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import gradio as gr
import torch
from transformers import AutoModelForCausalLM, AutoTokenizer
import spaces
import re
# Model configuration
model_name = "HelpingAI/Dhanishtha-2.0-preview"
# Global variables for model and tokenizer
model = None
tokenizer = None
def load_model():
"""Load the model and tokenizer"""
global model, tokenizer
print("Loading tokenizer...")
tokenizer = AutoTokenizer.from_pretrained(model_name)
# Ensure pad token is set
if tokenizer.pad_token is None:
tokenizer.pad_token = tokenizer.eos_token
print("Loading model...")
model = AutoModelForCausalLM.from_pretrained(
model_name,
torch_dtype="auto",
device_map="auto",
trust_remote_code=True
)
print("Model loaded successfully!")
def format_thinking_text(text):
"""Format text to properly display <think> and <ser> tags in Gradio with styled borders"""
if not text:
return text
# More sophisticated formatting for thinking and ser blocks
formatted_text = text
# Handle thinking blocks with blue styling
thinking_pattern = r'<think>(.*?)</think>'
def replace_thinking_block(match):
thinking_content = match.group(1).strip()
return f'''
<div style="border-left: 4px solid #4a90e2; background: linear-gradient(135deg, #f0f8ff 0%, #e6f3ff 100%); padding: 16px 20px; margin: 16px 0; border-radius: 12px; font-family: 'Segoe UI', sans-serif; box-shadow: 0 2px 8px rgba(74, 144, 226, 0.15); border: 1px solid rgba(74, 144, 226, 0.2);">
<div style="color: #4a90e2; font-weight: 600; margin-bottom: 10px; display: flex; align-items: center; font-size: 14px;">
<span style="margin-right: 8px;">๐ง </span> Think
</div>
<div style="color: #2c3e50; line-height: 1.6; font-size: 14px;">
{thinking_content}
</div>
</div>
'''
# Handle ser blocks with green styling
ser_pattern = r'<ser>(.*?)</ser>'
def replace_ser_block(match):
ser_content = match.group(1).strip()
return f'''
<div style="border-left: 4px solid #28a745; background: linear-gradient(135deg, #f0fff4 0%, #e6ffed 100%); padding: 16px 20px; margin: 16px 0; border-radius: 12px; font-family: 'Segoe UI', sans-serif; box-shadow: 0 2px 8px rgba(40, 167, 69, 0.15); border: 1px solid rgba(40, 167, 69, 0.2);">
<div style="color: #28a745; font-weight: 600; margin-bottom: 10px; display: flex; align-items: center; font-size: 14px;">
<span style="margin-right: 8px;">๐</span> Ser
</div>
<div style="color: #155724; line-height: 1.6; font-size: 14px;">
{ser_content}
</div>
</div>
'''
# Apply both patterns
formatted_text = re.sub(thinking_pattern, replace_thinking_block, formatted_text, flags=re.DOTALL)
formatted_text = re.sub(ser_pattern, replace_ser_block, formatted_text, flags=re.DOTALL)
# Clean up any remaining raw tags
formatted_text = re.sub(r'</?(?:think|ser)>', '', formatted_text)
return formatted_text.strip()
@spaces.GPU()
def generate_response(message, history, max_tokens, temperature, top_p):
"""Generate streaming response without threading"""
global model, tokenizer
if model is None or tokenizer is None:
yield "Model is still loading. Please wait..."
return
# Prepare conversation history
messages = []
# Handle both old tuple format and new message format
for item in history:
if isinstance(item, dict):
# New message format
messages.append(item)
elif isinstance(item, (list, tuple)) and len(item) == 2:
# Old tuple format
user_msg, assistant_msg = item
messages.append({"role": "user", "content": user_msg})
if assistant_msg:
messages.append({"role": "assistant", "content": assistant_msg})
# Add current message
messages.append({"role": "user", "content": message})
# Apply chat template
text = tokenizer.apply_chat_template(
messages,
tokenize=False,
add_generation_prompt=True
)
# Tokenize input
model_inputs = tokenizer([text], return_tensors="pt").to(model.device)
try:
with torch.no_grad():
# Use transformers streaming with custom approach
generated_text = ""
current_input_ids = model_inputs["input_ids"]
current_attention_mask = model_inputs["attention_mask"]
for _ in range(max_tokens):
# Generate next token
outputs = model(
input_ids=current_input_ids,
attention_mask=current_attention_mask,
use_cache=True
)
# Get logits for the last token
logits = outputs.logits[0, -1, :]
# Apply temperature
if temperature != 1.0:
logits = logits / temperature
# Apply top-p sampling
if top_p < 1.0:
sorted_logits, sorted_indices = torch.sort(logits, descending=True)
cumulative_probs = torch.cumsum(torch.softmax(sorted_logits, dim=-1), dim=-1)
sorted_indices_to_remove = cumulative_probs > top_p
sorted_indices_to_remove[1:] = sorted_indices_to_remove[:-1].clone()
sorted_indices_to_remove[0] = 0
indices_to_remove = sorted_indices[sorted_indices_to_remove]
logits[indices_to_remove] = float('-inf')
# Sample next token
probs = torch.softmax(logits, dim=-1)
next_token = torch.multinomial(probs, num_samples=1)
# Check for EOS token
if next_token.item() == tokenizer.eos_token_id:
break
# Decode the new token (preserve special tokens like <think>)
new_token_text = tokenizer.decode(next_token, skip_special_tokens=False)
generated_text += new_token_text
# Format and yield the current text
formatted_text = format_thinking_text(generated_text)
yield formatted_text
# Update inputs for next iteration
current_input_ids = torch.cat([current_input_ids, next_token.unsqueeze(0)], dim=-1)
current_attention_mask = torch.cat([current_attention_mask, torch.ones((1, 1), device=model.device)], dim=-1)
except Exception as e:
yield f"Error generating response: {str(e)}"
return
# Final yield with complete formatted text
final_text = format_thinking_text(generated_text) if generated_text else "No response generated."
yield final_text
def chat_interface(message, history, max_tokens, temperature, top_p):
"""Main chat interface with improved streaming"""
if not message.strip():
return history, ""
# Add user message to history in the new message format
history.append({"role": "user", "content": message})
# Add placeholder for assistant response
history.append({"role": "assistant", "content": ""})
# Generate response with streaming
for partial_response in generate_response(message, history[:-2], max_tokens, temperature, top_p):
history[-1]["content"] = partial_response
yield history, ""
return history, ""
# Load model on startup
print("Initializing model...")
load_model()
# Advanced CSS for professional UI design
custom_css = """
/* Import Google Fonts */
@import url('https://fonts.googleapis.com/css2?family=Inter:wght@300;400;500;600;700&family=JetBrains+Mono:wght@400;500&display=swap');
/* Global styling */
* {
font-family: 'Inter', -apple-system, BlinkMacSystemFont, 'Segoe UI', sans-serif;
}
/* Main container */
.gradio-container {
background: linear-gradient(135deg, #667eea 0%, #764ba2 100%);
min-height: 100vh;
}
/* Header styling */
.header-container {
background: rgba(255, 255, 255, 0.95);
backdrop-filter: blur(20px);
border-radius: 20px;
padding: 24px;
margin-bottom: 24px;
box-shadow: 0 8px 32px rgba(0, 0, 0, 0.1);
border: 1px solid rgba(255, 255, 255, 0.2);
}
/* Main chat container */
.chat-container {
background: rgba(255, 255, 255, 0.95);
backdrop-filter: blur(20px);
border-radius: 20px;
padding: 24px;
box-shadow: 0 8px 32px rgba(0, 0, 0, 0.1);
border: 1px solid rgba(255, 255, 255, 0.2);
}
/* Chatbot styling */
.chatbot {
font-size: 15px;
font-family: 'Inter', sans-serif;
background: transparent;
border: none;
border-radius: 16px;
overflow: hidden;
}
.chatbot .message {
margin: 12px 0;
padding: 0;
background: transparent;
}
.chatbot .message.user {
background: linear-gradient(135deg, #667eea 0%, #764ba2 100%);
color: white;
border-radius: 18px 18px 4px 18px;
padding: 16px 20px;
margin-left: 20%;
box-shadow: 0 4px 16px rgba(102, 126, 234, 0.3);
}
.chatbot .message.bot {
background: linear-gradient(135deg, #f8f9fa 0%, #ffffff 100%);
color: #2c3e50;
border-radius: 18px 18px 18px 4px;
padding: 16px 20px;
margin-right: 20%;
box-shadow: 0 4px 16px rgba(0, 0, 0, 0.05);
border: 1px solid rgba(0, 0, 0, 0.05);
}
/* Input styling */
.input-container {
background: rgba(255, 255, 255, 0.9);
border-radius: 25px;
padding: 8px;
box-shadow: 0 4px 20px rgba(0, 0, 0, 0.1);
border: 2px solid transparent;
transition: all 0.3s ease;
}
.input-container:focus-within {
border-color: #667eea;
box-shadow: 0 4px 20px rgba(102, 126, 234, 0.2);
}
.gradio-textbox {
border: none !important;
background: transparent !important;
font-size: 15px;
padding: 12px 20px;
border-radius: 20px;
font-family: 'Inter', sans-serif;
}
.gradio-textbox:focus {
outline: none !important;
box-shadow: none !important;
}
/* Button styling */
.gradio-button {
border-radius: 20px !important;
font-weight: 600 !important;
font-family: 'Inter', sans-serif !important;
transition: all 0.3s ease !important;
border: none !important;
font-size: 14px !important;
padding: 12px 24px !important;
}
.gradio-button.primary {
background: linear-gradient(135deg, #667eea 0%, #764ba2 100%) !important;
color: white !important;
box-shadow: 0 4px 16px rgba(102, 126, 234, 0.3) !important;
}
.gradio-button.primary:hover {
transform: translateY(-2px) !important;
box-shadow: 0 6px 20px rgba(102, 126, 234, 0.4) !important;
}
.gradio-button.secondary {
background: linear-gradient(135deg, #f8f9fa 0%, #e9ecef 100%) !important;
color: #495057 !important;
box-shadow: 0 2px 8px rgba(0, 0, 0, 0.1) !important;
}
.gradio-button.secondary:hover {
transform: translateY(-1px) !important;
box-shadow: 0 4px 12px rgba(0, 0, 0, 0.15) !important;
}
/* Parameter panel styling */
.parameter-panel {
background: rgba(255, 255, 255, 0.9);
backdrop-filter: blur(20px);
border-radius: 20px;
padding: 24px;
box-shadow: 0 8px 32px rgba(0, 0, 0, 0.1);
border: 1px solid rgba(255, 255, 255, 0.2);
}
/* Slider styling */
.gradio-slider {
margin: 16px 0 !important;
}
.gradio-slider .wrap {
background: linear-gradient(135deg, #f8f9fa 0%, #ffffff 100%);
border-radius: 12px;
padding: 16px;
border: 1px solid rgba(0, 0, 0, 0.05);
}
/* Examples styling */
.gradio-examples {
margin-top: 20px;
}
.gradio-examples .gradio-button {
background: rgba(255, 255, 255, 0.8) !important;
border: 1px solid rgba(102, 126, 234, 0.2) !important;
color: #667eea !important;
font-size: 13px !important;
padding: 10px 16px !important;
margin: 4px !important;
border-radius: 15px !important;
transition: all 0.2s ease !important;
}
.gradio-examples .gradio-button:hover {
background: linear-gradient(135deg, #667eea 0%, #764ba2 100%) !important;
color: white !important;
transform: translateY(-1px) !important;
box-shadow: 0 4px 12px rgba(102, 126, 234, 0.3) !important;
}
/* Footer styling */
.footer-container {
background: rgba(255, 255, 255, 0.9);
backdrop-filter: blur(20px);
border-radius: 20px;
padding: 20px;
margin-top: 24px;
box-shadow: 0 8px 32px rgba(0, 0, 0, 0.1);
border: 1px solid rgba(255, 255, 255, 0.2);
text-align: center;
}
/* Animations */
@keyframes fadeInUp {
from {
opacity: 0;
transform: translateY(30px);
}
to {
opacity: 1;
transform: translateY(0);
}
}
@keyframes pulse {
0%, 100% {
opacity: 1;
}
50% {
opacity: 0.5;
}
}
@keyframes slideIn {
from {
opacity: 0;
transform: translateX(-20px);
}
to {
opacity: 1;
transform: translateX(0);
}
}
.animate-fade-in {
animation: fadeInUp 0.6s ease-out;
}
.animate-slide-in {
animation: slideIn 0.4s ease-out;
}
/* Loading states */
.loading {
position: relative;
overflow: hidden;
}
.loading::after {
content: '';
position: absolute;
top: 0;
left: -100%;
width: 100%;
height: 100%;
background: linear-gradient(90deg, transparent, rgba(255,255,255,0.4), transparent);
animation: shimmer 1.5s infinite;
}
@keyframes shimmer {
0% { left: -100%; }
100% { left: 100%; }
}
/* Responsive design */
@media (max-width: 768px) {
.chat-container, .parameter-panel, .header-container {
margin: 12px;
padding: 16px;
border-radius: 16px;
}
.chatbot .message.user {
margin-left: 10%;
}
.chatbot .message.bot {
margin-right: 10%;
}
}
/* Dark mode support */
@media (prefers-color-scheme: dark) {
.gradio-container {
background: linear-gradient(135deg, #2d3748 0%, #4a5568 100%);
}
.chat-container, .parameter-panel, .header-container, .footer-container {
background: rgba(45, 55, 72, 0.95);
color: #e2e8f0;
}
.chatbot .message.bot {
background: linear-gradient(135deg, #4a5568 0%, #2d3748 100%);
color: #e2e8f0;
}
}
"""
# Create advanced Gradio interface with professional design
with gr.Blocks(
title="๏ฟฝ Dhanishtha-2.0-preview | Advanced Reasoning AI",
theme=gr.themes.Soft(),
css=custom_css,
head="""
<meta name="viewport" content="width=device-width, initial-scale=1.0">
<meta name="description" content="Chat with Dhanishtha-2.0-preview - The world's first LLM with multi-step reasoning capabilities">
"""
) as demo:
# Header Section
with gr.Row():
with gr.Column():
gr.HTML("""
<div style="text-align: center; padding: 20px 0;">
<h1 style="font-size: 3em; font-weight: 700; background: linear-gradient(135deg, #667eea 0%, #764ba2 100%); -webkit-background-clip: text; -webkit-text-fill-color: transparent; margin: 0; font-family: 'Inter', sans-serif;">
๐ง Dhanishtha-2.0-preview
</h1>
<p style="font-size: 1.2em; color: #6c757d; margin: 10px 0 0 0; font-weight: 400;">
Advanced Reasoning AI with Multi-Step Thinking
</p>
</div>
""")
# Feature highlights
with gr.Row():
with gr.Column(scale=1):
gr.HTML("""
<div style="text-align: center; padding: 15px; background: linear-gradient(135deg, #f0f8ff 0%, #e6f3ff 100%); border-radius: 15px; border-left: 4px solid #4a90e2;">
<div style="font-size: 2em; margin-bottom: 8px;">๐ง </div>
<div style="font-weight: 600; color: #4a90e2;">Think Blocks</div>
<div style="font-size: 0.9em; color: #6c757d;">Internal reasoning process</div>
</div>
""")
with gr.Column(scale=1):
gr.HTML("""
<div style="text-align: center; padding: 15px; background: linear-gradient(135deg, #f0fff4 0%, #e6ffed 100%); border-radius: 15px; border-left: 4px solid #28a745;">
<div style="font-size: 2em; margin-bottom: 8px;">๐</div>
<div style="font-weight: 600; color: #28a745;">Ser Blocks</div>
<div style="font-size: 0.9em; color: #6c757d;">Emotional understanding</div>
</div>
""")
with gr.Column(scale=1):
gr.HTML("""
<div style="text-align: center; padding: 15px; background: linear-gradient(135deg, #fff5f5 0%, #fed7d7 100%); border-radius: 15px; border-left: 4px solid #e53e3e;">
<div style="font-size: 2em; margin-bottom: 8px;">โก</div>
<div style="font-weight: 600; color: #e53e3e;">Real-time</div>
<div style="font-size: 0.9em; color: #6c757d;">Streaming responses</div>
</div>
""")
with gr.Column(scale=1):
gr.HTML("""
<div style="text-align: center; padding: 15px; background: linear-gradient(135deg, #fefcbf 0%, #fef08a 100%); border-radius: 15px; border-left: 4px solid #f59e0b;">
<div style="font-size: 2em; margin-bottom: 8px;">๐ฏ</div>
<div style="font-weight: 600; color: #f59e0b;">Precise</div>
<div style="font-size: 0.9em; color: #6c757d;">Step-by-step solutions</div>
</div>
""")
# Main Chat Interface
with gr.Row():
with gr.Column(scale=4):
# Status indicator
gr.HTML("""
<div style="display: flex; align-items: center; justify-content: space-between; margin-bottom: 16px; padding: 12px 20px; background: linear-gradient(135deg, #e8f5e8 0%, #f0fff4 100%); border-radius: 12px; border-left: 4px solid #28a745;">
<div style="display: flex; align-items: center;">
<div style="width: 8px; height: 8px; background: #28a745; border-radius: 50%; margin-right: 8px; animation: pulse 2s infinite;"></div>
<span style="font-weight: 600; color: #28a745;">Model Ready</span>
</div>
<div style="font-size: 0.9em; color: #6c757d;">
HelpingAI/Dhanishtha-2.0-preview
</div>
</div>
""")
chatbot = gr.Chatbot(
[],
elem_id="chatbot",
type='messages',
height=650,
show_copy_button=True,
show_share_button=True,
avatar_images=("๐ค", "๐ค"),
render_markdown=True,
sanitize_html=False, # Allow HTML for thinking and ser blocks
latex_delimiters=[
{"left": "$$", "right": "$$", "display": True},
{"left": "$", "right": "$", "display": False}
],
container=True,
scale=1
)
# Enhanced input section
with gr.Row():
with gr.Column(scale=1):
msg = gr.Textbox(
container=False,
placeholder="๐ญ Ask me anything! I'll show you my thinking and reasoning process...",
label="",
autofocus=True,
lines=1,
max_lines=4
)
with gr.Column(scale=0, min_width=120):
with gr.Row():
send_btn = gr.Button(
"๐ Send",
variant="primary",
size="lg"
)
clear_btn = gr.Button(
"๐๏ธ",
variant="secondary",
size="lg"
)
with gr.Column(scale=1, min_width=320):
# Parameter header
gr.HTML("""
<div style="text-align: center; margin-bottom: 20px;">
<h3 style="margin: 0; color: #4a5568; font-weight: 600;">โ๏ธ Generation Settings</h3>
<p style="margin: 5px 0 0 0; color: #6c757d; font-size: 0.9em;">Fine-tune the AI's responses</p>
</div>
""")
# Enhanced sliders with better styling
max_tokens = gr.Slider(
minimum=50,
maximum=8192,
value=2048,
step=50,
label="๐ฏ Max Tokens",
info="Maximum number of tokens to generate"
)
temperature = gr.Slider(
minimum=0.1,
maximum=2.0,
value=0.7,
step=0.1,
label="๐ก๏ธ Temperature",
info="Higher = more creative, Lower = more focused"
)
top_p = gr.Slider(
minimum=0.1,
maximum=1.0,
value=0.9,
step=0.05,
label="๐ฒ Top-p",
info="Nucleus sampling threshold"
)
# Action buttons
with gr.Row():
stop_btn = gr.Button(
"โน๏ธ Stop",
variant="stop",
scale=1
)
# Model information card
gr.HTML("""
<div style="margin-top: 24px; padding: 20px; background: linear-gradient(135deg, #f8f9fa 0%, #ffffff 100%); border-radius: 16px; border: 1px solid rgba(0,0,0,0.05);">
<h4 style="margin: 0 0 12px 0; color: #4a5568; font-weight: 600; display: flex; align-items: center;">
<span style="margin-right: 8px;">๐ง </span> Model Information
</h4>
<div style="space-y: 8px;">
<div style="display: flex; justify-content: space-between; margin-bottom: 8px;">
<span style="color: #6c757d; font-size: 0.9em;">Model:</span>
<span style="color: #4a5568; font-weight: 500; font-size: 0.9em;">Dhanishtha-2.0-preview</span>
</div>
<div style="display: flex; justify-content: space-between; margin-bottom: 8px;">
<span style="color: #6c757d; font-size: 0.9em;">Type:</span>
<span style="color: #4a5568; font-weight: 500; font-size: 0.9em;">Reasoning LLM</span>
</div>
<div style="display: flex; justify-content: space-between; margin-bottom: 8px;">
<span style="color: #6c757d; font-size: 0.9em;">Features:</span>
<span style="color: #4a5568; font-weight: 500; font-size: 0.9em;">Think + Ser blocks</span>
</div>
<div style="margin-top: 12px; padding: 8px; background: rgba(74, 144, 226, 0.1); border-radius: 8px; border-left: 3px solid #4a90e2;">
<div style="font-size: 0.85em; color: #4a90e2; font-weight: 500;">๐ก Tip</div>
<div style="font-size: 0.8em; color: #6c757d; margin-top: 4px;">Ask complex questions to see multi-step reasoning in action!</div>
</div>
</div>
</div>
""")
# Enhanced Examples Section
with gr.Row():
with gr.Column():
gr.HTML("""
<div style="text-align: center; margin: 24px 0 16px 0;">
<h3 style="margin: 0; color: #4a5568; font-weight: 600;">๐ก Try These Examples</h3>
<p style="margin: 5px 0 0 0; color: #6c757d; font-size: 0.9em;">Click any example to see the AI's thinking process</p>
</div>
""")
gr.Examples(
examples=[
["๐งฎ Solve this step by step: What is 15% of 240?"],
["๐ค How many letter 'r' are in the words 'strawberry' and 'raspberry'?"],
["๐ค Hello! Can you introduce yourself and show me how you think?"],
["โ๏ธ Explain quantum entanglement in simple terms with examples"],
["๐ Write a Python function to find the factorial of a number"],
["๐ฑ What are the pros and cons of renewable energy sources?"],
["๐ง What's the difference between AI and machine learning?"],
["๐จ Create a haiku about artificial intelligence and consciousness"],
["๐ Why is the sky blue? Explain using physics principles"],
["๐ Compare bubble sort and quick sort algorithms"],
["๐ฏ Plan a 7-day trip to Japan with budget considerations"],
["๐ฌ How does CRISPR gene editing work in simple terms?"]
],
inputs=msg,
examples_per_page=6
)
# Event handlers
def clear_chat():
"""Clear the chat history"""
return [], ""
# Message submission events
msg.submit(
chat_interface,
inputs=[msg, chatbot, max_tokens, temperature, top_p],
outputs=[chatbot, msg],
concurrency_limit=1,
show_progress="minimal"
)
send_btn.click(
chat_interface,
inputs=[msg, chatbot, max_tokens, temperature, top_p],
outputs=[chatbot, msg],
concurrency_limit=1,
show_progress="minimal"
)
# Clear chat event
clear_btn.click(
clear_chat,
outputs=[chatbot, msg],
show_progress=False
)
# Enhanced Footer
with gr.Row():
with gr.Column():
gr.HTML("""
<div style="text-align: center; padding: 20px 0;">
<div style="display: flex; justify-content: center; align-items: center; margin-bottom: 16px;">
<div style="height: 1px; background: linear-gradient(90deg, transparent, #667eea, transparent); flex: 1;"></div>
<span style="margin: 0 20px; color: #6c757d; font-weight: 500;">Technical Specifications</span>
<div style="height: 1px; background: linear-gradient(90deg, transparent, #667eea, transparent); flex: 1;"></div>
</div>
<div style="display: grid; grid-template-columns: repeat(auto-fit, minmax(200px, 1fr)); gap: 20px; margin-bottom: 20px;">
<div style="text-align: center;">
<div style="font-size: 1.5em; margin-bottom: 8px;">๐ง </div>
<div style="font-weight: 600; color: #4a5568;">Model Architecture</div>
<div style="font-size: 0.9em; color: #6c757d;">Transformer-based reasoning</div>
</div>
<div style="text-align: center;">
<div style="font-size: 1.5em; margin-bottom: 8px;">โก</div>
<div style="font-weight: 600; color: #4a5568;">Real-time Streaming</div>
<div style="font-size: 0.9em; color: #6c757d;">Token-by-token generation</div>
</div>
<div style="text-align: center;">
<div style="font-size: 1.5em; margin-bottom: 8px;">๐ฏ</div>
<div style="font-weight: 600; color: #4a5568;">Advanced Reasoning</div>
<div style="font-size: 0.9em; color: #6c757d;">Multi-step thinking process</div>
</div>
<div style="text-align: center;">
<div style="font-size: 1.5em; margin-bottom: 8px;">๐ง</div>
<div style="font-weight: 600; color: #4a5568;">Custom Sampling</div>
<div style="font-size: 0.9em; color: #6c757d;">Temperature & Top-p control</div>
</div>
</div>
<div style="background: linear-gradient(135deg, #f8f9fa 0%, #ffffff 100%); border-radius: 12px; padding: 16px; margin: 16px 0; border: 1px solid rgba(0,0,0,0.05);">
<div style="font-weight: 600; color: #4a5568; margin-bottom: 8px;">๐ Key Features</div>
<div style="display: flex; flex-wrap: wrap; gap: 8px; justify-content: center;">
<span style="background: #e3f2fd; color: #1976d2; padding: 4px 12px; border-radius: 20px; font-size: 0.85em;">Think Blocks</span>
<span style="background: #e8f5e8; color: #2e7d32; padding: 4px 12px; border-radius: 20px; font-size: 0.85em;">Ser Blocks</span>
<span style="background: #fff3e0; color: #f57c00; padding: 4px 12px; border-radius: 20px; font-size: 0.85em;">Real-time Streaming</span>
<span style="background: #fce4ec; color: #c2185b; padding: 4px 12px; border-radius: 20px; font-size: 0.85em;">LaTeX Support</span>
<span style="background: #f3e5f5; color: #7b1fa2; padding: 4px 12px; border-radius: 20px; font-size: 0.85em;">Code Highlighting</span>
</div>
</div>
<div style="margin-top: 20px; padding-top: 16px; border-top: 1px solid rgba(0,0,0,0.1);">
<div style="color: #6c757d; font-size: 0.9em;">
Built with โค๏ธ using <strong>Gradio</strong> and <strong>Transformers</strong> |
Model: <strong>HelpingAI/Dhanishtha-2.0-preview</strong>
</div>
<div style="color: #6c757d; font-size: 0.8em; margin-top: 4px;">
Experience the future of AI reasoning with transparent thinking processes
</div>
</div>
</div>
""")
if __name__ == "__main__":
# Launch with enhanced configuration
demo.queue(
max_size=20,
default_concurrency_limit=1
).launch(
server_name="0.0.0.0",
server_port=7860,
share=False,
show_error=True,
quiet=False
) |