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server : (embeddings) using same format for "input" and "content" (#10872)
* server : (embeddings) using same format for "input" and "content" * fix test case * handle empty input case * fix test
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@ -3651,25 +3651,33 @@ int main(int argc, char ** argv) {
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const json body = json::parse(req.body);
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bool oaicompat = false;
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// an input prompt can be a string or a list of tokens (integer)
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// for the shape of input/content, see tokenize_input_prompts()
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json prompt;
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if (body.count("input") != 0) {
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if (body.contains("input")) {
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oaicompat = true;
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prompt = body.at("input");
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} else if (body.count("content") != 0) {
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// with "content", we only support single prompt
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prompt = std::vector<std::string>{body.at("content")};
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} else if (body.contains("content")) {
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oaicompat = false;
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prompt = body.at("content");
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} else {
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res_error(res, format_error_response("\"input\" or \"content\" must be provided", ERROR_TYPE_INVALID_REQUEST));
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return;
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}
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std::vector<llama_tokens> tokenized_prompts = tokenize_input_prompts(ctx_server.ctx, prompt, true, true);
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for (const auto & tokens : tokenized_prompts) {
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// this check is necessary for models that do not add BOS token to the input
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if (tokens.empty()) {
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res_error(res, format_error_response("Input content cannot be empty", ERROR_TYPE_INVALID_REQUEST));
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return;
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}
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}
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// create and queue the task
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json responses = json::array();
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bool error = false;
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{
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std::vector<server_task> tasks;
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std::vector<llama_tokens> tokenized_prompts = tokenize_input_prompts(ctx_server.ctx, prompt, /* add_special */ false, true);
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for (size_t i = 0; i < tokenized_prompts.size(); i++) {
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server_task task = server_task(SERVER_TASK_TYPE_EMBEDDING);
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task.id = ctx_server.queue_tasks.get_new_id();
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@ -45,6 +45,35 @@ def test_embedding_multiple():
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assert len(d['embedding']) > 1
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@pytest.mark.parametrize(
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"content,is_multi_prompt",
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[
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# single prompt
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("string", False),
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([12, 34, 56], False),
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([12, 34, "string", 56, 78], False),
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# multiple prompts
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(["string1", "string2"], True),
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(["string1", [12, 34, 56]], True),
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([[12, 34, 56], [12, 34, 56]], True),
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([[12, 34, 56], [12, "string", 34, 56]], True),
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]
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)
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def test_embedding_mixed_input(content, is_multi_prompt: bool):
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global server
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server.start()
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res = server.make_request("POST", "/embeddings", data={"content": content})
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assert res.status_code == 200
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if is_multi_prompt:
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assert len(res.body) == len(content)
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for d in res.body:
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assert 'embedding' in d
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assert len(d['embedding']) > 1
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else:
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assert 'embedding' in res.body
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assert len(res.body['embedding']) > 1
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def test_embedding_openai_library_single():
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global server
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server.start()
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@ -102,8 +131,8 @@ def test_same_prompt_give_same_result():
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@pytest.mark.parametrize(
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"content,n_tokens",
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[
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("I believe the meaning of life is", 7),
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("This is a test", 4),
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("I believe the meaning of life is", 9),
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("This is a test", 6),
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]
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)
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def test_embedding_usage_single(content, n_tokens):
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@ -126,4 +155,4 @@ def test_embedding_usage_multiple():
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})
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assert res.status_code == 200
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assert res.body['usage']['prompt_tokens'] == res.body['usage']['total_tokens']
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assert res.body['usage']['prompt_tokens'] == 2 * 7
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assert res.body['usage']['prompt_tokens'] == 2 * 9
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@ -138,6 +138,7 @@ static llama_tokens tokenize_mixed(const llama_context * ctx, const json & json_
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* and multiple prompts (multi-tasks):
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* - "prompt": ["string1", "string2"]
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* - "prompt": ["string1", [12, 34, 56]]
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* - "prompt": [[12, 34, 56], [78, 90, 12]]
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* - "prompt": [[12, 34, "string", 56, 78], [12, 34, 56]]
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*/
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static std::vector<llama_tokens> tokenize_input_prompts(llama_context * ctx, const json & json_prompt, bool add_special, bool parse_special) {
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