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import streamlit as st
import re, torch, json, os
from transformers import AutoModelForCausalLM, AutoTokenizer
from datetime import datetime
from huggingface_hub import login, InferenceClient
import random

login(token=os.getenv("TOKEN"))

# Initialize the inference client for the Mixtral model
client = InferenceClient("mistralai/Mixtral-8x7B-Instruct-v0.1")

if 'recipe' not in st.session_state:
    st.session_state.recipe = None

if 'recipe_saved' not in st.session_state:
    st.session_state.recipe_saved = None

if 'user_direction' not in st.session_state:
    st.session_state.user_direction = None

if 'serving_size' not in st.session_state:
    st.session_state.serving_size = 2

if 'selected_difficulty' not in st.session_state:
    st.session_state.selected_difficulty = "Quick & Easy"

if 'exclusions' not in st.session_state:
    st.session_state.exclusions = None
    
def create_detailed_prompt(user_direction, exclusions, serving_size, difficulty):
    if difficulty == "Quick & Easy":
        prompt = (
            f"Provide a 'Quick and Easy' recipe for {user_direction} that excludes {exclusions} and has a serving size of {serving_size}. "
            f"It should require as few ingredients as possible and should be ready in as little time as possible. "
            f"The steps should be simple, and the ingredients should be commonly found in a household pantry. "
            f"Provide a detailed ingredient list and step-by-step guide that explains the instructions to prepare in detail."
        )
    elif difficulty == "Intermediate":
        prompt = (
            f"Provide a classic recipe for {user_direction} that excludes {exclusions} and has a serving size of {serving_size}. "
            f"The recipe should offer a bit of a cooking challenge but should not require professional skills. "
            f"The recipe should feature traditional ingredients and techniques that are authentic to its cuisine. "
            f"Provide a detailed ingredient list and step-by-step guide that explains the instructions to prepare in detail."
        )
    elif difficulty == "Professional":
        prompt = (
            f"Provide a advanced recipe for {user_direction} that excludes {exclusions} and has a serving size of {serving_size}. "
            f"The recipe should push the boundaries of culinary arts, integrating unique ingredients, advanced cooking techniques, and innovative presentations. "
            f"The recipe should be able to be served at a high-end restaurant or would impress at a gourmet food competition. "
            f"Provide a detailed ingredient list and step-by-step guide that explains the instructions to prepare in detail."
        )
    return prompt

def generate_recipe(user_inputs):
    with st.spinner('Building the perfect recipe...'):
        prompt = create_detailed_prompt(user_inputs['user_direction'], user_inputs['exclusions'], user_inputs['serving_size'], user_inputs['difficulty'])
        
        generate_kwargs = dict(
            temperature=0.9,
            max_new_tokens=1000,
            top_p=0.9,
            repetition_penalty=1.0,
            do_sample=True,
        )

        response = client.text_generation(prompt, **generate_kwargs)
        st.session_state.recipe = response
        st.session_state.recipe_saved = False
        
def clear_inputs():
    st.session_state.user_direction = None
    st.session_state.exclusions = None
    st.session_state.serving_size = 2
    st.session_state.selected_difficulty = "Quick & Easy"
    
st.title("Let's get cooking")
st.session_state.user_direction = st.text_area(
    "What do you want to cook? Describe anything - a dish, cuisine, event, or vibe.",
    value = st.session_state.user_direction,
    placeholder="quick snack, asian style bowl with either noodles or rice, something italian",
    )

st.session_state.serving_size = st.number_input(
    "How many servings would you like to cook?",
    min_value=1,
    max_value=100,
    value=st.session_state.serving_size,
    step=1
)

difficulty_dictionary = {
    "Quick & Easy": {
        "description": "Easy recipes with straightforward instructions. Ideal for beginners or those seeking quick and simple cooking.",
    },
    "Intermediate": {
        "description": "Recipes with some intricate steps that invite a little challenge. Perfect for regular cooks wanting to expand their repertoire with new ingredients and techniques.",
    },
    "Professional": {
        "description": "Complex recipes that demand a high level of skill and precision. Suited for seasoned cooks aspiring to professional-level sophistication and creativity.",
    }
}

st.session_state.selected_difficulty = st.radio(
    "Choose a difficulty level for your recipe.",
    [
        list(difficulty_dictionary.keys())[0], 
        list(difficulty_dictionary.keys())[1], 
        list(difficulty_dictionary.keys())[2]
    ],
    captions = [
        difficulty_dictionary["Quick & Easy"]["description"], 
        difficulty_dictionary["Intermediate"]["description"],
        difficulty_dictionary["Professional"]["description"]
    ],
    index=list(difficulty_dictionary).index(st.session_state.selected_difficulty)
)

st.session_state.exclusions = st.text_area(
    "Any ingredients you want to exclude?",
    value = st.session_state.exclusions,
    placeholder="gluten, dairy, nuts, cilantro",
    )

fancy_exclusions = ""

if st.session_state.selected_difficulty == "Professional":
    exclude_fancy = st.checkbox(
        "Exclude cliche professional ingredients? (gold leaf, truffle, edible flowers, microgreens)", 
        value=True)
    fancy_exclusions = "gold leaf, truffle, edible flowers, microgreens, gold dust"
      

user_inputs = {
    "user_direction" : st.session_state.user_direction,
    "exclusions": f"{st.session_state.exclusions}, {fancy_exclusions}",
    "serving_size": st.session_state.serving_size,
    "difficulty": st.session_state.selected_difficulty
}
button_cols_submit = st.columns([1, 1, 4])
with button_cols_submit[0]:
    st.button(label='Submit', on_click=generate_recipe, kwargs=dict(user_inputs=user_inputs), type="primary", use_container_width=True)
with button_cols_submit[1]:
    st.button(label='Reset', on_click=clear_inputs, type="secondary", use_container_width=True)
with button_cols_submit[2]:
    st.empty()
    
if st.session_state.recipe is not None:
    st.divider()
    print(st.session_state.recipe)
    recipe = json.loads(st.session_state.recipe)
    recipe_md = ''
    recipe_md += f'# {recipe["name"]} \n\n'
    recipe_md += f'{recipe["description"]} \n\n'
    recipe_md += '## Ingredients: \n'
    for ingredient in recipe['ingredients']:
        recipe_md += f"- {ingredient['name']} \n"
    recipe_md += '\n## Instructions:\n'
    for instruction in recipe['instructions']:
        recipe_md += f"{instruction['step_number']}. {instruction['instruction']} \n"
    recipe['md'] = recipe_md
    recipe['timestamp'] = str(datetime.now())
    st.markdown(recipe_md)
    st.write("")