fix: 07-rag-setup.sh — upgrade SDK + multi-attempt serverless corpus creation
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@ -25,6 +25,11 @@ gcloud services enable aiplatform.googleapis.com \
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--project="${PROJECT_ID}" --quiet
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echo "✓ APIs enabled"
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# ── Upgrade SDK to ensure RagManagedDb support ───────────────────────────────
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echo " Upgrading google-cloud-aiplatform SDK..."
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pip install --quiet --upgrade google-cloud-aiplatform
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echo "✓ SDK upgraded"
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# ── GCS bucket (idempotent) ──────────────────────────────────────────────
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CORPUS_BUCKET="${PROJECT_ID}-agent-corpus"
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if ! gsutil ls -b "gs://${CORPUS_BUCKET}" &>/dev/null; then
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@ -43,7 +48,7 @@ else
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echo " No seed documents in docs/corpus-seed/ — skipping"
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fi
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# ── Python: create corpus ───────────────────────────────────────────────────────
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# ── Python: create corpus ────────────────────────────────────────────────────
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python3 - << 'PYEOF'
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import os, sys
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@ -78,38 +83,75 @@ if corpus is None:
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publisher_model="publishers/google/models/text-embedding-005"
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)
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# Try Serverless mode (RagManagedDb) first, fall back to plain create
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created = False
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for attempt in ["serverless", "plain"]:
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# Attempt order:
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# 1. SDK >= 1.87 : RagVectorDbConfig(rag_managed_db=RagManagedDb())
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# 2. Older SDK : RagVectorDbConfig(rag_managed_db=RagManagedDbConfig())
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# 3. REST fallback: gapic-style with vector_db proto dict
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attempts = ["new_sdk", "old_sdk", "proto_dict"]
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for attempt in attempts:
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try:
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if attempt == "serverless":
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# SDK >= 1.87: RagVectorDbConfig with rag_managed_db
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try:
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vector_db = rag.RagVectorDbConfig(
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rag_managed_db=rag.RagManagedDb()
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)
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corpus = rag.create_corpus(
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display_name=DISPLAY_NAME,
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embedding_model_config=embedding_config,
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vector_db=vector_db,
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)
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except TypeError:
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# Older SDK: RagManagedDb not a kwarg — skip to plain
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raise
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else:
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# Plain create — lets Google pick default (Serverless on new projects)
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if attempt == "new_sdk":
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vector_db = rag.RagVectorDbConfig(
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rag_managed_db=rag.RagManagedDb()
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)
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corpus = rag.create_corpus(
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display_name=DISPLAY_NAME,
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embedding_model_config=embedding_config,
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vector_db=vector_db,
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)
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elif attempt == "old_sdk":
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# Some SDK versions use RagManagedDbConfig instead
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RagManagedDbConfig = getattr(rag, "RagManagedDbConfig", None)
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if RagManagedDbConfig is None:
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raise AttributeError("RagManagedDbConfig not in this SDK version")
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vector_db = rag.RagVectorDbConfig(
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rag_managed_db=RagManagedDbConfig()
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)
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corpus = rag.create_corpus(
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display_name=DISPLAY_NAME,
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embedding_model_config=embedding_config,
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vector_db=vector_db,
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)
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elif attempt == "proto_dict":
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# Last resort: pass vector_db as a plain dict understood by gapic
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from google.cloud.aiplatform_v1beta1.types import (
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RagCorpus, RagVectorDbConfig, RagManagedDb,
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RagEmbeddingModelConfig
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)
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from google.cloud import aiplatform_v1beta1 as aip
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client = aip.VertexRagDataServiceClient(
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client_options={"api_endpoint": f"{RAG_REGION}-aiplatform.googleapis.com"}
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)
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parent = f"projects/{PROJECT_ID}/locations/{RAG_REGION}"
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rag_corpus = RagCorpus(
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display_name=DISPLAY_NAME,
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rag_embedding_model_config=RagEmbeddingModelConfig(
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vertex_prediction_endpoint=RagEmbeddingModelConfig.VertexPredictionEndpoint(
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publisher_model="publishers/google/models/text-embedding-005"
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)
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),
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rag_vector_db_config=RagVectorDbConfig(
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rag_managed_db=RagManagedDb()
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),
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)
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op = client.create_rag_corpus(parent=parent, rag_corpus=rag_corpus)
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result = op.result()
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# Wrap in a simple namespace so rest of script works
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class _C:
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name = result.name
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corpus = _C()
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print(f"✓ RAG corpus created [{attempt}]: {corpus.name}")
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created = True
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break
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except Exception as e:
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if attempt == "plain":
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print(f"ERROR: Could not create corpus: {e}")
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if attempt == attempts[-1]:
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print(f"ERROR: All attempts failed. Last error: {e}")
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sys.exit(1)
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print(f" [{attempt}] failed: {e} — retrying with plain...")
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print(f" [{attempt}] failed: {e} — trying next method...")
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# Import seed documents (non-fatal)
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gcs_uri = f"gs://{CORPUS_BUCKET}/seed/"
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