386 lines
11 KiB
Go
386 lines
11 KiB
Go
package controller
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import (
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"context"
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"encoding/json"
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"errors"
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"fmt"
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"io"
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"math"
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"net/http"
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"one-api/common"
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"one-api/common/image"
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"one-api/model"
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"strconv"
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"strings"
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"github.com/gin-gonic/gin"
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"github.com/pkoukk/tiktoken-go"
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)
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var stopFinishReason = "stop"
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// tokenEncoderMap won't grow after initialization
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var tokenEncoderMap = map[string]*tiktoken.Tiktoken{}
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var defaultTokenEncoder *tiktoken.Tiktoken
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func InitTokenEncoders() {
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common.SysLog("initializing token encoders")
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gpt35TokenEncoder, err := tiktoken.EncodingForModel("gpt-3.5-turbo")
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if err != nil {
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common.FatalLog(fmt.Sprintf("failed to get gpt-3.5-turbo token encoder: %s", err.Error()))
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}
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defaultTokenEncoder = gpt35TokenEncoder
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gpt4TokenEncoder, err := tiktoken.EncodingForModel("gpt-4")
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if err != nil {
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common.FatalLog(fmt.Sprintf("failed to get gpt-4 token encoder: %s", err.Error()))
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}
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for model, _ := range common.ModelRatio {
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if strings.HasPrefix(model, "gpt-3.5") {
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tokenEncoderMap[model] = gpt35TokenEncoder
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} else if strings.HasPrefix(model, "gpt-4") {
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tokenEncoderMap[model] = gpt4TokenEncoder
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} else {
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tokenEncoderMap[model] = nil
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}
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}
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common.SysLog("token encoders initialized")
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}
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func getTokenEncoder(model string) *tiktoken.Tiktoken {
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tokenEncoder, ok := tokenEncoderMap[model]
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if ok && tokenEncoder != nil {
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return tokenEncoder
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}
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if ok {
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tokenEncoder, err := tiktoken.EncodingForModel(model)
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if err != nil {
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common.SysError(fmt.Sprintf("failed to get token encoder for model %s: %s, using encoder for gpt-3.5-turbo", model, err.Error()))
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tokenEncoder = defaultTokenEncoder
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}
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tokenEncoderMap[model] = tokenEncoder
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return tokenEncoder
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}
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return defaultTokenEncoder
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}
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func getTokenNum(tokenEncoder *tiktoken.Tiktoken, text string) int {
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if common.ApproximateTokenEnabled {
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return int(float64(len(text)) * 0.38)
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}
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return len(tokenEncoder.Encode(text, nil, nil))
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}
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func countTokenMessages(messages []Message, model string) int {
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tokenEncoder := getTokenEncoder(model)
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// Reference:
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// https://github.com/openai/openai-cookbook/blob/main/examples/How_to_count_tokens_with_tiktoken.ipynb
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// https://github.com/pkoukk/tiktoken-go/issues/6
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//
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// Every message follows <|start|>{role/name}\n{content}<|end|>\n
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var tokensPerMessage int
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var tokensPerName int
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if model == "gpt-3.5-turbo-0301" {
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tokensPerMessage = 4
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tokensPerName = -1 // If there's a name, the role is omitted
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} else {
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tokensPerMessage = 3
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tokensPerName = 1
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}
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tokenNum := 0
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for _, message := range messages {
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tokenNum += tokensPerMessage
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switch v := message.Content.(type) {
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case string:
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tokenNum += getTokenNum(tokenEncoder, v)
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case []any:
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for _, it := range v {
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m := it.(map[string]any)
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switch m["type"] {
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case "text":
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tokenNum += getTokenNum(tokenEncoder, m["text"].(string))
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case "image_url":
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imageUrl, ok := m["image_url"].(map[string]any)
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if ok {
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url := imageUrl["url"].(string)
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detail := ""
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if imageUrl["detail"] != nil {
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detail = imageUrl["detail"].(string)
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}
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imageTokens, err := countImageTokens(url, detail)
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if err != nil {
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common.SysError("error counting image tokens: " + err.Error())
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} else {
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tokenNum += imageTokens
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}
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}
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}
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}
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}
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tokenNum += getTokenNum(tokenEncoder, message.Role)
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if message.Name != nil {
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tokenNum += tokensPerName
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tokenNum += getTokenNum(tokenEncoder, *message.Name)
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}
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}
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tokenNum += 3 // Every reply is primed with <|start|>assistant<|message|>
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return tokenNum
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}
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const (
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lowDetailCost = 85
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highDetailCostPerTile = 170
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additionalCost = 85
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)
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// https://platform.openai.com/docs/guides/vision/calculating-costs
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// https://github.com/openai/openai-cookbook/blob/05e3f9be4c7a2ae7ecf029a7c32065b024730ebe/examples/How_to_count_tokens_with_tiktoken.ipynb
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func countImageTokens(url string, detail string) (_ int, err error) {
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var fetchSize = true
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var width, height int
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// Reference: https://platform.openai.com/docs/guides/vision/low-or-high-fidelity-image-understanding
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// detail == "auto" is undocumented on how it works, it just said the model will use the auto setting which will look at the image input size and decide if it should use the low or high setting.
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// According to the official guide, "low" disable the high-res model,
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// and only receive low-res 512px x 512px version of the image, indicating
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// that image is treated as low-res when size is smaller than 512px x 512px,
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// then we can assume that image size larger than 512px x 512px is treated
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// as high-res. Then we have the following logic:
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// if detail == "" || detail == "auto" {
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// width, height, err = image.GetImageSize(url)
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// if err != nil {
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// return 0, err
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// }
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// fetchSize = false
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// // not sure if this is correct
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// if width > 512 || height > 512 {
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// detail = "high"
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// } else {
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// detail = "low"
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// }
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// }
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// However, in my test, it seems to be always the same as "high".
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// The following image, which is 125x50, is still treated as high-res, taken
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// 255 tokens in the response of non-stream chat completion api.
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// https://upload.wikimedia.org/wikipedia/commons/1/10/18_Infantry_Division_Messina.jpg
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if detail == "" || detail == "auto" {
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// assume by test, not sure if this is correct
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detail = "high"
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}
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switch detail {
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case "low":
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return lowDetailCost, nil
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case "high":
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if fetchSize {
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width, height, err = image.GetImageSize(url)
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if err != nil {
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return 0, err
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}
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}
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if width > 2048 || height > 2048 { // max(width, height) > 2048
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ratio := float64(2048) / math.Max(float64(width), float64(height))
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width = int(float64(width) * ratio)
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height = int(float64(height) * ratio)
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}
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if width > 768 && height > 768 { // min(width, height) > 768
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ratio := float64(768) / math.Min(float64(width), float64(height))
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width = int(float64(width) * ratio)
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height = int(float64(height) * ratio)
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}
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numSquares := int(math.Ceil(float64(width)/512) * math.Ceil(float64(height)/512))
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result := numSquares*highDetailCostPerTile + additionalCost
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return result, nil
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default:
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return 0, errors.New("invalid detail option")
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}
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}
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func countTokenInput(input any, model string) int {
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switch v := input.(type) {
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case string:
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return countTokenText(v, model)
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case []string:
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text := ""
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for _, s := range v {
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text += s
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}
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return countTokenText(text, model)
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}
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return 0
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}
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func countTokenText(text string, model string) int {
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tokenEncoder := getTokenEncoder(model)
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return getTokenNum(tokenEncoder, text)
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}
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func errorWrapper(err error, code string, statusCode int) *OpenAIErrorWithStatusCode {
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openAIError := OpenAIError{
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Message: err.Error(),
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Type: "one_api_error",
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Code: code,
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}
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return &OpenAIErrorWithStatusCode{
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OpenAIError: openAIError,
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StatusCode: statusCode,
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}
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}
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func shouldDisableChannel(err *OpenAIError, statusCode int) bool {
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if !common.AutomaticDisableChannelEnabled {
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return false
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}
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if err == nil {
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return false
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}
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if statusCode == http.StatusUnauthorized {
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return true
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}
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if err.Type == "insufficient_quota" || err.Code == "invalid_api_key" || err.Code == "account_deactivated" {
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return true
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}
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return false
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}
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func shouldEnableChannel(err error, openAIErr *OpenAIError) bool {
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if !common.AutomaticEnableChannelEnabled {
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return false
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}
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if err != nil {
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return false
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}
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if openAIErr != nil {
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return false
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}
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return true
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}
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func setEventStreamHeaders(c *gin.Context) {
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c.Writer.Header().Set("Content-Type", "text/event-stream")
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c.Writer.Header().Set("Cache-Control", "no-cache")
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c.Writer.Header().Set("Connection", "keep-alive")
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c.Writer.Header().Set("Transfer-Encoding", "chunked")
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c.Writer.Header().Set("X-Accel-Buffering", "no")
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}
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type GeneralErrorResponse struct {
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Error OpenAIError `json:"error"`
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Message string `json:"message"`
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Msg string `json:"msg"`
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Err string `json:"err"`
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ErrorMsg string `json:"error_msg"`
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Header struct {
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Message string `json:"message"`
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} `json:"header"`
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Response struct {
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Error struct {
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Message string `json:"message"`
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} `json:"error"`
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} `json:"response"`
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}
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func (e GeneralErrorResponse) ToMessage() string {
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if e.Error.Message != "" {
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return e.Error.Message
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}
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if e.Message != "" {
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return e.Message
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}
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if e.Msg != "" {
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return e.Msg
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}
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if e.Err != "" {
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return e.Err
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}
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if e.ErrorMsg != "" {
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return e.ErrorMsg
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}
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if e.Header.Message != "" {
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return e.Header.Message
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}
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if e.Response.Error.Message != "" {
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return e.Response.Error.Message
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}
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return ""
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}
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func relayErrorHandler(resp *http.Response) (openAIErrorWithStatusCode *OpenAIErrorWithStatusCode) {
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openAIErrorWithStatusCode = &OpenAIErrorWithStatusCode{
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StatusCode: resp.StatusCode,
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OpenAIError: OpenAIError{
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Message: "",
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Type: "upstream_error",
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Code: "bad_response_status_code",
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Param: strconv.Itoa(resp.StatusCode),
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},
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}
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responseBody, err := io.ReadAll(resp.Body)
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if err != nil {
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return
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}
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err = resp.Body.Close()
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if err != nil {
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return
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}
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var errResponse GeneralErrorResponse
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err = json.Unmarshal(responseBody, &errResponse)
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if err != nil {
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return
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}
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if errResponse.Error.Message != "" {
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// OpenAI format error, so we override the default one
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openAIErrorWithStatusCode.OpenAIError = errResponse.Error
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} else {
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openAIErrorWithStatusCode.OpenAIError.Message = errResponse.ToMessage()
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}
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if openAIErrorWithStatusCode.OpenAIError.Message == "" {
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openAIErrorWithStatusCode.OpenAIError.Message = fmt.Sprintf("bad response status code %d", resp.StatusCode)
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}
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return
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}
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func getFullRequestURL(baseURL string, requestURL string, channelType int) string {
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fullRequestURL := fmt.Sprintf("%s%s", baseURL, requestURL)
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if strings.HasPrefix(baseURL, "https://gateway.ai.cloudflare.com") {
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switch channelType {
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case common.ChannelTypeOpenAI:
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fullRequestURL = fmt.Sprintf("%s%s", baseURL, strings.TrimPrefix(requestURL, "/v1"))
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case common.ChannelTypeAzure:
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fullRequestURL = fmt.Sprintf("%s%s", baseURL, strings.TrimPrefix(requestURL, "/openai/deployments"))
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}
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}
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return fullRequestURL
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}
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func postConsumeQuota(ctx context.Context, tokenId int, quotaDelta int, totalQuota int, userId int, channelId int, modelRatio float64, groupRatio float64, modelName string, tokenName string) {
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// quotaDelta is remaining quota to be consumed
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err := model.PostConsumeTokenQuota(tokenId, quotaDelta)
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if err != nil {
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common.SysError("error consuming token remain quota: " + err.Error())
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}
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err = model.CacheUpdateUserQuota(userId)
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if err != nil {
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common.SysError("error update user quota cache: " + err.Error())
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}
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// totalQuota is total quota consumed
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if totalQuota != 0 {
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logContent := fmt.Sprintf("模型倍率 %.2f,分组倍率 %.2f", modelRatio, groupRatio)
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model.RecordConsumeLog(ctx, userId, channelId, totalQuota, 0, modelName, tokenName, totalQuota, logContent)
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model.UpdateUserUsedQuotaAndRequestCount(userId, totalQuota)
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model.UpdateChannelUsedQuota(channelId, totalQuota)
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}
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if totalQuota <= 0 {
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common.LogError(ctx, fmt.Sprintf("totalQuota consumed is %d, something is wrong", totalQuota))
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}
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}
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func GetAPIVersion(c *gin.Context) string {
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query := c.Request.URL.Query()
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apiVersion := query.Get("api-version")
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if apiVersion == "" {
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apiVersion = c.GetString("api_version")
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}
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return apiVersion
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}
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