549 lines
20 KiB
Go
549 lines
20 KiB
Go
// Gemini thought signature validation notes.
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//
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// The Antigravity Gemini request translator can preserve provider-compatible
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// Gemini thought signatures and uses the skip sentinel only for synthetic or
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// incompatible model parts.
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//
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// Gemini 3 and later models can return thoughtSignature on model content parts.
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// Function-call parts are the strict case: when a model functionCall is replayed
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// with a following functionResponse, Gemini validates that the original
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// functionCall part still carries its provider-issued thoughtSignature. Text or
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// other non-functionCall parts may also carry a signature; those should be
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// preserved when replaying native Gemini history, but they are not the primary
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// validation gate.
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//
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// Synthetic history and migration from other model families are different. If a
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// functionCall part was not produced by Gemini API, there is no real signature
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// to preserve. Gemini documents two bypass sentinels for that case:
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//
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// - "skip_thought_signature_validator"
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// - "context_engineering_is_the_way_to_go"
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//
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// This repo emits "skip_thought_signature_validator" only when the first
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// functionCall in a synthetic model turn lacks a compatible provider signature.
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// Later parallel calls and ordinary text/thought parts preserve their native
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// unsigned shape.
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//
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// This validator is intentionally more conservative than a decrypting verifier.
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// Claude has a known E/R base64 envelope and a protobuf tree in this package.
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// Gemini thought signatures are opaque provider state here, so local validation
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// checks only the transport-level protobuf envelope and leaves the wrapped
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// provider payload uninterpreted.
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//
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// Validation tiers:
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//
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// - Sentinel tier: accept the documented bypass sentinels only on the first
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// model functionCall when it is synthetic, migrated, or otherwise not
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// traceable to a prior Gemini model response in the same conversation.
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// - Opaque-shape tier: for real Gemini signatures, require a non-empty string,
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// bounded length, successful standard base64 decoding, and a known protobuf
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// envelope when the caller needs provider compatibility. The only known
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// envelope is the Gemini 3.x field-2 -> field-1 payload, whose body holds
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// either versioned opaque state or a provider UUID. Gemini 2.5 emitted a
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// repeated field-1 form; those models are out of scope and their signatures
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// are no longer a known envelope. Bare base64 UUID payloads are classified
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// separately and should be replaced with the bypass sentinel rather than
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// replayed.
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// - Replay tier: real validation means preserving the exact model part that
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// came from Gemini, including its thoughtSignature, id/name/function args,
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// part index, and ordering relative to sibling parallel function calls.
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// - Tool pairing tier: functionResponse parts must match the preceding
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// functionCall id/name and must not be interleaved between parallel calls.
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// The valid shape is all model functionCalls first, then their responses.
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// - Compatibility tier: GPT-compatible Gemini traffic stores the same state
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// under tool_calls[].extra_content.google.thought_signature. If that path is
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// translated back to native Gemini, the value must stay attached to the same
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// assistant tool call.
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//
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// Important non-goals:
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//
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// - Do not treat a Gemini thoughtSignature as a Claude signature. Similar
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// base64 prefixes are not provenance.
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// - Do not attach a signature to user functionResponse/tool-result parts.
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// - Do not log complete signatures during validation failures; log only field
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// paths, lengths, and redacted prefixes.
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// - Do not preserve client-provided signatures across model/provider/session
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// boundaries unless the request pipeline can prove they came from the same
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// Gemini conversation state.
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package signature
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import (
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"encoding/base64"
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"fmt"
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"strings"
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"github.com/router-for-me/CLIProxyAPI/v7/internal/util"
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"github.com/tidwall/gjson"
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"google.golang.org/protobuf/encoding/protowire"
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)
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const (
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MaxGeminiThoughtSignatureLen = 32 * 1024 * 1024
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GeminiSkipThoughtSignatureValidator = "skip_thought_signature_validator"
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GeminiContextEngineeringBypass = "context_engineering_is_the_way_to_go"
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)
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// GeminiThoughtSignatureValidationOptions controls how much local validation is
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// applied to Gemini thought signatures. This validation checks only the opaque
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// transport envelope; it does not prove that a signature came from Gemini or can
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// be decrypted by Gemini.
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type GeminiThoughtSignatureValidationOptions struct {
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// AllowBypassSentinel accepts Gemini's documented synthetic-history bypass
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// sentinels. Keep this false when validating provider-issued signatures.
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AllowBypassSentinel bool
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// RequireKnownEnvelope requires the decoded payload to match one of the
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// protobuf envelopes observed in Gemini samples. This rejects opaque base64
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// values such as base64 UUIDs.
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RequireKnownEnvelope bool
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// RequireObservedMarker requires the decoded payload to start with 0x12. Every
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// observed Gemini 3.x sample carries this marker, but it is only the outer
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// protobuf tag, so RequireKnownEnvelope is the stronger check and should be
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// preferred. This option exists for narrow experiments that want the marker
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// without the full envelope walk.
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RequireObservedMarker bool
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}
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type GeminiThoughtSignatureEnvelope string
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const (
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GeminiThoughtSignatureEnvelopeUnknown GeminiThoughtSignatureEnvelope = "unknown"
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// GeminiThoughtSignatureEnvelopeProtobufField2 is the only replay-safe Gemini
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// envelope. The repeated field-1 form emitted by Gemini 2.5 is no longer
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// recognized: those models are out of scope, and their signatures now fall
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// through to the bypass sentinel like any other unknown envelope.
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GeminiThoughtSignatureEnvelopeProtobufField2 GeminiThoughtSignatureEnvelope = "protobuf_field_2"
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GeminiThoughtSignatureEnvelopeASCIIUUID GeminiThoughtSignatureEnvelope = "ascii_uuid"
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)
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// GeminiThoughtSignatureInfo describes the locally inspectable properties of an
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// opaque Gemini thought signature.
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type GeminiThoughtSignatureInfo struct {
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IsBypassSentinel bool
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BypassSentinel string
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DecodedLen int
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FirstByte byte
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HasObservedMarker bool
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KnownEnvelope bool
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Envelope GeminiThoughtSignatureEnvelope
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RecordCount int
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OpaquePayloadLen int
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}
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type geminiFunctionCallRef struct {
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id string
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name string
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path string
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}
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type geminiFunctionResponseRef struct {
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part gjson.Result
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path string
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}
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func geminiThoughtSignatureValidationOptions(opts []GeminiThoughtSignatureValidationOptions) GeminiThoughtSignatureValidationOptions {
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if len(opts) == 0 {
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return GeminiThoughtSignatureValidationOptions{}
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}
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return opts[0]
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}
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// IsGeminiThoughtSignatureBypass reports whether rawSignature is one of
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// Gemini's documented bypass sentinels for synthetic or migrated function-call
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// history.
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func IsGeminiThoughtSignatureBypass(rawSignature string) bool {
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switch strings.TrimSpace(rawSignature) {
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case GeminiSkipThoughtSignatureValidator, GeminiContextEngineeringBypass:
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return true
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default:
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return false
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}
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}
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// IsValidGeminiThoughtSignature returns whether rawSignature has a valid local
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// Gemini thought-signature shape under opts.
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func IsValidGeminiThoughtSignature(rawSignature string, opts ...GeminiThoughtSignatureValidationOptions) bool {
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_, err := InspectGeminiThoughtSignature(rawSignature, opts...)
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return err == nil
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}
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// InspectGeminiThoughtSignature validates and inspects the local transport
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// shape of a Gemini thought signature. It intentionally treats provider-issued
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// signatures as opaque base64 payloads.
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func InspectGeminiThoughtSignature(rawSignature string, opts ...GeminiThoughtSignatureValidationOptions) (*GeminiThoughtSignatureInfo, error) {
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opt := geminiThoughtSignatureValidationOptions(opts)
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sig := strings.TrimSpace(rawSignature)
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if sig == "" {
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return nil, fmt.Errorf("empty Gemini thought signature")
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}
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if IsValidClaudeCAISSignature(sig) {
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return nil, fmt.Errorf("invalid Gemini thought signature: detected Claude CAIS signature")
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}
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if IsGeminiThoughtSignatureBypass(sig) {
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if !opt.AllowBypassSentinel {
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return nil, fmt.Errorf("Gemini thought signature bypass sentinel is not allowed")
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}
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return &GeminiThoughtSignatureInfo{
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IsBypassSentinel: true,
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BypassSentinel: sig,
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}, nil
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}
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decoded, err := decodeGeminiThoughtSignature(sig)
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if err != nil {
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return nil, err
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}
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if len(decoded) == 0 {
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return nil, fmt.Errorf("invalid Gemini thought signature: empty decoded payload")
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}
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info := &GeminiThoughtSignatureInfo{
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DecodedLen: len(decoded),
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FirstByte: decoded[0],
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HasObservedMarker: decoded[0] == 0x12,
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}
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info.Envelope, info.KnownEnvelope = classifyGeminiThoughtSignatureEnvelope(decoded)
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info.RecordCount, info.OpaquePayloadLen = inspectGeminiEnvelope(decoded, info.Envelope)
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if opt.RequireKnownEnvelope && !info.KnownEnvelope {
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return nil, fmt.Errorf("invalid Gemini thought signature: unknown envelope %q", info.Envelope)
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}
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if opt.RequireObservedMarker && !info.HasObservedMarker {
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return nil, fmt.Errorf("invalid Gemini thought signature: expected observed marker 0x12, got 0x%02x", info.FirstByte)
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}
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return info, nil
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}
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// ValidateGeminiThoughtSignatures validates thoughtSignature fields in a Gemini
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// native payload. The first functionCall in each model Content must have a valid
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// provider signature or allowed synthetic sentinel. Later parallel sibling calls
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// may be unsigned, but any signature they do carry must still be valid.
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func ValidateGeminiThoughtSignatures(inputRawJSON []byte, opts ...GeminiThoughtSignatureValidationOptions) error {
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contents, contentsPath := geminiContents(inputRawJSON)
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if !contents.IsArray() {
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return nil
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}
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contentResults := contents.Array()
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for i := 0; i < len(contentResults); i++ {
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content := contentResults[i]
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parts := content.Get("parts")
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if !parts.IsArray() {
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continue
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}
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isModelTurn := strings.EqualFold(strings.TrimSpace(content.Get("role").String()), "model")
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firstFunctionCallSeen := false
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partResults := parts.Array()
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for j := 0; j < len(partResults); j++ {
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part := partResults[j]
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hasFunctionCall := part.Get("functionCall").Exists()
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isFirstFunctionCall := isModelTurn && hasFunctionCall && !firstFunctionCallSeen
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if isModelTurn && hasFunctionCall {
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firstFunctionCallSeen = true
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}
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rawSignature, hasSignature := geminiPartThoughtSignature(part)
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if !hasFunctionCall && !hasSignature {
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continue
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}
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partPath := fmt.Sprintf("%s[%d].parts[%d]", contentsPath, i, j)
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rawSignature = strings.TrimSpace(rawSignature)
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if part.Get("functionResponse").Exists() && hasSignature {
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return fmt.Errorf("%s: functionResponse must not carry thoughtSignature", partPath)
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}
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if rawSignature == "" {
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if isFirstFunctionCall {
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return fmt.Errorf("%s: missing thoughtSignature on first functionCall", partPath)
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}
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if hasSignature {
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return fmt.Errorf("%s: empty thoughtSignature", partPath)
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}
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continue
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}
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if IsGeminiThoughtSignatureBypass(rawSignature) && !isFirstFunctionCall {
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return fmt.Errorf("%s: Gemini bypass sentinel is allowed only on the first model functionCall", partPath)
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}
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if !hasNormalizedGeminiPartThoughtSignature(part, rawSignature) {
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return fmt.Errorf("%s: thoughtSignature must use one canonical top-level field", partPath)
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}
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if _, err := InspectGeminiThoughtSignature(rawSignature, opts...); err != nil {
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return fmt.Errorf("%s: %w", partPath, err)
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}
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}
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}
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return nil
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}
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// ValidateGeminiFunctionCallPairing validates the replay shape around Gemini
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// functionCall and functionResponse parts. It checks id/name pairing and
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// prevents response parts from being interleaved inside the same content as
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// function calls. It allows a final pending functionCall group because callers
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// may validate a freshly returned model step before tool outputs exist.
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func ValidateGeminiFunctionCallPairing(inputRawJSON []byte) error {
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contents, contentsPath := geminiContents(inputRawJSON)
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if !contents.IsArray() {
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return nil
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}
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var pending []geminiFunctionCallRef
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var validationErr error
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contents.ForEach(func(contentIndex, content gjson.Result) bool {
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i := int(contentIndex.Int())
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parts := content.Get("parts")
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if !parts.IsArray() {
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if len(pending) > 0 {
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validationErr = fmt.Errorf(
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"%s[%d]: content appears before %d pending functionResponse part(s)",
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contentsPath,
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i,
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len(pending),
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)
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}
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return validationErr == nil
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}
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var calls []geminiFunctionCallRef
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var responses []geminiFunctionResponseRef
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parts.ForEach(func(partIndex, part gjson.Result) bool {
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j := int(partIndex.Int())
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partPath := fmt.Sprintf("%s[%d].parts[%d]", contentsPath, i, j)
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if call := part.Get("functionCall"); call.Exists() {
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if call.Get("name").String() == "" {
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validationErr = fmt.Errorf("%s: missing functionCall.name", partPath)
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return false
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}
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calls = append(calls, geminiFunctionCallRef{
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id: call.Get("id").String(),
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name: call.Get("name").String(),
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path: partPath,
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})
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}
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if response := part.Get("functionResponse"); response.Exists() {
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responses = append(responses, geminiFunctionResponseRef{
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part: part,
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path: partPath,
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})
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}
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return true
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})
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if validationErr != nil {
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return false
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}
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switch {
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case len(calls) > 0 && len(responses) > 0:
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validationErr = fmt.Errorf(
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"%s[%d]: functionCall and functionResponse parts must not be interleaved in the same content",
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contentsPath,
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i,
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)
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case len(calls) > 0 && len(pending) > 0:
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validationErr = fmt.Errorf(
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"%s[%d]: functionCall appears before %d pending functionResponse part(s)",
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contentsPath,
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i,
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len(pending),
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)
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case len(calls) > 0:
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pending = calls
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return true
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case len(responses) == 0 && len(pending) > 0:
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validationErr = fmt.Errorf(
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"%s[%d]: content appears before %d pending functionResponse part(s)",
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contentsPath,
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i,
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len(pending),
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)
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case len(responses) == 0:
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return true
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case len(pending) == 0:
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validationErr = fmt.Errorf("%s[%d]: functionResponse without preceding functionCall", contentsPath, i)
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case len(responses) != len(pending):
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validationErr = fmt.Errorf(
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"%s[%d]: functionResponse count %d does not match pending functionCall count %d",
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contentsPath,
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i,
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len(responses),
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len(pending),
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)
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}
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if validationErr != nil {
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return false
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}
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for responseIndex, responseRef := range responses {
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partPath := responseRef.path
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response := responseRef.part.Get("functionResponse")
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call := pending[responseIndex]
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responseID := response.Get("id").String()
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responseName := response.Get("name").String()
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switch {
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case call.id != "" && responseID == "":
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validationErr = fmt.Errorf("%s: missing functionResponse.id for %s", partPath, call.path)
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case call.id != "" && responseID != call.id:
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validationErr = fmt.Errorf(
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"%s: functionResponse.id %q does not match functionCall.id %q at %s",
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partPath,
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responseID,
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call.id,
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call.path,
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)
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case responseName == "":
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validationErr = fmt.Errorf("%s: missing functionResponse.name", partPath)
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case call.name != "" && responseName != call.name:
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validationErr = fmt.Errorf(
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"%s: functionResponse.name %q does not match functionCall.name %q at %s",
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partPath,
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responseName,
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call.name,
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call.path,
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)
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}
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if validationErr != nil {
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return false
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}
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}
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pending = nil
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return true
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})
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return validationErr
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}
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func decodeGeminiThoughtSignature(sig string) ([]byte, error) {
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if len(sig) > MaxGeminiThoughtSignatureLen {
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return nil, fmt.Errorf("Gemini thought signature exceeds maximum length (%d bytes)", MaxGeminiThoughtSignatureLen)
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}
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decoded, err := base64.StdEncoding.DecodeString(sig)
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if err == nil {
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return decoded, nil
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}
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if decoded, rawErr := base64.RawStdEncoding.DecodeString(sig); rawErr == nil {
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return decoded, nil
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}
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return nil, fmt.Errorf("invalid Gemini thought signature: base64 decode failed: %w", err)
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}
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func classifyGeminiThoughtSignatureEnvelope(decoded []byte) (GeminiThoughtSignatureEnvelope, bool) {
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if len(decoded) == 0 {
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return GeminiThoughtSignatureEnvelopeUnknown, false
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}
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if isASCIIUUIDBytes(decoded) {
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return GeminiThoughtSignatureEnvelopeASCIIUUID, false
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}
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if isGeminiField2Envelope(decoded) {
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return GeminiThoughtSignatureEnvelopeProtobufField2, true
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}
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return GeminiThoughtSignatureEnvelopeUnknown, false
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}
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func isGeminiField2Envelope(decoded []byte) bool {
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info, ok := inspectGeminiField2Envelope(decoded)
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return ok && info.RecordCount == 1 && info.OpaquePayloadLen > 0
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}
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func inspectGeminiEnvelope(decoded []byte, envelope GeminiThoughtSignatureEnvelope) (recordCount int, opaquePayloadLen int) {
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if envelope == GeminiThoughtSignatureEnvelopeProtobufField2 {
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if info, ok := inspectGeminiField2Envelope(decoded); ok {
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return info.RecordCount, info.OpaquePayloadLen
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}
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}
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return 0, 0
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}
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type geminiEnvelopeInfo struct {
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RecordCount int
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OpaquePayloadLen int
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}
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func inspectGeminiField2Envelope(decoded []byte) (geminiEnvelopeInfo, bool) {
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value, ok := consumeGeminiField2Field1Value(decoded)
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if !ok || (!isLikelyGeminiOpaquePayload(value) && !isASCIIUUIDBytes(value)) {
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return geminiEnvelopeInfo{}, false
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}
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return geminiEnvelopeInfo{
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RecordCount: 1,
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OpaquePayloadLen: len(value),
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}, true
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}
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func consumeGeminiField2Field1Value(decoded []byte) ([]byte, bool) {
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num, typ, n := protowire.ConsumeTag(decoded)
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if n < 0 || num != 2 || typ != protowire.BytesType {
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return nil, false
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}
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offset := n
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container, n := protowire.ConsumeBytes(decoded[offset:])
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if n < 0 {
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return nil, false
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}
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offset += n
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if offset != len(decoded) {
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return nil, false
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}
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num, typ, n = protowire.ConsumeTag(container)
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if n < 0 || num != 1 || typ != protowire.BytesType {
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|
return nil, false
|
|
}
|
|
containerOffset := n
|
|
value, n := protowire.ConsumeBytes(container[containerOffset:])
|
|
if n < 0 {
|
|
return nil, false
|
|
}
|
|
containerOffset += n
|
|
if containerOffset != len(container) {
|
|
return nil, false
|
|
}
|
|
return value, true
|
|
}
|
|
|
|
func isLikelyGeminiOpaquePayload(value []byte) bool {
|
|
// The envelope body is a Google Tink primitive output: one prefix-type byte
|
|
// (0x01 selects the TINK prefix) followed by a four-byte big-endian key id and
|
|
// then the ciphertext. Only the prefix-type byte is checked here, because it is
|
|
// a format constant while the key id is key material that Google rotates.
|
|
// Pinning the key id would reduce false positives to nothing but would reject
|
|
// every signature the moment a rotation happens, which is the worse failure.
|
|
// That rotation is observed, not hypothetical: gemini-3.1-flash-lite carries key
|
|
// id 0x0c39d6c7 in the archived corpus and 0x114d320f in the 2026-07-27 capture,
|
|
// and the newer id is shared by every Gemini 3.x variant captured that day. The
|
|
// bytes after the prefix are high-entropy provider state and stay opaque, so this
|
|
// one format byte is the only anchor available. It leaves a 1/256 false-positive
|
|
// rate against a caller that reproduces the protobuf envelope but not the key
|
|
// material; provenance or target scoping, not more byte checks, closes that gap.
|
|
return len(value) > 0 && value[0] == 0x01
|
|
}
|
|
|
|
func isASCIIUUIDBytes(decoded []byte) bool {
|
|
if len(decoded) != 36 {
|
|
return false
|
|
}
|
|
for i, b := range decoded {
|
|
switch i {
|
|
case 8, 13, 18, 23:
|
|
if b != '-' {
|
|
return false
|
|
}
|
|
default:
|
|
if !((b >= '0' && b <= '9') || (b >= 'a' && b <= 'f') || (b >= 'A' && b <= 'F')) {
|
|
return false
|
|
}
|
|
}
|
|
}
|
|
return true
|
|
}
|
|
|
|
func geminiContents(inputRawJSON []byte) (gjson.Result, string) {
|
|
if contents := util.GetGJSONBytesNoCopy(inputRawJSON, "contents"); contents.Exists() {
|
|
return contents, "contents"
|
|
}
|
|
return util.GetGJSONBytesNoCopy(inputRawJSON, "request.contents"), "request.contents"
|
|
}
|