Instructions to use Xenova/bloom-560m with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Libraries
- Transformers.js
How to use Xenova/bloom-560m with Transformers.js:
// npm i @huggingface/transformers import { pipeline } from '@huggingface/transformers'; // Allocate pipeline const pipe = await pipeline('text-generation', 'Xenova/bloom-560m');
File size: 2,575 Bytes
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"per_channel": false,
"reduce_range": false,
"per_model_config": {
"decoder_model": {
"op_types": [
"Add",
"CumSum",
"Mul",
"Not",
"Reshape",
"Div",
"Unsqueeze",
"Pow",
"Or",
"Shape",
"Cast",
"Transpose",
"MatMul",
"ScatterND",
"ReduceMean",
"Concat",
"Range",
"ConstantOfShape",
"Sqrt",
"Slice",
"Constant",
"Where",
"Expand",
"Sub",
"Tanh",
"Softmax",
"Equal",
"Less",
"Gather"
],
"weight_type": "QInt8"
},
"decoder_model_merged": {
"op_types": [
"Add",
"CumSum",
"Mul",
"Not",
"Reshape",
"Div",
"Unsqueeze",
"Pow",
"Or",
"Shape",
"Cast",
"Transpose",
"MatMul",
"ScatterND",
"ReduceMean",
"Concat",
"Range",
"ConstantOfShape",
"Sqrt",
"Slice",
"Constant",
"Where",
"Expand",
"Sub",
"If",
"Tanh",
"Softmax",
"Equal",
"Less",
"Gather"
],
"weight_type": "QInt8"
},
"decoder_with_past_model": {
"op_types": [
"Add",
"CumSum",
"Mul",
"Not",
"Reshape",
"Div",
"Unsqueeze",
"Pow",
"Shape",
"Cast",
"Transpose",
"MatMul",
"ReduceMean",
"Concat",
"ConstantOfShape",
"Sqrt",
"Constant",
"Where",
"Expand",
"Sub",
"Tanh",
"Softmax",
"Equal",
"Gather"
],
"weight_type": "QInt8"
}
}
} |