llmware / slim-topics

huggingface.co
Total runs: 363
24-hour runs: 0
7-day runs: 49
30-day runs: 356
Model's Last Updated: February 07 2024
text-generation

Introduction of slim-topics

Model Details of slim-topics

SLIM-TOPICS

slim-topics is part of the SLIM (" S tructured L anguage I nstruction M odel") model series, consisting of small, specialized decoder-based models, fine-tuned for function-calling.

slim-sentiment has been fine-tuned for topic analysis function calls, generating output consisting of a python dictionary corresponding to specified keys, e.g.:

{"topics": ["..."]}

SLIM models are designed to generate structured outputs that can be used programmatically as part of a multi-step, multi-model LLM-based automation workflow.

Each slim model has a 'quantized tool' version, e.g., 'slim-topics-tool' .

Prompt format:

function = "classify"
params = "topics"
prompt = "<human> " + {text} + "\n" +
"<{function}> " + {params} + "</{function}>" + "\n<bot>:"

Transformers Script
model = AutoModelForCausalLM.from_pretrained("llmware/slim-topics")
tokenizer = AutoTokenizer.from_pretrained("llmware/slim-topics")

function = "classify"
params = "topic"

text = "The stock market declined yesterday as investors worried increasingly about the slowing economy."  

prompt = "<human>: " + text + "\n" + f"<{function}> {params} </{function}>\n<bot>:"

inputs = tokenizer(prompt, return_tensors="pt")
start_of_input = len(inputs.input_ids[0])

outputs = model.generate(
    inputs.input_ids.to('cpu'),
    eos_token_id=tokenizer.eos_token_id,
    pad_token_id=tokenizer.eos_token_id,
    do_sample=True,
    temperature=0.3,
    max_new_tokens=100
)

output_only = tokenizer.decode(outputs[0][start_of_input:], skip_special_tokens=True)

print("output only: ", output_only)  

# here's the fun part
try:
    output_only = ast.literal_eval(llm_string_output)
    print("success - converted to python dictionary automatically")
except:
    print("fail - could not convert to python dictionary automatically - ", llm_string_output)
Using as Function Call in LLMWare
from llmware.models import ModelCatalog
slim_model = ModelCatalog().load_model("llmware/slim-topics")
response = slim_model.function_call(text,params=["topics"], function="classify")

print("llmware - llm_response: ", response)
Model Card Contact

Darren Oberst & llmware team

Join us on Discord

Runs of llmware slim-topics on huggingface.co

363
Total runs
0
24-hour runs
0
3-day runs
49
7-day runs
356
30-day runs

More Information About slim-topics huggingface.co Model

More slim-topics license Visit here:

https://choosealicense.com/licenses/apache-2.0

slim-topics huggingface.co

slim-topics huggingface.co is an AI model on huggingface.co that provides slim-topics's model effect (), which can be used instantly with this llmware slim-topics model. huggingface.co supports a free trial of the slim-topics model, and also provides paid use of the slim-topics. Support call slim-topics model through api, including Node.js, Python, http.

slim-topics huggingface.co Url

https://huggingface.co/llmware/slim-topics

llmware slim-topics online free

slim-topics huggingface.co is an online trial and call api platform, which integrates slim-topics's modeling effects, including api services, and provides a free online trial of slim-topics, you can try slim-topics online for free by clicking the link below.

llmware slim-topics online free url in huggingface.co:

https://huggingface.co/llmware/slim-topics

slim-topics install

slim-topics is an open source model from GitHub that offers a free installation service, and any user can find slim-topics on GitHub to install. At the same time, huggingface.co provides the effect of slim-topics install, users can directly use slim-topics installed effect in huggingface.co for debugging and trial. It also supports api for free installation.

slim-topics install url in huggingface.co:

https://huggingface.co/llmware/slim-topics

Url of slim-topics

slim-topics huggingface.co Url

Provider of slim-topics huggingface.co

llmware
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