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# Basic Demo | |
In this demo, you will experience how to use the GLM-4-9B open source model to perform basic tasks. | |
Please follow the steps in the document strictly to avoid unnecessary errors. | |
## Device and dependency check | |
### Related inference test data | |
**The data in this document are tested in the following hardware environment. The actual operating environment | |
requirements and the GPU memory occupied by the operation are slightly different. Please refer to the actual operating | |
environment.** | |
Test hardware information: | |
+ OS: Ubuntu 22.04 | |
+ Memory: 512GB | |
+ Python: 3.12.3 | |
+ CUDA Version: 12.3 | |
+ GPU Driver: 535.104.05 | |
+ GPU: NVIDIA A100-SXM4-80GB * 8 | |
The stress test data of relevant inference are as follows: | |
**All tests are performed on a single GPU, and all GPU memory consumption is calculated based on the peak value** | |
# | |
### GLM-4-9B-Chat | |
| Dtype | GPU Memory | Prefilling | Decode Speed | Remarks | | |
|-------|------------|------------|---------------|------------------------| | |
| BF16 | 19 GB | 0.2s | 27.8 tokens/s | Input length is 1000 | | |
| BF16 | 21 GB | 0.8s | 31.8 tokens/s | Input length is 8000 | | |
| BF16 | 28 GB | 4.3s | 14.4 tokens/s | Input length is 32000 | | |
| BF16 | 58 GB | 38.1s | 3.4 tokens/s | Input length is 128000 | | |
| Dtype | GPU Memory | Prefilling | Decode Speed | Remarks | | |
|-------|------------|------------|---------------|-----------------------| | |
| INT4 | 8 GB | 0.2s | 23.3 tokens/s | Input length is 1000 | | |
| INT4 | 10 GB | 0.8s | 23.4 tokens/s | Input length is 8000 | | |
| INT4 | 17 GB | 4.3s | 14.6 tokens/s | Input length is 32000 | | |
### GLM-4-9B-Chat-1M | |
| Dtype | GPU Memory | Prefilling | Decode Speed | Remarks | | |
|-------|------------|------------|------------------|------------------------| | |
| BF16 | 74497MiB | 98.4s | 2.3653 tokens/s | Input length is 200000 | | |
If your input exceeds 200K, we recommend that you use the vLLM backend with multi gpus for inference to get better | |
performance. | |
#### GLM-4V-9B | |
| Dtype | GPU Memory | Prefilling | Decode Speed | Remarks | | |
|-------|------------|------------|---------------|----------------------| | |
| BF16 | 28 GB | 0.1s | 33.4 tokens/s | Input length is 1000 | | |
| BF16 | 33 GB | 0.7s | 39.2 tokens/s | Input length is 8000 | | |
| Dtype | GPU Memory | Prefilling | Decode Speed | Remarks | | |
|-------|------------|------------|---------------|----------------------| | |
| INT4 | 10 GB | 0.1s | 28.7 tokens/s | Input length is 1000 | | |
| INT4 | 15 GB | 0.8s | 24.2 tokens/s | Input length is 8000 | | |
### Minimum hardware requirements | |
If you want to run the most basic code provided by the official (transformers backend) you need: | |
+ Python >= 3.10 | |
+ Memory of at least 32 GB | |
If you want to run all the codes in this folder provided by the official, you also need: | |
+ Linux operating system (Debian series is best) | |
+ GPU device with more than 8GB GPU memory, supporting CUDA or ROCM and supporting `BF16` reasoning (`FP16` precision | |
cannot be finetuned, and there is a small probability of problems in infering) | |
Install dependencies | |
```shell | |
pip install -r requirements.txt | |
``` | |
## Basic function calls | |
**Unless otherwise specified, all demos in this folder do not support advanced usage such as Function Call and All Tools | |
** | |
### Use transformers backend code | |
+ Use the command line to communicate with the GLM-4-9B model. | |
```shell | |
python trans_cli_demo.py # GLM-4-9B-Chat | |
python trans_cli_vision_demo.py # GLM-4V-9B | |
``` | |
+ Use the Gradio web client to communicate with the GLM-4-9B-Chat model. | |
```shell | |
python trans_web_demo.py | |
``` | |
+ Use Batch inference. | |
```shell | |
python cli_batch_request_demo.py | |
``` | |
### Use vLLM backend code | |
+ Use the command line to communicate with the GLM-4-9B-Chat model. | |
```shell | |
python vllm_cli_demo.py | |
``` | |
+ Build the server by yourself and use the request format of `OpenAI API` to communicate with the glm-4-9b model. This | |
demo supports Function Call and All Tools functions. | |
Start the server: | |
```shell | |
python openai_api_server.py | |
``` | |
Client request: | |
```shell | |
python openai_api_request.py | |
``` | |
## Stress test | |
Users can use this code to test the generation speed of the model on the transformers backend on their own devices: | |
```shell | |
python trans_stress_test.py | |
``` |