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	* server : refactoring (wip) * server : remove llava/clip objects from build * server : fix empty prompt handling + all slots idle logic * server : normalize id vars * server : code style * server : simplify model chat template validation * server : code style * server : minor * llama : llama_chat_apply_template support null buf * server : do not process embedding requests when disabled * server : reorganize structs and enums + naming fixes * server : merge oai.hpp in utils.hpp * server : refactor system prompt update at start * server : disable cached prompts with self-extend * server : do not process more than n_batch tokens per iter * server: tests: embeddings use a real embeddings model (#5908) * server, tests : bump batch to fit 1 embedding prompt * server: tests: embeddings fix build type Debug is randomly failing (#5911) * server: tests: embeddings, use different KV Cache size * server: tests: embeddings, fixed prompt do not exceed n_batch, increase embedding timeout, reduce number of concurrent embeddings * server: tests: embeddings, no need to wait for server idle as it can timout * server: refactor: clean up http code (#5912) * server : avoid n_available var ggml-ci * server: refactor: better http codes * server : simplify json parsing + add comment about t_last * server : rename server structs * server : allow to override FQDN in tests ggml-ci * server : add comments --------- Co-authored-by: Pierrick Hymbert <pierrick.hymbert@gmail.com>
		
			
				
	
	
		
			64 lines
		
	
	
		
			2.5 KiB
		
	
	
	
		
			Gherkin
		
	
	
	
	
	
			
		
		
	
	
			64 lines
		
	
	
		
			2.5 KiB
		
	
	
	
		
			Gherkin
		
	
	
	
	
	
@llama.cpp
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@server
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Feature: llama.cpp server
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  Background: Server startup
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    Given a server listening on localhost:8080
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    And   a model file tinyllamas/stories260K.gguf from HF repo ggml-org/models
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    And   a model alias tinyllama-2
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    And   42 as server seed
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      # KV Cache corresponds to the total amount of tokens
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      # that can be stored across all independent sequences: #4130
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      # see --ctx-size and #5568
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    And   32 KV cache size
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    And   512 as batch size
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    And   1 slots
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    And   embeddings extraction
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    And   32 server max tokens to predict
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    And   prometheus compatible metrics exposed
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    Then  the server is starting
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    Then  the server is healthy
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  Scenario: Health
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    Then the server is ready
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    And  all slots are idle
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  Scenario Outline: Completion
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    Given a prompt <prompt>
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    And   <n_predict> max tokens to predict
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    And   a completion request with no api error
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    Then  <n_predicted> tokens are predicted matching <re_content>
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    And   prometheus metrics are exposed
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    Examples: Prompts
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      | prompt                           | n_predict | re_content                       | n_predicted |
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      | I believe the meaning of life is | 8         | (read\|going)+                   | 8           |
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      | Write a joke about AI            | 64        | (park\|friends\|scared\|always)+ | 32          |
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  Scenario Outline: OAI Compatibility
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    Given a model <model>
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    And   a system prompt <system_prompt>
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    And   a user prompt <user_prompt>
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    And   <max_tokens> max tokens to predict
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    And   streaming is <enable_streaming>
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    Given an OAI compatible chat completions request with no api error
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    Then  <n_predicted> tokens are predicted matching <re_content>
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    Examples: Prompts
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      | model        | system_prompt               | user_prompt                          | max_tokens | re_content             | n_predicted | enable_streaming |
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      | llama-2      | Book                        | What is the best book                | 8          | (Mom\|what)+           | 8           | disabled         |
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      | codellama70b | You are a coding assistant. | Write the fibonacci function in c++. | 64         | (thanks\|happy\|bird)+ | 32          | enabled          |
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  Scenario: Tokenize / Detokenize
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    When tokenizing:
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    """
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    What is the capital of France ?
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    """
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    Then tokens can be detokenize
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  Scenario: Models available
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    Given available models
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    Then  1 models are supported
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    Then  model 0 is identified by tinyllama-2
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    Then  model 0 is trained on 128 tokens context
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