[U] Publish pypi
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CLAP (Contrastive Language-Audio Pretraining) is a model that learns acoustic concepts from natural language supervision and enables “Zero-Shot” inference. The model has been extensively evaluated in 26 audio downstream tasks achieving SoTA in several of them including classification, retrieval, and captioning.
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CLAP (Contrastive Language-Audio Pretraining) is a model that learns acoustic concepts from natural language supervision and enables “Zero-Shot” inference. The model has been extensively evaluated in 26 audio downstream tasks achieving SoTA in several of them including classification, retrieval, and captioning.
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<img width="832" alt="clap_diagrams" src="./docs/diagram.png">
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<img width="832" alt="clap_diagrams" src="https://raw.githubusercontent.com/hykilpikonna/CLAP/main/docs/diagram.png">
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## Setup
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## Setup
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First, install python 3.8 or higher (3.11 recommended). Then, install CLAP:
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First, install python 3.8 or higher (3.11 recommended). Then, install CLAP using either of the following:
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```shell
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```shell
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# Install pypi pacakge
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pip install msclap
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# Or Install latest (unstable) git source
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pip install git+https://github.com/microsoft/CLAP.git
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pip install git+https://github.com/microsoft/CLAP.git
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```
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```
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```
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```
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## Examples
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## Examples
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Take a look at `CLAP\src\` for usage examples.
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Take a look at [examples](./examples/) for usage examples.
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To run Zero-Shot Classification on the ESC50 dataset try the following:
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To run Zero-Shot Classification on the ESC50 dataset try the following:
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[tool.poetry]
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[tool.poetry]
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name = "msclap"
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name = "msclap"
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version = "1.3.0"
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version = "1.3.1"
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description = "CLAP (Contrastive Language-Audio Pretraining) is a model that learns acoustic concepts from natural language supervision and enables “Zero-Shot” inference. The model has been extensively evaluated in 26 audio downstream tasks achieving SoTA in several of them including classification, retrieval, and captioning."
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description = "CLAP (Contrastive Language-Audio Pretraining) is a model that learns acoustic concepts from natural language supervision and enables “Zero-Shot” inference. The model has been extensively evaluated in 26 audio downstream tasks achieving SoTA in several of them including classification, retrieval, and captioning."
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authors = ["Benjamin Elizalde and Soham Deshmukh and Huaming Wang"]
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authors = ["Benjamin Elizalde and Soham Deshmukh and Huaming Wang"]
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license = "MIT"
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license = "MIT"
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