qorechain (Python SDK)
A typed Python SDK for QoreChain — typed messages for every module, typed query
clients, auto-gas, tx tracking, error decoding, block/tx search, websocket
subscriptions, network presets, denom/address utilities, HD account derivation
(native / EVM / SVM), post-quantum (ML-DSA-87) signing, and read clients (REST +
qor_ JSON-RPC). It mirrors the QoreChain TypeScript SDK surface with idiomatic
Python.
Install
pip install qorechain-sdk
Python 3.10+ is required. The package ships type hints and a py.typed marker.
Quickstart
Connect a client
from qorsdk import create_client
# Defaults to the testnet preset (localhost endpoints).
client = create_client()
print(client.network.chain_id) # "qorechain-diana"
# Read account balances over REST.
balances = client.rest.get_all_balances("qor15yk64u7zc9g9k2yr2wmzeva5qgwxps6yjecvvu")
# Call the qor_ JSON-RPC namespace.
stats = client.qor.get_ai_stats()
# Estimate a fee (AI oracle with a deterministic static fallback).
fee = client.fees.estimate("fast")
client.close()
Mainnet (chain id qorechain-vladi) is live; select it and override the
localhost defaults with your node URLs:
client = create_client(
network="mainnet",
endpoints={
"rest": "https://api.qore.host",
"evm_rpc": "https://evm.qore.host",
},
)
print(client.network.chain_id) # "qorechain-vladi"
Derive accounts
from qorsdk import (
generate_mnemonic,
derive_native_account,
derive_evm_account,
derive_svm_account,
)
mnemonic = generate_mnemonic() # 12 words; use generate_mnemonic(256) for 24
native = derive_native_account(mnemonic, 0) # qor1...
evm = derive_evm_account(mnemonic, 0) # 0x... (EIP-55 checksummed)
svm = derive_svm_account(mnemonic, 0) # base58 ed25519 pubkey
print(native.address, evm.address, svm.address)
Derivation schemes:
| Type | Curve | Path | Address |
|---|---|---|---|
| native | secp256k1 | m/44'/118'/0'/0/{i} |
bech32 qor of ripemd160(sha256(pubkey)) |
| evm | secp256k1 | m/44'/60'/0'/0/{i} |
0x + keccak256(pubkey)[-20:], EIP-55 |
| svm | ed25519 | m/44'/501'/{i}'/0' |
base58 of the 32-byte public key |
The mnemonic is validated (words and checksum) before any key is derived, so a typo'd phrase raises rather than silently producing a wrong account.
Denomination math
from qorsdk import to_base, from_base
to_base("1.5") # "1500000" (QOR -> uqor, exponent 6)
from_base("1500000") # "1.5"
All conversions use integer arithmetic — never floats — so they are exact.
Post-quantum signing (ML-DSA-87 / Dilithium-5)
from qorsdk import (
generate_pqc_keypair,
pqc_sign,
pqc_verify,
build_hybrid_signature_extension,
ALGORITHM_DILITHIUM5,
)
kp = generate_pqc_keypair() # public 2592 B, secret 4896 B
sig = pqc_sign(kp.secret_key, b"msg") # signature 4627 B
assert pqc_verify(kp.public_key, b"msg", sig)
# Build the on-chain hybrid-signature extension (protobuf-encoded into Any.value).
ext = build_hybrid_signature_extension(ALGORITHM_DILITHIUM5, sig, kp.public_key)
Sizes are strict: pqc_verify returns False for any signature that is not
exactly 4627 bytes or any public key that is not exactly 2592 bytes (a truncated
signature and one with an extra trailing byte are both rejected), and pqc_sign
raises on a secret key that is not exactly 4896 bytes. The SDK checks this itself
rather than trusting the library underneath, so QoreChain's bindings cannot
disagree about whether an over-long signature is valid.
Async clients
import asyncio
from qorsdk import AsyncRestClient, AsyncQorClient
async def main():
async with AsyncRestClient("http://localhost:1317") as rest:
await rest.get_ai_stats()
async with AsyncQorClient("http://localhost:8545") as qor:
await qor.get_tokenomics_overview()
asyncio.run(main())
Typed messages for every module
msg.<module>.<name>(...) builds any of the chain's 59 custom messages (across
amm / bridge / rdk / multilayer / pqc / svm / lightnode / license /
abstractaccount / crossvm / rlconsensus) plus the standard Native modules
(bank / staking / distribution / gov / authz / feegrant / ibc). Each returns a
Msg ({type_url, value}) you pass to send_messages or the hybrid PQC path.
from cosmpy.protos.cosmos.base.v1beta1.coin_pb2 import Coin
from qorsdk import msg, send_messages, build_hybrid_tx, generate_pqc_keypair
swap = msg.amm.swap_exact_in(
sender=native.address,
pool_id=1,
token_in=Coin(denom="uqor", amount="1000000"),
denom_out="uusdc",
min_out="990000",
)
delegate = msg.staking.delegate(delegator_address=native.address, validator_address="qorvaloper1...")
# Classical tx carrying any messages.
built = send_messages(
account=native, messages=[swap, delegate],
chain_id="qorechain-diana", account_number=0, sequence=0,
fee={"amount": [{"denom": "uqor", "amount": "5000"}], "gas": "200000"},
)
# Or a quantum-safe hybrid (classical + ML-DSA-87) tx over the same messages.
# The testnet verifies the v2 sign-bytes form (see "Hybrid sign-bytes v1 / v2").
hybrid = build_hybrid_tx(
account=native, pqc_keypair=generate_pqc_keypair(), messages=[swap],
fee={"amount": [{"denom": "uqor", "amount": "5000"}], "gas": "200000"},
chain_id="qorechain-diana", account_number=0, sequence=0,
sign_bytes_version="v2",
)
The qorechain_registry() type-URL → proto map and decode_any(type_url, value)
let you parse any supported message back into a typed object.
Typed query clients (gRPC)
Modules with a Query service (crossvm, lightnode, pqc, qca, reputation,
rlconsensus, svm) expose typed callers over a gRPC channel. Chain v3.1.83 adds
amm, license, and abstractaccount typed query clients, the multilayer
anchor / anchors state-anchor queries, and abstractaccount
register_authenticator / revoke_authenticator message composers:
from qorsdk import connect_query_clients
with connect_query_clients("localhost:9090") as q:
res = q.crossvm.message("msg-123") # -> QueryMessageResponse
node = q.lightnode.light_node(native.address)
acct = q.pqc.account(native.address)
Sidechains, paychains & rollups (v0.4.0)
The multilayer (sidechains/paychains) and rdk (rollup) modules are covered by
typed message composers and typed query clients. Compose a write with
msg.multilayer.* / msg.rdk.* and broadcast it like any other message; read
layer and rollup state through the typed gRPC clients.
from qorsdk import msg, send_messages, connect_query_clients
# Multilayer: register a sidechain / paychain, anchor state, route a tx.
register = msg.multilayer.register_sidechain(
creator=native.address, layer_id="game-l2", description="game sidechain",
)
route = msg.multilayer.route_transaction(
sender=native.address, transaction_payload=b"...", preferred_layer="game-l2",
)
# Rollups (rdk): create a rollup, submit a batch, execute a withdrawal.
create = msg.rdk.create_rollup(
creator=native.address, rollup_id="r1", profile="default", vm_type="evm",
)
withdraw = msg.rdk.execute_withdrawal(
submitter=native.address, rollup_id="r1", batch_index=0, withdrawal_index=0,
recipient="qor1rcpt", denom="uqor", amount=100, proof=[b"\x01"],
)
# Typed reads over gRPC (multilayer / rdk / bridge / crossvm query services).
with connect_query_clients("localhost:9090") as q:
layer = q.multilayer.layer("game-l2")
layers = q.multilayer.layers()
stats = q.multilayer.routing_stats()
rollup = q.rdk.rollup("r1")
batch = q.rdk.latest_batch("r1")
See the multilayer and rollups guides.
AI pre-flight risk scoring (v0.5.0)
QoreChain exposes an on-chain AI risk/anomaly model over two EVM precompiles, so
you can get an advisory verdict on a transaction before broadcasting it. The
helpers in qorsdk.precompiles issue plain eth_calls through any
eth_call-capable client (e.g. a web3.py provider
pointed at the network's evm_rpc).
from qorsdk import (
simulate_with_risk_score, ai_risk_score, ai_anomaly_check,
PRECOMPILE_AI_RISK_SCORE, # 0x…0B01
PRECOMPILE_AI_ANOMALY_CHECK, # 0x…0B02
)
# Combined gas + risk + anomaly pre-flight.
verdict = simulate_with_risk_score(eth_client, {
"from": "0xSender", "to": "0xContract", "data": "0x…", "value": 0,
})
if not verdict["safe"]:
raise RuntimeError("AI pre-flight flagged this transaction")
# Or call the precompiles individually.
risk = ai_risk_score(eth_client, b"\xde\xad\xbe\xef") # {"score", "level"}
anomaly = ai_anomaly_check(eth_client, "0xSender", 1_000_000) # {"anomaly_score", "flagged"}
See the AI pre-flight guide.
Unified cross-VM calls (v0.5.0)
CrossVmClient wraps MsgCrossVMCall so you can route a single call — or
several atomically in one transaction — across the EVM, CosmWasm, and SVM
VMs (VM_TYPES). The payload is raw bytes (payload=), a CosmWasm JSON message
(cosmwasm= is json.dumps'd to UTF-8), or SVM bytes (svm=).
from qorsdk import (
CrossVmCallOptions, create_cross_vm_client, build_cross_vm_call,
decode_cross_vm_response, decode_cross_vm_responses,
)
xvm = create_cross_vm_client(account=native, ...) # see docstring for context args
# Single call into a CosmWasm contract.
res = xvm.call(target_vm="cosmwasm", target_contract="qor1contract…",
cosmwasm={"increment": {}})
# Atomic triple-VM batch in ONE tx.
atomic = xvm.call_atomic([
CrossVmCallOptions(target_vm="evm", target_contract="0xC…", payload=abi_calldata),
CrossVmCallOptions(target_vm="svm", target_contract="Prog…", svm=raw_bytes),
CrossVmCallOptions(target_vm="cosmwasm", target_contract="qor1…",
cosmwasm={"stake": {}}),
])
status = xvm.get_message("42") # read a routed message's status
The callee's answer (chain v3.1.97). A call executes inside the transaction
and returns its result; decode_cross_vm_response (or …_responses, one per
call, in message order) reads the MsgCrossVMCallResponse out of the committed
tx and gives you message_id, executed, data (the callee's return value) and
gas_used. Pass async_=True to queue the call for a later MsgProcessQueue
dispatch instead — a queued call comes back executed=False with no data yet.
included = wait_for_tx(client.rest, res["tx_response"]["txhash"])
answer = decode_cross_vm_response(included)
answer.message_id, answer.executed, answer.data, answer.gas_used
source_vm is ignored by the chain, which derives the origin lane from the
execution context; it is still accepted (and sent, default "evm") so older
nodes keep taking the message, but setting it has no on-chain effect.
build_cross_vm_call(...) is also available as a free function for hand-building
the message. See the cross-VM guide.
Quantum-safe DX (v0.5.0)
QoreChain enforces hybrid post-quantum signatures (ML-DSA-87 + secp256k1) by
default. qorsdk.pqc_dx makes a dApp PQC-protected in one idempotent call.
from qorsdk import (
is_pqc_registered, get_pqc_status,
ensure_pqc_registered, migrate_to_hybrid, migrate_pqc_key,
generate_pqc_keypair,
)
# Read-only status (over the qor_ namespace).
registered = is_pqc_registered(client.qor, native.address)
status = get_pqc_status(client.qor, native.address)
# Idempotent: registers the signer's Dilithium key only if it isn't already.
result = ensure_pqc_registered(account=native, pqc_keypair=generate_pqc_keypair(), ...)
# Migrate a classical account to hybrid signing, then sign hybrid.
path = migrate_to_hybrid(account=native, pqc_keypair=generate_pqc_keypair(), ...)
# Rotate an account's on-chain PQC key (MsgMigratePQCKey).
migrate_pqc_key(account=native, ...)
Async status reads are available as is_pqc_registered_async /
get_pqc_status_async. See the
quantum-safe guide.
Hybrid sign-bytes v1 / v2 (v0.8.1 / chain v3.2.0, testnet v3.1.98)
A hybrid transaction's ML-DSA-87 signature covers B0 (the TxBody without the
PQC extension) and A (the AuthInfo bytes). Chain release v3.2.0 — which
the testnet already took under the earlier name v3.1.98 — changed the exact
bytes that are signed:
| Form | Signed bytes |
|---|---|
| v1 | BE32(len B0) ‖ B0 ‖ BE32(len A) ‖ A |
| v2 | "qorechain-pqc-hybrid-v2" ‖ BE64(len chainID) ‖ chainID ‖ BE32(len B0) ‖ B0 ‖ BE32(len A) ‖ A |
v2 adds a domain tag (a signature made in any other context can never pass as a tx signature) and binds the chain-id (the post-quantum signature itself refuses to verify on another network). Each network verifies exactly one form at any height, with no overlap window, so the SDK must sign the form of the target network:
- Testnet (
qorechain-diana) applied the upgrade asv3.1.98at height 5,746,000 and now accepts only v2. - Mainnet (
qorechain-vladi) applies the same handler asv3.2.0, at a height chosen by governance, and stays on v1 until then. - Any chain started on that release or later is v2 from its first block.
The switch has two plan names, so ask for both. SIGN_BYTES_V2_UPGRADES == ("v3.2.0", "v3.1.98") (SIGN_BYTES_V2_UPGRADE is the primary, "v3.2.0").
A client that asks only one name reads height 0 on the other network, signs v1,
and every hybrid transaction there is refused with pqc code 21.
The "auto" rule (the chain's own SignBytesVersionFor): for EVERY name in
SIGN_BYTES_V2_UPGRADES, ask the node
GET {rest}/cosmos/upgrade/v1beta1/applied_plan/{name} and compare the height
numerically (it is a string, and {"height":"0"} is truthy). If ANY of them
is above 0 → v2; else if the chain is qorechain-vladi / qorechain-diana → v1;
else → v2. The names are asked in order and the lookup stops at the first
positive height, so mainnet costs one request after its upgrade and the testnet
two. The answer is cached per (rest_url, chain_id) for 60 s (a network can
upgrade while an app is running). If the node cannot be asked for one of those
two networks, the SDK raises SignBytesVersionError instead of guessing.
from qorsdk import (
build_hybrid_tx, hybrid_sign_and_broadcast, resolve_sign_bytes_version,
SignBytesResolver, clear_sign_bytes_cache,
)
# 1. Resolve explicitly, then build (the builders are pure: no network).
version = resolve_sign_bytes_version("qorechain-diana", rest_url="https://api-testnet.qore.host")
built = build_hybrid_tx(..., chain_id="qorechain-diana", sign_bytes_version=version)
built.sign_bytes_version # "v2"
# 2. Or let the SDK resolve, broadcast, and recover from a stale answer: on a
# `pqc` code 21 refusal ("hybrid PQC signature verification failed") it
# re-resolves ONCE, re-signs ONCE, and broadcasts ONCE more.
resp = hybrid_sign_and_broadcast(
lambda v: build_hybrid_tx(..., chain_id="qorechain-diana", sign_bytes_version=v),
chain_id="qorechain-diana",
rest_url="https://api-testnet.qore.host",
sign_bytes_version="auto", # or "v1" / "v2" to override (no lookup, no retry)
)
# Cache control.
resolve_sign_bytes_version("qorechain-vladi", rest_url=..., force_refresh=True)
clear_sign_bytes_cache()
resolver = SignBytesResolver(ttl=15) # a private resolver with its own TTL
build_hybrid_tx and sign_hybrid_eth take sign_bytes_version="v1" | "v2".
When it is omitted they use v2 for a chain started on v3.2.0+, and raise for
qorechain-vladi / qorechain-diana (never a silent v1 default). The high-level
paths (migrate_to_hybrid, migrate_pqc_key, CrossVmClient /
create_cross_vm_client) take sign_bytes_version="auto" | "v1" | "v2" (default
"auto") and use hybrid_sign_and_broadcast internally.
The same release changed the PQC key-migration and bridge-attestation payloads. Builders for both forms are provided and reproduce the chain's known-answer vectors byte-for-byte:
migration_sign_bytes(version, chain_id, account, from_algorithm_id, to_algorithm_id, execution_height, old_public_key, new_public_key): v1 is the ASCIIqorechain-key-migration:chain=…:from=…:to=…:account=…:height=…; v2 is"qorechain-key-migration-v2"followed by length-prefixed fields and both public keys.bridge_attestation_sign_bytes(version, chain_id, chain, event_type, operation_id, tx_hash, amount, asset): v1 is the pipe-joined fields with no chain-id; v2 is"qorechain-bridge-attestation-v2"thenBE64(len f) ‖ ffor chain-id and each field.
is_hybrid_signature_rejection(resp_or_error) detects the pqc code-21 refusal
(code 21 from any other codespace, such as sdk "tx too large", does not match).
Unified eth-native wallet (v0.6.0)
One eth_secp256k1 key = ONE 20-byte identity rendered three ways — qor1…
(bech32), 0x… (EIP-55), and SVM base58 (the 20 bytes right-padded with 12 zero
bytes to 32). A deposit to any of the three lands in the same balance, and the
key spends on all lanes. derive_unified_account uses the Ethereum HD path
(m/44'/60'/0'/0/{index}); unified_account_from_seed builds one directly from a
32-byte secret. addresses_from_20 / qore_addresses convert between the three
encodings. The legacy coin-type-118 derive_native_account still works (additive).
Native-lane signing over the eth key: sign_classical_eth is a classical
secp256k1 signature over keccak256(SignDoc) with pubkey type
/cosmos.evm.crypto.v1.ethsecp256k1.PubKey; sign_hybrid_eth adds the ML-DSA-87
post-quantum signature. Account parsing accepts eth_secp256k1 public keys.
from qorsdk import (
derive_unified_account, unified_account_from_seed,
sign_hybrid_eth, resolve_sign_bytes_version,
)
account = derive_unified_account(mnemonic)
account.cosmos # "qor1…" — QoreChain Native lane
account.evm # "0x…" — EIP-55 checksummed
account.svm # "<base58>" — 20 bytes + 12 zero pad
# Sign a QoreChain Native tx from the unified eth key (hybrid PQC path).
built = sign_hybrid_eth(
account=account,
chain_id="qorechain-vladi",
account_number=account_number,
messages=[msg.cosmos.send(...)],
fee=fee,
sequence=sequence,
sign_bytes_version=resolve_sign_bytes_version(
"qorechain-vladi", rest_url="https://api.qore.host"
),
)
# A unified account's seed MUST be real secret entropy.
import secrets
fresh = unified_account_from_seed(secrets.token_bytes(32))
unified_account_from_seed uses its seed verbatim as the spend key, so the seed
must be a CSPRNG draw or key material the user already keeps secret. Never derive
it from a wallet signature or any other value a third party can ask the wallet
(or the user) to produce — such a value is a bearer secret handed out on request.
Deriving an account from a wallet signature was removed in v0.8.0
(unified_account_from_phantom_signature now raises); to spend from an existing
external key, register it with MsgRegisterAuthenticator and use the
authenticator lanes (MsgExecuteCosmos / MsgExecuteEVM) below. Any account
previously derived from a signature must be treated as exposed — move its funds.
See the unified-wallet guide.
Auto-gas, errors, tracking, search
from qorsdk import (
auto_fee, GasPrice, calculate_fee, # gas
decode_tx_error, QoreTxError, # errors
wait_for_tx, broadcast_and_wait, with_retry, # tracking
get_tx, get_block, search_txs, build_events_query, # search
)
# Simulate -> gas_used x 1.4 x 0.15uqor.
fee = auto_fee("http://localhost:1317", built)
calculate_fee(200000, GasPrice.from_string("0.15uqor"))
# Wait for inclusion; raises a typed QoreTxError on a non-zero code.
included = wait_for_tx(client.rest, "TXHASH")
search_txs(client.rest, {"message.sender": native.address}, limit=20, order_by="desc")
Websocket subscriptions
from qorsdk import SubscriptionClient
async def run():
sub = await SubscriptionClient.connect("http://localhost:26657")
async def on_block(ev): print("block", ev)
unsubscribe = await sub.subscribe_new_blocks(on_block)
await sub.subscribe_tx({"message.sender": native.address}, lambda ev: ...)
# ... later ...
await unsubscribe()
await sub.close()
Utilities
from qorsdk import (
sha256_hex, keccak256_hex, ripemd160_hex,
parse_units, format_units,
is_valid_evm_address, is_valid_svm_address, to_checksum_address,
)
parse_units("1.5", 18) # 1500000000000000000
format_units(1500000000000000000, 18) # "1.5"
to_checksum_address("0x5aaeb6053f3e94c9b9a09f33669435e7ef1beaed")
Authenticator lanes (v0.7.0 / chain v3.1.85)
A linked external key — a Phantom ed25519 key, or a MetaMask secp256k1 key bound by address — spends from the ONE canonical PQC account through a relayer that submits the tx and pays the fee (its own hybrid-PQC signature satisfies the ante). The external key never produces an ML-DSA co-signature; its signature over the domain-separated, replay-bound sign-bytes is the authorization, under least-privilege, spending-limit and revocable terms enforced on-chain.
Three messages carry the lanes, each with a composer:
MsgExecuteEVM(/qorechain.abstractaccount.v1.MsgExecuteEVM) —msg.abstractaccount.execute_evmMsgExecuteCosmos(/qorechain.abstractaccount.v1.MsgExecuteCosmos) —msg.abstractaccount.execute_cosmosMsgRotatePQCKey(/qorechain.pqc.v1.MsgRotatePQCKey) —msg.pqc.rotate_pqc_key
The execute_evm_msg / execute_cosmos_msg / rotate_pqc_key_msg builders
compose these from primitives. Sign-bytes helpers rebuild the exact digest
the chain re-derives: evm_auth_sign_bytes / cosmos_auth_sign_bytes (32-byte
SHA-256 digests) and rotation_sign_bytes (the domain-separated string both
keys sign).
NONCE semantics:
MsgExecuteEVM.nonce= the account's current EVM nonce (the relayer is a different account than the owner, so its envelope does not bump the account's nonce — pass it as-is, do not+1).MsgExecuteCosmos.nonce= the per-authenticator sequence for(account, pubkey), a store counter distinct from the account's own sequence.
Permission taxonomy & errors. Fetch the on-chain permission schema with the
gRPC query client's permission_schema() (REST equivalent
GET /qorechain/abstractaccount/v1/permission_schema) and compare an action to
it before submitting. decode_tx_error surfaces the lane failures — codespace
abstractaccount: 5 SpendingLimitExceeded, 6 SessionKeyExpired, 10
PermissionDenied, 11 AuthenticatorReplay; codespace pqc: 21
HybridVerifyFailed.
Key rotation. rotate_pqc_key_msg_from_mnemonic migrates a legacy
shake256(mnemonic) key to the canonical, address-bound key (dual-signs over
rotation_sign_bytes); derive_pqc_legacy re-derives the old key for the
old-key half.
from qorsdk import (
evm_auth_sign_bytes, execute_evm_msg,
rotate_pqc_key_msg_from_mnemonic,
)
# Phantom ed25519 authenticator authorizes an EVM spend from the canonical
# account; the relayer broadcasts and pays. nonce = the account's CURRENT EVM
# nonce (relayer != owner -> no +1).
digest = evm_auth_sign_bytes(
chain_id="qorechain-diana",
account="qor1canonical…",
pubkey=phantom_pubkey, # 32-byte ed25519 key
to="0xRecipient…",
value="1000000000000000000", # 1 QOR in aqor (wei)
nonce=current_evm_nonce,
)
signature = phantom_sign(digest) # your wallet signs the raw 32 bytes
exec_msg = execute_evm_msg(
relayer="qor1relayer…", account="qor1canonical…", scheme="ed25519",
pubkey=phantom_pubkey, signature=signature,
to="0xRecipient…", value="1000000000000000000", nonce=current_evm_nonce,
)
# Migrate a legacy shake256(mnemonic) key to the address-bound key.
build = rotate_pqc_key_msg_from_mnemonic(
account="qor1canonical…", mnemonic=mnemonic, chain_id="qorechain-diana",
)
See the authenticators guide.
Regenerating protobuf code (maintainers)
The generated protobuf modules under src/qorechain/proto/ are committed, so
users never run protoc. To regenerate after a proto change (requires buf):
bash scripts/codegen-py.sh
It runs buf generate (public-registry protocolbuffers/python + pyi
plugins, pinned to the protobuf 5.29.x line), rewrites dependency imports to
cosmpy's bundled protos so the gencode shares one descriptor pool, and writes
package __init__.py files.
Out of scope (use a dedicated library)
Browser-wallet adapters (Keplr / MetaMask / Phantom) and viem / @solana/web3.js
-style EVM/SVM clients are intentionally not part of this SDK — they are
JS/browser-specific. In Python, talk to the EVM with web3.py
and to the SVM with solana-py, pointing
them at the network's evm_rpc / svm_rpc endpoints. This SDK covers the native
Native chain surface end to end.
Development
python -m venv .venv
.venv/bin/pip install -e "packages/py[dev]"
.venv/bin/pytest packages/py
.venv/bin/mypy packages/py/src
.venv/bin/ruff check packages/py/src packages/py/tests
License
Apache-2.0
Metadata
Release files for qorechain-sdk 0.8.1
For a detailed explanation of source distributions (sdists) and built distributions (wheels), please see the package formats documentation.
Source distribution (sdist)
| File | Size | Uploaded | |
|---|---|---|---|
| qorechain_sdk-0.8.1.tar.gz | 196.1 kB | Details |
Built distribution (wheel)
| File | Interpreter | ABI | Platform | Reset |
|---|---|---|---|---|
| qorechain_sdk-0.8.1-py3-none-any.whl | Python 3 | none | any | Details |
Total release size: 383.7 kB
Release files / qorechain_sdk-0.8.1.tar.gz
| Download URL | qorechain_sdk-0.8.1.tar.gz |
|---|---|
| Size | 196.1 kB |
| Tags | Source |
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SHA-256 checksum How to use checksums |
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Release files / qorechain_sdk-0.8.1-py3-none-any.whl
| Download URL | qorechain_sdk-0.8.1-py3-none-any.whl |
|---|---|
| Size | 187.6 kB |
| Tags | Python 3 |
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SHA-256 checksum How to use checksums |
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| Uploaded via |
twine/7.0.0 CPython/3.12.7
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