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library_name: transformers
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pipeline_tag: text-to-speech
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---
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<!-- Provide a longer summary of what this model is. -->
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- **Finetuned from model [optional]:** [More Information Needed]
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- **Demo [optional]:** [More Information Needed]
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<!-- This section addresses misuse, malicious use, and uses that the model will not work well for. -->
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[More Information Needed]
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##
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###
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[More Information Needed]
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## Training Details
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<!-- This should link to a Dataset Card, perhaps with a short stub of information on what the training data is all about as well as documentation related to data pre-processing or additional filtering. -->
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[More Information Needed]
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<!-- This relates heavily to the Technical Specifications. Content here should link to that section when it is relevant to the training procedure. -->
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#### Preprocessing [optional]
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[More Information Needed]
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#### Training Hyperparameters
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- **Training regime:** [More Information Needed] <!--fp32, fp16 mixed precision, bf16 mixed precision, bf16 non-mixed precision, fp16 non-mixed precision, fp8 mixed precision -->
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#### Speeds, Sizes, Times [optional]
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<!-- This section provides information about throughput, start/end time, checkpoint size if relevant, etc. -->
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[More Information Needed]
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## Evaluation
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<!-- This section describes the evaluation protocols and provides the results. -->
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### Testing Data, Factors & Metrics
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#### Testing Data
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#### Factors
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<!-- These are the things the evaluation is disaggregating by, e.g., subpopulations or domains. -->
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[More Information Needed]
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#### Metrics
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<!-- These are the evaluation metrics being used, ideally with a description of why. -->
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[More Information Needed]
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### Results
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#### Summary
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## Model Examination [optional]
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<!-- Relevant interpretability work for the model goes here -->
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[More Information Needed]
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## Environmental Impact
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<!-- Total emissions (in grams of CO2eq) and additional considerations, such as electricity usage, go here. Edit the suggested text below accordingly -->
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Carbon emissions can be estimated using the [Machine Learning Impact calculator](https://mlco2.github.io/impact#compute) presented in [Lacoste et al. (2019)](https://arxiv.org/abs/1910.09700).
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- **Hardware Type:** [More Information Needed]
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- **Hours used:** [More Information Needed]
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- **Cloud Provider:** [More Information Needed]
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- **Compute Region:** [More Information Needed]
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- **Carbon Emitted:** [More Information Needed]
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## Technical Specifications [optional]
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### Model Architecture and Objective
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[More Information Needed]
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### Compute Infrastructure
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#### Hardware
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#### Software
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## Citation [optional]
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<!-- If there is a paper or blog post introducing the model, the APA and Bibtex information for that should go in this section. -->
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**BibTeX:**
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**APA:**
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## Glossary [optional]
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<!-- If relevant, include terms and calculations in this section that can help readers understand the model or model card. -->
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## More Information [optional]
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## Model Card Authors [optional]
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## Model Card Contact
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---
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language:
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- ar
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library_name: transformers
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pipeline_tag: text-to-speech
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---
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<!-- Provide a longer summary of what this model is. -->
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An advanced text-to-speech (TTS) system specifically designed for the Saudi dialect, built on the VITS architecture and utilizing the pre-trained weights from Facebook's vits ara model. The model is capable of:
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Generating natural and realistic speech: Producing high-quality Saudi dialect speech that closely mimics human voices, preserving intonation and linguistic nuances.
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Understanding colloquial text: Processing text written in the Saudi dialect, including idiomatic expressions and local vocabulary.
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Controlling voice characteristics: Adjusting various aspects of the generated speech, such as pitch and speaking rate.
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Providing ease of use: Offering a simple and user-friendly interface for converting text to speech with high quality.
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Model Details
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VITS (Variational Inference with adversarial learning for end-to-end Text-to-Speech) is an end-to-end speech synthesis model that predicts a speech waveform conditional on an input text sequence. It is a conditional variational autoencoder (VAE) comprised of a posterior encoder, decoder, and conditional prior.
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A set of spectrogram-based acoustic features are predicted by the flow-based module, which is formed of a Transformer-based text encoder and multiple coupling layers. The spectrogram is decoded using a stack of transposed convolutional layers, much in the same style as the HiFi-GAN vocoder. Motivated by the one-to-many nature of the TTS problem, where the same text input can be spoken in multiple ways, the model also includes a stochastic duration predictor, which allows the model to synthesise speech with different rhythms from the same input text.
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## Usage
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MMS-TTS is available in the ๐ค Transformers library from version 4.33 onwards. To use this checkpoint,
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first install the latest version of the library:
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```
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pip install transformers[torch]
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```
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Then, run inference with the following code-snippet:
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```python
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from transformers import VitsModel, AutoTokenizer
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import torch
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model = VitsModel.from_pretrained("wasmdashai/vits-ar-sa-huba")
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tokenizer = AutoTokenizer.from_pretrained("wasmdashai/vits-ar-sa-huba")
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text = "ุงูุณูุงู
ุนูููู
ูููู ุนุณุงู ุจุฎูุฑ "
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inputs = tokenizer(text, return_tensors="pt")
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with torch.no_grad():
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full_generation =model(**inputs)
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full_generation_waveform = full_generation.waveform.cpu().numpy().reshape(-1)
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from IPython.display import Audio
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Audio(full_generation_waveform, rate=model.config.sampling_rate)
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```
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### Output full_generation_waveform
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## Contact
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You can also email us at modelasg@gmail.com
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## ู
ุฌู
ูุนุฉ ูู
ุงุฐุฌ ุชูููุฏ ุงูููุฌุงุช ุงูุนุฑุจูุฉ
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### ู
ูุฏู
ุฉ
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ูุณุฑูุง ุฃู ูุนูู ุนู ุฅุตุฏุงุฑ ู
ุฌู
ูุนุฉ ู
ู ูู
ุงุฐุฌ ุชูููุฏ ุงูููุฌุงุช ุงูุนุฑุจูุฉ ูุฑูุจูุง. ุชู
ุชุตู
ูู
ูุฐู ุงููู
ุงุฐุฌ ุจุงุณุชุฎุฏุงู
ุชูููุงุช ุงูุฐูุงุก ุงูุงุตุทูุงุนู ุงูู
ุชูุฏู
ุฉ ูุชูุฏูู
ุชุฌุฑุจุฉ ุทุจูุนูุฉ ููุงูุนูุฉ ูู ุชุญููู ุงููุต ุฅูู ููุงู
(Text-to-Speech) ุจู
ุฎุชูู ุงูููุฌุงุช ุงูุนุฑุจูุฉ.
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### ุฌุฏูู ุงููู
ุงุฐุฌ
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| **ุงูููุฌุฉ** | **ุงุณู
ุงููู
ูุฐุฌ** | **ุงููุตู** | **ุชุงุฑูุฎ ุงูุฅุตุฏุงุฑ ุงูู
ุชููุน** | **ู
ุณุชูู ุฌูุฏุฉ ุงูุตูุช** |
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|-------------------|---------------------------------------------------------------------------------|---------------------------------------------------------------------------|----------------------------|----------------------|
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| ุงููุบุฉ ุงูุนุฑุจูุฉ | [vits-ar](https://huggingface.co/wasmdashai/vits-ar) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงููู
ููุฉ ุจุชูุงุตูู ุฏูููุฉ. | ู
ุชููุฑ | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงููู
ููุฉ | [vits-ar-ye](https://huggingface.co/wasmdashai/vits-ar-ye) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงููู
ููุฉ ุจุชูุงุตูู ุฏูููุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงูุณุนูุฏูุฉ | [vits-ar-sa](https://huggingface.co/wasmdashai/vits-ar-sa-huba) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุณุนูุฏูุฉ ุจุฌูุฏุฉ ุนุงููุฉ ูุชูุงุตูู ุฏูููุฉ. | ู
ุชููุฑ | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงูู
ุตุฑูุฉ | [vits-ar-eg](https://huggingface.co/wasmdashai/vits-ar-eg) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูู
ุตุฑูุฉ ุจุฃุณููุจ ุทุจูุนู ูุณูุณ. | ูุฑูุจุงู | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงููุจูุงููุฉ | [vits-ar-lb](https://huggingface.co/wasmdashai/vits-ar-lb) | ูู
ูุฐุฌ ู
ุชุฎุตุต ูู ุงูููุฌุฉ ุงููุจูุงููุฉ ูุชูููุฏ ููุงู
ุจุชูุงุตูู ุฏูููุฉ ููุงูุนูุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงูู
ุบุฑุจูุฉ | [vits-ar-ma](https://huggingface.co/wasmdashai/vits-ar-ma) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูู
ุบุฑุจูุฉ ุจูุฏุฑุฉ ุนูู ููู
ุงูู
ุตุทูุญุงุช ุงูู
ุญููุฉ.| ูุฑูุจุงู | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงูุฅู
ุงุฑุงุชูุฉ | [vits-ar-ae](https://huggingface.co/wasmdashai/vits-ar-ae) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุฅู
ุงุฑุงุชูุฉ ุจูุงูุนูุฉ ูุชูุงุตูู ุฏูููุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงูุฃุฑุฏููุฉ | [vits-ar-jo](https://huggingface.co/wasmdashai/vits-ar-jo) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุฃุฑุฏููุฉ ุจุฅุชูุงู ููุชูุงุตูู ุงูุตูุชูุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
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| ุงูููุฌุฉ ุงูุนุฑุงููุฉ | [vits-ar-iq](https://huggingface.co/wasmdashai/vits-ar-iq) | ูู
ูุฐุฌ ูุชูููุฏ ุงูููุงู
ุจุงูููุฌุฉ ุงูุนุฑุงููุฉ ุจุฏูุฉ ูู ูุทู ุงูููู
ุงุช ูุงูุชุนุงุจูุฑ ุงูุดุงุฆุนุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 86 |
+
| ุงูููุฌุฉ ุงูุณูุฑูุฉ | [vits-ar-sy](https://huggingface.co/wasmdashai/vits-ar-sy) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุณูุฑูุฉ ุจูุถูุญ ูุตูุช ุทุจูุนู. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 87 |
+
| ุงูููุฌุฉ ุงูููุณุทูููุฉ | [vits-ar-ps](https://huggingface.co/wasmdashai/vits-ar-ps) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูููุณุทูููุฉ ุจุชูุงุตูู ุฏูููุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 88 |
+
| ุงูููุฌุฉ ุงูุณูุฏุงููุฉ | [vits-ar-sd](https://huggingface.co/wasmdashai/vits-ar-sd) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุณูุฏุงููุฉ ู
ุน ููู
ุงูู
ูุฑุฏุงุช ุงูู
ุญููุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 89 |
+
| ุงูููุฌุฉ ุงูุฌุฒุงุฆุฑูุฉ | [vits-ar-dz](https://huggingface.co/wasmdashai/vits-ar-dz) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุฌุฒุงุฆุฑูุฉ ุจุฏูุฉ ูุฌูุฏุฉ ุนุงููุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 90 |
+
| ุงูููุฌุฉ ุงูุชููุณูุฉ | [vits-ar-tn](https://huggingface.co/wasmdashai/vits-ar-tn) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุชููุณูุฉ ุจุฅุชูุงู ููุชูุงุตูู ุงูู
ุญููุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 91 |
+
| ุงูููุฌุฉ ุงูููุจูุฉ | [vits-ar-ly](https://huggingface.co/wasmdashai/vits-ar-ly) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูููุจูุฉ ุจุฏูุฉ ููุงูุนูุฉ ูู ุงููุทู. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 92 |
+
| ุงูููุฌุฉ ุงูุจุญุฑูููุฉ | [vits-ar-bh](https://huggingface.co/wasmdashai/vits-ar-bh) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุจุญุฑูููุฉ ุจุฌูุฏุฉ ุตูุช ุนุงููุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 93 |
+
| ุงูููุฌุฉ ุงูุนู
ุงููุฉ | [vits-ar-om](https://huggingface.co/wasmdashai/vits-ar-om) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูุนู
ุงููุฉ ุจุฏูุฉ ููุถูุญ ูู ุงููุทู. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 94 |
+
| ุงูููุฌุฉ ุงููุทุฑูุฉ | [vits-ar-qa](https://huggingface.co/wasmdashai/vits-ar-qa) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงููุทุฑูุฉ ุจุชูุงุตูู ุฏูููุฉ ููุงูุนูุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 95 |
+
| ุงูููุฌุฉ ุงููููุชูุฉ | [vits-ar-kw](https://huggingface.co/wasmdashai/vits-ar-kw) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงููููุชูุฉ ุจุฌูุฏุฉ ุนุงููุฉ ููุถูุญ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 96 |
+
| ุงูููุฌุฉ ุงูู
ูุฑูุชุงููุฉ | [vits-ar-mr](https://huggingface.co/wasmdashai/vits-ar-mr) | ูู
ูุฐุฌ ูุชุญููู ุงููุต ุฅูู ููุงู
ุจุงูููุฌุฉ ุงูู
ูุฑูุชุงููุฉ ุจุชูุงุตูู ุฏูููุฉ ููุงูุนูุฉ. | ูุฑูุจุงู | ู
ุชูุณุท |
|
| 97 |
|
| 98 |
+
### ุงูุชูุงุตูู ุงููููุฉ
|
| 99 |
|
| 100 |
+
ุชุนุชู
ุฏ ุฌู
ูุน ุงููู
ุงุฐุฌ ุนูู ุจููุฉ VITSุ ููู ูู
ูุฐุฌ ุดุงู
ู ูุชุญููู ุงููุต ุฅูู ููุงู
ูุชูุญ ุชูููุฏ ู
ูุฌุงุช ุตูุชูุฉ ูุงูุนูุฉ ุจูุงุกู ุนูู ุงูู
ุฏุฎูุงุช ุงููุตูุฉ. ุชุญุชูู ุงููู
ุงุฐุฌ ุนูู ู
ุญููุงุช ูุชุญููู ุงููุต ูุชูููุฏ ุงูููุงู
ุจูุงุกู ุนูู ุฎุตุงุฆุต ุงูุตูุช ุงูู
ุญููุฉ ููู ููุฌุฉ.
|
| 101 |
|
| 102 |
+
### ุงูุชุฑููุงุช ุงูู
ุณุชูุจููุฉ
|
| 103 |
|
| 104 |
+
ุณูุชู
ุชูุฏูู
ุชุญุฏูุซุงุช ู
ูุชุธู
ุฉ ูุชุญุณูู ุฌูุฏุฉ ุงูุตูุช ูุฒูุงุฏุฉ ููุงุกุฉ ููู
ุงูููุฌุงุช ุงูู
ุฎุชููุฉ. ุชุงุจุนููุง ูู
ุนุฑูุฉ ุงูู
ุฒูุฏ ุญูู ุชูุงุฑูุฎ ุงูุฅุทูุงู ุงูุฏูููุฉ ููู ูู
ูุฐุฌ.
|
| 105 |
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|
| 106 |
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|
| 107 |
|
| 108 |
+
## Acknowledgements
|
| 109 |
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|
| 110 |
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|
| 111 |
|
| 112 |
+
This implementation is based on [tts-arabic](https://github.com/nipponjo/tts-arabic-pytorch), [VITS](https://github.com/jaywalnut310/vits), [Finetune VITS](https://github.com/ylacombe/finetune-hf-vits) and [Bert-VITS2](https://github.com/fishaudio/Bert-VITS2). We appreciate their awesome work.
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