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from transformers import pipeline, set_seed
import gradio as grad, random, re
gpt2_pipe = pipeline('text-generation', model='Gustavosta/MagicPrompt-Stable-Diffusion', tokenizer='gpt2')
with open("ideas.txt", "r") as f:
line = f.readlines()
def generate(starting_text):
for count in range(4):
seed = random.randint(100, 1000000)
set_seed(seed)
if starting_text == "":
starting_text: str = line[random.randrange(0, len(line))].replace("\n", "").lower().capitalize()
starting_text: str = re.sub(r"[,:\-–.!;?_]", '', starting_text)
print(starting_text)
response = gpt2_pipe(starting_text, max_length=random.randint(60, 90), num_return_sequences=4)
response_list = []
for x in response:
resp = x['generated_text'].strip()
if resp != starting_text and len(resp) > (len(starting_text) + 4) and resp.endswith((":", "-", "—")) is False:
response_list.append(resp+'\n')
response_end = "\n".join(response_list)
response_end = re.sub('[^ ]+\.[^ ]+','', response_end)
response_end = response_end.replace("<", "").replace(">", "")
if response_end != "":
return response_end
if count == 4:
return response_end
txt = grad.Textbox(lines=1, label="Введите идею пейзажа", placeholder="На английском")
out = grad.Textbox(lines=4, label="Magic промт")
examples = []
for x in range(8):
examples.append(line[random.randrange(0, len(line))].replace("\n", "").lower().capitalize())
title = ""
description = ''
article = "<br><br><br><br><br><br><br><br><br><br>"
grad.Interface(fn=generate,
inputs=txt,
outputs=out,
examples=examples,
title=title,
description=description,
article=article,
allow_flagging='never',
cache_examples=False).queue(concurrency_count=1, api_open=False).launch(show_api=False, show_error=True)