BigSalmon / PointsToParagraphNeo1.3B

huggingface.co
Total runs: 16
24-hour runs: -2
7-day runs: -1
30-day runs: -3
Model's Last Updated: August 16 2022
text-generation

Introduction of PointsToParagraphNeo1.3B

Model Details of PointsToParagraphNeo1.3B

!pip install transformers
!pip install torch
import torch
from transformers import AutoTokenizer, AutoModelForCausalLM
tokenizer = AutoTokenizer.from_pretrained("BigSalmon/PointsToParagraphNeo1.3B")
model = AutoModelForCausalLM.from_pretrained("BigSalmon/PointsToParagraphNeo1.3B")
prompt = """
- advent
- podcasts
- entertainment
- is an industry transformed
- no longer
- consumers touch clicker or turn on radio
- people plug in their earbuds to listen to a podcast
- this changing mediums for reasons
- can be done anywhere
- more optionality in content
text: as podcasts have"""
input_ids = tokenizer.encode(prompt, return_tensors='pt')
outputs = model.generate(input_ids=input_ids,
                             max_length=10 + len(prompt),
                             temperature=1.0,
                             top_k=50,
                             top_p=0.95,
                             do_sample=True,
                             num_return_sequences=5,
                             early_stopping=True)
for i in range(5):
  print(tokenizer.decode(outputs[i]))

Most likely outputs (Disclaimer: I highly recommend using this over just generating):

prompt = """
- advent
- podcasts
- entertainment
- is an industry transformed
- no longer
- consumers touch clicker or turn on radio
- people plug in their earbuds to listen to a podcast
- this changing mediums for reasons
- can be done anywhere
- more optionality in content
text: as podcasts have"""
text = tokenizer.encode(prompt)
myinput, past_key_values = torch.tensor([text]), None
myinput = myinput
myinput= myinput.to(device)
logits, past_key_values = model(myinput, past_key_values = past_key_values, return_dict=False)
logits = logits[0,-1]
probabilities = torch.nn.functional.softmax(logits)
best_logits, best_indices = logits.topk(250)
best_words = [tokenizer.decode([idx.item()]) for idx in best_indices]
text.append(best_indices[0].item())
best_probabilities = probabilities[best_indices].tolist()
words = []   
print(best_words)

Example:

- advent
- podcasts
- entertainment
- is an industry transformed
- no longer
- consumers touch clicker or turn on radio
- people plug in their earbuds to listen to a podcast
- this changing mediums for reasons
- can be done anywhere
- more optionality in content
text: as podcasts have proliferated, the entertainment industry has been fundamentally reshaped. in place of flipping through channels or spinning the dial, consumers are plugging in their earbuds to enjoy audio content. this evolution in media consumption is not without explanation, but rather a function of greater portability and content optionality.

***

- newborn
- caring for
- full-time job
- parents
- often have to work normal job
- paid leave needs to be universal
- so parents not overworked
- child is cared for
- can spend special time together
text: tending to a newborn is a full-time job. regrettably, many parents must perform this duty alongside their conventional employment. to spare them from such strain, paid leave must be universal. in this way, children will be provided for, while the parent-child bond will be strengthened.

Runs of BigSalmon PointsToParagraphNeo1.3B on huggingface.co

16
Total runs
-2
24-hour runs
-3
3-day runs
-1
7-day runs
-3
30-day runs

More Information About PointsToParagraphNeo1.3B huggingface.co Model

PointsToParagraphNeo1.3B huggingface.co

PointsToParagraphNeo1.3B huggingface.co is an AI model on huggingface.co that provides PointsToParagraphNeo1.3B's model effect (), which can be used instantly with this BigSalmon PointsToParagraphNeo1.3B model. huggingface.co supports a free trial of the PointsToParagraphNeo1.3B model, and also provides paid use of the PointsToParagraphNeo1.3B. Support call PointsToParagraphNeo1.3B model through api, including Node.js, Python, http.

PointsToParagraphNeo1.3B huggingface.co Url

https://huggingface.co/BigSalmon/PointsToParagraphNeo1.3B

BigSalmon PointsToParagraphNeo1.3B online free

PointsToParagraphNeo1.3B huggingface.co is an online trial and call api platform, which integrates PointsToParagraphNeo1.3B's modeling effects, including api services, and provides a free online trial of PointsToParagraphNeo1.3B, you can try PointsToParagraphNeo1.3B online for free by clicking the link below.

BigSalmon PointsToParagraphNeo1.3B online free url in huggingface.co:

https://huggingface.co/BigSalmon/PointsToParagraphNeo1.3B

PointsToParagraphNeo1.3B install

PointsToParagraphNeo1.3B is an open source model from GitHub that offers a free installation service, and any user can find PointsToParagraphNeo1.3B on GitHub to install. At the same time, huggingface.co provides the effect of PointsToParagraphNeo1.3B install, users can directly use PointsToParagraphNeo1.3B installed effect in huggingface.co for debugging and trial. It also supports api for free installation.

PointsToParagraphNeo1.3B install url in huggingface.co:

https://huggingface.co/BigSalmon/PointsToParagraphNeo1.3B

Url of PointsToParagraphNeo1.3B

PointsToParagraphNeo1.3B huggingface.co Url

Provider of PointsToParagraphNeo1.3B huggingface.co

BigSalmon
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