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Update app.py
Browse files
app.py
CHANGED
@@ -26,6 +26,9 @@ import urllib.request
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import sqlite3
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import pandas as pd
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import pandasql as ps
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def clean(value):
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val = value.replace("'",'').replace("[",'').replace("]",'')
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@@ -249,6 +252,45 @@ def g_sheet_log(myinput, output):
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body=value_range_body
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).execute()
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def openai_response(PROMPT):
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response = openai.Image.create(
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@@ -446,223 +488,284 @@ elif Usage == 'Random Questions':
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6. Current Affairs and News.
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7. Create or compose tweets or Linkedin posts or email.''')
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# )
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# if Input_type == 'TEXT':
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#page_bg_img2 = """
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#<style>
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#[data-testid="stAppViewContainer"] {
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#background-color: #e5e5f7;
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#opacity: 0.8;
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#background-size: 20px 20px;
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#background-image: repeating-linear-gradient(0deg, #32d947, #32d947 1px, #e5e5f7 1px, #e5e5f7);
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#}
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#</style>
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#"""
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#st.markdown(page_bg_img, unsafe_allow_html=True)
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st.write('**You are now in Text input mode**')
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mytext = st.text_input('**Go on! Ask me anything:**')
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if st.button("SUBMIT"):
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question=mytext
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response = openai.Completion.create(
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model="text-davinci-003",
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prompt=f'''Your name is HyperBot and knowledge cutoff date is 2021-09, and you are not aware of any events after that time. if the
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Answer to following questions is not from your knowledge base or in case of queries like weather
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updates / stock updates / current news or people which requires you to have internet connection then print i don't have access to internet to answer your question,
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if question is related to image or painting or drawing generation then print ipython type output function gen_draw("detailed prompt of image to be generated")
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if the question is related to playing a song or video or music of a singer then print ipython type output function vid_tube("relevent search query")
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if the question is related to operating home appliances then print ipython type output function home_app(" action(ON/Off),appliance(TV,Geaser,Fridge,Lights,fans,AC)") .
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if question is realted to sending mail or sms then print ipython type output function messenger_app(" message of us ,messenger(email,sms)")
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\nQuestion-{question}
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\nAnswer -''',
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temperature=0.49,
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max_tokens=256,
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top_p=1,
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frequency_penalty=0,
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presence_penalty=0
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)
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# Note: This isn't quite the case for Clip Guided generations, which we'll tackle in a future example notebook.
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steps=30, # Amount of inference steps performed on image generation. Defaults to 30.
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cfg_scale=8.0, # Influences how strongly your generation is guided to match your prompt.
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# Setting this value higher increases the strength in which it tries to match your prompt.
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# Defaults to 7.0 if not specified.
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width=512, # Generation width, defaults to 512 if not included.
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height=512, # Generation height, defaults to 512 if not included.
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samples=1, # Number of images to generate, defaults to 1 if not included.
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sampler=generation.SAMPLER_K_DPMPP_2M # Choose which sampler we want to denoise our generation with.
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# Defaults to k_dpmpp_2m if not specified. Clip Guidance only supports ancestral samplers.
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# (Available Samplers: ddim, plms, k_euler, k_euler_ancestral, k_heun, k_dpm_2, k_dpm_2_ancestral, k_dpmpp_2s_ancestral, k_lms, k_dpmpp_2m)
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)
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"Please modify the prompt and try again.")
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if artifact.type == generation.ARTIFACT_IMAGE:
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img = Image.open(io.BytesIO(artifact.binary))
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st.image(img)
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img.save(str(artifact.seed)+ ".png") # Save our generated images with their seed number as the filename.
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rx = 'Image returned'
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g_sheet_log(mytext, rx)
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g_sheet_log(mytext, string_temp)
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else:
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st.write(string_temp)
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g_sheet_log(mytext, string_temp)
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else:
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pass
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# elif Input_type == 'SPEECH':
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# stt_button = Button(label="Speak", width=100)
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# stt_button.js_on_event("button_click", CustomJS(code="""
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# var recognition = new webkitSpeechRecognition();
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# recognition.continuous = true;
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# recognition.interimResults = true;
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# recognition.onresult = function (e) {
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# var value = "";
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# for (var i = e.resultIndex; i < e.results.length; ++i) {
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# if (e.results[i].isFinal) {
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# value += e.results[i][0].transcript;
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# }
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# }
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# if ( value != "") {
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# document.dispatchEvent(new CustomEvent("GET_TEXT", {detail: value}));
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# }
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# }
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# recognition.start();
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# """))
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import sqlite3
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import pandas as pd
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import pandasql as ps
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import pyaudio
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import wave
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def clean(value):
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val = value.replace("'",'').replace("[",'').replace("]",'')
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body=value_range_body
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).execute()
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openai.api_key = st.secrets["OPENAI_KEY"]
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RATE = 44100
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CHANNELS = 1
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FORMAT = pyaudio.paInt16
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CHUNK = 1024
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RECORD_SECONDS = 5
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def record_audio():
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p = pyaudio.PyAudio()
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# Open the microphone stream
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stream = p.open(format=FORMAT,
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channels=CHANNELS,
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rate=RATE,
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input=True,
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frames_per_buffer=CHUNK)
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# Record the audio
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frames = []
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for i in range(0, int(RATE / CHUNK * RECORD_SECONDS)):
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data = stream.read(CHUNK)
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frames.append(data)
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# Close the microphone stream
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stream.stop_stream()
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stream.close()
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p.terminate()
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# Save the recorded audio to a WAV file
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wf = wave.open("output.mp3", "wb")
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wf.setnchannels(CHANNELS)
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wf.setsampwidth(p.get_sample_size(FORMAT))
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wf.setframerate(RATE)
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wf.writeframes(b"".join(frames))
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wf.close()
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# Return the path to the recorded audio file
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return "output.mp3"
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def openai_response(PROMPT):
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response = openai.Image.create(
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6. Current Affairs and News.
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7. Create or compose tweets or Linkedin posts or email.''')
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Input_type = st.radio(
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"**Input type:**",
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('TEXT', 'SPEECH')
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)
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if Input_type == 'TEXT':
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st.write('**You are now in Text input mode**')
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mytext = st.text_input('**Go on! Ask me anything:**')
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if st.button("SUBMIT"):
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question=mytext
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response = openai.Completion.create(
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model="text-davinci-003",
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prompt=f'''Your name is HyperBot and knowledge cutoff date is 2021-09, and you are not aware of any events after that time. if the
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Answer to following questions is not from your knowledge base or in case of queries like weather
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updates / stock updates / current news or people which requires you to have internet connection then print i don't have access to internet to answer your question,
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if question is related to image or painting or drawing generation then print ipython type output function gen_draw("detailed prompt of image to be generated")
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if the question is related to playing a song or video or music of a singer then print ipython type output function vid_tube("relevent search query")
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if the question is related to operating home appliances then print ipython type output function home_app(" action(ON/Off),appliance(TV,Geaser,Fridge,Lights,fans,AC)") .
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if question is realted to sending mail or sms then print ipython type output function messenger_app(" message of us ,messenger(email,sms)")
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\nQuestion-{question}
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\nAnswer -''',
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temperature=0.49,
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max_tokens=256,
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top_p=1,
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frequency_penalty=0,
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presence_penalty=0
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)
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string_temp=response.choices[0].text
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if ("gen_draw" in string_temp):
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try:
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try:
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wget.download(openai_response(prompt))
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img2 = Image.open(wget.download(openai_response(prompt)))
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img2.show()
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rx = 'Image returned'
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g_sheet_log(mytext, rx)
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except:
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urllib.request.urlretrieve(openai_response(prompt),"img_ret.png")
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img = Image.open("img_ret.png")
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img.show()
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rx = 'Image returned'
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g_sheet_log(mytext, rx)
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except:
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# Set up our initial generation parameters.
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answers = stability_api.generate(
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prompt = mytext,
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seed=992446758, # If a seed is provided, the resulting generated image will be deterministic.
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# What this means is that as long as all generation parameters remain the same, you can always recall the same image simply by generating it again.
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# Note: This isn't quite the case for Clip Guided generations, which we'll tackle in a future example notebook.
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steps=30, # Amount of inference steps performed on image generation. Defaults to 30.
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cfg_scale=8.0, # Influences how strongly your generation is guided to match your prompt.
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# Setting this value higher increases the strength in which it tries to match your prompt.
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# Defaults to 7.0 if not specified.
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width=512, # Generation width, defaults to 512 if not included.
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height=512, # Generation height, defaults to 512 if not included.
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samples=1, # Number of images to generate, defaults to 1 if not included.
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sampler=generation.SAMPLER_K_DPMPP_2M # Choose which sampler we want to denoise our generation with.
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# Defaults to k_dpmpp_2m if not specified. Clip Guidance only supports ancestral samplers.
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# (Available Samplers: ddim, plms, k_euler, k_euler_ancestral, k_heun, k_dpm_2, k_dpm_2_ancestral, k_dpmpp_2s_ancestral, k_lms, k_dpmpp_2m)
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)
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# Set up our warning to print to the console if the adult content classifier is tripped.
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# If adult content classifier is not tripped, save generated images.
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for resp in answers:
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for artifact in resp.artifacts:
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if artifact.finish_reason == generation.FILTER:
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warnings.warn(
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"Your request activated the API's safety filters and could not be processed."
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"Please modify the prompt and try again.")
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if artifact.type == generation.ARTIFACT_IMAGE:
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img = Image.open(io.BytesIO(artifact.binary))
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st.image(img)
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img.save(str(artifact.seed)+ ".png") # Save our generated images with their seed number as the filename.
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rx = 'Image returned'
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g_sheet_log(mytext, rx)
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# except:
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# st.write('image is being generated please wait...')
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# def extract_image_description(input_string):
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# return input_string.split('gen_draw("')[1].split('")')[0]
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# prompt=extract_image_description(string_temp)
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# # model_id = "CompVis/stable-diffusion-v1-4"
|
574 |
+
# model_id='runwayml/stable-diffusion-v1-5'
|
575 |
+
# device = "cuda"
|
576 |
+
|
577 |
+
|
578 |
+
# pipe = StableDiffusionPipeline.from_pretrained(model_id, torch_dtype=torch.float16)
|
579 |
+
# pipe = pipe.to(device)
|
580 |
+
|
581 |
+
# # prompt = "a photo of an astronaut riding a horse on mars"
|
582 |
+
# image = pipe(prompt).images[0]
|
583 |
+
|
584 |
+
# image.save("astronaut_rides_horse.png")
|
585 |
+
# st.image(image)
|
586 |
+
# # image
|
587 |
+
|
588 |
+
elif ("vid_tube" in string_temp):
|
589 |
+
s = Search(mytext)
|
590 |
+
search_res = s.results
|
591 |
+
first_vid = search_res[0]
|
592 |
+
print(first_vid)
|
593 |
+
string = str(first_vid)
|
594 |
+
video_id = string[string.index('=') + 1:-1]
|
595 |
+
# print(video_id)
|
596 |
+
YoutubeURL = "https://www.youtube.com/watch?v="
|
597 |
+
OurURL = YoutubeURL + video_id
|
598 |
+
st.write(OurURL)
|
599 |
+
st_player(OurURL)
|
600 |
+
ry = 'Youtube link and video returned'
|
601 |
+
g_sheet_log(mytext, ry)
|
602 |
+
|
603 |
+
elif ("don't" in string_temp or "internet" in string_temp):
|
604 |
+
st.write('searching internet ')
|
605 |
+
search_internet(question)
|
606 |
+
rz = 'Internet result returned'
|
607 |
+
g_sheet_log(mytext, string_temp)
|
608 |
+
|
609 |
+
else:
|
610 |
+
st.write(string_temp)
|
611 |
+
g_sheet_log(mytext, string_temp)
|
612 |
+
|
613 |
+
elif Input_type == 'SPEECH':
|
614 |
+
try:
|
615 |
+
st.text("Record your audio, **max length - 5 seconds**")
|
616 |
+
if st.button("Record"):
|
617 |
+
st.write("Recording...")
|
618 |
+
audio_file = record_audio()
|
619 |
+
st.write("Recording complete.")
|
620 |
+
file = open(audio_file, "rb")
|
621 |
|
622 |
+
# Play the recorded audio
|
623 |
+
st.audio(audio_file)
|
624 |
+
|
625 |
+
transcription = openai.Audio.transcribe("whisper-1", file)
|
626 |
+
result = transcription["text"]
|
627 |
+
st.write(f"Fetched from audio - {result}")
|
628 |
+
question = result
|
629 |
+
response = openai.Completion.create(
|
630 |
+
model="text-davinci-003",
|
631 |
+
prompt=f'''Your knowledge cutoff is 2021-09, and it is not aware of any events after that time. if the
|
632 |
+
Answer to following questions is not from your knowledge base or in case of queries like weather
|
633 |
+
updates / stock updates / current news Etc which requires you to have internet connection then print i don't have access to internet to answer your question,
|
634 |
+
if question is related to image or painting or drawing generation then print ipython type output function gen_draw("detailed prompt of image to be generated")
|
635 |
+
if the question is related to playing a song or video or music of a singer then print ipython type output function vid_tube("relevent search query")
|
636 |
+
\nQuestion-{question}
|
637 |
+
\nAnswer -''',
|
638 |
+
temperature=0.49,
|
639 |
+
max_tokens=256,
|
640 |
+
top_p=1,
|
641 |
+
frequency_penalty=0,
|
642 |
+
presence_penalty=0
|
643 |
+
)
|
644 |
+
string_temp=response.choices[0].text
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
645 |
|
646 |
+
if ("gen_draw" in string_temp):
|
647 |
+
st.write('*image is being generated please wait..* ')
|
648 |
+
def extract_image_description(input_string):
|
649 |
+
return input_string.split('gen_draw("')[1].split('")')[0]
|
650 |
+
prompt=extract_image_description(string_temp)
|
651 |
+
# model_id = "CompVis/stable-diffusion-v1-4"
|
652 |
+
model_id='runwayml/stable-diffusion-v1-5'
|
653 |
+
device = "cuda"
|
654 |
+
|
655 |
+
pipe = StableDiffusionPipeline.from_pretrained(model_id, torch_dtype=torch.float16)
|
656 |
+
pipe = pipe.to(device)
|
657 |
+
|
658 |
+
# prompt = "a photo of an astronaut riding a horse on mars"
|
659 |
+
image = pipe(prompt).images[0]
|
660 |
+
|
661 |
+
image.save("astronaut_rides_horse.png")
|
662 |
+
st.image(image)
|
663 |
+
# image
|
664 |
+
|
665 |
+
elif ("vid_tube" in string_temp):
|
666 |
+
s = Search(question)
|
667 |
+
search_res = s.results
|
668 |
+
first_vid = search_res[0]
|
669 |
+
print(first_vid)
|
670 |
+
string = str(first_vid)
|
671 |
+
video_id = string[string.index('=') + 1:-1]
|
672 |
+
# print(video_id)
|
673 |
+
YoutubeURL = "https://www.youtube.com/watch?v="
|
674 |
+
OurURL = YoutubeURL + video_id
|
675 |
+
st.write(OurURL)
|
676 |
+
st_player(OurURL)
|
677 |
+
|
678 |
+
elif ("don't" in string_temp or "internet" in string_temp ):
|
679 |
+
st.write('*searching internet*')
|
680 |
+
search_internet(question)
|
681 |
+
else:
|
682 |
+
st.write(string_temp)
|
683 |
+
|
684 |
+
except:
|
685 |
+
stt_button = Button(label="Speak", width=100)
|
686 |
+
stt_button.js_on_event("button_click", CustomJS(code="""
|
687 |
+
var recognition = new webkitSpeechRecognition();
|
688 |
+
recognition.continuous = true;
|
689 |
+
recognition.interimResults = true;
|
690 |
+
recognition.onresult = function (e) {
|
691 |
+
var value = "";
|
692 |
+
for (var i = e.resultIndex; i < e.results.length; ++i) {
|
693 |
+
if (e.results[i].isFinal) {
|
694 |
+
value += e.results[i][0].transcript;
|
695 |
+
}
|
696 |
+
}
|
697 |
+
if ( value != "") {
|
698 |
+
document.dispatchEvent(new CustomEvent("GET_TEXT", {detail: value}));
|
699 |
+
}
|
700 |
+
}
|
701 |
+
recognition.start();
|
702 |
+
"""))
|
703 |
|
704 |
+
result = streamlit_bokeh_events(
|
705 |
+
stt_button,
|
706 |
+
events="GET_TEXT",
|
707 |
+
key="listen",
|
708 |
+
refresh_on_update=False,
|
709 |
+
override_height=75,
|
710 |
+
debounce_time=0)
|
711 |
+
|
712 |
+
if result:
|
713 |
+
if "GET_TEXT" in result:
|
714 |
+
st.write(result.get("GET_TEXT"))
|
715 |
+
question = result.get("GET_TEXT")
|
716 |
+
response = openai.Completion.create(
|
717 |
+
model="text-davinci-003",
|
718 |
+
prompt=f'''Your knowledge cutoff is 2021-09, and it is not aware of any events after that time. if the
|
719 |
+
Answer to following questions is not from your knowledge base or in case of queries like weather
|
720 |
+
updates / stock updates / current news Etc which requires you to have internet connection then print i don't have access to internet to answer your question,
|
721 |
+
if question is related to image or painting or drawing generation then print ipython type output function gen_draw("detailed prompt of image to be generated")
|
722 |
+
if the question is related to playing a song or video or music of a singer then print ipython type output function vid_tube("relevent search query")
|
723 |
+
\nQuestion-{question}
|
724 |
+
\nAnswer -''',
|
725 |
+
temperature=0.49,
|
726 |
+
max_tokens=256,
|
727 |
+
top_p=1,
|
728 |
+
frequency_penalty=0,
|
729 |
+
presence_penalty=0
|
730 |
+
)
|
731 |
+
string_temp=response.choices[0].text
|
732 |
+
|
733 |
+
if ("gen_draw" in string_temp):
|
734 |
+
st.write('*image is being generated please wait..* ')
|
735 |
+
def extract_image_description(input_string):
|
736 |
+
return input_string.split('gen_draw("')[1].split('")')[0]
|
737 |
+
prompt=extract_image_description(string_temp)
|
738 |
+
# model_id = "CompVis/stable-diffusion-v1-4"
|
739 |
+
model_id='runwayml/stable-diffusion-v1-5'
|
740 |
+
device = "cuda"
|
741 |
+
|
742 |
+
pipe = StableDiffusionPipeline.from_pretrained(model_id, torch_dtype=torch.float16)
|
743 |
+
pipe = pipe.to(device)
|
744 |
+
|
745 |
+
# prompt = "a photo of an astronaut riding a horse on mars"
|
746 |
+
image = pipe(prompt).images[0]
|
747 |
+
|
748 |
+
image.save("astronaut_rides_horse.png")
|
749 |
+
st.image(image)
|
750 |
+
# image
|
751 |
+
|
752 |
+
elif ("vid_tube" in string_temp):
|
753 |
+
s = Search(question)
|
754 |
+
search_res = s.results
|
755 |
+
first_vid = search_res[0]
|
756 |
+
print(first_vid)
|
757 |
+
string = str(first_vid)
|
758 |
+
video_id = string[string.index('=') + 1:-1]
|
759 |
+
# print(video_id)
|
760 |
+
YoutubeURL = "https://www.youtube.com/watch?v="
|
761 |
+
OurURL = YoutubeURL + video_id
|
762 |
+
st.write(OurURL)
|
763 |
+
st_player(OurURL)
|
764 |
+
|
765 |
+
elif ("don't" in string_temp or "internet" in string_temp ):
|
766 |
+
st.write('*searching internet*')
|
767 |
+
search_internet(question)
|
768 |
+
else:
|
769 |
+
st.write(string_temp)
|
770 |
+
else:
|
771 |
+
pass
|