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server : allow to generate multimodal embeddings (#4681)
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@ -166,7 +166,7 @@ node index.js
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`n_probs`: If greater than 0, the response also contains the probabilities of top N tokens for each generated token (default: 0)
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`image_data`: An array of objects to hold base64-encoded image `data` and its `id`s to be reference in `prompt`. You can determine the place of the image in the prompt as in the following: `USER:[img-12]Describe the image in detail.\nASSISTANT:` In this case, `[img-12]` will be replaced by the embeddings of the image id 12 in the following `image_data` array: `{..., "image_data": [{"data": "<BASE64_STRING>", "id": 12}]}`. Use `image_data` only with multimodal models, e.g., LLaVA.
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`image_data`: An array of objects to hold base64-encoded image `data` and its `id`s to be reference in `prompt`. You can determine the place of the image in the prompt as in the following: `USER:[img-12]Describe the image in detail.\nASSISTANT:`. In this case, `[img-12]` will be replaced by the embeddings of the image with id `12` in the following `image_data` array: `{..., "image_data": [{"data": "<BASE64_STRING>", "id": 12}]}`. Use `image_data` only with multimodal models, e.g., LLaVA.
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*Result JSON:*
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@ -224,6 +224,8 @@ node index.js
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`content`: Set the text to process.
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`image_data`: An array of objects to hold base64-encoded image `data` and its `id`s to be reference in `content`. You can determine the place of the image in the content as in the following: `Image: [img-21].\nCaption: This is a picture of a house`. In this case, `[img-21]` will be replaced by the embeddings of the image with id `21` in the following `image_data` array: `{..., "image_data": [{"data": "<BASE64_STRING>", "id": 21}]}`. Use `image_data` only with multimodal models, e.g., LLaVA.
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- **POST** `/infill`: For code infilling. Takes a prefix and a suffix and returns the predicted completion as stream.
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*Options:*
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@ -3077,7 +3077,17 @@ int main(int argc, char **argv)
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{
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prompt = "";
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}
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const int task_id = llama.request_completion({ {"prompt", prompt}, { "n_predict", 0} }, false, true, -1);
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json image_data;
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if (body.count("image_data") != 0) {
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image_data = body["image_data"];
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}
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else
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{
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image_data = "";
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}
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const int task_id = llama.request_completion({ {"prompt", prompt}, { "n_predict", 0}, {"image_data", image_data} }, false, true, -1);
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task_result result = llama.next_result(task_id);
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return res.set_content(result.result_json.dump(), "application/json; charset=utf-8");
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});
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