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Multi cherry picks from master branch (#2349)
- Added grpc as a valid protocol for uri (#2090) - build(deps): bump urllib3 from 1.26.18 to 1.26.19 (#2140) - build(deps): bump certifi from 2023.7.22 to 2024.7.4 (#2170) - feat(pymilvus/settings.py): Load configuration without altering the environment (#2192) - feat: Add compact, get_server_version and flush api (#2326) - Fix typo and correct grammar (#2333) - Update return type of describe_role to Dict (#2337) - enhance: Reorganize the examples (#2340) Related: #2166, #2325, #2332 Signed-off-by: yangxuan <[email protected]> Co-authored-by: Bruno Faria <[email protected]> Co-authored-by: Bruno Faria <[email protected]> Co-authored-by: dependabot[bot] <[email protected]> Co-authored-by: -LAN- <[email protected]> Co-authored-by: zhenshan.cao <[email protected]> Co-authored-by: NamCaoHai <[email protected]>
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# Examples |
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import time | ||
import numpy as np | ||
from pymilvus import ( | ||
MilvusClient, | ||
) | ||
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fmt = "\n=== {:30} ===\n" | ||
dim = 8 | ||
collection_name = "hello_milvus" | ||
milvus_client = MilvusClient("http://localhost:19530") | ||
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has_collection = milvus_client.has_collection(collection_name, timeout=5) | ||
if has_collection: | ||
milvus_client.drop_collection(collection_name) | ||
milvus_client.create_collection(collection_name, dim, consistency_level="Strong", metric_type="L2") | ||
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rng = np.random.default_rng(seed=19530) | ||
rows = [ | ||
{"id": 1, "vector": rng.random((1, dim))[0], "a": 100}, | ||
{"id": 2, "vector": rng.random((1, dim))[0], "b": 200}, | ||
{"id": 3, "vector": rng.random((1, dim))[0], "c": 300}, | ||
{"id": 4, "vector": rng.random((1, dim))[0], "d": 400}, | ||
{"id": 5, "vector": rng.random((1, dim))[0], "e": 500}, | ||
{"id": 6, "vector": rng.random((1, dim))[0], "f": 600}, | ||
] | ||
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print(fmt.format("Start inserting entities")) | ||
insert_result = milvus_client.insert(collection_name, rows) | ||
print(fmt.format("Inserting entities done")) | ||
print(insert_result) | ||
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upsert_ret = milvus_client.upsert(collection_name, {"id": 2 , "vector": rng.random((1, dim))[0], "g": 100}) | ||
print(upsert_ret) | ||
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print(fmt.format("Start flush")) | ||
milvus_client.flush(collection_name) | ||
print(fmt.format("flush done")) | ||
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result = milvus_client.query(collection_name, "", output_fields = ["count(*)"]) | ||
print(f"final entities in {collection_name} is {result[0]['count(*)']}") | ||
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rows = [ | ||
{"id": 7, "vector": rng.random((1, dim))[0], "g": 700}, | ||
{"id": 8, "vector": rng.random((1, dim))[0], "h": 800}, | ||
{"id": 9, "vector": rng.random((1, dim))[0], "i": 900}, | ||
{"id": 10, "vector": rng.random((1, dim))[0], "j": 1000}, | ||
{"id": 11, "vector": rng.random((1, dim))[0], "k": 1100}, | ||
{"id": 12, "vector": rng.random((1, dim))[0], "l": 1200}, | ||
] | ||
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print(fmt.format("Start inserting entities")) | ||
insert_result = milvus_client.insert(collection_name, rows) | ||
print(fmt.format("Inserting entities done")) | ||
print(insert_result) | ||
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print(fmt.format("Start flush")) | ||
milvus_client.flush(collection_name) | ||
print(fmt.format("flush done")) | ||
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result = milvus_client.query(collection_name, "", output_fields = ["count(*)"]) | ||
print(f"final entities in {collection_name} is {result[0]['count(*)']}") | ||
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print(fmt.format("Start compact")) | ||
job_id = milvus_client.compact(collection_name) | ||
print(f"job_id:{job_id}") | ||
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cnt = 0 | ||
state = milvus_client.get_compaction_state(job_id) | ||
while (state != "Completed" and cnt < 10): | ||
time.sleep(1.0) | ||
state = milvus_client.get_compaction_state(job_id) | ||
print(f"compaction state: {state}") | ||
cnt += 1 | ||
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if state == "Completed": | ||
print(fmt.format("compact done")) | ||
else: | ||
print(fmt.format("compact timeout")) | ||
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result = milvus_client.query(collection_name, "", output_fields = ["count(*)"]) | ||
print(f"final entities in {collection_name} is {result[0]['count(*)']}") | ||
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milvus_client.drop_collection(collection_name) |
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import time | ||
import numpy as np | ||
from pymilvus import ( | ||
MilvusClient, | ||
) | ||
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fmt = "\n=== {:30} ===\n" | ||
dim = 8 | ||
collection_name = "hello_milvus" | ||
milvus_client = MilvusClient("http://localhost:19530") | ||
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has_collection = milvus_client.has_collection(collection_name, timeout=5) | ||
if has_collection: | ||
milvus_client.drop_collection(collection_name) | ||
milvus_client.create_collection(collection_name, dim, consistency_level="Strong", metric_type="L2") | ||
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rng = np.random.default_rng(seed=19530) | ||
rows = [ | ||
{"id": 1, "vector": rng.random((1, dim))[0], "a": 100}, | ||
{"id": 2, "vector": rng.random((1, dim))[0], "b": 200}, | ||
{"id": 3, "vector": rng.random((1, dim))[0], "c": 300}, | ||
{"id": 4, "vector": rng.random((1, dim))[0], "d": 400}, | ||
{"id": 5, "vector": rng.random((1, dim))[0], "e": 500}, | ||
{"id": 6, "vector": rng.random((1, dim))[0], "f": 600}, | ||
] | ||
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print(fmt.format("Start inserting entities")) | ||
insert_result = milvus_client.insert(collection_name, rows) | ||
print(fmt.format("Inserting entities done")) | ||
print(insert_result) | ||
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upsert_ret = milvus_client.upsert(collection_name, {"id": 2 , "vector": rng.random((1, dim))[0], "g": 100}) | ||
print(upsert_ret) | ||
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print(fmt.format("Start flush")) | ||
milvus_client.flush(collection_name) | ||
print(fmt.format("flush done")) | ||
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result = milvus_client.query(collection_name, "", output_fields = ["count(*)"]) | ||
print(f"final entities in {collection_name} is {result[0]['count(*)']}") | ||
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print(f"start to delete by specifying filter in collection {collection_name}") | ||
delete_result = milvus_client.delete(collection_name, ids=[6]) | ||
print(delete_result) | ||
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print(fmt.format("Start flush")) | ||
milvus_client.flush(collection_name) | ||
print(fmt.format("flush done")) | ||
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result = milvus_client.query(collection_name, "", output_fields = ["count(*)"]) | ||
print(f"final entities in {collection_name} is {result[0]['count(*)']}") | ||
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milvus_client.drop_collection(collection_name) |
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from pymilvus import ( | ||
MilvusClient, | ||
) | ||
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milvus_client = MilvusClient("http://localhost:19530") | ||
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version = milvus_client.get_server_version() | ||
print(f"server version: {version}") |
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import numpy as np | ||
from pymilvus import ( | ||
connections, | ||
utility, | ||
FieldSchema, CollectionSchema, DataType, | ||
Collection, | ||
AnnSearchRequest, RRFRanker, WeightedRanker, | ||
) | ||
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fmt = "\n=== {:30} ===\n" | ||
search_latency_fmt = "search latency = {:.4f}s" | ||
num_entities, dim = 3000, 8 | ||
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print(fmt.format("start connecting to Milvus")) | ||
connections.connect("default", host="localhost", port="19530") | ||
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has = utility.has_collection("hello_milvus") | ||
print(f"Does collection hello_milvus exist in Milvus: {has}") | ||
if has: | ||
utility.drop_collection("hello_milvus") | ||
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fields = [ | ||
FieldSchema(name="pk", dtype=DataType.VARCHAR, is_primary=True, auto_id=False, max_length=100), | ||
FieldSchema(name="random", dtype=DataType.DOUBLE), | ||
FieldSchema(name="embeddings", dtype=DataType.FLOAT_VECTOR, dim=dim), | ||
FieldSchema(name="embeddings2", dtype=DataType.FLOAT_VECTOR, dim=dim) | ||
] | ||
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schema = CollectionSchema(fields, "hello_milvus is the simplest demo to introduce the APIs") | ||
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print(fmt.format("Create collection `hello_milvus`")) | ||
hello_milvus = Collection("hello_milvus", schema, consistency_level="Strong", num_shards = 4) | ||
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print(fmt.format("Start inserting entities")) | ||
rng = np.random.default_rng(seed=19530) | ||
entities = [ | ||
# provide the pk field because `auto_id` is set to False | ||
[str(i) for i in range(num_entities)], | ||
rng.random(num_entities).tolist(), # field random, only supports list | ||
rng.random((num_entities, dim)), # field embeddings, supports numpy.ndarray and list | ||
rng.random((num_entities, dim)), # field embeddings2, supports numpy.ndarray and list | ||
] | ||
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insert_result = hello_milvus.insert(entities) | ||
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hello_milvus.flush() | ||
print(f"Number of entities in Milvus: {hello_milvus.num_entities}") # check the num_entities | ||
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print(fmt.format("Start Creating index IVF_FLAT")) | ||
index = { | ||
"index_type": "IVF_FLAT", | ||
"metric_type": "L2", | ||
"params": {"nlist": 128}, | ||
} | ||
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hello_milvus.create_index("embeddings", index) | ||
hello_milvus.create_index("embeddings2", index) | ||
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print(fmt.format("Start loading")) | ||
hello_milvus.load() | ||
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field_names = ["embeddings", "embeddings2"] | ||
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req_list = [] | ||
nq = 1 | ||
weights = [0.2, 0.3] | ||
default_limit = 5 | ||
vectors_to_search = [] | ||
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for i in range(len(field_names)): | ||
# 4. generate search data | ||
vectors_to_search = rng.random((nq, dim)) | ||
search_param = { | ||
"data": vectors_to_search, | ||
"anns_field": field_names[i], | ||
"param": {"metric_type": "L2"}, | ||
"limit": default_limit, | ||
"expr": "random > 0.5"} | ||
req = AnnSearchRequest(**search_param) | ||
req_list.append(req) | ||
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hybrid_res = hello_milvus.hybrid_search(req_list, WeightedRanker(*weights), default_limit, output_fields=["random"]) | ||
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print("rank by WightedRanker") | ||
for hits in hybrid_res: | ||
for hit in hits: | ||
print(f" hybrid search hit: {hit}") | ||
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print("rank by RRFRanker") | ||
hybrid_res = hello_milvus.hybrid_search(req_list, RRFRanker(), default_limit, output_fields=["random"]) | ||
for hits in hybrid_res: | ||
for hit in hits: | ||
print(f" hybrid search hit: {hit}") |
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