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text-generation | transformers |
# Uploaded model
- **Developed by:** adrien-alloreview
- **License:** apache-2.0
- **Finetuned from model :** unsloth/llama-3-8b-Instruct-bnb-4bit
This llama model was trained 2x faster with [Unsloth](https://github.com/unslothai/unsloth) and Huggingface's TRL library.
[<img src="https://raw.githubusercontent.com/... | {"language": ["en"], "license": "apache-2.0", "tags": ["text-generation-inference", "transformers", "unsloth", "llama", "trl", "sft"], "base_model": "unsloth/llama-3-8b-Instruct-bnb-4bit"} | adrien-alloreview/llama-3-STAN-alpha | null | [
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|
# Uploaded model
- Developed by: adrien-alloreview
- License: apache-2.0
- Finetuned from model : unsloth/llama-3-8b-Instruct-bnb-4bit
This llama model was trained 2x faster with Unsloth and Huggingface's TRL library.
<img src="URL width="200"/>
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text-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# robust_llm_pythia-31m_mz-131f_PasswordMatch
This model is a fine-tuned version of [EleutherAI/pythia-31m](https://huggingface.co... | {"tags": ["generated_from_trainer"], "base_model": "EleutherAI/pythia-31m", "model-index": [{"name": "robust_llm_pythia-31m_mz-131f_PasswordMatch", "results": []}]} | AlignmentResearch/robust_llm_pythia-31m_mz-131f_PasswordMatch | null | [
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|
# robust_llm_pythia-31m_mz-131f_PasswordMatch
This model is a fine-tuned version of EleutherAI/pythia-31m on an unknown dataset.
## Model description
More information needed
## Intended uses & limitations
More information needed
## Training and evaluation data
More information needed
## Training procedure
#... | [
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null | diffusers | <div align="center">
<h1> <a>Paint3D: Paint Anything 3D with Lighting-Less Texture Diffusion Models</a></h1>
<p align="center">
<a href=https://paint3d.github.io/>Project Page</a> •
<a href=https://arxiv.org/abs/2312.13913>Arxiv</a> •
<a href=https://github.com/OpenTexture/Paint3D>GitHub</a>
</p>
</div>
... | {"license": "apache-2.0", "tags": ["texture-generation"]} | GeorgeQi/Paint3d_UVPos_Control | null | [
"diffusers",
"texture-generation",
"arxiv:2312.13913",
"license:apache-2.0",
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"2312.13913"
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#diffusers #texture-generation #arxiv-2312.13913 #license-apache-2.0 #region-us
| <div align="center">
<h1> <a>Paint3D: Paint Anything 3D with Lighting-Less Texture Diffusion Models</a></h1>
<p align="center">
<a href=URL Page</a> •
<a href=URL •
<a href=URL
</p>
</div>
<div align="center">
<video width="1280" height="720" controls>
<source src="URL type="video/mp4">
</video>
</div>... | [
"## Introduction\nPaint3D is a novel coarse-to-fine generative framework that is capable of producing high-resolution, lighting-less, and diverse 2K UV texture maps for untextured 3D meshes conditioned on text or image inputs.\n\n\n<details open=\"open\">\n <summary><b>Technical details</b></summary>\n\nWe pres... | [
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text-classification | transformers |
<!-- This model card has been generated automatically according to the information Keras had access to. You should
probably proofread and complete it, then remove this comment. -->
# basakdemirok/bert-base-turkish-cased-off_detect_v0
This model is a fine-tuned version of [dbmdz/bert-base-turkish-cased](https://huggi... | {"license": "mit", "tags": ["generated_from_keras_callback"], "base_model": "dbmdz/bert-base-turkish-cased", "model-index": [{"name": "basakdemirok/bert-base-turkish-cased-off_detect_v0", "results": []}]} | basakdemirok/bert-base-turkish-cased-off_detect_v0 | null | [
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| basakdemirok/bert-base-turkish-cased-off\_detect\_v0
====================================================
This model is a fine-tuned version of dbmdz/bert-base-turkish-cased on an unknown dataset.
It achieves the following results on the evaluation set:
* Train Loss: 0.0401
* Validation Loss: 0.4939
* Train F1: 0.6... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* optimizer: {'name': 'Adam', 'weight\\_decay': None, 'clipnorm': None, 'global\\_clipnorm': None, 'clipvalue': None, 'use\\_ema': False, 'ema\\_momentum': 0.99, 'ema\\_overwrite\\_frequency': None, 'jit\\_compile': Tru... | [
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null | transformers |
# Uploaded model
- **Developed by:** baconnier
- **License:** apache-2.0
- **Finetuned from model :** unsloth/llama-3-8b-Instruct-bnb-4bit
This llama model was trained 2x faster with [Unsloth](https://github.com/unslothai/unsloth) and Huggingface's TRL library.
[<img src="https://raw.githubusercontent.com/unslotha... | {"language": ["en"], "license": "apache-2.0", "tags": ["text-generation-inference", "transformers", "unsloth", "llama", "trl"], "base_model": "unsloth/llama-3-8b-Instruct-bnb-4bit"} | baconnier/finance_orpo_llama3_Instruct_8B_r64_51K_Adapters | null | [
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|
# Uploaded model
- Developed by: baconnier
- License: apache-2.0
- Finetuned from model : unsloth/llama-3-8b-Instruct-bnb-4bit
This llama model was trained 2x faster with Unsloth and Huggingface's TRL library.
<img src="URL width="200"/>
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sentence-similarity | sentence-transformers |
본 모델은 multi-task loss (MultipleNegativeLoss -> AnglELoss) 로, KlueNLI 및 KlueSTS 데이터로 학습되었습니다. 학습 코드는 다음 [Github hyperlink](https://github.com/comchobo/SFT_sent_emb?tab=readme-ov-file)에서 보실 수 있습니다.
## Usage (Huggingface inference API)
```python
import requests
API_URL = "https://api-inference.huggingface.co/models/so... | {"language": ["ko"], "license": "cc-by-sa-4.0", "library_name": "sentence-transformers", "tags": ["sentence-transformers", "feature-extraction", "sentence-similarity", "transformers"], "datasets": ["klue"], "pipeline_tag": "sentence-similarity"} | sorryhyun/sentence-embedding-klue-large | null | [
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"sentence-similarity",
"transformers",
"ko",
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"license:cc-by-sa-4.0",
"endpoints_compatible",
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] | null | 2024-04-26T10:48:53+00:00 | [] | [
"ko"
] | TAGS
#sentence-transformers #safetensors #roberta #feature-extraction #sentence-similarity #transformers #ko #dataset-klue #license-cc-by-sa-4.0 #endpoints_compatible #region-us
| 본 모델은 multi-task loss (MultipleNegativeLoss -> AnglELoss) 로, KlueNLI 및 KlueSTS 데이터로 학습되었습니다. 학습 코드는 다음 Github hyperlink에서 보실 수 있습니다.
Usage (Huggingface inference API)
---------------------------------
Usage (HuggingFace Transformers)
--------------------------------
Evaluation Results
------------------
기존 한국어... | [] | [
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text-classification | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | Pongsasit/mod-th-cross-encoder | null | [
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# Model Card for Model ID
## Model Details
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This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
- Developed by: Pongsasit Thongpramoon
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | happylayers/sc34 | null | [
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This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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text-to-image | diffusers |
# Crybaby
Samples and prompts:

Top left: pretty cute little girl as Marie Antoinette playing on toy piano in bedroom
Top right: Masterpiece, Best Quality, highres, fantasy... | {"language": ["en"], "license": "creativeml-openrail-m", "library_name": "diffusers", "tags": ["Paintings", "Style Art", "Landscapes", "Wick_J4", "iamxenos", "RIXYN", "Barons", "stable-diffusion", "stable-diffusion-diffusers", "diffusers", "text-to-image"], "pipeline_tag": "text-to-image"} | Yntec/Crybaby | null | [
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|
# Crybaby
Samples and prompts:
!AI image generator Crybaby samples
Top left: pretty cute little girl as Marie Antoinette playing on toy piano in bedroom
Top right: Masterpiece, Best Quality, highres, fantasy, official art, kitten, grass, sky, scenery, Fuji 85mm, fairytale illustration, colored sclera, black eyes, ... | [
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image-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# finetuned-waste
This model is a fine-tuned version of [google/vit-base-patch16-224-in21k](https://huggingface.co/google/vit-base... | {"license": "apache-2.0", "tags": ["image-classification", "generated_from_trainer"], "metrics": ["accuracy"], "base_model": "google/vit-base-patch16-224-in21k", "model-index": [{"name": "finetuned-waste", "results": []}]} | Shamsaa/finetuned-waste | null | [
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| finetuned-waste
===============
This model is a fine-tuned version of google/vit-base-patch16-224-in21k on the BioNonbioWaste dataset.
It achieves the following results on the evaluation set:
* Loss: 0.0048
* Accuracy: 1.0
Model description
-----------------
More information needed
Intended uses & limitations... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.0002\n* train\\_batch\\_size: 16\n* eval\\_batch\\_size: 8\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 4\n* mixed\\_prec... | [
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feature-extraction | transformers |
This is the converted model from Unbabel/wmt23-cometkiwi-da
1) Just kept the weights/bias keys()
2) Renamed the keys to match the original Facebook/XLM-roberta-XL
3) kept the layer_wise_attention / estimator layers
Because of a hack in HF's code I had to rename the "layerwise_attention.gamma" key to "layerwise_atten... | {} | vince62s/wmt23-cometkiwi-da-roberta-xl | null | [
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"feature-extraction",
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"region:us"
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#transformers #pytorch #xlm-roberta-xl #feature-extraction #custom_code #region-us
|
This is the converted model from Unbabel/wmt23-cometkiwi-da
1) Just kept the weights/bias keys()
2) Renamed the keys to match the original Facebook/XLM-roberta-XL
3) kept the layer_wise_attention / estimator layers
Because of a hack in HF's code I had to rename the "layerwise_attention.gamma" key to "layerwise_atten... | [
"# Paper\n\nCometKiwi: IST-Unbabel 2022 Submission for the Quality Estimation Shared Task (Rei et al., WMT 2022)",
"# License:\n\ncc-by-nc-sa-4.0",
"# Usage (unbabel-comet)\n\nUsing this model requires unbabel-comet to be installed:\n\n\n\nMake sure you acknowledge its License and Log in into Hugging face hub b... | [
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text2text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "pipeline_tag": "text2text-generation"} | omertafveez/Llama-3-TherapyChatBot | null | [
"transformers",
"safetensors",
"llama",
"feature-extraction",
"text2text-generation",
"arxiv:1910.09700",
"endpoints_compatible",
"text-generation-inference",
"4-bit",
"region:us"
] | null | 2024-04-26T10:53:25+00:00 | [
"1910.09700"
] | [] | TAGS
#transformers #safetensors #llama #feature-extraction #text2text-generation #arxiv-1910.09700 #endpoints_compatible #text-generation-inference #4-bit #region-us
|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
- Developed by:
- Funded by [optional]:
- Shared by [optional]:
- Model type:
- Language(s) (NLP):
- License... | [
"# Model Card for Model ID",
"## Model Details",
"### Model Description\n\n\n\nThis is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.\n\n- Developed by: \n- Funded by [optional]: \n- Shared by [optional]: \n- Model type: \n- Language(s)... | [
"TAGS\n#transformers #safetensors #llama #feature-extraction #text2text-generation #arxiv-1910.09700 #endpoints_compatible #text-generation-inference #4-bit #region-us \n",
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null | peft |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# results
This model is a fine-tuned version of [TheBloke/Mistral-7B-Instruct-v0.1-GPTQ](https://huggingface.co/TheBloke/Mistral-7... | {"license": "apache-2.0", "library_name": "peft", "tags": ["trl", "sft", "generated_from_trainer"], "base_model": "TheBloke/Mistral-7B-Instruct-v0.1-GPTQ", "model-index": [{"name": "results", "results": []}]} | tariq9mehmood9/results | null | [
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"generated_from_trainer",
"base_model:TheBloke/Mistral-7B-Instruct-v0.1-GPTQ",
"license:apache-2.0",
"region:us"
] | null | 2024-04-26T10:54:56+00:00 | [] | [] | TAGS
#peft #tensorboard #safetensors #trl #sft #generated_from_trainer #base_model-TheBloke/Mistral-7B-Instruct-v0.1-GPTQ #license-apache-2.0 #region-us
|
# results
This model is a fine-tuned version of TheBloke/Mistral-7B-Instruct-v0.1-GPTQ on the None dataset.
## Model description
More information needed
## Intended uses & limitations
More information needed
## Training and evaluation data
More information needed
## Training procedure
### Training hyperpara... | [
"# results\n\nThis model is a fine-tuned version of TheBloke/Mistral-7B-Instruct-v0.1-GPTQ on the None dataset.",
"## Model description\n\nMore information needed",
"## Intended uses & limitations\n\nMore information needed",
"## Training and evaluation data\n\nMore information needed",
"## Training procedu... | [
"TAGS\n#peft #tensorboard #safetensors #trl #sft #generated_from_trainer #base_model-TheBloke/Mistral-7B-Instruct-v0.1-GPTQ #license-apache-2.0 #region-us \n",
"# results\n\nThis model is a fine-tuned version of TheBloke/Mistral-7B-Instruct-v0.1-GPTQ on the None dataset.",
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null | null |
# nchen909/Apollo-7B-Q4_K_M-GGUF
This model was converted to GGUF format from [`FreedomIntelligence/Apollo-7B`](https://huggingface.co/FreedomIntelligence/Apollo-7B) using llama.cpp via the ggml.ai's [GGUF-my-repo](https://huggingface.co/spaces/ggml-org/gguf-my-repo) space.
Refer to the [original model card](https://h... | {"license": "apache-2.0", "tags": ["llama-cpp", "gguf-my-repo"]} | nchen909/Apollo-7B-Q4_K_M-GGUF | null | [
"gguf",
"llama-cpp",
"gguf-my-repo",
"license:apache-2.0",
"region:us"
] | null | 2024-04-26T10:56:13+00:00 | [] | [] | TAGS
#gguf #llama-cpp #gguf-my-repo #license-apache-2.0 #region-us
|
# nchen909/Apollo-7B-Q4_K_M-GGUF
This model was converted to GGUF format from 'FreedomIntelligence/Apollo-7B' using URL via the URL's GGUF-my-repo space.
Refer to the original model card for more details on the model.
## Use with URL
Install URL through brew.
Invoke the URL server or the CLI.
CLI:
Server:
No... | [
"# nchen909/Apollo-7B-Q4_K_M-GGUF\nThis model was converted to GGUF format from 'FreedomIntelligence/Apollo-7B' using URL via the URL's GGUF-my-repo space.\nRefer to the original model card for more details on the model.",
"## Use with URL\n\nInstall URL through brew.\n\n\nInvoke the URL server or the CLI.\n\nCLI... | [
"TAGS\n#gguf #llama-cpp #gguf-my-repo #license-apache-2.0 #region-us \n",
"# nchen909/Apollo-7B-Q4_K_M-GGUF\nThis model was converted to GGUF format from 'FreedomIntelligence/Apollo-7B' using URL via the URL's GGUF-my-repo space.\nRefer to the original model card for more details on the model.",
"## Use with UR... | [
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"TAGS\n#gguf #llama-cpp #gguf-my-repo #license-apache-2.0 #region-us \n# nchen909/Apollo-7B-Q4_K_M-GGUF\nThis model was converted to GGUF format from 'FreedomIntelligence/Apollo-7B' using URL via the URL's GGUF-my-repo space.\nRefer to the original model card for more details on the model.## Use with URL\n\nInstall... |
text2text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | Nilesh360/llama-vid-7b-full-224-video-fps-1 | null | [
"transformers",
"safetensors",
"llamavid",
"text2text-generation",
"arxiv:1910.09700",
"autotrain_compatible",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T10:56:48+00:00 | [
"1910.09700"
] | [] | TAGS
#transformers #safetensors #llamavid #text2text-generation #arxiv-1910.09700 #autotrain_compatible #endpoints_compatible #region-us
|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
- Developed by:
- Funded by [optional]:
- Shared by [optional]:
- Model type:
- Language(s) (NLP):
- License... | [
"# Model Card for Model ID",
"## Model Details",
"### Model Description\n\n\n\nThis is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.\n\n- Developed by: \n- Funded by [optional]: \n- Shared by [optional]: \n- Model type: \n- Language(s)... | [
"TAGS\n#transformers #safetensors #llamavid #text2text-generation #arxiv-1910.09700 #autotrain_compatible #endpoints_compatible #region-us \n",
"# Model Card for Model ID",
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question-answering | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# shipping_qa_model
This model is a fine-tuned version of [distilbert/distilbert-base-uncased](https://huggingface.co/distilbert/d... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "base_model": "distilbert/distilbert-base-uncased", "model-index": [{"name": "shipping_qa_model", "results": []}]} | SurajSphinx/shipping_qa_model | null | [
"transformers",
"tensorboard",
"safetensors",
"distilbert",
"question-answering",
"generated_from_trainer",
"base_model:distilbert/distilbert-base-uncased",
"license:apache-2.0",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:01:15+00:00 | [] | [] | TAGS
#transformers #tensorboard #safetensors #distilbert #question-answering #generated_from_trainer #base_model-distilbert/distilbert-base-uncased #license-apache-2.0 #endpoints_compatible #region-us
| shipping\_qa\_model
===================
This model is a fine-tuned version of distilbert/distilbert-base-uncased on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 0.5682
Model description
-----------------
More information needed
Intended uses & limitations
--------------... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 2e-05\n* train\\_batch\\_size: 16\n* eval\\_batch\\_size: 16\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 3",
"### Traini... | [
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"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learnin... | [
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image-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# vit-xray-pneumonia-classification
This model is a fine-tuned version of [google/vit-base-patch16-224-in21k](https://huggingface.... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "metrics": ["accuracy"], "base_model": "google/vit-base-patch16-224-in21k", "model-index": [{"name": "vit-xray-pneumonia-classification", "results": []}]} | cchoo1/vit-xray-pneumonia-classification | null | [
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"base_model:google/vit-base-patch16-224-in21k",
"license:apache-2.0",
"autotrain_compatible",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:04:08+00:00 | [] | [] | TAGS
#transformers #tensorboard #safetensors #vit #image-classification #generated_from_trainer #base_model-google/vit-base-patch16-224-in21k #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us
| vit-xray-pneumonia-classification
=================================
This model is a fine-tuned version of google/vit-base-patch16-224-in21k on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 0.1489
* Accuracy: 0.9502
Model description
-----------------
More information neede... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 5e-05\n* train\\_batch\\_size: 8\n* eval\\_batch\\_size: 16\n* seed: 42\n* gradient\\_accumulation\\_steps: 4\n* total\\_train\\_batch\\_size: 32\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=... | [
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null | transformers | ## About
<!-- ### quantize_version: 1 -->
<!-- ### output_tensor_quantised: 1 -->
<!-- ### convert_type: -->
<!-- ### vocab_type: -->
static quants of https://huggingface.co/chujiezheng/Starling-LM-7B-alpha-ExPO
<!-- provided-files -->
weighted/imatrix quants seem not to be available (by me) at this time. If they d... | {"language": ["en"], "license": "apache-2.0", "library_name": "transformers", "base_model": "chujiezheng/Starling-LM-7B-alpha-ExPO", "quantized_by": "mradermacher"} | mradermacher/Starling-LM-7B-alpha-ExPO-GGUF | null | [
"transformers",
"gguf",
"en",
"base_model:chujiezheng/Starling-LM-7B-alpha-ExPO",
"license:apache-2.0",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:04:31+00:00 | [] | [
"en"
] | TAGS
#transformers #gguf #en #base_model-chujiezheng/Starling-LM-7B-alpha-ExPO #license-apache-2.0 #endpoints_compatible #region-us
| About
-----
static quants of URL
weighted/imatrix quants seem not to be available (by me) at this time. If they do not show up a week or so after the static ones, I have probably not planned for them. Feel free to request them by opening a Community Discussion.
Usage
-----
If you are unsure how to use GGUF file... | [] | [
"TAGS\n#transformers #gguf #en #base_model-chujiezheng/Starling-LM-7B-alpha-ExPO #license-apache-2.0 #endpoints_compatible #region-us \n"
] | [
49
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"TAGS\n#transformers #gguf #en #base_model-chujiezheng/Starling-LM-7B-alpha-ExPO #license-apache-2.0 #endpoints_compatible #region-us \n"
] |
text-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# finetuning-distilbert-model-steam-game-reviews
This model is a fine-tuned version of [distilbert-base-uncased](https://huggingfa... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "metrics": ["accuracy", "f1"], "base_model": "distilbert-base-uncased", "model-index": [{"name": "finetuning-distilbert-model-steam-game-reviews", "results": []}]} | zitroeth/finetuning-distilbert-model-steam-game-reviews | null | [
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"tensorboard",
"safetensors",
"distilbert",
"text-classification",
"generated_from_trainer",
"base_model:distilbert-base-uncased",
"license:apache-2.0",
"autotrain_compatible",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:05:34+00:00 | [] | [] | TAGS
#transformers #tensorboard #safetensors #distilbert #text-classification #generated_from_trainer #base_model-distilbert-base-uncased #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us
|
# finetuning-distilbert-model-steam-game-reviews
This model is a fine-tuned version of distilbert-base-uncased on the None dataset.
It achieves the following results on the evaluation set:
- Loss: 0.4438
- Accuracy: 0.9181
- F1: 0.9451
## Model description
More information needed
## Intended uses & limitations
... | [
"# finetuning-distilbert-model-steam-game-reviews\n\nThis model is a fine-tuned version of distilbert-base-uncased on the None dataset.\nIt achieves the following results on the evaluation set:\n- Loss: 0.4438\n- Accuracy: 0.9181\n- F1: 0.9451",
"## Model description\n\nMore information needed",
"## Intended us... | [
"TAGS\n#transformers #tensorboard #safetensors #distilbert #text-classification #generated_from_trainer #base_model-distilbert-base-uncased #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us \n",
"# finetuning-distilbert-model-steam-game-reviews\n\nThis model is a fine-tuned version of dis... | [
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"TAGS\n#transformers #tensorboard #safetensors #distilbert #text-classification #generated_from_trainer #base_model-distilbert-base-uncased #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us \n# finetuning-distilbert-model-steam-game-reviews\n\nThis model is a fine-tuned version of distilber... |
null | transformers | ## About
<!-- ### quantize_version: 1 -->
<!-- ### output_tensor_quantised: 1 -->
<!-- ### convert_type: -->
<!-- ### vocab_type: -->
weighted/imatrix quants of https://huggingface.co/mlx-community/Llama-3-8B-Instruct-262k-unquantized
<!-- provided-files -->
static quants are available at https://huggingface.co/mra... | {"language": ["en"], "library_name": "transformers", "tags": ["meta", "llama-3", "mlx"], "base_model": "mlx-community/Llama-3-8B-Instruct-262k-unquantized", "quantized_by": "mradermacher"} | mradermacher/Llama-3-8B-Instruct-262k-unquantized-i1-GGUF | null | [
"transformers",
"gguf",
"meta",
"llama-3",
"mlx",
"en",
"base_model:mlx-community/Llama-3-8B-Instruct-262k-unquantized",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:05:51+00:00 | [] | [
"en"
] | TAGS
#transformers #gguf #meta #llama-3 #mlx #en #base_model-mlx-community/Llama-3-8B-Instruct-262k-unquantized #endpoints_compatible #region-us
| About
-----
weighted/imatrix quants of URL
static quants are available at URL
Usage
-----
If you are unsure how to use GGUF files, refer to one of TheBloke's
READMEs for
more details, including on how to concatenate multi-part files.
Provided Quants
---------------
(sorted by size, not necessarily quality. ... | [] | [
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] | [
56
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"TAGS\n#transformers #gguf #meta #llama-3 #mlx #en #base_model-mlx-community/Llama-3-8B-Instruct-262k-unquantized #endpoints_compatible #region-us \n"
] |
object-detection | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | Spatiallysaying/detr-finetuned-rwymarkings-horizontal-v1 | null | [
"transformers",
"safetensors",
"detr",
"object-detection",
"arxiv:1910.09700",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:05:52+00:00 | [
"1910.09700"
] | [] | TAGS
#transformers #safetensors #detr #object-detection #arxiv-1910.09700 #endpoints_compatible #region-us
|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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- Funded by [optional]:
- Shared by [optional]:
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null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# TrOCR-SIN-DeiT-Handwritten-Beam10-maxseq128
This model is a fine-tuned version of [kavg/TrOCR-SIN-DeiT](https://huggingface.co/k... | {"tags": ["generated_from_trainer"], "base_model": "kavg/TrOCR-SIN-DeiT", "model-index": [{"name": "TrOCR-SIN-DeiT-Handwritten-Beam10-maxseq128", "results": []}]} | kavg/TrOCR-SIN-DeiT-Handwritten-Beam10-maxseq128 | null | [
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| TrOCR-SIN-DeiT-Handwritten-Beam10-maxseq128
===========================================
This model is a fine-tuned version of kavg/TrOCR-SIN-DeiT on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 2.7352
* Cer: 0.5340
Model description
-----------------
More information need... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 5e-05\n* train\\_batch\\_size: 16\n* eval\\_batch\\_size: 16\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* training\\_steps: 2600\n* mixed... | [
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null | transformers | ## About
<!-- ### quantize_version: 2 -->
<!-- ### output_tensor_quantised: 1 -->
<!-- ### convert_type: -->
<!-- ### vocab_type: -->
static quants of https://huggingface.co/tlphams/Wizard-Mixtral-8x22B-Instruct-v0.1
<!-- provided-files -->
weighted/imatrix quants are available at https://huggingface.co/mradermache... | {"language": ["en"], "license": "cc-by-nc-sa-4.0", "library_name": "transformers", "tags": ["mergekit", "merge"], "base_model": "tlphams/Wizard-Mixtral-8x22B-Instruct-v0.1", "quantized_by": "mradermacher"} | mradermacher/Wizard-Mixtral-8x22B-Instruct-v0.1-GGUF | null | [
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| About
-----
static quants of URL
weighted/imatrix quants are available at URL
Usage
-----
If you are unsure how to use GGUF files, refer to one of TheBloke's
READMEs for
more details, including on how to concatenate multi-part files.
Provided Quants
---------------
(sorted by size, not necessarily quality. ... | [] | [
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | OwOOwO/final1 | null | [
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"conversational",
"arxiv:1910.09700",
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"1910.09700"
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|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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text-generation | transformers |
# miqu-evil-dpo
# **Model Details**
## Description
miqu-evil-dpo is fine-tuned model based on miqu, serving as a direct successor to PiVoT-0.1-Evil-a.
It is trained with evil-tune method applied.

<!-- prompt-template start -->
## Prompt template: Mistral Inst
```
<s> [INST] {inst} [... | {"language": ["en"], "license": "other", "tags": ["not-for-all-audiences"], "license_name": "miqu-license", "license_link": "LICENSE", "pipeline_tag": "text-generation"} | blockblockblock/miqu-evil-dpo-bpw2.5-exl2 | null | [
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|
# miqu-evil-dpo
# Model Details
## Description
miqu-evil-dpo is fine-tuned model based on miqu, serving as a direct successor to PiVoT-0.1-Evil-a.
It is trained with evil-tune method applied.
!image/png
## Prompt template: Mistral Inst
## Disclaimer
The AI model provided herein is intended for experimental... | [
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": ["unsloth"]} | jotaefecueme/survey-input | null | [
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|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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- Funded by [optional]:
- Shared by [optional]:
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- Language(s) (NLP):
- License... | [
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text-generation | transformers |
# Uploaded model
- **Developed by:** reallad
- **License:** apache-2.0
- **Finetuned from model :** reallad/yi-6b-chat-translate2
This llama model was trained 2x faster with [Unsloth](https://github.com/unslothai/unsloth) and Huggingface's TRL library.
[<img src="https://raw.githubusercontent.com/unslothai/unsloth... | {"language": ["en"], "license": "apache-2.0", "tags": ["text-generation-inference", "transformers", "unsloth", "llama", "trl", "sft"], "base_model": "reallad/yi-6b-chat-translate2"} | reallad/yi-6b-chat-translate3 | null | [
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# Uploaded model
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- License: apache-2.0
- Finetuned from model : reallad/yi-6b-chat-translate2
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<img src="URL width="200"/>
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null | transformers.js | ERROR: type should be string, got "\n\nhttps://github.com/open-mmlab/mmpose/tree/main/projects/rtmo with ONNX weights to be compatible with Transformers.js.\n\n## Usage (Transformers.js)\n\nIf you haven't already, you can install the [Transformers.js](https://huggingface.co/docs/transformers.js) JavaScript library from [NPM](https://www.npmjs.com/package/@xenova/transformers) using:\n```bash\nnpm i @xenova/transformers\n```\n\n**Example:** Perform pose-estimation w/ `Xenova/RTMO-t`.\n\n```js\nimport { AutoModel, AutoProcessor, RawImage } from '@xenova/transformers';\n\n// Load model and processor\nconst model_id = 'Xenova/RTMO-t';\nconst model = await AutoModel.from_pretrained(model_id);\nconst processor = await AutoProcessor.from_pretrained(model_id);\n\n// Read image and run processor\nconst url = 'https://huggingface.co/datasets/Xenova/transformers.js-docs/resolve/main/football-match.jpg';\nconst image = await RawImage.read(url);\nconst { pixel_values, original_sizes, reshaped_input_sizes } = await processor(image);\n\n// Predict bounding boxes and keypoints\nconst { dets, keypoints } = await model({ input: pixel_values });\n\n// Select the first image\nconst predicted_boxes = dets.tolist()[0];\nconst predicted_points = keypoints.tolist()[0];\nconst [height, width] = original_sizes[0];\nconst [resized_height, resized_width] = reshaped_input_sizes[0];\n\n// Compute scale values\nconst xScale = width / resized_width;\nconst yScale = height / resized_height;\n\n// Define thresholds\nconst point_threshold = 0.3;\nconst box_threshold = 0.3;\n\n// Display results\nfor (let i = 0; i < predicted_boxes.length; ++i) {\n const [xmin, ymin, xmax, ymax, box_score] = predicted_boxes[i];\n if (box_score < box_threshold) continue;\n\n const x1 = (xmin * xScale).toFixed(2);\n const y1 = (ymin * yScale).toFixed(2);\n const x2 = (xmax * xScale).toFixed(2);\n const y2 = (ymax * yScale).toFixed(2);\n\n console.log(`Found person at [${x1}, ${y1}, ${x2}, ${y2}] with score ${box_score.toFixed(3)}`)\n const points = predicted_points[i]; // of shape [17, 3]\n for (let id = 0; id < points.length; ++id) {\n const label = model.config.id2label[id];\n const [x, y, point_score] = points[id];\n if (point_score < point_threshold) continue;\n console.log(` - ${label}: (${(x * xScale).toFixed(2)}, ${(y * yScale).toFixed(2)}) with score ${point_score.toFixed(3)}`);\n }\n}\n```\n\n<details>\n\n<summary>See example output</summary>\n\n```\nFound person at [411.10, 63.87, 647.68, 505.40] with score 0.986\n - nose: (526.09, 119.83) with score 0.874\n - left_eye: (539.01, 110.39) with score 0.696\n - right_eye: (512.50, 111.08) with score 0.662\n - left_shoulder: (563.59, 171.10) with score 0.999\n - right_shoulder: (467.38, 160.82) with score 0.999\n - left_elbow: (572.72, 240.61) with score 0.999\n - right_elbow: (437.86, 218.20) with score 0.998\n - left_wrist: (603.74, 303.53) with score 0.995\n - right_wrist: (506.01, 218.68) with score 0.992\n - left_hip: (536.00, 306.25) with score 1.000\n - right_hip: (472.79, 311.69) with score 0.999\n - left_knee: (580.82, 366.38) with score 0.996\n - right_knee: (500.25, 449.72) with score 0.954\n - left_ankle: (572.21, 449.52) with score 0.993\n - right_ankle: (541.37, 436.71) with score 0.916\nFound person at [93.58, 19.64, 492.62, 522.45] with score 0.909\n - left_shoulder: (233.76, 109.57) with score 0.971\n - right_shoulder: (229.56, 100.34) with score 0.950\n - left_elbow: (317.31, 162.73) with score 0.950\n - right_elbow: (229.98, 179.31) with score 0.934\n - left_wrist: (385.59, 219.03) with score 0.870\n - right_wrist: (161.31, 230.74) with score 0.952\n - left_hip: (351.23, 243.42) with score 0.998\n - right_hip: (361.94, 240.70) with score 0.999\n - left_knee: (297.77, 382.00) with score 0.998\n - right_knee: (306.07, 393.59) with score 1.000\n - left_ankle: (413.48, 354.16) with score 1.000\n - right_ankle: (445.30, 488.11) with score 0.999\nFound person at [-1.46, 50.68, 160.66, 371.74] with score 0.780\n - nose: (80.17, 81.16) with score 0.570\n - left_eye: (85.17, 75.45) with score 0.383\n - right_eye: (70.20, 77.09) with score 0.382\n - left_shoulder: (121.30, 114.98) with score 0.981\n - right_shoulder: (46.56, 114.41) with score 0.981\n - left_elbow: (144.09, 163.76) with score 0.777\n - right_elbow: (29.69, 159.24) with score 0.886\n - left_wrist: (142.31, 205.64) with score 0.725\n - right_wrist: (6.24, 199.62) with score 0.876\n - left_hip: (108.07, 208.90) with score 0.992\n - right_hip: (64.72, 212.01) with score 0.996\n - left_knee: (115.26, 276.52) with score 0.998\n - right_knee: (65.09, 283.25) with score 0.998\n - left_ankle: (126.09, 340.42) with score 0.991\n - right_ankle: (63.88, 348.88) with score 0.977\nFound person at [526.35, 36.25, 650.42, 280.90] with score 0.328\n - nose: (554.06, 71.87) with score 0.901\n - left_eye: (562.10, 66.30) with score 0.928\n - right_eye: (546.65, 66.36) with score 0.746\n - left_ear: (575.98, 68.17) with score 0.658\n - left_shoulder: (588.04, 102.61) with score 0.999\n - right_shoulder: (526.00, 102.94) with score 0.704\n - left_elbow: (618.11, 149.18) with score 0.984\n - left_wrist: (630.77, 189.42) with score 0.961\n - left_hip: (578.74, 181.42) with score 0.966\n - right_hip: (530.33, 176.46) with score 0.698\n - left_knee: (568.74, 233.01) with score 0.958\n - right_knee: (542.44, 243.87) with score 0.687\n - left_ankle: (585.17, 284.79) with score 0.838\n - right_ankle: (550.07, 292.19) with score 0.435\n```\n\n</details>" | {"license": "apache-2.0", "library_name": "transformers.js", "tags": ["pose-estimation"]} | Xenova/RTMO-t | null | [
"transformers.js",
"onnx",
"rtmo",
"pose-estimation",
"license:apache-2.0",
"region:us"
] | null | 2024-04-26T11:12:42+00:00 | [] | [] | TAGS
#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us
|
URL with ONNX weights to be compatible with URL.
## Usage (URL)
If you haven't already, you can install the URL JavaScript library from NPM using:
Example: Perform pose-estimation w/ 'Xenova/RTMO-t'.
<details>
<summary>See example output</summary>
</details> | [
"## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-t'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n</details>"
] | [
"TAGS\n#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us \n",
"## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-t'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n... | [
28,
64
] | [
"TAGS\n#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us \n## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-t'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n</deta... |
null | transformers.js | ERROR: type should be string, got "\n\nhttps://github.com/open-mmlab/mmpose/tree/main/projects/rtmo with ONNX weights to be compatible with Transformers.js.\n\n## Usage (Transformers.js)\n\nIf you haven't already, you can install the [Transformers.js](https://huggingface.co/docs/transformers.js) JavaScript library from [NPM](https://www.npmjs.com/package/@xenova/transformers) using:\n```bash\nnpm i @xenova/transformers\n```\n\n**Example:** Perform pose-estimation w/ `Xenova/RTMO-s`.\n\n```js\nimport { AutoModel, AutoProcessor, RawImage } from '@xenova/transformers';\n\n// Load model and processor\nconst model_id = 'Xenova/RTMO-s';\nconst model = await AutoModel.from_pretrained(model_id);\nconst processor = await AutoProcessor.from_pretrained(model_id);\n\n// Read image and run processor\nconst url = 'https://huggingface.co/datasets/Xenova/transformers.js-docs/resolve/main/football-match.jpg';\nconst image = await RawImage.read(url);\nconst { pixel_values, original_sizes, reshaped_input_sizes } = await processor(image);\n\n// Predict bounding boxes and keypoints\nconst { dets, keypoints } = await model({ input: pixel_values });\n\n// Select the first image\nconst predicted_boxes = dets.tolist()[0];\nconst predicted_points = keypoints.tolist()[0];\nconst [height, width] = original_sizes[0];\nconst [resized_height, resized_width] = reshaped_input_sizes[0];\n\n// Compute scale values\nconst xScale = width / resized_width;\nconst yScale = height / resized_height;\n\n// Define thresholds\nconst point_threshold = 0.3;\nconst box_threshold = 0.3;\n\n// Display results\nfor (let i = 0; i < predicted_boxes.length; ++i) {\n const [xmin, ymin, xmax, ymax, box_score] = predicted_boxes[i];\n if (box_score < box_threshold) continue;\n\n const x1 = (xmin * xScale).toFixed(2);\n const y1 = (ymin * yScale).toFixed(2);\n const x2 = (xmax * xScale).toFixed(2);\n const y2 = (ymax * yScale).toFixed(2);\n\n console.log(`Found person at [${x1}, ${y1}, ${x2}, ${y2}] with score ${box_score.toFixed(3)}`)\n const points = predicted_points[i]; // of shape [17, 3]\n for (let id = 0; id < points.length; ++id) {\n const label = model.config.id2label[id];\n const [x, y, point_score] = points[id];\n if (point_score < point_threshold) continue;\n console.log(` - ${label}: (${(x * xScale).toFixed(2)}, ${(y * yScale).toFixed(2)}) with score ${point_score.toFixed(3)}`);\n }\n}\n```\n\n<details>\n\n<summary>See example output</summary>\n\n```\nFound person at [423.33, 55.52, 644.28, 504.13] with score 0.988\n - nose: (527.30, 117.12) with score 0.733\n - left_eye: (541.79, 109.26) with score 0.554\n - right_eye: (515.04, 107.59) with score 0.475\n - left_shoulder: (563.30, 171.75) with score 1.000\n - right_shoulder: (464.21, 159.75) with score 1.000\n - left_elbow: (575.71, 238.04) with score 0.998\n - right_elbow: (436.06, 218.10) with score 0.999\n - left_wrist: (605.86, 303.35) with score 1.000\n - right_wrist: (497.47, 220.82) with score 1.000\n - left_hip: (540.97, 307.31) with score 1.000\n - right_hip: (475.85, 318.78) with score 1.000\n - left_knee: (578.63, 368.63) with score 1.000\n - right_knee: (501.05, 442.49) with score 1.000\n - left_ankle: (572.11, 464.96) with score 0.991\n - right_ankle: (535.75, 441.52) with score 0.981\nFound person at [89.97, 3.96, 517.81, 507.28] with score 0.966\n - left_shoulder: (242.65, 111.06) with score 0.999\n - right_shoulder: (228.79, 112.54) with score 0.999\n - left_elbow: (321.84, 169.07) with score 0.999\n - right_elbow: (225.76, 218.20) with score 1.000\n - left_wrist: (351.73, 220.74) with score 0.999\n - right_wrist: (160.19, 228.03) with score 1.000\n - left_hip: (342.34, 246.81) with score 1.000\n - right_hip: (360.05, 259.35) with score 0.999\n - left_knee: (299.56, 377.97) with score 0.998\n - right_knee: (313.81, 378.83) with score 0.976\n - left_ankle: (443.84, 312.35) with score 0.983\n - right_ankle: (424.74, 433.61) with score 0.823\nFound person at [-0.53, 51.78, 153.65, 371.17] with score 0.769\n - nose: (75.52, 85.67) with score 0.363\n - left_shoulder: (121.54, 113.17) with score 1.000\n - right_shoulder: (49.77, 117.60) with score 1.000\n - left_elbow: (132.90, 147.02) with score 0.932\n - right_elbow: (30.31, 156.42) with score 0.992\n - left_wrist: (154.43, 162.08) with score 0.871\n - right_wrist: (17.20, 196.43) with score 0.943\n - left_hip: (105.61, 204.27) with score 0.999\n - right_hip: (61.99, 203.66) with score 0.999\n - left_knee: (114.70, 270.91) with score 1.000\n - right_knee: (63.75, 275.33) with score 1.000\n - left_ankle: (125.53, 342.00) with score 0.998\n - right_ankle: (63.16, 344.07) with score 0.997\nFound person at [519.40, 34.94, 650.11, 312.07] with score 0.488\n - nose: (554.82, 76.58) with score 0.920\n - left_eye: (563.12, 69.41) with score 0.666\n - right_eye: (544.82, 70.01) with score 0.595\n - left_shoulder: (596.60, 105.61) with score 0.999\n - right_shoulder: (523.29, 107.31) with score 0.969\n - left_elbow: (625.14, 151.30) with score 0.999\n - right_elbow: (515.96, 147.59) with score 0.322\n - left_wrist: (630.90, 196.91) with score 0.998\n - right_wrist: (520.75, 181.83) with score 0.415\n - left_hip: (583.24, 200.84) with score 0.998\n - right_hip: (533.69, 200.01) with score 0.978\n - left_knee: (583.79, 265.14) with score 0.934\n - right_knee: (538.27, 262.98) with score 0.669\n - left_ankle: (584.90, 309.76) with score 0.489\n```\n\n</details>" | {"license": "apache-2.0", "library_name": "transformers.js", "tags": ["pose-estimation"]} | Xenova/RTMO-s | null | [
"transformers.js",
"onnx",
"rtmo",
"pose-estimation",
"license:apache-2.0",
"region:us"
] | null | 2024-04-26T11:12:44+00:00 | [] | [] | TAGS
#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us
|
URL with ONNX weights to be compatible with URL.
## Usage (URL)
If you haven't already, you can install the URL JavaScript library from NPM using:
Example: Perform pose-estimation w/ 'Xenova/RTMO-s'.
<details>
<summary>See example output</summary>
</details> | [
"## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-s'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n</details>"
] | [
"TAGS\n#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us \n",
"## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-s'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n... | [
28,
64
] | [
"TAGS\n#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us \n## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-s'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n</deta... |
null | transformers.js | ERROR: type should be string, got "\n\nhttps://github.com/open-mmlab/mmpose/tree/main/projects/rtmo with ONNX weights to be compatible with Transformers.js.\n\n## Usage (Transformers.js)\n\nIf you haven't already, you can install the [Transformers.js](https://huggingface.co/docs/transformers.js) JavaScript library from [NPM](https://www.npmjs.com/package/@xenova/transformers) using:\n```bash\nnpm i @xenova/transformers\n```\n\n**Example:** Perform pose-estimation w/ `Xenova/RTMO-m`.\n\n```js\nimport { AutoModel, AutoProcessor, RawImage } from '@xenova/transformers';\n\n// Load model and processor\nconst model_id = 'Xenova/RTMO-m';\nconst model = await AutoModel.from_pretrained(model_id);\nconst processor = await AutoProcessor.from_pretrained(model_id);\n\n// Read image and run processor\nconst url = 'https://huggingface.co/datasets/Xenova/transformers.js-docs/resolve/main/football-match.jpg';\nconst image = await RawImage.read(url);\nconst { pixel_values, original_sizes, reshaped_input_sizes } = await processor(image);\n\n// Predict bounding boxes and keypoints\nconst { dets, keypoints } = await model({ input: pixel_values });\n\n// Select the first image\nconst predicted_boxes = dets.tolist()[0];\nconst predicted_points = keypoints.tolist()[0];\nconst [height, width] = original_sizes[0];\nconst [resized_height, resized_width] = reshaped_input_sizes[0];\n\n// Compute scale values\nconst xScale = width / resized_width;\nconst yScale = height / resized_height;\n\n// Define thresholds\nconst point_threshold = 0.3;\nconst box_threshold = 0.4;\n\n// Display results\nfor (let i = 0; i < predicted_boxes.length; ++i) {\n const [xmin, ymin, xmax, ymax, box_score] = predicted_boxes[i];\n if (box_score < box_threshold) continue;\n\n const x1 = (xmin * xScale).toFixed(2);\n const y1 = (ymin * yScale).toFixed(2);\n const x2 = (xmax * xScale).toFixed(2);\n const y2 = (ymax * yScale).toFixed(2);\n\n console.log(`Found person at [${x1}, ${y1}, ${x2}, ${y2}] with score ${box_score.toFixed(3)}`)\n const points = predicted_points[i]; // of shape [17, 3]\n for (let id = 0; id < points.length; ++id) {\n const label = model.config.id2label[id];\n const [x, y, point_score] = points[id];\n if (point_score < point_threshold) continue;\n console.log(` - ${label}: (${(x * xScale).toFixed(2)}, ${(y * yScale).toFixed(2)}) with score ${point_score.toFixed(3)}`);\n }\n}\n```\n\n<details>\n\n<summary>See example output</summary>\n\n```\nFound person at [394.23, 54.52, 676.59, 509.93] with score 0.977\n - nose: (521.88, 120.59) with score 0.692\n - left_eye: (536.24, 109.29) with score 0.635\n - right_eye: (511.85, 107.62) with score 0.651\n - left_shoulder: (561.11, 171.55) with score 0.993\n - right_shoulder: (471.06, 157.17) with score 0.999\n - left_elbow: (574.33, 240.08) with score 0.993\n - right_elbow: (437.67, 219.04) with score 0.998\n - left_wrist: (605.09, 310.85) with score 0.996\n - right_wrist: (496.67, 218.61) with score 0.993\n - left_hip: (537.65, 305.16) with score 1.000\n - right_hip: (475.64, 313.71) with score 1.000\n - left_knee: (581.28, 366.44) with score 1.000\n - right_knee: (506.58, 432.27) with score 0.996\n - left_ankle: (575.49, 470.17) with score 0.999\n - right_ankle: (534.34, 442.35) with score 0.994\nFound person at [65.64, -3.94, 526.84, 538.72] with score 0.947\n - left_shoulder: (224.52, 111.13) with score 0.996\n - right_shoulder: (212.09, 110.60) with score 0.998\n - left_elbow: (322.33, 170.98) with score 0.998\n - right_elbow: (235.17, 223.79) with score 1.000\n - left_wrist: (389.08, 222.90) with score 0.997\n - right_wrist: (162.75, 228.10) with score 0.998\n - left_hip: (365.58, 242.19) with score 1.000\n - right_hip: (327.40, 255.20) with score 1.000\n - left_knee: (313.14, 376.06) with score 1.000\n - right_knee: (336.28, 393.63) with score 1.000\n - left_ankle: (428.03, 347.03) with score 1.000\n - right_ankle: (434.31, 510.29) with score 0.992\nFound person at [-0.88, 48.03, 182.29, 381.19] with score 0.787\n - nose: (72.50, 83.26) with score 0.606\n - left_eye: (81.11, 76.66) with score 0.627\n - right_eye: (64.49, 77.73) with score 0.641\n - left_ear: (95.29, 78.63) with score 0.513\n - left_shoulder: (114.15, 109.26) with score 0.918\n - right_shoulder: (46.66, 115.12) with score 0.988\n - left_elbow: (131.40, 160.25) with score 0.351\n - right_elbow: (26.67, 159.11) with score 0.934\n - right_wrist: (6.60, 201.80) with score 0.681\n - left_hip: (110.48, 206.96) with score 0.998\n - right_hip: (60.89, 199.41) with score 0.997\n - left_knee: (118.23, 272.23) with score 0.999\n - right_knee: (66.52, 273.32) with score 0.994\n - left_ankle: (129.82, 346.46) with score 0.999\n - right_ankle: (60.40, 349.13) with score 0.995\nFound person at [512.82, 31.30, 662.28, 314.57] with score 0.451\n - nose: (550.07, 74.26) with score 0.766\n - left_eye: (558.96, 67.14) with score 0.955\n - right_eye: (541.52, 68.23) with score 0.783\n - left_ear: (575.04, 67.61) with score 0.952\n - left_shoulder: (589.39, 102.33) with score 0.996\n - right_shoulder: (511.02, 103.00) with score 0.699\n - left_elbow: (626.71, 148.71) with score 0.997\n - left_wrist: (633.15, 200.33) with score 0.982\n - left_hip: (580.00, 181.21) with score 0.994\n - right_hip: (524.41, 184.62) with score 0.849\n - left_knee: (594.99, 244.95) with score 0.977\n - right_knee: (533.72, 246.37) with score 0.504\n - left_ankle: (598.47, 294.18) with score 0.844\n```\n\n</details>" | {"license": "apache-2.0", "library_name": "transformers.js", "tags": ["pose-estimation"]} | Xenova/RTMO-m | null | [
"transformers.js",
"onnx",
"rtmo",
"pose-estimation",
"license:apache-2.0",
"region:us"
] | null | 2024-04-26T11:12:46+00:00 | [] | [] | TAGS
#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us
|
URL with ONNX weights to be compatible with URL.
## Usage (URL)
If you haven't already, you can install the URL JavaScript library from NPM using:
Example: Perform pose-estimation w/ 'Xenova/RTMO-m'.
<details>
<summary>See example output</summary>
</details> | [
"## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-m'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n</details>"
] | [
"TAGS\n#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us \n",
"## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-m'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n... | [
28,
64
] | [
"TAGS\n#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us \n## Usage (URL)\n\nIf you haven't already, you can install the URL JavaScript library from NPM using:\n\n\nExample: Perform pose-estimation w/ 'Xenova/RTMO-m'.\n\n\n\n<details>\n\n<summary>See example output</summary>\n\n\n\n</deta... |
null | transformers.js | ERROR: type should be string, got "\n\nhttps://github.com/open-mmlab/mmpose/tree/main/projects/rtmo with ONNX weights to be compatible with Transformers.js.\n\n## Usage (Transformers.js)\n\nIf you haven't already, you can install the [Transformers.js](https://huggingface.co/docs/transformers.js) JavaScript library from [NPM](https://www.npmjs.com/package/@xenova/transformers) using:\n```bash\nnpm i @xenova/transformers\n```\n\n**Example:** Perform pose-estimation w/ `Xenova/RTMO-l`.\n\n```js\nimport { AutoModel, AutoProcessor, RawImage } from '@xenova/transformers';\n\n// Load model and processor\nconst model_id = 'Xenova/RTMO-l';\nconst model = await AutoModel.from_pretrained(model_id);\nconst processor = await AutoProcessor.from_pretrained(model_id);\n\n// Read image and run processor\nconst url = 'https://huggingface.co/datasets/Xenova/transformers.js-docs/resolve/main/football-match.jpg';\nconst image = await RawImage.read(url);\nconst { pixel_values, original_sizes, reshaped_input_sizes } = await processor(image);\n\n// Predict bounding boxes and keypoints\nconst { dets, keypoints } = await model({ input: pixel_values });\n\n// Select the first image\nconst predicted_boxes = dets.tolist()[0];\nconst predicted_points = keypoints.tolist()[0];\nconst [height, width] = original_sizes[0];\nconst [resized_height, resized_width] = reshaped_input_sizes[0];\n\n// Compute scale values\nconst xScale = width / resized_width;\nconst yScale = height / resized_height;\n\n// Define thresholds\nconst point_threshold = 0.3;\nconst box_threshold = 0.3;\n\n// Display results\nfor (let i = 0; i < predicted_boxes.length; ++i) {\n const [xmin, ymin, xmax, ymax, box_score] = predicted_boxes[i];\n if (box_score < box_threshold) continue;\n\n const x1 = (xmin * xScale).toFixed(2);\n const y1 = (ymin * yScale).toFixed(2);\n const x2 = (xmax * xScale).toFixed(2);\n const y2 = (ymax * yScale).toFixed(2);\n\n console.log(`Found person at [${x1}, ${y1}, ${x2}, ${y2}] with score ${box_score.toFixed(3)}`)\n const points = predicted_points[i]; // of shape [17, 3]\n for (let id = 0; id < points.length; ++id) {\n const label = model.config.id2label[id];\n const [x, y, point_score] = points[id];\n if (point_score < point_threshold) continue;\n console.log(` - ${label}: (${(x * xScale).toFixed(2)}, ${(y * yScale).toFixed(2)}) with score ${point_score.toFixed(3)}`);\n }\n}\n```\n\n<details>\n\n<summary>See example output</summary>\n\n```\nFound person at [400.13, 66.05, 657.48, 496.67] with score 0.978\n - nose: (520.40, 118.17) with score 0.445\n - left_eye: (531.83, 111.10) with score 0.350\n - left_shoulder: (559.65, 168.66) with score 0.999\n - right_shoulder: (469.70, 160.04) with score 0.999\n - left_elbow: (573.20, 237.82) with score 1.000\n - right_elbow: (438.51, 218.06) with score 0.999\n - left_wrist: (604.74, 308.75) with score 0.999\n - right_wrist: (495.52, 219.24) with score 0.999\n - left_hip: (537.36, 306.24) with score 1.000\n - right_hip: (477.61, 314.79) with score 0.998\n - left_knee: (576.44, 360.67) with score 1.000\n - right_knee: (500.26, 448.33) with score 0.997\n - left_ankle: (575.94, 461.43) with score 0.998\n - right_ankle: (525.18, 436.10) with score 0.996\nFound person at [84.74, 11.57, 524.53, 535.62] with score 0.970\n - left_shoulder: (240.00, 106.15) with score 0.998\n - right_shoulder: (230.72, 131.27) with score 0.999\n - left_elbow: (319.58, 164.42) with score 0.999\n - right_elbow: (232.16, 226.10) with score 1.000\n - left_wrist: (390.95, 220.65) with score 0.999\n - right_wrist: (157.61, 227.93) with score 0.999\n - left_hip: (363.29, 249.14) with score 1.000\n - right_hip: (337.65, 250.50) with score 1.000\n - left_knee: (297.35, 368.55) with score 1.000\n - right_knee: (328.29, 390.84) with score 1.000\n - left_ankle: (433.81, 343.83) with score 0.999\n - right_ankle: (452.74, 504.60) with score 0.995\nFound person at [-4.11, 53.42, 174.91, 372.64] with score 0.644\n - nose: (74.67, 84.38) with score 0.375\n - left_shoulder: (114.29, 113.60) with score 0.991\n - right_shoulder: (44.21, 117.73) with score 0.989\n - left_elbow: (124.69, 159.42) with score 0.978\n - right_elbow: (26.54, 154.78) with score 0.995\n - left_wrist: (132.86, 168.78) with score 0.957\n - right_wrist: (6.44, 195.67) with score 0.986\n - left_hip: (98.90, 199.49) with score 0.978\n - right_hip: (62.77, 200.49) with score 0.976\n - left_knee: (111.91, 277.06) with score 0.998\n - right_knee: (65.08, 276.40) with score 0.999\n - left_ankle: (128.95, 344.65) with score 0.973\n - right_ankle: (63.55, 345.60) with score 0.992\nFound person at [511.40, 32.53, 658.71, 345.63] with score 0.384\n - nose: (554.88, 74.25) with score 0.796\n - left_eye: (563.64, 68.39) with score 0.716\n - right_eye: (547.38, 68.22) with score 0.542\n - left_ear: (575.42, 72.40) with score 0.324\n - left_shoulder: (576.47, 105.27) with score 0.999\n - right_shoulder: (531.19, 105.55) with score 0.956\n - left_elbow: (623.35, 151.54) with score 0.999\n - right_elbow: (549.79, 144.36) with score 0.387\n - left_wrist: (631.33, 198.37) with score 0.991\n - right_wrist: (547.36, 162.58) with score 0.486\n - left_hip: (578.36, 192.67) with score 0.989\n - right_hip: (555.21, 188.00) with score 0.925\n - left_knee: (604.56, 239.95) with score 0.977\n - right_knee: (545.23, 221.37) with score 0.952\n - left_ankle: (587.82, 323.26) with score 0.401\n - right_ankle: (546.77, 322.69) with score 0.846\n```\n\n</details>" | {"license": "apache-2.0", "library_name": "transformers.js", "tags": ["pose-estimation"]} | Xenova/RTMO-l | null | [
"transformers.js",
"onnx",
"rtmo",
"pose-estimation",
"license:apache-2.0",
"region:us"
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#transformers.js #onnx #rtmo #pose-estimation #license-apache-2.0 #region-us
|
URL with ONNX weights to be compatible with URL.
## Usage (URL)
If you haven't already, you can install the URL JavaScript library from NPM using:
Example: Perform pose-estimation w/ 'Xenova/RTMO-l'.
<details>
<summary>See example output</summary>
</details> | [
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": ["unsloth"]} | Anas989898/llama-3-8b-it-codeact-v0.1 | null | [
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"1910.09700"
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#transformers #pytorch #llama #text-generation #unsloth #conversational #arxiv-1910.09700 #autotrain_compatible #endpoints_compatible #text-generation-inference #region-us
|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
- Developed by:
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text-to-image | null | ## Model
 | {"tags": ["stable-diffusion", "text-to-image", "StableDiffusionPipeline", "lora"]} | fearvel/lloyd-de-saloum-pony-v1 | null | [
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | ustunek/gpt-2-doctor-eng | null | [
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#transformers #safetensors #gpt2 #text-generation #arxiv-1910.09700 #autotrain_compatible #endpoints_compatible #text-generation-inference #region-us
|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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- License... | [
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null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# speaker-segmentation-fine-tuned-voxconverse-en
This model is a fine-tuned version of [pyannote/segmentation-3.0](https://hugging... | {"license": "mit", "tags": ["speaker-diarization", "speaker-segmentation", "generated_from_trainer"], "datasets": ["diarizers-community/voxconverse"], "base_model": "pyannote/segmentation-3.0", "model-index": [{"name": "speaker-segmentation-fine-tuned-voxconverse-en", "results": []}]} | tgrhn/speaker-segmentation-fine-tuned-voxconverse-en | null | [
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"base_model:pyannote/segmentation-3.0",
"license:mit",
"endpoints_compatible",
"region:us"
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#transformers #tensorboard #safetensors #pyannet #speaker-diarization #speaker-segmentation #generated_from_trainer #dataset-diarizers-community/voxconverse #base_model-pyannote/segmentation-3.0 #license-mit #endpoints_compatible #region-us
| speaker-segmentation-fine-tuned-voxconverse-en
==============================================
This model is a fine-tuned version of pyannote/segmentation-3.0 on the diarizers-community/voxconverse dataset.
It achieves the following results on the evaluation set:
* Loss: 1.1250
* Der: 0.8257
* False Alarm: 0.3733
* ... | [
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token-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# bert-base-uncased-finetuned-ner
This model is a fine-tuned version of [bert-base-uncased](https://huggingface.co/bert-base-uncas... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "metrics": ["precision", "recall", "f1", "accuracy"], "base_model": "bert-base-uncased", "model-index": [{"name": "bert-base-uncased-finetuned-ner", "results": []}]} | Sevixdd/bert-base-uncased-finetuned-ner | null | [
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#transformers #safetensors #bert #token-classification #generated_from_trainer #base_model-bert-base-uncased #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us
| bert-base-uncased-finetuned-ner
===============================
This model is a fine-tuned version of bert-base-uncased on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 0.1340
* Precision: 0.9582
* Recall: 0.9500
* F1: 0.9541
* Accuracy: 0.9499
Model description
------------... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 2e-05\n* train\\_batch\\_size: 8\n* eval\\_batch\\_size: 8\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 3",
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text-generation | transformers | # ai-playground
The repo currently consists out of
- [forum-gpt/data-creation](/forum-gpt/data-creation/): a package for data creation and manipulation
- [forum-gpt/evaluation-app](/forum-gpt/evaluation-app/): a simple evaluation app
- [forum-gpt/training](forum-gpt/training/): saved axolotl training configurations
... | {} | jfaltermeier/llama3-theia-workshop-johannes-with-config | null | [
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#transformers #pytorch #llama #text-generation #conversational #autotrain_compatible #endpoints_compatible #text-generation-inference #region-us
| # ai-playground
The repo currently consists out of
- forum-gpt/data-creation: a package for data creation and manipulation
- forum-gpt/evaluation-app: a simple evaluation app
- forum-gpt/training: saved axolotl training configurations
## Setup
Use Node '>= 20' with npm '>= 10'.
## Quick start Evaluation App
Set... | [
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text-generation | transformers |
*There currently is an issue with the **model generating random reserved special tokens (like "<|reserved_special_token_49|>") at the end**. Please use with `skip_special_tokens=true`. We will update once we found the reason for this behaviour. If you found a solution, please let us know!*
# Llama 3 DiscoLM German 8b... | {"library_name": "transformers", "tags": []} | mayflowergmbh/Llama3_DiscoLM_German_8b_v0.1_experimental-GPTQ | null | [
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#transformers #llama #text-generation #conversational #autotrain_compatible #endpoints_compatible #text-generation-inference #4-bit #region-us
|
*There currently is an issue with the model generating random reserved special tokens (like "<|reserved_special_token_49|>") at the end. Please use with 'skip_special_tokens=true'. We will update once we found the reason for this behaviour. If you found a solution, please let us know!*
# Llama 3 DiscoLM German 8b v0.... | [
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | nextab/Athena-v1.0-sft | null | [
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|
# Model Card for Model ID
## Model Details
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This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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null | null | The wonderful ToolsBaer OLM to EML Conversion software makes importing Mac Outlook OLM files into EML file formats simple and quick. Software that converts OLM to EML files can handle OLM files of any size or type effortlessly. One of its greatest benefits is its ability to easily import OLM files into a specific EML f... | {} | madelineoliver/ToolsBaer-OLM-to-EML-Conversion | null | [
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null | peft |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
- **Developed by:** [More Information Needed]
- **Funded by [optional]:** [More Information Needed]
- **Shared by [optional]:** ... | {"library_name": "peft", "base_model": "lmsys/vicuna-7b-v1.5"} | tt1225/aic24-track2-multiview-videollava-7b-lora | null | [
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|
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null | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | jd0g/Mistral-7B-NLI-v0.3 | null | [
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# Model Card for Model ID
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This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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- Shared by [optional]:
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null | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | tutuhu/style6 | null | [
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text-generation | transformers | Approach:
The TextSimpleCategoryLLM model is a GPT-2 based language model trained to generate text responses based on input prompts, focusing on a simple categorization task. The model utilizes the GPT-2 architecture, fine-tuned on a dataset consisting of text prompts paired with corresponding categories. During train... | {"language": ["en"], "license": "apache-2.0", "datasets": ["AkilanSelvam/text-simple-categorization"]} | AkilanSelvam/spinsnow-problem-categorizer | null | [
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| Approach:
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text-generation | transformers | Quantizations of https://huggingface.co/jeiku/Foundation_3B
# From original readme
This is a big step forward for 3B class models. Trained on smol PIPPA, alpaca-cleaned, and two custom datasets, and based on https://huggingface.co/jeiku/Rosa_v3_3B
This should serve as a decent fiction model, though it also excels at... | {"language": ["en"], "license": "other", "tags": ["transformers", "gguf", "imatrix", "Foundation_3B"], "pipeline_tag": "text-generation", "inference": false} | duyntnet/Foundation_3B-imatrix-GGUF | null | [
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This is a big step forward for 3B class models. Trained on smol PIPPA, alpaca-cleaned, and two custom datasets, and based on URL
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null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# speaker-segmentation-fine-tuned-callhome-eng
This model is a fine-tuned version of [pyannote/segmentation-3.0](https://huggingfa... | {"license": "mit", "tags": ["speaker-diarization", "speaker-segmentation", "generated_from_trainer"], "datasets": ["diarizers-community/callhome"], "base_model": "pyannote/segmentation-3.0", "model-index": [{"name": "speaker-segmentation-fine-tuned-callhome-eng", "results": []}]} | tgrhn/speaker-segmentation-fine-tuned-callhome-eng | null | [
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| speaker-segmentation-fine-tuned-callhome-eng
============================================
This model is a fine-tuned version of pyannote/segmentation-3.0 on the diarizers-community/callhome eng dataset.
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* Loss: 0.4570
* Der: 0.1803
* False Alarm: 0.0556
* Mis... | [
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null | peft |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
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### Model Description
<!-- Provide a longer summary of what this model is. -->
- **Developed by:** [More Information Needed]
- **Funded by [optional]:** [More Information Needed]
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text-generation | transformers |

## VAGO solutions Llama-3-SauerkrautLM-8b-Instruct
Introducing **Llama-3-SauerkrautLM-8b-Instruct** – our Sauerkraut version of the powerful [meta-llama/Meta-Llama-3-8B-Instruct](https://huggingface... | {"language": ["de", "en"], "license": "other", "tags": ["two stage dpo", "dpo", "hqq"], "license_name": "llama3", "license_link": "LICENSE", "extra_gated_prompt": "### META LLAMA 3 COMMUNITY LICENSE AGREEMENT\nMeta Llama 3 Version Release Date: April 18, 2024\n\"Agreement\" means the terms and conditions for use, repro... | mayflowergmbh/Llama-3-SauerkrautLM-8b-Instruct-HQQ | null | [
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| !SauerkrautLM
VAGO solutions Llama-3-SauerkrautLM-8b-Instruct
-----------------------------------------------
Introducing Llama-3-SauerkrautLM-8b-Instruct – our Sauerkraut version of the powerful meta-llama/Meta-Llama-3-8B-Instruct!
The model Llama-3-SauerkrautLM-8b-Instruct is a joint effort between VAGO Solutio... | [
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null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# speaker-segmentation-fine-tuned-callhome-eng-2
This model is a fine-tuned version of [pyannote/segmentation-3.0](https://hugging... | {"license": "mit", "tags": ["speaker-diarization", "speaker-segmentation", "generated_from_trainer"], "datasets": ["diarizers-community/callhome"], "base_model": "pyannote/segmentation-3.0", "model-index": [{"name": "speaker-segmentation-fine-tuned-callhome-eng-2", "results": []}]} | tgrhn/speaker-segmentation-fine-tuned-callhome-eng-2 | null | [
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| speaker-segmentation-fine-tuned-callhome-eng-2
==============================================
This model is a fine-tuned version of pyannote/segmentation-3.0 on the diarizers-community/callhome eng dataset.
It achieves the following results on the evaluation set:
* Loss: 0.4666
* Der: 0.1814
* False Alarm: 0.0552
*... | [
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text-generation | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# Llama2-mu-23M-1
This model is a fine-tuned version of [](https://huggingface.co/) on an unknown dataset.
It achieves the followi... | {"tags": ["generated_from_trainer"], "model-index": [{"name": "Llama2-mu-23M-1", "results": []}]} | HachiML/Llama2-mu-23M-1 | null | [
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| Llama2-mu-23M-1
===============
This model is a fine-tuned version of [](URL on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 0.3027
Model description
-----------------
More information needed
Intended uses & limitations
---------------------------
More information nee... | [
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text-to-image | diffusers |
<!-- This model card has been generated automatically according to the information the training script had access to. You
should probably proofread and complete it, then remove this comment. -->
# SDXL LoRA DreamBooth - fatimaaa1/model1
<Gallery />
## Model description
These are fatimaaa1/model1 LoRA adaption wei... | {"license": "openrail++", "library_name": "diffusers", "tags": ["text-to-image", "text-to-image", "diffusers-training", "diffusers", "dora", "template:sd-lora", "stable-diffusion-xl", "stable-diffusion-xl-diffusers"], "base_model": "stabilityai/stable-diffusion-xl-base-1.0", "instance_prompt": "a bussiness card", "widg... | fatimaaa1/model1 | null | [
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|
# SDXL LoRA DreamBooth - fatimaaa1/model1
<Gallery />
## Model description
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null | null | # Volt Performance Erfahrungen Deutschland Höhle der löwen Offizielle Website, Kaufen
Volt Performance Erfahrungen Deutschland sind Nahrungsergänzungsmittel zur Steigerung der männlichen Vitalität und sexuellen Leistungsfähigkeit. Sie werden aus einer Mischung natürlicher Inhaltsstoffe hergestellt, die für ihre aphrod... | {} | VKapseln475/VoltPerformance3 | null | [
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| # Volt Performance Erfahrungen Deutschland Höhle der löwen Offizielle Website, Kaufen
Volt Performance Erfahrungen Deutschland sind Nahrungsergänzungsmittel zur Steigerung der männlichen Vitalität und sexuellen Leistungsfähigkeit. Sie werden aus einer Mischung natürlicher Inhaltsstoffe hergestellt, die für ihre aphrod... | [
"# Volt Performance Erfahrungen Deutschland Höhle der löwen Offizielle Website, Kaufen\n\nVolt Performance Erfahrungen Deutschland sind Nahrungsergänzungsmittel zur Steigerung der männlichen Vitalität und sexuellen Leistungsfähigkeit. Sie werden aus einer Mischung natürlicher Inhaltsstoffe hergestellt, die für ihre... | [
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null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# speaker-segmentation-fine-tuned-callhome-eng-3
This model is a fine-tuned version of [pyannote/segmentation-3.0](https://hugging... | {"license": "mit", "tags": ["speaker-diarization", "speaker-segmentation", "generated_from_trainer"], "datasets": ["diarizers-community/callhome"], "base_model": "pyannote/segmentation-3.0", "model-index": [{"name": "speaker-segmentation-fine-tuned-callhome-eng-3", "results": []}]} | tgrhn/speaker-segmentation-fine-tuned-callhome-eng-3 | null | [
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"base_model:pyannote/segmentation-3.0",
"license:mit",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:45:11+00:00 | [] | [] | TAGS
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| speaker-segmentation-fine-tuned-callhome-eng-3
==============================================
This model is a fine-tuned version of pyannote/segmentation-3.0 on the diarizers-community/callhome eng dataset.
It achieves the following results on the evaluation set:
* Loss: 0.4652
* Der: 0.1821
* False Alarm: 0.0597
*... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.001\n* train\\_batch\\_size: 64\n* eval\\_batch\\_size: 64\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: cosine\n* num\\_epochs: 10.0",
"### Tra... | [
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text-generation | transformers |
*There currently is an issue with the **model generating random reserved special tokens (like "<|reserved_special_token_49|>") at the end**. Please use with `skip_special_tokens=true`. We will update once we found the reason for this behaviour. If you found a solution, please let us know!*
# Llama 3 DiscoLM German 8b... | {"library_name": "transformers", "tags": ["hqq"]} | mayflowergmbh/Llama3_DiscoLM_German_8b_v0.1_experimental-HQQ | null | [
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#transformers #llama #text-generation #hqq #conversational #autotrain_compatible #endpoints_compatible #text-generation-inference #region-us
|
*There currently is an issue with the model generating random reserved special tokens (like "<|reserved_special_token_49|>") at the end. Please use with 'skip_special_tokens=true'. We will update once we found the reason for this behaviour. If you found a solution, please let us know!*
# Llama 3 DiscoLM German 8b v0.... | [
"# Llama 3 DiscoLM German 8b v0.1 Experimental\n\n<p align=\"center\"><img src=\"disco_llama.webp\" width=\"400\"></p>",
"# Introduction\n\nLlama 3 DiscoLM German 8b v0.1 Experimental is an experimental Llama 3 based version of DiscoLM German.\n\nThis is an experimental release and not intended for production use... | [
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null | null | ### rakib72642/HDML_Face_Detection_Model
# HuggingFace: https://huggingface.co/rakib72642/HDML_Face_Detection_Model
# Setup Global API
sudo apt install iproute2 -y && sudo apt install wget -y && sudo apt install unzip -y && sudo apt install unzip -y && apt install nvtop -y && sudo apt-get install git-all -y && sudo ... | {} | rakib72642/HDML_Face_Detection_Model | null | [
"region:us"
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| ### rakib72642/HDML_Face_Detection_Model
# HuggingFace: URL
# Setup Global API
sudo apt install iproute2 -y && sudo apt install wget -y && sudo apt install unzip -y && sudo apt install unzip -y && apt install nvtop -y && sudo apt-get install git-all -y && sudo apt-get install git-lfs -y && sud apt-get update && sudo... | [
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null | peft |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
- **Developed by:** [More Information Needed]
- **Funded by [optional]:** [More Information Needed]
- **Shared by [optional]:** ... | {"library_name": "peft", "base_model": "openlm-research/open_llama_3b_v2"} | yiyic/llama3b-text-ent-lora-clf-epoch-1 | null | [
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|
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## Model Details
### Model Description
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### Model Sources [optional]
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null | peft |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
- **Developed by:** [More Information Needed]
- **Funded by [optional]:** [More Information Needed]
- **Shared by [optional]:** ... | {"library_name": "peft", "base_model": "openlm-research/open_llama_3b_v2"} | yiyic/llama3b-text-prop-lora-clf-epoch-1 | null | [
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# Model Card for Model ID
## Model Details
### Model Description
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### Model Sources [optional]
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text-generation | transformers | # Cecilia
**4B**, SFT...
* [microsoft/Phi-3-mini-128k-instruct](https://huggingface.co/microsoft/Phi-3-mini-128k-instruct)
**Chinese, English**
Test 0 of all.
Released as an early preview of our v3 LLMs.
The v3 series covers the "Shi-Ci", "AnFeng" and "Cecilia" LLM products.
The sizes are labelled from small to large... | {"language": ["en"], "license": "cc-by-nc-sa-4.0", "library_name": "transformers", "pipeline_tag": "text-generation", "inference": true} | NLPark/Test0_Cecilia | null | [
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| # Cecilia
4B, SFT...
* microsoft/Phi-3-mini-128k-instruct
Chinese, English
Test 0 of all.
Released as an early preview of our v3 LLMs.
The v3 series covers the "Shi-Ci", "AnFeng" and "Cecilia" LLM products.
The sizes are labelled from small to large "Nano" "Leap" "Pattern" "Avocet "Robin" "Kestrel" | [
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null | transformers | ## About
<!-- ### quantize_version: 1 -->
<!-- ### output_tensor_quantised: 1 -->
<!-- ### convert_type: -->
<!-- ### vocab_type: -->
static quants of https://huggingface.co/yam-peleg/Hebrew-Mistral-7B
<!-- provided-files -->
weighted/imatrix quants seem not to be available (by me) at this time. If they do not show... | {"language": ["en"], "license": "apache-2.0", "library_name": "transformers", "base_model": "yam-peleg/Hebrew-Mistral-7B", "quantized_by": "mradermacher"} | mradermacher/Hebrew-Mistral-7B-GGUF | null | [
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#transformers #gguf #en #base_model-yam-peleg/Hebrew-Mistral-7B #license-apache-2.0 #endpoints_compatible #region-us
| About
-----
static quants of URL
weighted/imatrix quants seem not to be available (by me) at this time. If they do not show up a week or so after the static ones, I have probably not planned for them. Feel free to request them by opening a Community Discussion.
Usage
-----
If you are unsure how to use GGUF file... | [] | [
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | RobertML/sn6c | null | [
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"text-generation",
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"arxiv:1910.09700",
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"1910.09700"
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#transformers #safetensors #stablelm #text-generation #conversational #arxiv-1910.09700 #autotrain_compatible #endpoints_compatible #region-us
|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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- Funded by [optional]:
- Shared by [optional]:
- Model type:
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- License... | [
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null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# speaker-segmentation-fine-tuned-callhome-eng-4
This model is a fine-tuned version of [pyannote/segmentation-3.0](https://hugging... | {"license": "mit", "tags": ["speaker-diarization", "speaker-segmentation", "generated_from_trainer"], "datasets": ["diarizers-community/callhome"], "base_model": "pyannote/segmentation-3.0", "model-index": [{"name": "speaker-segmentation-fine-tuned-callhome-eng-4", "results": []}]} | tgrhn/speaker-segmentation-fine-tuned-callhome-eng-4 | null | [
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"tensorboard",
"safetensors",
"pyannet",
"speaker-diarization",
"speaker-segmentation",
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"dataset:diarizers-community/callhome",
"base_model:pyannote/segmentation-3.0",
"license:mit",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T11:49:43+00:00 | [] | [] | TAGS
#transformers #tensorboard #safetensors #pyannet #speaker-diarization #speaker-segmentation #generated_from_trainer #dataset-diarizers-community/callhome #base_model-pyannote/segmentation-3.0 #license-mit #endpoints_compatible #region-us
| speaker-segmentation-fine-tuned-callhome-eng-4
==============================================
This model is a fine-tuned version of pyannote/segmentation-3.0 on the diarizers-community/callhome eng dataset.
It achieves the following results on the evaluation set:
* Loss: 0.4660
* Der: 0.1806
* False Alarm: 0.0592
*... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.001\n* train\\_batch\\_size: 32\n* eval\\_batch\\_size: 32\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: cosine\n* num\\_epochs: 10.0",
"### Tra... | [
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null | peft |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# falcon-rw-1b-code-generation-llm-task2
This model is a fine-tuned version of [petals-team/falcon-rw-1b](https://huggingface.co/p... | {"license": "apache-2.0", "library_name": "peft", "tags": ["trl", "sft", "generated_from_trainer"], "base_model": "petals-team/falcon-rw-1b", "model-index": [{"name": "falcon-rw-1b-code-generation-llm-task2", "results": []}]} | Katochh/falcon-rw-1b-code-generation-llm-task2 | null | [
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"tensorboard",
"safetensors",
"trl",
"sft",
"generated_from_trainer",
"base_model:petals-team/falcon-rw-1b",
"license:apache-2.0",
"region:us"
] | null | 2024-04-26T11:51:28+00:00 | [] | [] | TAGS
#peft #tensorboard #safetensors #trl #sft #generated_from_trainer #base_model-petals-team/falcon-rw-1b #license-apache-2.0 #region-us
| falcon-rw-1b-code-generation-llm-task2
======================================
This model is a fine-tuned version of petals-team/falcon-rw-1b on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 1.0581
Model description
-----------------
More information needed
Intended uses ... | [
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null | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": ["trl", "sft"]} | Daniel-007/phi-3_qlora_consumer | null | [
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"1910.09700"
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#transformers #safetensors #trl #sft #arxiv-1910.09700 #endpoints_compatible #region-us
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# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
- Developed by:
- Funded by [optional]:
- Shared by [optional]:
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null | transformers | ## About
<!-- ### quantize_version: 1 -->
<!-- ### output_tensor_quantised: 1 -->
<!-- ### convert_type: -->
<!-- ### vocab_type: -->
static quants of https://huggingface.co/openbmb/Eurux-8x22b-nca
<!-- provided-files -->
weighted/imatrix quants are available at https://huggingface.co/mradermacher/Eurux-8x22b-nca-i... | {"language": ["en"], "license": "apache-2.0", "library_name": "transformers", "tags": ["reasoning", "preference_learning", "nca"], "datasets": ["openbmb/UltraInteract_sft", "openbmb/UltraInteract_pair", "openbmb/UltraFeedback"], "base_model": "openbmb/Eurux-8x22b-nca", "quantized_by": "mradermacher"} | mradermacher/Eurux-8x22b-nca-GGUF | null | [
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| About
-----
static quants of URL
weighted/imatrix quants are available at URL
Usage
-----
If you are unsure how to use GGUF files, refer to one of TheBloke's
READMEs for
more details, including on how to concatenate multi-part files.
Provided Quants
---------------
(sorted by size, not necessarily quality. ... | [] | [
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text-generation | transformers | # Cecilia
**4B**, ORPO...
* [microsoft/Phi-3-mini-128k-instruct](https://huggingface.co/microsoft/Phi-3-mini-128k-instruct)
**Chinese, English**
Test 1 of all.
Released as an early preview of our v3 LLMs.
The v3 series covers the "Shi-Ci", "AnFeng" and "Cecilia" LLM products.
The sizes are labelled from small to larg... | {"language": ["en"], "license": "cc-by-nc-sa-4.0", "library_name": "transformers", "pipeline_tag": "text-generation", "inference": true} | NLPark/Test1_Cecilia | null | [
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#transformers #pytorch #phi3 #text-generation #conversational #custom_code #en #license-cc-by-nc-sa-4.0 #autotrain_compatible #endpoints_compatible #region-us
| # Cecilia
4B, ORPO...
* microsoft/Phi-3-mini-128k-instruct
Chinese, English
Test 1 of all.
Released as an early preview of our v3 LLMs.
The v3 series covers the "Shi-Ci", "AnFeng" and "Cecilia" LLM products.
The sizes are labelled from small to large "Nano" "Leap" "Pattern" "Avocet "Robin" "Kestrel" | [
"# Cecilia\n4B, ORPO...\n\n* microsoft/Phi-3-mini-128k-instruct\n\nChinese, English\nTest 1 of all.\nReleased as an early preview of our v3 LLMs.\nThe v3 series covers the \"Shi-Ci\", \"AnFeng\" and \"Cecilia\" LLM products.\nThe sizes are labelled from small to large \"Nano\" \"Leap\" \"Pattern\" \"Avocet \"Robin\... | [
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text-generation | transformers |
# mayflowergmbh/Llama3_DiscoLM_German_8b_v0.1_experimental-4bit
This model was converted to MLX format from [`DiscoResearch/Llama3_DiscoLM_German_8b_v0.1_experimental`]().
Refer to the [original model card](https://huggingface.co/DiscoResearch/Llama3_DiscoLM_German_8b_v0.1_experimental) for more details on the model.
... | {"library_name": "transformers", "tags": ["mlx"]} | mayflowergmbh/Llama3_DiscoLM_German_8b_v0.1_experimental-4bit | null | [
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"region:us"
] | null | 2024-04-26T11:54:23+00:00 | [] | [] | TAGS
#transformers #safetensors #llama #text-generation #mlx #conversational #autotrain_compatible #endpoints_compatible #text-generation-inference #region-us
|
# mayflowergmbh/Llama3_DiscoLM_German_8b_v0.1_experimental-4bit
This model was converted to MLX format from ['DiscoResearch/Llama3_DiscoLM_German_8b_v0.1_experimental']().
Refer to the original model card for more details on the model.
## Use with mlx
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null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# speaker-segmentation-fine-tuned-callhome-eng-5
This model is a fine-tuned version of [pyannote/segmentation-3.0](https://hugging... | {"license": "mit", "tags": ["speaker-diarization", "speaker-segmentation", "generated_from_trainer"], "datasets": ["diarizers-community/callhome"], "base_model": "pyannote/segmentation-3.0", "model-index": [{"name": "speaker-segmentation-fine-tuned-callhome-eng-5", "results": []}]} | tgrhn/speaker-segmentation-fine-tuned-callhome-eng-5 | null | [
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| speaker-segmentation-fine-tuned-callhome-eng-5
==============================================
This model is a fine-tuned version of pyannote/segmentation-3.0 on the diarizers-community/callhome eng dataset.
It achieves the following results on the evaluation set:
* Loss: 0.4674
* Der: 0.1833
* False Alarm: 0.0583
*... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.0003\n* train\\_batch\\_size: 64\n* eval\\_batch\\_size: 32\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: cosine\n* num\\_epochs: 20.0",
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text-generation | transformers | # Llama-3-Orca-2.0-8B
<!-- Provide a quick summary of what the model is/does. -->

## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
I fine-tuned l... | {"license": "other", "library_name": "transformers"} | Locutusque/Llama-3-Orca-2.0-8B | null | [
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"llama",
"text-generation",
"license:other",
"autotrain_compatible",
"endpoints_compatible",
"text-generation-inference",
"region:us"
] | null | 2024-04-26T11:55:17+00:00 | [] | [] | TAGS
#transformers #safetensors #llama #text-generation #license-other #autotrain_compatible #endpoints_compatible #text-generation-inference #region-us
| # Llama-3-Orca-2.0-8B
!image/png
## Model Details
### Model Description
I fine-tuned llama-3 8B on mainly SlimOrca, along with other datasets to improve performance in math, coding, and writing. More data source information to come.
- Developed by: Locutusque
- Model type: Built with Meta Llama 3
- Language... | [
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null | transformers |
# Uploaded model
- **Developed by:** hunterlee27
- **License:** apache-2.0
- **Finetuned from model :** unsloth/llama-3-8b-Instruct-bnb-4bit
This llama model was trained 2x faster with [Unsloth](https://github.com/unslothai/unsloth) and Huggingface's TRL library.
[<img src="https://raw.githubusercontent.com/unslot... | {"language": ["en"], "license": "apache-2.0", "tags": ["text-generation-inference", "transformers", "unsloth", "llama", "trl"], "base_model": "unsloth/llama-3-8b-Instruct-bnb-4bit"} | hunterlee27/chinese-llama3-chat | null | [
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|
# Uploaded model
- Developed by: hunterlee27
- License: apache-2.0
- Finetuned from model : unsloth/llama-3-8b-Instruct-bnb-4bit
This llama model was trained 2x faster with Unsloth and Huggingface's TRL library.
<img src="URL width="200"/>
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summarization | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# t5-small-finetuned-multinews
This model is a fine-tuned version of [t5-small](https://huggingface.co/t5-small) on an unknown dat... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "metrics": ["rouge"], "base_model": "t5-small", "pipeline_tag": "summarization", "model-index": [{"name": "t5-small-finetuned-multinews", "results": []}]} | Vexemous/t5-small-finetuned-multinews | null | [
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| t5-small-finetuned-multinews
============================
This model is a fine-tuned version of t5-small on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 2.7276
* Rouge1: 14.7073
* Rouge2: 4.8849
* Rougel: 11.336
* Rougelsum: 13.1015
* Gen Len: 18.98
Model description
------... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 2e-05\n* train\\_batch\\_size: 16\n* eval\\_batch\\_size: 16\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 5\n* mixed\\_prec... | [
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automatic-speech-recognition | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# test
This model is a fine-tuned version of [openai/whisper-base](https://huggingface.co/openai/whisper-base) on the common_voice... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "datasets": ["common_voice_11_0"], "metrics": ["wer"], "base_model": "openai/whisper-base", "model-index": [{"name": "test", "results": [{"task": {"type": "automatic-speech-recognition", "name": "Automatic Speech Recognition"}, "dataset": {"name": "common_vo... | LadislavVasina1/test-cv11-train-aug-test-aug | null | [
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"license:apache-2.0",
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| test
====
This model is a fine-tuned version of openai/whisper-base on the common\_voice\_11\_0 dataset.
It achieves the following results on the evaluation set:
* Loss: 0.3770
* Wer: 35.1623
Model description
-----------------
More information needed
Intended uses & limitations
---------------------------
... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 1e-05\n* train\\_batch\\_size: 8\n* eval\\_batch\\_size: 8\n* seed: 42\n* gradient\\_accumulation\\_steps: 4\n* total\\_train\\_batch\\_size: 32\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1... | [
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null | transformers | ## About
<!-- ### quantize_version: 1 -->
<!-- ### output_tensor_quantised: 1 -->
<!-- ### convert_type: -->
<!-- ### vocab_type: -->
static quants of https://huggingface.co/jun10k/Qwen1.5-7B-MeChat
<!-- provided-files -->
weighted/imatrix quants seem not to be available (by me) at this time. If they do not show up... | {"language": ["en"], "license": "apache-2.0", "library_name": "transformers", "tags": ["medical"], "base_model": "jun10k/Qwen1.5-7B-MeChat", "quantized_by": "mradermacher"} | mradermacher/Qwen1.5-7B-MeChat-GGUF | null | [
"transformers",
"gguf",
"medical",
"en",
"base_model:jun10k/Qwen1.5-7B-MeChat",
"license:apache-2.0",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T12:00:27+00:00 | [] | [
"en"
] | TAGS
#transformers #gguf #medical #en #base_model-jun10k/Qwen1.5-7B-MeChat #license-apache-2.0 #endpoints_compatible #region-us
| About
-----
static quants of URL
weighted/imatrix quants seem not to be available (by me) at this time. If they do not show up a week or so after the static ones, I have probably not planned for them. Feel free to request them by opening a Community Discussion.
Usage
-----
If you are unsure how to use GGUF file... | [] | [
"TAGS\n#transformers #gguf #medical #en #base_model-jun10k/Qwen1.5-7B-MeChat #license-apache-2.0 #endpoints_compatible #region-us \n"
] | [
49
] | [
"TAGS\n#transformers #gguf #medical #en #base_model-jun10k/Qwen1.5-7B-MeChat #license-apache-2.0 #endpoints_compatible #region-us \n"
] |
null | mlx |
# mayflowergmbh/Llama-3-SauerkrautLM-8b-Instruct-4bit
This model was converted to MLX format from [`VAGOsolutions/Llama-3-SauerkrautLM-8b-Instruct`]().
Refer to the [original model card](https://huggingface.co/VAGOsolutions/Llama-3-SauerkrautLM-8b-Instruct) for more details on the model.
## Use with mlx
```bash
pip i... | {"language": ["de", "en"], "license": "other", "tags": ["two stage dpo", "dpo", "mlx"], "license_name": "llama3", "license_link": "LICENSE", "extra_gated_prompt": "### META LLAMA 3 COMMUNITY LICENSE AGREEMENT\nMeta Llama 3 Version Release Date: April 18, 2024\n\"Agreement\" means the terms and conditions for use, repro... | mayflowergmbh/Llama-3-SauerkrautLM-8b-Instruct-4bit | null | [
"mlx",
"safetensors",
"llama",
"two stage dpo",
"dpo",
"de",
"en",
"license:other",
"region:us"
] | null | 2024-04-26T12:00:51+00:00 | [] | [
"de",
"en"
] | TAGS
#mlx #safetensors #llama #two stage dpo #dpo #de #en #license-other #region-us
|
# mayflowergmbh/Llama-3-SauerkrautLM-8b-Instruct-4bit
This model was converted to MLX format from ['VAGOsolutions/Llama-3-SauerkrautLM-8b-Instruct']().
Refer to the original model card for more details on the model.
## Use with mlx
| [
"# mayflowergmbh/Llama-3-SauerkrautLM-8b-Instruct-4bit\nThis model was converted to MLX format from ['VAGOsolutions/Llama-3-SauerkrautLM-8b-Instruct']().\nRefer to the original model card for more details on the model.",
"## Use with mlx"
] | [
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"# mayflowergmbh/Llama-3-SauerkrautLM-8b-Instruct-4bit\nThis model was converted to MLX format from ['VAGOsolutions/Llama-3-SauerkrautLM-8b-Instruct']().\nRefer to the original model card for more details on the model.",
... | [
31,
76,
6
] | [
"TAGS\n#mlx #safetensors #llama #two stage dpo #dpo #de #en #license-other #region-us \n# mayflowergmbh/Llama-3-SauerkrautLM-8b-Instruct-4bit\nThis model was converted to MLX format from ['VAGOsolutions/Llama-3-SauerkrautLM-8b-Instruct']().\nRefer to the original model card for more details on the model.## Use with... |
null | peft |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# bert-LoRA-reminder
This model is a fine-tuned version of [dbmdz/bert-base-italian-uncased](https://huggingface.co/dbmdz/bert-bas... | {"license": "mit", "library_name": "peft", "tags": ["generated_from_trainer"], "metrics": ["accuracy"], "base_model": "dbmdz/bert-base-italian-uncased", "model-index": [{"name": "bert-LoRA-reminder", "results": []}]} | AlexMason00/bert-LoRA-reminder | null | [
"peft",
"tensorboard",
"safetensors",
"generated_from_trainer",
"base_model:dbmdz/bert-base-italian-uncased",
"license:mit",
"region:us"
] | null | 2024-04-26T12:01:49+00:00 | [] | [] | TAGS
#peft #tensorboard #safetensors #generated_from_trainer #base_model-dbmdz/bert-base-italian-uncased #license-mit #region-us
| bert-LoRA-reminder
==================
This model is a fine-tuned version of dbmdz/bert-base-italian-uncased on the None dataset.
It achieves the following results on the evaluation set:
* Loss: 0.2139
* Accuracy: 0.9545
Model description
-----------------
More information needed
Intended uses & limitations
--... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 5e-05\n* train\\_batch\\_size: 8\n* eval\\_batch\\_size: 8\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 30",
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"TAGS\n#peft #tensorboard #safetensors #generated_from_trainer #base_model-dbmdz/bert-base-italian-uncased #license-mit #region-us \n### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 5e-05\n* train\\_batch\\_size: 8\n* eval\\_batch\\_size: 8\n* seed: ... |
token-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# bert-ex
This model is a fine-tuned version of [bert-base-cased](https://huggingface.co/bert-base-cased) on an unknown dataset.
I... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "metrics": ["precision", "recall", "f1", "accuracy"], "base_model": "bert-base-cased", "model-index": [{"name": "bert-ex", "results": []}]} | Lily-Tina/bert-ex | null | [
"transformers",
"safetensors",
"bert",
"token-classification",
"generated_from_trainer",
"base_model:bert-base-cased",
"license:apache-2.0",
"autotrain_compatible",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T12:02:18+00:00 | [] | [] | TAGS
#transformers #safetensors #bert #token-classification #generated_from_trainer #base_model-bert-base-cased #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us
| bert-ex
=======
This model is a fine-tuned version of bert-base-cased on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 0.0628
* Precision: 0.9296
* Recall: 0.9488
* F1: 0.9391
* Accuracy: 0.9864
Model description
-----------------
More information needed
Intended uses & ... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 2e-05\n* train\\_batch\\_size: 8\n* eval\\_batch\\_size: 8\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 3",
"### Training... | [
"TAGS\n#transformers #safetensors #bert #token-classification #generated_from_trainer #base_model-bert-base-cased #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us \n",
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 2e-0... | [
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"TAGS\n#transformers #safetensors #bert #token-classification #generated_from_trainer #base_model-bert-base-cased #license-apache-2.0 #autotrain_compatible #endpoints_compatible #region-us \n### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 2e-05\n* t... |
null | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | HenryCai1129/adapter-llama-adaptertoxic2nontoxic-100-50-0.006 | null | [
"transformers",
"safetensors",
"arxiv:1910.09700",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T12:03:02+00:00 | [
"1910.09700"
] | [] | TAGS
#transformers #safetensors #arxiv-1910.09700 #endpoints_compatible #region-us
|
# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
- Developed by:
- Funded by [optional]:
- Shared by [optional]:
- Model type:
- Language(s) (NLP):
- License... | [
"# Model Card for Model ID",
"## Model Details",
"### Model Description\n\n\n\nThis is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.\n\n- Developed by: \n- Funded by [optional]: \n- Shared by [optional]: \n- Model type: \n- Language(s)... | [
"TAGS\n#transformers #safetensors #arxiv-1910.09700 #endpoints_compatible #region-us \n",
"# Model Card for Model ID",
"## Model Details",
"### Model Description\n\n\n\nThis is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.\n\n- Devel... | [
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null | transformers | ## About
<!-- ### quantize_version: 1 -->
<!-- ### output_tensor_quantised: 1 -->
<!-- ### convert_type: -->
<!-- ### vocab_type: -->
static quants of https://huggingface.co/v2ray/SchizoGPT-8x22B
<!-- provided-files -->
weighted/imatrix quants are available at https://huggingface.co/mradermacher/SchizoGPT-8x22B-i1-... | {"language": ["en"], "license": "mit", "library_name": "transformers", "tags": ["not-for-all-audiences"], "datasets": ["v2ray/r-chatgpt-general-dump"], "base_model": "v2ray/SchizoGPT-8x22B", "quantized_by": "mradermacher"} | mradermacher/SchizoGPT-8x22B-GGUF | null | [
"transformers",
"not-for-all-audiences",
"en",
"dataset:v2ray/r-chatgpt-general-dump",
"base_model:v2ray/SchizoGPT-8x22B",
"license:mit",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T12:05:25+00:00 | [] | [
"en"
] | TAGS
#transformers #not-for-all-audiences #en #dataset-v2ray/r-chatgpt-general-dump #base_model-v2ray/SchizoGPT-8x22B #license-mit #endpoints_compatible #region-us
| About
-----
static quants of URL
weighted/imatrix quants are available at URL
Usage
-----
If you are unsure how to use GGUF files, refer to one of TheBloke's
READMEs for
more details, including on how to concatenate multi-part files.
Provided Quants
---------------
(sorted by size, not necessarily quality. ... | [] | [
"TAGS\n#transformers #not-for-all-audiences #en #dataset-v2ray/r-chatgpt-general-dump #base_model-v2ray/SchizoGPT-8x22B #license-mit #endpoints_compatible #region-us \n"
] | [
61
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] |
translation | transformers | !pip install sentencepiece transformers==4.33
import torch
from transformers import NllbTokenizer, AutoModelForSeq2SeqLM
def fix_tokenizer(tokenizer, new_lang='fer_Latn'):
""" Add a new language token to the tokenizer vocabulary (this should be done each time after its initialization) """
old_len = len(tokeniz... | {"language": ["en"], "license": "mit", "pipeline_tag": "translation"} | DinoDelija/nllb_english_fering | null | [
"transformers",
"pytorch",
"m2m_100",
"text2text-generation",
"translation",
"en",
"license:mit",
"autotrain_compatible",
"endpoints_compatible",
"region:us",
"has_space"
] | null | 2024-04-26T12:05:56+00:00 | [] | [
"en"
] | TAGS
#transformers #pytorch #m2m_100 #text2text-generation #translation #en #license-mit #autotrain_compatible #endpoints_compatible #region-us #has_space
| !pip install sentencepiece transformers==4.33
import torch
from transformers import NllbTokenizer, AutoModelForSeq2SeqLM
def fix_tokenizer(tokenizer, new_lang='fer_Latn'):
""" Add a new language token to the tokenizer vocabulary (this should be done each time after its initialization) """
old_len = len(tokeniz... | [
"# always move \"mask\" to the last position\n tokenizer.fairseq_tokens_to_ids[\"<mask>\"] = len(tokenizer.sp_model) + len(tokenizer.lang_code_to_id) + tokenizer.fairseq_offset\n\n tokenizer.fairseq_tokens_to_ids.update(tokenizer.lang_code_to_id)\n tokenizer.fairseq_ids_to_tokens = {v: k for k, v in tokeni... | [
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"# always move \"mask\" to the last position\n tokenizer.fairseq_tokens_to_ids[\"<mask>\"] = len(tokenizer.sp_model) + len(tokenizer.lang_code_to_id)... | [
45,
577
] | [
"TAGS\n#transformers #pytorch #m2m_100 #text2text-generation #translation #en #license-mit #autotrain_compatible #endpoints_compatible #region-us #has_space \n# always move \"mask\" to the last position\n tokenizer.fairseq_tokens_to_ids[\"<mask>\"] = len(tokenizer.sp_model) + len(tokenizer.lang_code_to_id) + tok... |
null | peft |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# DistilBertLoRa
This model is a fine-tuned version of [distilbert-base-uncased](https://huggingface.co/distilbert-base-uncased) o... | {"license": "apache-2.0", "library_name": "peft", "tags": ["generated_from_trainer"], "metrics": ["accuracy"], "base_model": "distilbert-base-uncased", "model-index": [{"name": "DistilBertLoRa", "results": []}]} | Abdo36/DistilBertLoRa | null | [
"peft",
"tensorboard",
"safetensors",
"generated_from_trainer",
"base_model:distilbert-base-uncased",
"license:apache-2.0",
"region:us"
] | null | 2024-04-26T12:06:51+00:00 | [] | [] | TAGS
#peft #tensorboard #safetensors #generated_from_trainer #base_model-distilbert-base-uncased #license-apache-2.0 #region-us
| DistilBertLoRa
==============
This model is a fine-tuned version of distilbert-base-uncased on the IMDB Movie dataset.
It achieves the following results on the evaluation set:
* Loss: 1.0234
* Accuracy: {'accuracy': 0.884}
Model description
-----------------
More information needed
Intended uses & limitations... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.001\n* train\\_batch\\_size: 4\n* eval\\_batch\\_size: 4\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 10",
"### Trainin... | [
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42,
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5,
52
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"TAGS\n#peft #tensorboard #safetensors #generated_from_trainer #base_model-distilbert-base-uncased #license-apache-2.0 #region-us \n### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.001\n* train\\_batch\\_size: 4\n* eval\\_batch\\_size: 4\n* seed: 4... |
null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# speaker-segmentation-fine-tuned-callhome-eng-6
This model is a fine-tuned version of [pyannote/segmentation-3.0](https://hugging... | {"license": "mit", "tags": ["speaker-diarization", "speaker-segmentation", "generated_from_trainer"], "datasets": ["diarizers-community/callhome"], "base_model": "pyannote/segmentation-3.0", "model-index": [{"name": "speaker-segmentation-fine-tuned-callhome-eng-6", "results": []}]} | tgrhn/speaker-segmentation-fine-tuned-callhome-eng-6 | null | [
"transformers",
"tensorboard",
"safetensors",
"pyannet",
"speaker-diarization",
"speaker-segmentation",
"generated_from_trainer",
"dataset:diarizers-community/callhome",
"base_model:pyannote/segmentation-3.0",
"license:mit",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T12:07:22+00:00 | [] | [] | TAGS
#transformers #tensorboard #safetensors #pyannet #speaker-diarization #speaker-segmentation #generated_from_trainer #dataset-diarizers-community/callhome #base_model-pyannote/segmentation-3.0 #license-mit #endpoints_compatible #region-us
| speaker-segmentation-fine-tuned-callhome-eng-6
==============================================
This model is a fine-tuned version of pyannote/segmentation-3.0 on the diarizers-community/callhome eng dataset.
It achieves the following results on the evaluation set:
* Loss: 0.5147
* Der: 0.1839
* False Alarm: 0.0668
*... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.002\n* train\\_batch\\_size: 32\n* eval\\_batch\\_size: 32\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 20.0",
"### Tra... | [
"TAGS\n#transformers #tensorboard #safetensors #pyannet #speaker-diarization #speaker-segmentation #generated_from_trainer #dataset-diarizers-community/callhome #base_model-pyannote/segmentation-3.0 #license-mit #endpoints_compatible #region-us \n",
"### Training hyperparameters\n\n\nThe following hyperparameters... | [
71,
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44
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"TAGS\n#transformers #tensorboard #safetensors #pyannet #speaker-diarization #speaker-segmentation #generated_from_trainer #dataset-diarizers-community/callhome #base_model-pyannote/segmentation-3.0 #license-mit #endpoints_compatible #region-us \n### Training hyperparameters\n\n\nThe following hyperparameters were ... |
reinforcement-learning | stable-baselines3 |
# **PPO** Agent playing **LunarLander-v2**
This is a trained model of a **PPO** agent playing **LunarLander-v2**
using the [stable-baselines3 library](https://github.com/DLR-RM/stable-baselines3).
## Usage (with Stable-baselines3)
TODO: Add your code
```python
from stable_baselines3 import ...
from huggingface_sb3 ... | {"library_name": "stable-baselines3", "tags": ["LunarLander-v2", "deep-reinforcement-learning", "reinforcement-learning", "stable-baselines3"], "model-index": [{"name": "PPO", "results": [{"task": {"type": "reinforcement-learning", "name": "reinforcement-learning"}, "dataset": {"name": "LunarLander-v2", "type": "LunarL... | Jurij1/ppo-LunarLander-v2 | null | [
"stable-baselines3",
"LunarLander-v2",
"deep-reinforcement-learning",
"reinforcement-learning",
"model-index",
"region:us"
] | null | 2024-04-26T12:08:36+00:00 | [] | [] | TAGS
#stable-baselines3 #LunarLander-v2 #deep-reinforcement-learning #reinforcement-learning #model-index #region-us
|
# PPO Agent playing LunarLander-v2
This is a trained model of a PPO agent playing LunarLander-v2
using the stable-baselines3 library.
## Usage (with Stable-baselines3)
TODO: Add your code
| [
"# PPO Agent playing LunarLander-v2\nThis is a trained model of a PPO agent playing LunarLander-v2\nusing the stable-baselines3 library.",
"## Usage (with Stable-baselines3)\nTODO: Add your code"
] | [
"TAGS\n#stable-baselines3 #LunarLander-v2 #deep-reinforcement-learning #reinforcement-learning #model-index #region-us \n",
"# PPO Agent playing LunarLander-v2\nThis is a trained model of a PPO agent playing LunarLander-v2\nusing the stable-baselines3 library.",
"## Usage (with Stable-baselines3)\nTODO: Add you... | [
31,
35,
17
] | [
"TAGS\n#stable-baselines3 #LunarLander-v2 #deep-reinforcement-learning #reinforcement-learning #model-index #region-us \n# PPO Agent playing LunarLander-v2\nThis is a trained model of a PPO agent playing LunarLander-v2\nusing the stable-baselines3 library.## Usage (with Stable-baselines3)\nTODO: Add your code"
] |
null | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# segformer-b1-finetuned-cityscapes-1024-1024-straighter-only
This model is a fine-tuned version of [nvidia/segformer-b1-finetuned... | {"license": "other", "tags": ["generated_from_trainer"], "base_model": "nvidia/segformer-b1-finetuned-cityscapes-1024-1024", "model-index": [{"name": "segformer-b1-finetuned-cityscapes-1024-1024-straighter-only", "results": []}]} | selvaa/segformer-b1-finetuned-cityscapes-1024-1024-straighter-only | null | [
"transformers",
"tensorboard",
"safetensors",
"segformer",
"generated_from_trainer",
"base_model:nvidia/segformer-b1-finetuned-cityscapes-1024-1024",
"license:other",
"endpoints_compatible",
"region:us"
] | null | 2024-04-26T12:10:12+00:00 | [] | [] | TAGS
#transformers #tensorboard #safetensors #segformer #generated_from_trainer #base_model-nvidia/segformer-b1-finetuned-cityscapes-1024-1024 #license-other #endpoints_compatible #region-us
| segformer-b1-finetuned-cityscapes-1024-1024-straighter-only
===========================================================
This model is a fine-tuned version of nvidia/segformer-b1-finetuned-cityscapes-1024-1024 on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 0.0331
* Mean Iou: ... | [
"### Training hyperparameters\n\n\nThe following hyperparameters were used during training:\n\n\n* learning\\_rate: 0.0002\n* train\\_batch\\_size: 3\n* eval\\_batch\\_size: 3\n* seed: 42\n* optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08\n* lr\\_scheduler\\_type: linear\n* num\\_epochs: 60\n* mixed\\_prec... | [
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null | peft |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# gemma-2b-dolly-qa
This model is a fine-tuned version of [google/gemma-2b](https://huggingface.co/google/gemma-2b) on the generat... | {"license": "gemma", "library_name": "peft", "tags": ["trl", "sft", "generated_from_trainer"], "datasets": ["generator"], "base_model": "google/gemma-2b", "model-index": [{"name": "gemma-2b-dolly-qa", "results": []}]} | snarktank/gemma-2b-dolly-qa | null | [
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| gemma-2b-dolly-qa
=================
This model is a fine-tuned version of google/gemma-2b on the generator dataset.
It achieves the following results on the evaluation set:
* Loss: 2.0211
Model description
-----------------
More information needed
Intended uses & limitations
---------------------------
More... | [
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null | peft |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
- **Developed by:** [More Information Needed]
- **Funded by [optional]:** [More Information Needed]
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null | peft |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
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- **Funded by [optional]:** [More Information Needed]
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null | peft |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
- **Developed by:** [More Information Needed]
- **Funded by [optional]:** [More Information Needed]
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null | peft |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# Siren1000-Chatbot-Phi2
This model is a fine-tuned version of [microsoft/phi-2](https://huggingface.co/microsoft/phi-2) on an unk... | {"license": "mit", "library_name": "peft", "tags": ["trl", "sft", "generated_from_trainer"], "base_model": "microsoft/phi-2", "model-index": [{"name": "Siren1000-Chatbot-Phi2", "results": []}]} | RayBoustany/Siren1000-Chatbot-Phi2 | null | [
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|
# Siren1000-Chatbot-Phi2
This model is a fine-tuned version of microsoft/phi-2 on an unknown dataset.
## Model description
More information needed
## Intended uses & limitations
More information needed
## Training and evaluation data
More information needed
## Training procedure
### Training hyperparameters... | [
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image-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# swin-tiny-patch4-window7-224-finetuned-eurosat
This model is a fine-tuned version of [microsoft/swin-tiny-patch4-window7-224](ht... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "datasets": ["imagefolder"], "metrics": ["accuracy"], "base_model": "microsoft/swin-tiny-patch4-window7-224", "model-index": [{"name": "swin-tiny-patch4-window7-224-finetuned-eurosat", "results": [{"task": {"type": "image-classification", "name": "Image Clas... | rhlc/swin-tiny-patch4-window7-224-finetuned-eurosat | null | [
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| swin-tiny-patch4-window7-224-finetuned-eurosat
==============================================
This model is a fine-tuned version of microsoft/swin-tiny-patch4-window7-224 on the imagefolder dataset.
It achieves the following results on the evaluation set:
* Loss: 0.0718
* Accuracy: 0.9744
Model description
------... | [
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text-classification | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# distilbert-base-uncased-finetuned-cola
This model is a fine-tuned version of [distilbert-base-uncased](https://huggingface.co/di... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "metrics": ["matthews_correlation"], "base_model": "distilbert-base-uncased", "model-index": [{"name": "distilbert-base-uncased-finetuned-cola", "results": []}]} | kkater/distilbert-base-uncased-finetuned-cola | null | [
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| distilbert-base-uncased-finetuned-cola
======================================
This model is a fine-tuned version of distilbert-base-uncased on an unknown dataset.
It achieves the following results on the evaluation set:
* Loss: 0.8684
* Matthews Correlation: 0.5356
Model description
-----------------
More infor... | [
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reinforcement-learning | null |
# **Reinforce** Agent playing **CartPole-v1**
This is a trained model of a **Reinforce** agent playing **CartPole-v1** .
To learn to use this model and train yours check Unit 4 of the Deep Reinforcement Learning Course: https://huggingface.co/deep-rl-course/unit4/introduction
| {"tags": ["CartPole-v1", "reinforce", "reinforcement-learning", "custom-implementation", "deep-rl-class"], "model-index": [{"name": "Reinforce-CartPole-v1", "results": [{"task": {"type": "reinforcement-learning", "name": "reinforcement-learning"}, "dataset": {"name": "CartPole-v1", "type": "CartPole-v1"}, "metrics": [{... | hossniper/Reinforce-CartPole-v1 | null | [
"CartPole-v1",
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#CartPole-v1 #reinforce #reinforcement-learning #custom-implementation #deep-rl-class #model-index #region-us
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# Reinforce Agent playing CartPole-v1
This is a trained model of a Reinforce agent playing CartPole-v1 .
To learn to use this model and train yours check Unit 4 of the Deep Reinforcement Learning Course: URL
| [
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question-answering | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# distilled-bert-finetuned-squad
This model is a fine-tuned version of [distilbert/distilbert-base-uncased](https://huggingface.co... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "base_model": "distilbert/distilbert-base-uncased", "model-index": [{"name": "distilled-bert-finetuned-squad", "results": []}]} | momo345/distilled-bert-finetuned-squad | null | [
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|
# distilled-bert-finetuned-squad
This model is a fine-tuned version of distilbert/distilbert-base-uncased on an unknown dataset.
## Model description
More information needed
## Intended uses & limitations
More information needed
## Training and evaluation data
More information needed
## Training procedure
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": ["trl", "sft"]} | vaatsav06/Llama3_medqa | null | [
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# Model Card for Model ID
## Model Details
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This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | RayBoustany/Siren1000-Chatbot-Phi2-Merged | null | [
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# Model Card for Model ID
## Model Details
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This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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null | transformers |
# Uploaded model
- **Developed by:** Digeriuz
- **License:** apache-2.0
- **Finetuned from model :** unsloth/mistral-7b-bnb-4bit
This mistral model was trained 2x faster with [Unsloth](https://github.com/unslothai/unsloth) and Huggingface's TRL library.
[<img src="https://raw.githubusercontent.com/unslothai/unslot... | {"language": ["en"], "license": "apache-2.0", "tags": ["text-generation-inference", "transformers", "unsloth", "mistral", "gguf"], "base_model": "unsloth/mistral-7b-bnb-4bit"} | Digeriuz/mistral-7b-bnb-4bit-annomi | null | [
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# Uploaded model
- Developed by: Digeriuz
- License: apache-2.0
- Finetuned from model : unsloth/mistral-7b-bnb-4bit
This mistral model was trained 2x faster with Unsloth and Huggingface's TRL library.
<img src="URL width="200"/>
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text-generation | transformers |
# Model Card for Model ID
<!-- Provide a quick summary of what the model is/does. -->
## Model Details
### Model Description
<!-- Provide a longer summary of what this model is. -->
This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generate... | {"library_name": "transformers", "tags": []} | OwOOwO/final2 | null | [
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# Model Card for Model ID
## Model Details
### Model Description
This is the model card of a transformers model that has been pushed on the Hub. This model card has been automatically generated.
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- Funded by [optional]:
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text-generation | transformers |
# Uploaded model
- **Developed by:** ruslandev
- **License:** apache-2.0
- **Finetuned from model :** unsloth/llama-3-8b-bnb-4bit
This model is finetuned on the data of [Samantha](https://erichartford.com/meet-samantha).
Prompt format is Alpaca. I used the same system prompt as the original Samantha.
```
"""Below... | {"language": ["en"], "license": "apache-2.0", "tags": ["text-generation-inference", "transformers", "unsloth", "llama", "trl"], "datasets": ["cognitivecomputations/samantha-data"], "base_model": "unsloth/llama-3-8b-bnb-4bit"} | ruslandev/llama-3-8b-samantha | null | [
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| Uploaded model
==============
* Developed by: ruslandev
* License: apache-2.0
* Finetuned from model : unsloth/llama-3-8b-bnb-4bit
This model is finetuned on the data of Samantha.
Prompt format is Alpaca. I used the same system prompt as the original Samantha.
Training
========
gptchain framework has been us... | [] | [
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text-generation | transformers |
# **Introduction**
The model was trained to translate a single sentence from English to Korean with a 1.18M dataset in the general domain.
Dataset: [nayohan/aihub-en-ko-translation-1.2m](https://huggingface.co/datasets/nayohan/aihub-en-ko-translation-1.2m)
### **Loading the Model**
Use the following Python code to l... | {"language": ["en", "ko"], "license": "llama3", "library_name": "transformers", "tags": ["translation", "enko", "ko"], "datasets": ["nayohan/aihub-en-ko-translation-1.2m"], "base_model": ["meta-llama/Meta-Llama-3-8B-Instruct"], "pipeline_tag": "text-generation"} | nayohan/llama3-8b-it-translation-general-en-ko-1sent | null | [
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|
# Introduction
The model was trained to translate a single sentence from English to Korean with a 1.18M dataset in the general domain.
Dataset: nayohan/aihub-en-ko-translation-1.2m
### Loading the Model
Use the following Python code to load the model:
### Generating Text
To generate text, use the following Python... | [
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text-generation | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# virus_pythia_14_1024_compliment
This model is a fine-tuned version of [EleutherAI/pythia-14m](https://huggingface.co/EleutherAI/... | {"tags": ["generated_from_trainer"], "base_model": "EleutherAI/pythia-14m", "model-index": [{"name": "virus_pythia_14_1024_compliment", "results": []}]} | Hack90/virus_pythia_14_1024_compliment | null | [
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"region:us"
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|
# virus_pythia_14_1024_compliment
This model is a fine-tuned version of EleutherAI/pythia-14m on an unknown dataset.
## Model description
More information needed
## Intended uses & limitations
More information needed
## Training and evaluation data
More information needed
## Training procedure
### Training ... | [
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null | peft |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# llm_output
This model is a fine-tuned version of [mistralai/Mistral-7B-Instruct-v0.2](https://huggingface.co/mistralai/Mistral-7... | {"license": "apache-2.0", "library_name": "peft", "tags": ["trl", "sft", "generated_from_trainer"], "base_model": "mistralai/Mistral-7B-Instruct-v0.2", "model-index": [{"name": "llm_output", "results": []}]} | RohithMidigudla/llm_output | null | [
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"region:us"
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|
# llm_output
This model is a fine-tuned version of mistralai/Mistral-7B-Instruct-v0.2 on the None dataset.
## Model description
More information needed
## Intended uses & limitations
More information needed
## Training and evaluation data
More information needed
## Training procedure
### Training hyperparam... | [
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"## Training and evaluation data\n\nMore information needed",
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automatic-speech-recognition | transformers |
<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->
# hc-impaired-all-v3
This model is a fine-tuned version of [openai/whisper-large-v3](https://huggingface.co/openai/whisper-large-v... | {"license": "apache-2.0", "tags": ["generated_from_trainer"], "datasets": ["honzapucalek/hc_impaired_all_v3"], "metrics": ["wer"], "base_model": "openai/whisper-large-v3", "model-index": [{"name": "hc-impaired-all-v3", "results": [{"task": {"type": "automatic-speech-recognition", "name": "Automatic Speech Recognition"}... | honzapucalek/hc-impaired-all-v3 | null | [
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| hc-impaired-all-v3
==================
This model is a fine-tuned version of openai/whisper-large-v3 on the honzapucalek/hc\_impaired\_all\_v3 cs dataset.
It achieves the following results on the evaluation set:
* Loss: 0.3837
* Wer: 0.1107
Model description
-----------------
More information needed
Intended u... | [
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