpu_memory_utilization=0.5,max_model_len=4096,add_bos_token=True,enable_chunk_prefill=True,tensor_parallel_size=1 \
358
+ --tasks openllm \
359
+ --batch_size auto
360
+ ```
361
+
362
+ ### Accuracy
363
+
364
+ #### Open LLM Leaderboard evaluation scores
365
+ <table>
366
+ <tr>
367
+ <th>Benchmark
368
+ </th>
369
+ <th>Qwen2.5-7B-Instruct
370
+ </th>
371
+ <th>Qwen2.5-7B-Instruct-quantized.w8a8<br>(this model)
372
+ </th>
373
+ <th>Recovery
374
+ </th>
375
+ </tr>
376
+ <tr>
377
+ <td>MMLU (5-shot)
378
+ </td>
379
+ <td>74.24
380
+ </td>
381
+ <td>73.87
382
+ </td>
383
+ <td>99.5%
384
+ </td>
385
+ </tr>
386
+ <tr>
387
+ <td>ARC Challenge (25-shot)
388
+ </td>
389
+ <td>63.40
390
+ </td>
391
+ <td>63.23
392
+ </td>
393
+ <td>99.7%
394
+ </td>
395
+ </tr>
396
+ <tr>
397
+ <td>GSM-8K (5-shot, strict-match)
398
+ </td>
399
+ <td>80.36
400
+ </td>
401
+ <td>80.74
402
+ </td>
403
+ <td>100.5%
404
+ </td>
405
+ </tr>
406
+ <tr>
407
+ <td>Hellaswag (10-shot)
408
+ </td>
409
+ <td>81.52
410
+ </td>
411
+ <td>81.06
412
+ </td>
413
+ <td>99.4%
414
+ </td>
415
+ </tr>
416
+ <tr>
417
+ <td>Winogrande (5-shot)
418
+ </td>
419
+ <td>74.66
420
+ </td>
421
+ <td>74.82
422
+ </td>
423
+ <td>100.2%
424
+ </td>
425
+ </tr>
426
+ <tr>
427
+ <td>TruthfulQA (0-shot, mc2)
428
+ </td>
429
+ <td>64.76
430
+ </td>
431
+ <td>64.58
432
+ </td>
433
+ <td>99.7%
434
+ </td>
435
+ </tr>
436
+ <tr>
437
+ <td><strong>Average</strong>
438
+ </td>
439
+ <td><strong>73.16</strong>
440
+ </td>
441
+ <td><strong>73.05</strong>
442
+ </td>
443
+ <td><strong>99.4%</strong>
444
+ </td>
445
+ </tr>
446
+ </table>
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Qwen2.5-7B-INT8-SlideSparse-2_10/recipe.yaml ADDED
@@ -0,0 +1,18 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ quant_stage:
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+ SmoothQuantModifier:
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+ - re:.*post_attention_layernorm
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+ dampening_frac: 0.01
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+ ignore: [lm_head]
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+ scheme: W8A8
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+ targets: Linear
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+ observer: mse
Qwen2.5-7B-INT8-SlideSparse-2_10/slidesparse_config.json ADDED
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Qwen2.5-7B-INT8-SlideSparse-2_10/special_tokens_map.json ADDED
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Qwen2.5-7B-INT8-SlideSparse-2_10/tokenizer.json ADDED
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+ size 11421995
Qwen2.5-7B-INT8-SlideSparse-2_10/tokenizer_config.json ADDED
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Qwen2.5-7B-INT8-SlideSparse-2_10/vocab.json ADDED
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