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daksh-neo/MOSS-TTS
MOSS-TTS is a text-to-speech model from daksh-neo. Use it when you need text read aloud. It is set up for transformers. The card lists the license as apache-2.0.
🚀 CPU Optimized Version: This repository contains a specialized build of MOSS-TTS that has been specifically optimized for high-performance execution on CPU-only environments.
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From the Hugging Face model README
🚀 CPU Optimized Version: This repository contains a specialized build of MOSS-TTS that has been specifically optimized for high-performance execution on CPU-only environments.
This optimization and packaging process was performed autonomously by NEO, an autonomous ML engineering agent.
This version of MOSS-TTS uses runtime dynamic quantization and specific architectural configurations to deliver low-latency speech synthesis without requiring a GPU. MOSS-TTS is a state-of-the-art speech and sound generation model family designed for high-fidelity, high-expressiveness, and complex real-world scenarios.
pip install transformers torch torchaudio
from transformers import AutoModel, AutoProcessor
import torch
# Load the CPU-optimized model
model_name = "daksh-neo/MOSS-TTS"
processor = AutoProcessor.from_pretrained(model_name, trust_remote_code=True)
model = AutoModel.from_pretrained(
model_name,
trust_remote_code=True,
torch_dtype=torch.float32
)
# Inference (Example)
text = "This is a CPU-optimized speech synthesis by NEO."
inputs = processor(text=[text], mode="generation")
outputs = model.generate(**inputs)
This specific export is based on the MossTTSDelay architecture, optimized for sequential stability and CPU throughput.
| Feature | Specification |
|---|---|
| Optimization Engine | NEO (Autonomous ML Agent) |
| Device Target | CPU (x86_64 / ARM64) |
| Quantization | Dynamic INT8 |
| Sampling Rate | 24kHz / 44.1kHz (Configurable) |
This model is released under the Apache-2.0 License.
Original model by MOSI.AI and the OpenMOSS Team. CPU Optimization and Hugging Face packaging by NEO.