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common, server : surface min_keep as its own parameter (#5567)
* Feature - surface min_keep as its own parameter * Updated README with min_keep param
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@ -1704,6 +1704,7 @@ void dump_non_result_info_yaml(FILE * stream, const gpt_params & params, const l
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}
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fprintf(stream, "lora_base: %s\n", params.lora_base.c_str());
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fprintf(stream, "main_gpu: %d # default: 0\n", params.main_gpu);
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fprintf(stream, "min_keep: %d # default: 0 (disabled)\n", sparams.min_keep);
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fprintf(stream, "mirostat: %d # default: 0 (disabled)\n", sparams.mirostat);
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fprintf(stream, "mirostat_ent: %f # default: 5.0\n", sparams.mirostat_tau);
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fprintf(stream, "mirostat_lr: %f # default: 0.1\n", sparams.mirostat_eta);
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@ -248,7 +248,10 @@ static llama_token llama_sampling_sample_impl(
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llama_sample_temp(ctx_main, &cur_p, temp);
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id = llama_sample_token_mirostat_v2(ctx_main, &cur_p, mirostat_tau, mirostat_eta, &ctx_sampling->mirostat_mu);
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} else {
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sampler_queue(ctx_main, params, cur_p, 1);
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// temperature sampling
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size_t min_keep = std::max(1, params.min_keep);
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sampler_queue(ctx_main, params, cur_p, min_keep);
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id = llama_sample_token(ctx_main, &cur_p);
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@ -22,6 +22,7 @@ enum class llama_sampler_type : char {
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typedef struct llama_sampling_params {
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int32_t n_prev = 64; // number of previous tokens to remember
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int32_t n_probs = 0; // if greater than 0, output the probabilities of top n_probs tokens.
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int32_t min_keep = 0; // 0 = disabled, otherwise samplers should return at least min_keep tokens
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int32_t top_k = 40; // <= 0 to use vocab size
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float top_p = 0.95f; // 1.0 = disabled
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float min_p = 0.05f; // 0.0 = disabled
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@ -199,6 +199,8 @@ 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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`min_keep`: If greater than 0, force samplers to return N possible tokens at minimum (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 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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`slot_id`: Assign the completion task to an specific slot. If is -1 the task will be assigned to a Idle slot (default: -1)
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@ -234,6 +234,7 @@
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mirostat_eta: 0.1, // learning rate
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grammar: '',
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n_probs: 0, // no completion_probabilities,
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min_keep: 0, // min probs from each sampler,
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image_data: [],
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cache_prompt: true,
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api_key: ''
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@ -791,6 +792,9 @@
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<fieldset>
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${IntField({ label: "Show Probabilities", max: 10, min: 0, name: "n_probs", value: params.value.n_probs })}
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</fieldset>
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<fieldset>
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${IntField({ label: "Min Probabilities from each Sampler", max: 10, min: 0, name: "min_keep", value: params.value.min_keep })}
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</fieldset>
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<fieldset>
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<label for="api_key">API Key</label>
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<input type="text" name="api_key" value="${params.value.api_key}" placeholder="Enter API key" oninput=${updateParams} />
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@ -548,6 +548,7 @@ struct llama_server_context
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slot->params.seed = json_value(data, "seed", default_params.seed);
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slot->sparams.grammar = json_value(data, "grammar", default_sparams.grammar);
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slot->sparams.n_probs = json_value(data, "n_probs", default_sparams.n_probs);
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slot->sparams.min_keep = json_value(data, "min_keep", default_sparams.min_keep);
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if (slot->n_predict > 0 && slot->params.n_predict > slot->n_predict) {
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// Might be better to reject the request with a 400 ?
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@ -1093,6 +1094,7 @@ struct llama_server_context
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{"stream", slot.params.stream},
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{"logit_bias", slot.sparams.logit_bias},
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{"n_probs", slot.sparams.n_probs},
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{"min_keep", slot.sparams.min_keep},
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{"grammar", slot.sparams.grammar},
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{"samplers", samplers_sequence}
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};
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