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api.ts
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/* tslint:disable */
/* eslint-disable */
/**
* OpenAI API
* APIs for sampling from and fine-tuning language models
*
* The version of the OpenAPI document: 1.2.0
*
*
* NOTE: This class is auto generated by OpenAPI Generator (https://openapi-generator.tech).
* https://openapi-generator.tech
* Do not edit the class manually.
*/
import type { Configuration } from './configuration';
import type { AxiosPromise, AxiosInstance, AxiosRequestConfig } from 'axios';
import globalAxios from 'axios';
// Some imports not used depending on template conditions
// @ts-ignore
import { DUMMY_BASE_URL, assertParamExists, setApiKeyToObject, setBasicAuthToObject, setBearerAuthToObject, setOAuthToObject, setSearchParams, serializeDataIfNeeded, toPathString, createRequestFunction, messageToAzurePrompt } from './common';
import type { RequestArgs } from './base';
// @ts-ignore
import { BASE_PATH, COLLECTION_FORMATS, BaseAPI, RequiredError } from './base';
/**
*
* @export
* @interface ChatCompletionRequestMessage
*/
export interface ChatCompletionRequestMessage {
/**
* The role of the author of this message.
* @type {string}
* @memberof ChatCompletionRequestMessage
*/
'role': ChatCompletionRequestMessageRoleEnum;
/**
* The contents of the message
* @type {string}
* @memberof ChatCompletionRequestMessage
*/
'content': string;
/**
* The name of the user in a multi-user chat
* @type {string}
* @memberof ChatCompletionRequestMessage
*/
'name'?: string;
}
export const ChatCompletionRequestMessageRoleEnum = {
System: 'system',
User: 'user',
Assistant: 'assistant'
} as const;
export type ChatCompletionRequestMessageRoleEnum = typeof ChatCompletionRequestMessageRoleEnum[keyof typeof ChatCompletionRequestMessageRoleEnum];
/**
*
* @export
* @interface ChatCompletionResponseMessage
*/
export interface ChatCompletionResponseMessage {
/**
* The role of the author of this message.
* @type {string}
* @memberof ChatCompletionResponseMessage
*/
'role': ChatCompletionResponseMessageRoleEnum;
/**
* The contents of the message
* @type {string}
* @memberof ChatCompletionResponseMessage
*/
'content': string;
}
export const ChatCompletionResponseMessageRoleEnum = {
System: 'system',
User: 'user',
Assistant: 'assistant'
} as const;
export type ChatCompletionResponseMessageRoleEnum = typeof ChatCompletionResponseMessageRoleEnum[keyof typeof ChatCompletionResponseMessageRoleEnum];
/**
*
* @export
* @interface CreateAnswerRequest
*/
export interface CreateAnswerRequest {
/**
* ID of the model to use for completion. You can select one of `ada`, `babbage`, `curie`, or `davinci`.
* @type {string}
* @memberof CreateAnswerRequest
*/
'model': string;
/**
* Question to get answered.
* @type {string}
* @memberof CreateAnswerRequest
*/
'question': string;
/**
* List of (question, answer) pairs that will help steer the model towards the tone and answer format you\'d like. We recommend adding 2 to 3 examples.
* @type {Array<any>}
* @memberof CreateAnswerRequest
*/
'examples': Array<any>;
/**
* A text snippet containing the contextual information used to generate the answers for the `examples` you provide.
* @type {string}
* @memberof CreateAnswerRequest
*/
'examples_context': string;
/**
* List of documents from which the answer for the input `question` should be derived. If this is an empty list, the question will be answered based on the question-answer examples. You should specify either `documents` or a `file`, but not both.
* @type {Array<string>}
* @memberof CreateAnswerRequest
*/
'documents'?: Array<string> | null;
/**
* The ID of an uploaded file that contains documents to search over. See [upload file](/docs/api-reference/files/upload) for how to upload a file of the desired format and purpose. You should specify either `documents` or a `file`, but not both.
* @type {string}
* @memberof CreateAnswerRequest
*/
'file'?: string | null;
/**
* ID of the model to use for [Search](/docs/api-reference/searches/create). You can select one of `ada`, `babbage`, `curie`, or `davinci`.
* @type {string}
* @memberof CreateAnswerRequest
*/
'search_model'?: string | null;
/**
* The maximum number of documents to be ranked by [Search](/docs/api-reference/searches/create) when using `file`. Setting it to a higher value leads to improved accuracy but with increased latency and cost.
* @type {number}
* @memberof CreateAnswerRequest
*/
'max_rerank'?: number | null;
/**
* What sampling temperature to use, between 0 and 2. Higher values like 0.8 will make the output more random, while lower values like 0.2 will make it more focused and deterministic.
* @type {number}
* @memberof CreateAnswerRequest
*/
'temperature'?: number | null;
/**
* Include the log probabilities on the `logprobs` most likely tokens, as well the chosen tokens. For example, if `logprobs` is 5, the API will return a list of the 5 most likely tokens. The API will always return the `logprob` of the sampled token, so there may be up to `logprobs+1` elements in the response. The maximum value for `logprobs` is 5. If you need more than this, please contact us through our [Help center](https://help.openai.com) and describe your use case. When `logprobs` is set, `completion` will be automatically added into `expand` to get the logprobs.
* @type {number}
* @memberof CreateAnswerRequest
*/
'logprobs'?: number | null;
/**
* The maximum number of tokens allowed for the generated answer
* @type {number}
* @memberof CreateAnswerRequest
*/
'max_tokens'?: number | null;
/**
*
* @type {CreateAnswerRequestStop}
* @memberof CreateAnswerRequest
*/
'stop'?: CreateAnswerRequestStop | null;
/**
* How many answers to generate for each question.
* @type {number}
* @memberof CreateAnswerRequest
*/
'n'?: number | null;
/**
* Modify the likelihood of specified tokens appearing in the completion. Accepts a json object that maps tokens (specified by their token ID in the GPT tokenizer) to an associated bias value from -100 to 100. You can use this [tokenizer tool](/tokenizer?view=bpe) (which works for both GPT-2 and GPT-3) to convert text to token IDs. Mathematically, the bias is added to the logits generated by the model prior to sampling. The exact effect will vary per model, but values between -1 and 1 should decrease or increase likelihood of selection; values like -100 or 100 should result in a ban or exclusive selection of the relevant token. As an example, you can pass `{\"50256\": -100}` to prevent the <|endoftext|> token from being generated.
* @type {object}
* @memberof CreateAnswerRequest
*/
'logit_bias'?: object | null;
/**
* A special boolean flag for showing metadata. If set to `true`, each document entry in the returned JSON will contain a \"metadata\" field. This flag only takes effect when `file` is set.
* @type {boolean}
* @memberof CreateAnswerRequest
*/
'return_metadata'?: boolean | null;
/**
* If set to `true`, the returned JSON will include a \"prompt\" field containing the final prompt that was used to request a completion. This is mainly useful for debugging purposes.
* @type {boolean}
* @memberof CreateAnswerRequest
*/
'return_prompt'?: boolean | null;
/**
* If an object name is in the list, we provide the full information of the object; otherwise, we only provide the object ID. Currently we support `completion` and `file` objects for expansion.
* @type {Array<any>}
* @memberof CreateAnswerRequest
*/
'expand'?: Array<any> | null;
/**
* A unique identifier representing your end-user, which can help OpenAI to monitor and detect abuse. [Learn more](/docs/guides/safety-best-practices/end-user-ids).
* @type {string}
* @memberof CreateAnswerRequest
*/
'user'?: string;
}
/**
* @type CreateAnswerRequestStop
* Up to 4 sequences where the API will stop generating further tokens. The returned text will not contain the stop sequence.
* @export
*/
export type CreateAnswerRequestStop = Array<string> | string;
/**
*
* @export
* @interface CreateAnswerResponse
*/
export interface CreateAnswerResponse {
/**
*
* @type {string}
* @memberof CreateAnswerResponse
*/
'object'?: string;
/**
*
* @type {string}
* @memberof CreateAnswerResponse
*/
'model'?: string;
/**
*
* @type {string}
* @memberof CreateAnswerResponse
*/
'search_model'?: string;
/**
*
* @type {string}
* @memberof CreateAnswerResponse
*/
'completion'?: string;
/**
*
* @type {Array<string>}
* @memberof CreateAnswerResponse
*/
'answers'?: Array<string>;
/**
*
* @type {Array<CreateAnswerResponseSelectedDocumentsInner>}
* @memberof CreateAnswerResponse
*/
'selected_documents'?: Array<CreateAnswerResponseSelectedDocumentsInner>;
}
/**
*
* @export
* @interface CreateAnswerResponseSelectedDocumentsInner
*/
export interface CreateAnswerResponseSelectedDocumentsInner {
/**
*
* @type {number}
* @memberof CreateAnswerResponseSelectedDocumentsInner
*/
'document'?: number;
/**
*
* @type {string}
* @memberof CreateAnswerResponseSelectedDocumentsInner
*/
'text'?: string;
}
/**
*
* @export
* @interface CreateChatCompletionRequest
*/
export interface CreateChatCompletionRequest {
/**
* ID of the model to use. Currently, only `gpt-3.5-turbo` and `gpt-3.5-turbo-0301` are supported.
* @type {string}
* @memberof CreateChatCompletionRequest
*/
'model': string;
/**
* The messages to generate chat completions for, in the [chat format](/docs/guides/chat/introduction).
* @type {Array<ChatCompletionRequestMessage>}
* @memberof CreateChatCompletionRequest
*/
'messages'?: Array<ChatCompletionRequestMessage>;
/**
* The messages to generate chat completions for, in the [chat format](/docs/guides/chat/introduction).
* @type {Array<ChatCompletionRequestMessage>}
* @memberof CreateChatCompletionRequest
*/
'prompt'?: string;
/**
* What sampling temperature to use, between 0 and 2. Higher values like 0.8 will make the output more random, while lower values like 0.2 will make it more focused and deterministic. We generally recommend altering this or `top_p` but not both.
* @type {number}
* @memberof CreateChatCompletionRequest
*/
'temperature'?: number | null;
/**
* An alternative to sampling with temperature, called nucleus sampling, where the model considers the results of the tokens with top_p probability mass. So 0.1 means only the tokens comprising the top 10% probability mass are considered. We generally recommend altering this or `temperature` but not both.
* @type {number}
* @memberof CreateChatCompletionRequest
*/
'top_p'?: number | null;
/**
* How many chat completion choices to generate for each input message.
* @type {number}
* @memberof CreateChatCompletionRequest
*/
'n'?: number | null;
/**
* If set, partial message deltas will be sent, like in ChatGPT. Tokens will be sent as data-only [server-sent events](https://developer.mozilla.org/en-US/docs/Web/API/Server-sent_events/Using_server-sent_events#Event_stream_format) as they become available, with the stream terminated by a `data: [DONE]` message.
* @type {boolean}
* @memberof CreateChatCompletionRequest
*/
'stream'?: boolean | null;
/**
*
* @type {CreateChatCompletionRequestStop}
* @memberof CreateChatCompletionRequest
*/
'stop'?: CreateChatCompletionRequestStop;
/**
* The maximum number of tokens allowed for the generated answer. By default, the number of tokens the model can return will be (4096 - prompt tokens).
* @type {number}
* @memberof CreateChatCompletionRequest
*/
'max_tokens'?: number;
/**
* Number between -2.0 and 2.0. Positive values penalize new tokens based on whether they appear in the text so far, increasing the model\'s likelihood to talk about new topics. [See more information about frequency and presence penalties.](/docs/api-reference/parameter-details)
* @type {number}
* @memberof CreateChatCompletionRequest
*/
'presence_penalty'?: number | null;
/**
* Number between -2.0 and 2.0. Positive values penalize new tokens based on their existing frequency in the text so far, decreasing the model\'s likelihood to repeat the same line verbatim. [See more information about frequency and presence penalties.](/docs/api-reference/parameter-details)
* @type {number}
* @memberof CreateChatCompletionRequest
*/
'frequency_penalty'?: number | null;
/**
* Modify the likelihood of specified tokens appearing in the completion. Accepts a json object that maps tokens (specified by their token ID in the tokenizer) to an associated bias value from -100 to 100. Mathematically, the bias is added to the logits generated by the model prior to sampling. The exact effect will vary per model, but values between -1 and 1 should decrease or increase likelihood of selection; values like -100 or 100 should result in a ban or exclusive selection of the relevant token.
* @type {object}
* @memberof CreateChatCompletionRequest
*/
'logit_bias'?: object | null;
/**
* A unique identifier representing your end-user, which can help OpenAI to monitor and detect abuse. [Learn more](/docs/guides/safety-best-practices/end-user-ids).
* @type {string}
* @memberof CreateChatCompletionRequest
*/
'user'?: string;
}
/**
* @type CreateChatCompletionRequestStop
* Up to 4 sequences where the API will stop generating further tokens.
* @export
*/
export type CreateChatCompletionRequestStop = Array<string> | string;
/**
*
* @export
* @interface CreateChatCompletionResponse
*/
export interface CreateChatCompletionResponse {
/**
*
* @type {string}
* @memberof CreateChatCompletionResponse
*/
'id': string;
/**
*
* @type {string}
* @memberof CreateChatCompletionResponse
*/
'object': string;
/**
*
* @type {number}
* @memberof CreateChatCompletionResponse
*/
'created': number;
/**
*
* @type {string}
* @memberof CreateChatCompletionResponse
*/
'model': string;
/**
*
* @type {Array<CreateChatCompletionResponseChoicesInner>}
* @memberof CreateChatCompletionResponse
*/
'choices': Array<CreateChatCompletionResponseChoicesInner>;
/**
*
* @type {CreateCompletionResponseUsage}
* @memberof CreateChatCompletionResponse
*/
'usage'?: CreateCompletionResponseUsage;
}
/**
*
* @export
* @interface CreateChatCompletionResponseChoicesInner
*/
export interface CreateChatCompletionResponseChoicesInner {
/**
*
* @type {number}
* @memberof CreateChatCompletionResponseChoicesInner
*/
'index'?: number;
/**
*
* @type {ChatCompletionResponseMessage}
* @memberof CreateChatCompletionResponseChoicesInner
*/
'message'?: ChatCompletionResponseMessage;
/**
*
* @type {string}
* @memberof CreateChatCompletionResponseChoicesInner
*/
'finish_reason'?: string;
}
/**
*
* @export
* @interface CreateClassificationRequest
*/
export interface CreateClassificationRequest {
/**
* ID of the model to use. You can use the [List models](/docs/api-reference/models/list) API to see all of your available models, or see our [Model overview](/docs/models/overview) for descriptions of them.
* @type {string}
* @memberof CreateClassificationRequest
*/
'model': string;
/**
* Query to be classified.
* @type {string}
* @memberof CreateClassificationRequest
*/
'query': string;
/**
* A list of examples with labels, in the following format: `[[\"The movie is so interesting.\", \"Positive\"], [\"It is quite boring.\", \"Negative\"], ...]` All the label strings will be normalized to be capitalized. You should specify either `examples` or `file`, but not both.
* @type {Array<any>}
* @memberof CreateClassificationRequest
*/
'examples'?: Array<any> | null;
/**
* The ID of the uploaded file that contains training examples. See [upload file](/docs/api-reference/files/upload) for how to upload a file of the desired format and purpose. You should specify either `examples` or `file`, but not both.
* @type {string}
* @memberof CreateClassificationRequest
*/
'file'?: string | null;
/**
* The set of categories being classified. If not specified, candidate labels will be automatically collected from the examples you provide. All the label strings will be normalized to be capitalized.
* @type {Array<string>}
* @memberof CreateClassificationRequest
*/
'labels'?: Array<string> | null;
/**
* ID of the model to use for [Search](/docs/api-reference/searches/create). You can select one of `ada`, `babbage`, `curie`, or `davinci`.
* @type {string}
* @memberof CreateClassificationRequest
*/
'search_model'?: string | null;
/**
* What sampling temperature to use, between 0 and 2. Higher values like 0.8 will make the output more random, while lower values like 0.2 will make it more focused and deterministic.
* @type {number}
* @memberof CreateClassificationRequest
*/
'temperature'?: number | null;
/**
* Include the log probabilities on the `logprobs` most likely tokens, as well the chosen tokens. For example, if `logprobs` is 5, the API will return a list of the 5 most likely tokens. The API will always return the `logprob` of the sampled token, so there may be up to `logprobs+1` elements in the response. The maximum value for `logprobs` is 5. If you need more than this, please contact us through our [Help center](https://help.openai.com) and describe your use case. When `logprobs` is set, `completion` will be automatically added into `expand` to get the logprobs.
* @type {number}
* @memberof CreateClassificationRequest
*/
'logprobs'?: number | null;
/**
* The maximum number of examples to be ranked by [Search](/docs/api-reference/searches/create) when using `file`. Setting it to a higher value leads to improved accuracy but with increased latency and cost.
* @type {number}
* @memberof CreateClassificationRequest
*/
'max_examples'?: number | null;
/**
* Modify the likelihood of specified tokens appearing in the completion. Accepts a json object that maps tokens (specified by their token ID in the GPT tokenizer) to an associated bias value from -100 to 100. You can use this [tokenizer tool](/tokenizer?view=bpe) (which works for both GPT-2 and GPT-3) to convert text to token IDs. Mathematically, the bias is added to the logits generated by the model prior to sampling. The exact effect will vary per model, but values between -1 and 1 should decrease or increase likelihood of selection; values like -100 or 100 should result in a ban or exclusive selection of the relevant token. As an example, you can pass `{\"50256\": -100}` to prevent the <|endoftext|> token from being generated.
* @type {object}
* @memberof CreateClassificationRequest
*/
'logit_bias'?: object | null;
/**
* If set to `true`, the returned JSON will include a \"prompt\" field containing the final prompt that was used to request a completion. This is mainly useful for debugging purposes.
* @type {boolean}
* @memberof CreateClassificationRequest
*/
'return_prompt'?: boolean | null;
/**
* A special boolean flag for showing metadata. If set to `true`, each document entry in the returned JSON will contain a \"metadata\" field. This flag only takes effect when `file` is set.
* @type {boolean}
* @memberof CreateClassificationRequest
*/
'return_metadata'?: boolean | null;
/**
* If an object name is in the list, we provide the full information of the object; otherwise, we only provide the object ID. Currently we support `completion` and `file` objects for expansion.
* @type {Array<any>}
* @memberof CreateClassificationRequest
*/
'expand'?: Array<any> | null;
/**
* A unique identifier representing your end-user, which can help OpenAI to monitor and detect abuse. [Learn more](/docs/guides/safety-best-practices/end-user-ids).
* @type {string}
* @memberof CreateClassificationRequest
*/
'user'?: string;
}
/**
*
* @export
* @interface CreateClassificationResponse
*/
export interface CreateClassificationResponse {
/**
*
* @type {string}
* @memberof CreateClassificationResponse
*/
'object'?: string;
/**
*
* @type {string}
* @memberof CreateClassificationResponse
*/
'model'?: string;
/**
*
* @type {string}
* @memberof CreateClassificationResponse
*/
'search_model'?: string;
/**
*
* @type {string}
* @memberof CreateClassificationResponse
*/
'completion'?: string;
/**
*
* @type {string}
* @memberof CreateClassificationResponse
*/
'label'?: string;
/**
*
* @type {Array<CreateClassificationResponseSelectedExamplesInner>}
* @memberof CreateClassificationResponse
*/
'selected_examples'?: Array<CreateClassificationResponseSelectedExamplesInner>;
}
/**
*
* @export
* @interface CreateClassificationResponseSelectedExamplesInner
*/
export interface CreateClassificationResponseSelectedExamplesInner {
/**
*
* @type {number}
* @memberof CreateClassificationResponseSelectedExamplesInner
*/
'document'?: number;
/**
*
* @type {string}
* @memberof CreateClassificationResponseSelectedExamplesInner
*/
'text'?: string;
/**
*
* @type {string}
* @memberof CreateClassificationResponseSelectedExamplesInner
*/
'label'?: string;
}
/**
*
* @export
* @interface CreateCompletionRequest
*/
export interface CreateCompletionRequest {
/**
* ID of the model to use. You can use the [List models](/docs/api-reference/models/list) API to see all of your available models, or see our [Model overview](/docs/models/overview) for descriptions of them.
* @type {string}
* @memberof CreateCompletionRequest
*/
'model': string;
/**
*
* @type {CreateCompletionRequestPrompt}
* @memberof CreateCompletionRequest
*/
'prompt'?: CreateCompletionRequestPrompt | null;
/**
* The suffix that comes after a completion of inserted text.
* @type {string}
* @memberof CreateCompletionRequest
*/
'suffix'?: string | null;
/**
* The maximum number of [tokens](/tokenizer) to generate in the completion. The token count of your prompt plus `max_tokens` cannot exceed the model\'s context length. Most models have a context length of 2048 tokens (except for the newest models, which support 4096).
* @type {number}
* @memberof CreateCompletionRequest
*/
'max_tokens'?: number | null;
/**
* What sampling temperature to use, between 0 and 2. Higher values like 0.8 will make the output more random, while lower values like 0.2 will make it more focused and deterministic. We generally recommend altering this or `top_p` but not both.
* @type {number}
* @memberof CreateCompletionRequest
*/
'temperature'?: number | null;
/**
* An alternative to sampling with temperature, called nucleus sampling, where the model considers the results of the tokens with top_p probability mass. So 0.1 means only the tokens comprising the top 10% probability mass are considered. We generally recommend altering this or `temperature` but not both.
* @type {number}
* @memberof CreateCompletionRequest
*/
'top_p'?: number | null;
/**
* How many completions to generate for each prompt. **Note:** Because this parameter generates many completions, it can quickly consume your token quota. Use carefully and ensure that you have reasonable settings for `max_tokens` and `stop`.
* @type {number}
* @memberof CreateCompletionRequest
*/
'n'?: number | null;
/**
* Whether to stream back partial progress. If set, tokens will be sent as data-only [server-sent events](https://developer.mozilla.org/en-US/docs/Web/API/Server-sent_events/Using_server-sent_events#Event_stream_format) as they become available, with the stream terminated by a `data: [DONE]` message.
* @type {boolean}
* @memberof CreateCompletionRequest
*/
'stream'?: boolean | null;
/**
* Include the log probabilities on the `logprobs` most likely tokens, as well the chosen tokens. For example, if `logprobs` is 5, the API will return a list of the 5 most likely tokens. The API will always return the `logprob` of the sampled token, so there may be up to `logprobs+1` elements in the response. The maximum value for `logprobs` is 5. If you need more than this, please contact us through our [Help center](https://help.openai.com) and describe your use case.
* @type {number}
* @memberof CreateCompletionRequest
*/
'logprobs'?: number | null;
/**
* Echo back the prompt in addition to the completion
* @type {boolean}
* @memberof CreateCompletionRequest
*/
'echo'?: boolean | null;
/**
*
* @type {CreateCompletionRequestStop}
* @memberof CreateCompletionRequest
*/
'stop'?: CreateCompletionRequestStop | null;
/**
* Number between -2.0 and 2.0. Positive values penalize new tokens based on whether they appear in the text so far, increasing the model\'s likelihood to talk about new topics. [See more information about frequency and presence penalties.](/docs/api-reference/parameter-details)
* @type {number}
* @memberof CreateCompletionRequest
*/
'presence_penalty'?: number | null;
/**
* Number between -2.0 and 2.0. Positive values penalize new tokens based on their existing frequency in the text so far, decreasing the model\'s likelihood to repeat the same line verbatim. [See more information about frequency and presence penalties.](/docs/api-reference/parameter-details)
* @type {number}
* @memberof CreateCompletionRequest
*/
'frequency_penalty'?: number | null;
/**
* Generates `best_of` completions server-side and returns the \"best\" (the one with the highest log probability per token). Results cannot be streamed. When used with `n`, `best_of` controls the number of candidate completions and `n` specifies how many to return – `best_of` must be greater than `n`. **Note:** Because this parameter generates many completions, it can quickly consume your token quota. Use carefully and ensure that you have reasonable settings for `max_tokens` and `stop`.
* @type {number}
* @memberof CreateCompletionRequest
*/
'best_of'?: number | null;
/**
* Modify the likelihood of specified tokens appearing in the completion. Accepts a json object that maps tokens (specified by their token ID in the GPT tokenizer) to an associated bias value from -100 to 100. You can use this [tokenizer tool](/tokenizer?view=bpe) (which works for both GPT-2 and GPT-3) to convert text to token IDs. Mathematically, the bias is added to the logits generated by the model prior to sampling. The exact effect will vary per model, but values between -1 and 1 should decrease or increase likelihood of selection; values like -100 or 100 should result in a ban or exclusive selection of the relevant token. As an example, you can pass `{\"50256\": -100}` to prevent the <|endoftext|> token from being generated.
* @type {object}
* @memberof CreateCompletionRequest
*/
'logit_bias'?: object | null;
/**
* A unique identifier representing your end-user, which can help OpenAI to monitor and detect abuse. [Learn more](/docs/guides/safety-best-practices/end-user-ids).
* @type {string}
* @memberof CreateCompletionRequest
*/
'user'?: string;
}
/**
* @type CreateCompletionRequestPrompt
* The prompt(s) to generate completions for, encoded as a string, array of strings, array of tokens, or array of token arrays. Note that <|endoftext|> is the document separator that the model sees during training, so if a prompt is not specified the model will generate as if from the beginning of a new document.
* @export
*/
export type CreateCompletionRequestPrompt = Array<any> | Array<number> | Array<string> | string;
/**
* @type CreateCompletionRequestStop
* Up to 4 sequences where the API will stop generating further tokens. The returned text will not contain the stop sequence.
* @export
*/
export type CreateCompletionRequestStop = Array<string> | string;
/**
*
* @export
* @interface CreateCompletionResponse
*/
export interface CreateCompletionResponse {
/**
*
* @type {string}
* @memberof CreateCompletionResponse
*/
'id': string;
/**
*
* @type {string}
* @memberof CreateCompletionResponse
*/
'object': string;
/**
*
* @type {number}
* @memberof CreateCompletionResponse
*/
'created': number;
/**
*
* @type {string}
* @memberof CreateCompletionResponse
*/
'model': string;
/**
*
* @type {Array<CreateCompletionResponseChoicesInner>}
* @memberof CreateCompletionResponse
*/
'choices': Array<CreateCompletionResponseChoicesInner>;
/**
*
* @type {CreateCompletionResponseUsage}
* @memberof CreateCompletionResponse
*/
'usage'?: CreateCompletionResponseUsage;
}
/**
*
* @export
* @interface CreateCompletionResponseChoicesInner
*/
export interface CreateCompletionResponseChoicesInner {
/**
*
* @type {string}
* @memberof CreateCompletionResponseChoicesInner
*/
'text'?: string;
/**
*
* @type {number}
* @memberof CreateCompletionResponseChoicesInner
*/
'index'?: number;
/**
*
* @type {CreateCompletionResponseChoicesInnerLogprobs}
* @memberof CreateCompletionResponseChoicesInner
*/
'logprobs'?: CreateCompletionResponseChoicesInnerLogprobs | null;
/**
*
* @type {string}
* @memberof CreateCompletionResponseChoicesInner
*/
'finish_reason'?: string;
}
/**
*
* @export
* @interface CreateCompletionResponseChoicesInnerLogprobs
*/
export interface CreateCompletionResponseChoicesInnerLogprobs {
/**
*
* @type {Array<string>}
* @memberof CreateCompletionResponseChoicesInnerLogprobs
*/
'tokens'?: Array<string>;
/**
*
* @type {Array<number>}
* @memberof CreateCompletionResponseChoicesInnerLogprobs
*/
'token_logprobs'?: Array<number>;
/**
*
* @type {Array<object>}
* @memberof CreateCompletionResponseChoicesInnerLogprobs
*/
'top_logprobs'?: Array<object>;
/**
*
* @type {Array<number>}
* @memberof CreateCompletionResponseChoicesInnerLogprobs
*/
'text_offset'?: Array<number>;
}
/**
*
* @export
* @interface CreateCompletionResponseUsage
*/
export interface CreateCompletionResponseUsage {
/**
*
* @type {number}
* @memberof CreateCompletionResponseUsage
*/
'prompt_tokens': number;
/**
*
* @type {number}
* @memberof CreateCompletionResponseUsage
*/
'completion_tokens': number;
/**
*
* @type {number}
* @memberof CreateCompletionResponseUsage
*/
'total_tokens': number;
}
/**
*
* @export
* @interface CreateEditRequest
*/
export interface CreateEditRequest {
/**
* ID of the model to use. You can use the `text-davinci-edit-001` or `code-davinci-edit-001` model with this endpoint.
* @type {string}
* @memberof CreateEditRequest
*/
'model': string;
/**
* The input text to use as a starting point for the edit.
* @type {string}
* @memberof CreateEditRequest
*/
'input'?: string | null;
/**
* The instruction that tells the model how to edit the prompt.
* @type {string}
* @memberof CreateEditRequest
*/
'instruction': string;
/**
* How many edits to generate for the input and instruction.
* @type {number}
* @memberof CreateEditRequest
*/
'n'?: number | null;
/**
* What sampling temperature to use, between 0 and 2. Higher values like 0.8 will make the output more random, while lower values like 0.2 will make it more focused and deterministic. We generally recommend altering this or `top_p` but not both.
* @type {number}
* @memberof CreateEditRequest
*/
'temperature'?: number | null;
/**
* An alternative to sampling with temperature, called nucleus sampling, where the model considers the results of the tokens with top_p probability mass. So 0.1 means only the tokens comprising the top 10% probability mass are considered. We generally recommend altering this or `temperature` but not both.
* @type {number}
* @memberof CreateEditRequest
*/
'top_p'?: number | null;
}
/**
*
* @export
* @interface CreateEditResponse
*/
export interface CreateEditResponse {
/**
*
* @type {string}
* @memberof CreateEditResponse
*/
'object': string;
/**
*
* @type {number}
* @memberof CreateEditResponse
*/
'created': number;
/**
*
* @type {Array<CreateCompletionResponseChoicesInner>}
* @memberof CreateEditResponse
*/
'choices': Array<CreateCompletionResponseChoicesInner>;
/**
*
* @type {CreateCompletionResponseUsage}
* @memberof CreateEditResponse
*/
'usage': CreateCompletionResponseUsage;
}
/**
*
* @export
* @interface CreateEmbeddingRequest
*/
export interface CreateEmbeddingRequest {
/**
* ID of the model to use. You can use the [List models](/docs/api-reference/models/list) API to see all of your available models, or see our [Model overview](/docs/models/overview) for descriptions of them.
* @type {string}
* @memberof CreateEmbeddingRequest
*/
'model': string;
/**
*
* @type {CreateEmbeddingRequestInput}
* @memberof CreateEmbeddingRequest
*/
'input': CreateEmbeddingRequestInput;
/**
* A unique identifier representing your end-user, which can help OpenAI to monitor and detect abuse. [Learn more](/docs/guides/safety-best-practices/end-user-ids).
* @type {string}
* @memberof CreateEmbeddingRequest
*/
'user'?: string;
}
/**
* @type CreateEmbeddingRequestInput
* Input text to get embeddings for, encoded as a string or array of tokens. To get embeddings for multiple inputs in a single request, pass an array of strings or array of token arrays. Each input must not exceed 8192 tokens in length.
* @export
*/
export type CreateEmbeddingRequestInput = Array<any> | Array<number> | Array<string> | string;
/**
*
* @export
* @interface CreateEmbeddingResponse
*/
export interface CreateEmbeddingResponse {
/**
*
* @type {string}
* @memberof CreateEmbeddingResponse
*/
'object': string;
/**
*
* @type {string}
* @memberof CreateEmbeddingResponse
*/
'model': string;
/**
*
* @type {Array<CreateEmbeddingResponseDataInner>}
* @memberof CreateEmbeddingResponse
*/
'data': Array<CreateEmbeddingResponseDataInner>;
/**
*
* @type {CreateEmbeddingResponseUsage}
* @memberof CreateEmbeddingResponse
*/
'usage': CreateEmbeddingResponseUsage;
}
/**
*
* @export
* @interface CreateEmbeddingResponseDataInner
*/
export interface CreateEmbeddingResponseDataInner {
/**
*
* @type {number}
* @memberof CreateEmbeddingResponseDataInner
*/
'index': number;
/**
*
* @type {string}
* @memberof CreateEmbeddingResponseDataInner
*/
'object': string;
/**
*
* @type {Array<number>}
* @memberof CreateEmbeddingResponseDataInner
*/
'embedding': Array<number>;
}
/**