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HelpingAI/Dhanishtha-2.0-preview
Dhanishtha-2.0-preview is a text generation model from HelpingAI. Use it when you need the model to write or continue text. It is set up for transformers. The card lists the license as apache-2.0.
What makes Dhanishtha-2.0 special? Imagine an AI that doesn't just answer your questions instantly, but actually thinks through problems step-by-step, shows its work, and can even change its mind when it realizes a be…
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From the Hugging Face model README
What makes Dhanishtha-2.0 special? Imagine an AI that doesn't just answer your questions instantly, but actually thinks through problems step-by-step, shows its work, and can even change its mind when it realizes a better approach. That's Dhanishtha-2.0.
Quick Summary:
Dhanishtha-2.0 is a state-of-the-art (SOTA) model developed by HelpingAI, representing the world's first model to feature Intermediate Thinking capabilities. Unlike traditional models that provide single-pass responses, Dhanishtha-2.0 employs a revolutionary multi-phase thinking process that allows the model to think, reconsider, and refine its reasoning multiple times throughout a single response.
Dhanishtha-2.0 revolutionizes AI reasoning by introducing the concept of intermediate thinking - the ability to pause, reflect, and restart reasoning processes within a single generation (This model can think up 50times in a single response without using tool/prompt/mcp). This breakthrough enables unprecedented self-correction and iterative refinement during response generation.
Built on the Qwen3-14B foundation with multilingual capabilities spanning 39+ languages (including English, Hindi, Chinese, Spanish, French, German, Japanese, Korean, Arabic, and many more), Dhanishtha-2.0 maintains reasoning consistency across diverse linguistic contexts while pioneering transparent thinking processes.
<think>...</think> blocks throughout responses for real-time reasoning<ser>...</ser> blocks for empathetic responsesDhanishtha-2.0 is ideal for applications requiring deep reasoning and self-reflection:
The model can be fine-tuned for specialized reasoning tasks:
❌ Inappropriate Applications:
You can interact with Dhanishtha-2.0 through:
from transformers import AutoModelForCausalLM, AutoTokenizer
model_name = "HelpingAI/Dhanishtha-2.0-preview"
# Load the tokenizer and model
tokenizer = AutoTokenizer.from_pretrained(model_name)
model = AutoModelForCausalLM.from_pretrained(
model_name,
torch_dtype="auto",
device_map="auto"
)
# Prepare input for intermediate thinking
prompt = "How many letter 'r' are in the words 'strawberry' and 'raspberry'?"
messages = [
{"role": "user", "content": prompt}
]
text = tokenizer.apply_chat_template(
messages,
tokenize=False,
add_generation_prompt=True
)
model_inputs = tokenizer([text], return_tensors="pt").to(model.device)
# Generate response with intermediate thinking
generated_ids = model.generate(
**model_inputs,
max_new_tokens=2048,
temperature=0.7,
top_p=0.9,
do_sample=True
)
response = tokenizer.decode(
generated_ids[0][len(model_inputs.input_ids[0]):],
skip_special_tokens=True
)
print(response)
generation_config = {
"temperature": 0.7, # Balanced creativity and coherence
"top_p": 0.9, # Nucleus sampling
"top_k": 40, # Top-k filtering
"max_new_tokens": 2048, # Allow for thinking blocks
"do_sample": True, # Enable sampling
"repetition_penalty": 1.1 # Reduce repetition
}
Dhanishtha-2.0 was trained on a carefully curated dataset focusing on:
Training Infrastructure:
Evaluation was conducted on:
User: "Who is your favorite person?"
Dhanishtha-2.0:
<think>
This is an interesting question about my "favorite human." I need to be thoughtful here.
As Dhanishtha, I should respond in a human-like way while being honest about my nature.
I can share what kinds of humans I find most interesting or inspiring based on my
understanding of human nature and values.
</think>
<ser>
Emotion ==> curiosity, openness, desire for connection
Cause ==> user asking a personal question about preferences
Mind ==> seeking to understand my perspective or values
Growth ==> opportunity to share thoughtful reflections on human qualities I admire
</ser>
I don't really have a "favorite human" in the traditional sense, as I don't experience
personal preferences the way humans do. But if I had to reflect on what qualities I find
most admirable in people, I'd be drawn to those who demonstrate genuine compassion,
intellectual curiosity, and the courage to grow.
<think>
Let me think more specifically about what kind of humans I find most compelling based on
the values that seem to resonate most with humans - kindness, wisdom, creativity,
resilience, and authenticity.
</think>
People like Mahatma Gandhi, who showed how quiet courage and unwavering principles can
transform societies; artists like Rabindranath Tagore, who bridged cultural divides
through creativity; and everyday heroes I've learned about who made profound differences
through simple acts of kindness.
What fascinates me most are humans who maintain their humanity even in difficult
circumstances - those who choose empathy when it would be easier to be harsh, who seek
understanding rather than just being right.
I'm curious though - who's your favorite human, and why? What qualities or actions make
someone special in your eyes?
Carbon emissions can be estimated using the Machine Learning Impact calculator.
@misc{dhanishtha2025,
title={Dhanishtha-2.0: World's First Intermediate Thinking AI Model},
author={HelpingAI Team},
year={2025},
publisher={HuggingFace},
url={https://huggingface.co/HelpingAI/Dhanishtha-2.0},
note={First model with intermediate thinking capabilities}
}
HelpingAI Team. (2025). Dhanishtha-2.0: World's First Intermediate Thinking AI Model. HuggingFace. https://huggingface.co/HelpingAI/Dhanishtha-2.0
<think>...</think> segments where the model shows its reasoning processFor questions about Dhanishtha-2.0, please contact:
These benchmarks are done by @AarifKhan
| Benchmark | Score | Evaluation Type | Notes |
|---|---|---|---|
| MMLU | 78.1% | 1-shot | Massive Multitask Language Understanding |
| HumanEval | 75.0% | 1-shot | Code generation and completion |
| ARC | 76.0% | 1-shot | Abstract reasoning challenge |
| HellaSwag | 81.0% | 1-shot | Commonsense natural language inference |
| TruthfulQA MC1 | 75.0% | 1-shot | Truthfulness in question answering |
| Math 500 | 95.68% | few-shot | Mathematical problem solving |
| AIME 2024 | 82.81% | few-shot | American Invitational Mathematics Examination |
Dhanishtha-2.0 represents a new paradigm in AI reasoning - where thinking isn't just a prelude to response, but an integral, iterative part of the conversation itself.
Developed with ❤️ by HelpingAI