snekql
snekql is a Python async-first query builder and query runtime for SQL. It gives applications explicit SQL-shaped operations, typed model declarations, runtime validation, startup schema checks, and transaction- based execution without becoming an ORM.
Install
uv add snekql # Query Builder and backend namespaces only
uv add 'snekql[aiosqlite]' # SQLite Query Runtime
uv add 'snekql[aiomysql]' # MariaDB Query Runtime
snekql requires Python 3.14 or newer. Database drivers are optional backend
extras. The base snekql install is enough for importing the Query Builder and
backend namespaces, but runtime initialization requires the matching backend
extra.
Bundled docs and examples
Installed packages include copyable docs and examples:
snekql --agent-docs
snekql --llms
snekql --examples
snekql --example basic
snekql example typed_queries
python -m snekql --agent-docs
Quick start
from datetime import datetime
from pathlib import Path
from typing import ClassVar
from snekql import sqlite
from snekql.sqlite import (
Database,
Pending,
insert,
select,
)
class User[S = Pending](sqlite.Model[S]):
__row_type__: ClassVar[sqlite.ReadType[User[sqlite.Row]]]
id: sqlite.GenCol[int] = sqlite.Integer(
primary_key=True,
auto_increment=True,
default=sqlite.PENDING_GENERATION,
)
email: sqlite.Col[str] = sqlite.Text(unique=True)
status: sqlite.Col[str] = sqlite.Text(default="active")
created_at: sqlite.GenCol[datetime] = sqlite.Text(default=sqlite.CurrentTimestamp)
MIGRATIONS = {
"0001_create_user": (
'CREATE TABLE "user" ('
'"id" INTEGER PRIMARY KEY AUTOINCREMENT, '
'"email" TEXT NOT NULL, '
'"status" TEXT NOT NULL, '
'"created_at" TEXT NOT NULL DEFAULT '
"(strftime('%Y-%m-%dT%H:%M:%fZ', 'now'))"
") STRICT"
),
"0002_user_email_unique": (
'CREATE UNIQUE INDEX "ux_user_email" ON "user" ("email")'
),
}
async def main() -> None:
# The migration SQL is generated once during development, reviewed, and
# committed as a literal. Runtime model changes cannot alter its checksum.
async with await Database.initialize(
sqlite.Config(
database=Path("app.db"),
pool_size=5,
acquire_timeout=30.0,
),
) as db:
await db.migrate(MIGRATIONS)
await db.verify_migrations(MIGRATIONS)
await db.verify([User], policy="strict")
async with db.transaction(timeout=5.0) as tx:
await tx.execute(insert(User(email="alice@example.com")))
# fetch_one is exactly-one: it raises NoResultError if the row is
# absent, so the result is never None.
user = await tx.fetch_one(
select(User).where(User.email.eq("alice@example.com")),
)
print(user.email)
Model declaration
Table models are declared through a backend namespace such as sqlite or
mariadb. Application-created instances are Pending; database reads return
Row instances.
from datetime import datetime
from typing import ClassVar
from snekql import sqlite
from snekql.sqlite import Pending
class AuditLog[S = Pending](sqlite.Model[S]):
__row_type__: ClassVar[sqlite.ReadType[AuditLog[sqlite.Row]]]
__tablename__ = "audit_log"
id: sqlite.GenCol[int] = sqlite.Integer(
primary_key=True,
auto_increment=True,
default=sqlite.PENDING_GENERATION,
)
message: sqlite.Col[str] = sqlite.Text()
created_at: sqlite.GenCol[datetime] = sqlite.Text(
default=sqlite.CurrentTimestamp,
)
Rules to remember:
- Keep models, query verbs, configurations, Transactions, joins, foreign keys,
and Scaffold calls in one backend namespace;
tyrejects cross-family use. Col[T]is a normal persisted column.GenCol[T]is server/generated; pending values may bePENDING_GENERATION, fetched values areT.- If
__tablename__is omitted, class names become snake_case table names. - Field replacement is forbidden in Pending and Row states, in ty and at runtime. Freezing is shallow: a decoded JSON dict or list can still be mutated.
- Declared column options are immutable. Models with callable foreign keys bind their targets on first metadata use; ordinary declarations bind eagerly.
- Row values come from database results or validated
completesnapshots. - Instance methods that assume a state should annotate
self, e.g.self: User[Pending]orself: User[Row].
State-specific instance methods
Model classes are generic in state. If a method uses pending-only or
Row-only assumptions, write that state on self:
from typing import ClassVar
from snekql import sqlite
from snekql.sqlite import Pending, Row
class User[S = Pending](sqlite.Model[S]):
__row_type__: ClassVar[sqlite.ReadType[User[sqlite.Row]]]
id: sqlite.GenCol[int] = sqlite.Integer(
primary_key=True, default=sqlite.PENDING_GENERATION
)
email: sqlite.Col[str] = sqlite.Text()
def insert_payload(self: User[Pending]) -> dict[str, str]:
return {"email": self.email}
def cache_key(self: User[Row]) -> str:
return f"user:{self.id}"
A bare User means User[Pending]; spell User[Row] for methods that
require complete values.
Complete snapshots
__row_type__ names this same declaration in Row state. It controls whole-model
SELECT, RETURNING, and complete; scalar, tuple, and named projections keep their
own result types. Use ClassVar[sqlite.ReadType[User[sqlite.Row]]] in the class
body. Do not put the self reference in the base expression, which Python evaluates
before the class exists.
Ordinary construction creates Pending values. User[Row](...) is rejected.
For a complete logical snapshot without database I/O, use:
row = sqlite.complete(User, id=7, email="ada@example.com") # User[Row]
assert sqlite.is_complete(row)
This uses the two-field User above. Supply every declared field, including
fields with defaults. Extra fields and unavailable generation markers are
rejected. Values undergo logical validation, not database storage decoding.
Completeness does not prove persistence. Neither complete nor insertion changes
an existing Pending value into Row state, and Row values cannot be inserted.
is_complete tests recorded state and narrows only its true branch.
See the breaking-change migration guide when upgrading existing declarations and query helpers.
Column types and logical types
A column is two coordinates (see ADR 0005):
- The column type is the constructor. It names a storage primitive of the backend and decides where the value is physically stored — nothing else.
- The logical type is the field annotation (
Col[T]). It is the single source of truth for the column's Python value and all validation, which is delegated to Pydantic.
Read a declaration as a sentence — created_at: Col[datetime] = Text() is "a
datetime, stored as text." The codec that bridges the two is derived from the
pair; you never name it.
SQLite exposes exactly its four storage classes as column types:
sqlite.Integer—INTEGERstorage. ACol[bool]stores as0/1.sqlite.Real—REALstorage.sqlite.Text—TEXTstorage. HoldsCol[str],Col[UtcDatetime](canonical UTC millisecond text),Col[ZonedDatetime](canonical instant and timezone identity),Col[datetime](raw ISO text),Col[uuid.UUID](string form), or aCol[pydantic.Json[T]]payload.sqlite.Blob—BLOBstorage forCol[bytes].
JSON uses Pydantic's marker, not a snekql type: annotate
Col[pydantic.Json[T]] = Text(). Serialization and validation both run through
T, so any type Pydantic can validate (datetime, Pydantic models,
list[Model], ...) round-trips, not just dict/list/primitives. Optional Json[T] | None and
Json[T | None] fields also accept decoded payloads. See
optional JSON fields for metadata and SQL NULL semantics.
MariaDB additionally exposes its native types as column types — mariadb.Json,
mariadb.Boolean, mariadb.DateTime, mariadb.Uuid (native UUID), and
mariadb.Decimal(precision, scale) (native DECIMAL(p,s)). To store a UUID as
raw bytes instead, pair Col[uuid.UUID] with Blob(). Existing text-encoded
MariaDB UUID Blob rows need an explicit data migration
before binary UUID predicates can match them.
There is no declaration-time storage/logical compatibility check: any pairing is
allowed and an impossible one fails at encode/decode via a Pydantic error.
Timezone policy is the logical type's job — over a primitive storage class
(SQLite Text(), or Integer() with an epoch type) a naive datetime
round-trips naive. Use UtcDatetime for database timestamp columns: it rejects
naive values, normalizes aware values to UTC milliseconds, and serializes SQLite
text so =, ORDER BY, and ranges compare by instant. Bare SQLite
Col[datetime] = Text() and Col[AwareDatetime] = Text() columns emit a
suppressible LexicalDatetimeWarning because their raw ISO text compares
lexically. The one exception is MariaDB's native DateTime, which stores
offset-less UTC text: it has no way to record a naive value's zone, so encoding a
naive datetime there is rejected with a ModelValidationError rather than
silently assuming the writer's local zone. Attach a timezone (or annotate
Col[UtcDatetime]) for those columns.
Use ZonedDatetime when the timezone itself has domain meaning:
from datetime import datetime
from zoneinfo import ZoneInfo
from snekql.sqlite import Col, Text, ZonedDatetime
starts_at: Col[ZonedDatetime] = Text(nullable=False)
value = ZonedDatetime(datetime(2026, 7, 1, 8, tzinfo=ZoneInfo("America/New_York")))
It preserves the UTC instant plus the exact IANA key or fixed offset. Equality
requires both to match, so America/New_York differs from a fixed -04:00 even
when they identify the same instant. Store it with Text() on both backends;
MariaDB DateTime() cannot retain timezone identity. Equality, membership, and
unique indexes are supported. Ordering, ranges, MIN, and MAX raise
QueryConstructionError; use UtcDatetime when the database must compare
chronologically.
Decimal storage has the same two-coordinate rule:
- Use
Col[CanonicalDecimal] = Text()when you need portable exact decimal identity/equality over text storage. It normalizesDecimal("1.50")toDecimal("1.5"),Decimal("1E+2")toDecimal("100"), and negative zero to zero, then stores minimal plain text. Equality,IN, and unique indexes are safe; lexical ordering and range predicates are not. - On SQLite, store integer minor units (
Col[int] = Integer(), e.g. cents) when the database must order, range-filter, or aggregate decimal quantities. - On MariaDB, use
Col[decimal.Decimal] = mariadb.Decimal(precision, scale)for native numeric equality, ordering, range predicates, and aggregation. Stored values that would overflow or require rounding for the declared(precision, scale)are rejected before they reach the driver. Native DecimalSUMcomparison bounds accept exact finiteDecimalvalues beyond the input column's precision and scale; they are not rounded to that column's shape. IntegerSUMbounds likewise preserve exact integer serialization beyond signed BIGINT, while individual writes retain their 64-bit limit. SQLite's integer SUM overflow and parameter limits are unchanged.
Bare Col[decimal.Decimal] = Text() emits LexicalDecimalWarning on both
backends because Pydantic's default decimal text can represent the same value in
multiple ways and still sorts lexically, not numerically. Suppress it only when a
custom Annotated[..., Canonical] or Annotated[..., OrderPreserving] logical
type owns the wire-form invariant.
Because the logical type is whatever Pydantic can validate, the UUID-version
aliases work as drop-in logical types and add version validation for free:
Col[pydantic.UUID4] = Text(), or Col[pydantic.UUID7] = mariadb.Uuid().
Pydantic ships UUID1/UUID3/UUID4/UUID5/UUID6/UUID7/UUID8; all of
them store the same as a plain Col[uuid.UUID] and round-trip through both
Text and MariaDB's native Uuid. Pair the annotation with a matching factory
(Col[pydantic.UUID7] = mariadb.Uuid(default_factory=uuid.uuid7)) — nothing
forces the factory and the annotation to agree, so a mismatched version fails
construct-time validation.
All column constructors accept unique=True for column-level unique indexes.
SQLite allows multiple NULL values in a unique index, so use a non-optional
annotation such as Col[str] when uniqueness should also require a value.
Primary-key columns reject unique=True; use a table-level unique Index when
a composite-key component also needs independent uniqueness.
A scalar ForeignKey(Target.column) requires a single-column primary key,
unique=True on a non-primary column, or a singleton Index(column, unique=True).
Membership in a composite primary key or multi-column unique index is not enough.
This rule applies during scaffolding and schema verification on both backends.
Do not add a singleton unique constraint if repeated values are legitimate;
choose an independently unique target instead. Composite foreign-key declarations
are not introduced by this rule, and existing schemas are not rewritten.
For a plain non-unique single-column index, pass index=True instead — sugar
for an Index(col) entry in __indexes__ (named ix_<table>_<col>). It is
rejected on primary-key columns and alongside unique=True, since both are
already indexed.
A server default is declared by passing a marker as the column's default:
sqlite.CurrentTimestamp and mariadb.CurrentTimestamp are the only v1 server
defaults. The marker means the database computes the value, so the field is
valid only on GenCol columns, is omittable at construction (it is PENDING_GENERATION
until the database fills it), and accepts an explicit value when you pass one.
To refresh a column to the server clock on update, pass the same marker to an
update assignment: update(Doc).set(Doc.edited_at.to(CurrentTimestamp)). It
renders the backend's current-timestamp SQL inline (no bound parameter) and is
identical on SQLite and MariaDB. SQLite has no native ON UPDATE, so this keeps
the refresh explicit at the call site -- include it in each update that should
bump the timestamp.
Indexes
Use the backend namespace Index(...) in __indexes__ for table-level indexes:
from typing import ClassVar
from snekql import sqlite
from snekql.sqlite import Pending
class User[S = Pending](sqlite.Model[S]):
__row_type__: ClassVar[sqlite.ReadType[User[sqlite.Row]]]
email: sqlite.Col[str] = sqlite.Text(unique=True)
status: sqlite.Col[str] = sqlite.Text()
tenant_id: sqlite.Col[int] = sqlite.Integer()
__indexes__ = [
sqlite.Index(status),
sqlite.Index(tenant_id, email, unique=True),
sqlite.Index(tenant_id, name="ix_user_tenant_custom"),
]
Index declarations accept column descriptors only. Names are inferred as
ix_<table>_<columns> or ux_<table>_<columns> unless name= is supplied. A
column-level index=True collides with an equivalent Index(col) here and is
rejected as a duplicate.
Queries
Queries are immutable. Chaining returns new query objects.
from snekql.sqlite import delete, insert, insert_many, select, update
select(User).all()
select(User.email).where(User.status.eq("active"))
select(User.email, User.status).where(User.email.like("%@example.com"))
insert(User(email="alice@example.com"))
insert_many(User, [User(email="ada@example.com"), User(email="grace@example.com")])
update(User).set(User.status.to("disabled")).where(
User.email.eq("alice@example.com"),
)
delete(User).where(User.email.eq("retired@example.com"))
delete(User).all() # explicit full-table delete
Inserts can handle a primary-key or unique-index conflict atomically. DoUpdate
accepts one or more assignments. .to_inserted() takes the value from the row
whose insert conflicted, while .to(...) assigns a literal or
CurrentTimestamp:
from snekql.sqlite import DoNothing, DoUpdate, insert
insert(User(email=email, name=name, status=status)).on_conflict(
User.email,
action=DoUpdate(
User.name.to_inserted(),
User.status.to("active"),
),
)
insert(User(email=email, name=name, status=status)).on_conflict(
User.email,
action=DoNothing,
)
SQLite compiles these actions as ON CONFLICT (...) DO UPDATE or DO NOTHING.
MariaDB compiles them as ON DUPLICATE KEY UPDATE. MariaDB checks every primary
key and unique index, so its SQL cannot limit detection to the columns passed to
on_conflict; those columns select the no-op assignment used for DoNothing.
On SQLite, the target columns must match a primary key or unique index.
DoNothing cannot be combined with .returning(...) because SQLite may return
no row. DoUpdate supports .returning(...) for single and bulk inserts.
Filtering is explicit: select, update, and delete must choose exactly one
of .where(...) or .all() before execution. Predicates use methods such as
.eq(...), .ne(...), .is_null(), .in_(...), .like(...),
.gt(...)/.gte(...)/.lt(...)/.lte(...), and .between(low, high); Python
comparison operators are not part of the v1 API.
Combine predicates with | (OR), & (AND), and ~ (NOT); use parentheses to
group. Repeated .where(...) calls AND together, so & is mainly useful inside
an OR. Python's and/or/not keywords are rejected — a predicate raises if
used as a boolean.
# WHERE status = 'active' OR status = 'trialing'
select(User).where(User.status.eq("active") | User.status.eq("trialing"))
# WHERE tenant_id = 1 AND (status = 'active' OR email LIKE '%@vip.com')
select(User).where(
User.tenant_id.eq(1) & (User.status.eq("active") | User.email.like("%@vip.com")),
)
# WHERE NOT (status = 'disabled')
select(User).where(~User.status.eq("disabled"))
Arithmetic and atomic updates
Use .add(...), .sub(...), and .mul(...) on native numeric columns and
expressions. Operands may be literals or columns/expressions from the same query
source, including an alias. Chaining preserves parentheses and binds literals.
Expressions work in SELECT projections and WHERE/ON predicates.
.to_expr(...) assigns the computed value inside UPDATE. .to(...) retains its
existing Python-literal validation:
query = (
update(Inventory)
.set(
Inventory.quantity.to_expr(Inventory.quantity.sub(amount)),
Inventory.version.to_expr(Inventory.version.add(1)),
)
.where(
Inventory.id.eq(item_id)
& Inventory.quantity.gte(amount)
& Inventory.version.eq(expected_version)
)
)
async with database.transaction() as transaction:
changed = await transaction.execute(query)
# With a unique item_id, changed == 1 means this version was claimed.
Validate application inputs such as a positive purchase amount separately. The stock check, decrement, and version increment execute in one statement, without an application-side read/modify/write. A stale version or insufficient stock changes no rows.
The initial numeric contract is deliberately narrow:
intrequires native INTEGER storage;floatrequires native REAL storage. Text-encoded numbers, bool, Decimal, durations, and custom numeric types are rejected. Division and mixed integer/real column expressions are unsupported.- Integer literals must fit signed 64 bits. Floating literals must be finite. Float expressions also accept integer literals, matching Python's float annotations. Boolean literals are rejected at runtime.
- Either nullable operand makes the result nullable. A literal
Noneis SQL NULL, not zero. Assignments require matching numeric domains. A non-null expression may target nullable storage, but not the reverse. - Arithmetic follows backend numeric behavior, not Python unlimited integers. SQLite may promote overflowing integer arithmetic to REAL; integer projection decoding rejects that result rather than truncating it. MariaDB integer overflow remains an execution error. Floating arithmetic uses backend precision and overflow behavior.
- Computed writes use database constraints, not Python field validators. Final storage validation cannot detect every overflowed or rounded intermediate expression. Guard operand ranges when exact integer arithmetic is required.
- Compilation rejects an expression reading another column assigned by the same UPDATE, even inside nested arithmetic. This avoids MariaDB's assignment-order behavior differing from SQLite. Independent stock/version updates are valid.
- Expression assignments currently support UPDATE only, not
DoUpdateconflict actions. Aliases remain query-only, not mutation targets.
COALESCE and text functions
Native integer, float, and text values support .coalesce(fallback). The fallback
may be a compatible literal or a column/expression from the same query source.
A non-null input or fallback makes the result non-null. Two nullable operands
retain a nullable result.
select(User.nickname.coalesce("anonymous").lower()).all() # str
select(User.nickname.char_length()).all() # int | None for nullable nickname
select(User.nickname.char_length().coalesce(0).add(1)).all() # int
update(User).set(
User.nickname.to_expr(User.nickname.coalesce("anonymous").lower()),
).where(User.id.eq(user_id))
lower() preserves text nullability. char_length() returns int or
int | None. Both require native text storage, not JSON-encoded strings or
text-encoded non-string values. Text .to_expr() assignments follow the same
ownership, nullability, dependency, and database-validation rules as numeric
assignments. Grouped projections must group every column read by an expression.
These functions retain backend behavior. SQLite renders LENGTH, which counts
characters only up to the first NUL; MariaDB renders CHAR_LENGTH, which counts
all characters, not bytes. SQLite's built-in LOWER handles ASCII casing;
MariaDB casing depends on its character set and collation. Neither function
promises Python string semantics or identical Unicode casing across backends.
For floating COALESCE expressions, integer literal fallbacks are bound as floats so a missing input still produces the promised float result. Integer and float column/expression operands remain distinct. No caller-supplied function names or result-type assertions are accepted.
CASE expressions
Both namespaces export case(condition, then=..., otherwise=...). It builds a
searched SQL CASE with an explicit fallback:
from snekql.sqlite import case, select
select(case(User.score.gte(100), then="gold", otherwise="standard")).all()
select(
case(User.score.gte(100), then=User.nickname, otherwise=None)
.coalesce("anonymous")
.lower()
).all()
TRUE selects then; FALSE or SQL UNKNOWN selects otherwise. Branches accept
native integer, float, or text literals, columns, and expressions. They must
share a value domain and query source. Either nullable branch makes the result
nullable, even when the condition logically excludes NULL. Two literal NULL
branches are rejected because they do not identify a result domain. Integer
literals in a floating CASE are validated and bound as floats; integer and
floating column/expression branches cannot be mixed.
CASE results compose with arithmetic, COALESCE, text functions, comparisons,
and .to_expr() assignments. Nested CASE is supported. The initial condition
contract is row-local: plain columns and native value expressions from one
query source, including compound predicates. Subqueries, aggregates, and
multi-source conditions are excluded. Aliases retain their own source identity.
Grouping and UPDATE dependency checks include condition reads and both branches,
including nested expressions. A branch that would not execute for today's data
still counts as a dependency. Comparisons such as .gt_col(expression) preserve
bindings and check the right-hand expression against the current query scope.
Named projections
Use a plain Pydantic BaseModel as a result contract when positional tuples are
awkward or a query needs more than eight projected values. It is not a table
model and declares no storage, primary key, or schema.
from pydantic import BaseModel
from snekql.sqlite import ClosedRead, Transaction, ready, select
class UserSummary(BaseModel):
id: int
email: str
def summaries() -> ClosedRead[UserSummary]:
return ready(
select(User)
.project(
UserSummary,
id=User.id,
email=User.email,
)
.all()
)
async def load_summaries(transaction: Transaction) -> list[UserSummary]:
return await transaction.fetch_all(summaries())
Keyword names identify result fields; values are query columns, aggregates, scalar subqueries, or supported dialect expressions. Binding order chooses the SQL projection order but does not change which result field receives each value. There is no library arity cap for named results, although database limits still apply. Existing scalar, tuple, and table-model results remain unchanged.
Build joins before calling .project(...). Fields from the nullable side of a
LEFT JOIN must accept None, including alias columns whose physical storage is
NOT NULL. Filters do not refine that declared nullability. Named queries retain
where, all, order_by, group_by, having, distinct, limit, and offset.
They work with eager fetches and fetch_chunks. A named row containing a NULL
field remains distinguishable from no row in fetch_one_or_none.
Every declared result field needs exactly one binding, including fields with
Python defaults. Extra or missing bindings and labels differing only by case
are rejected. Labels are quoted SQL identifiers and use Python field names,
not Pydantic validation/serialization aliases. Table models and RootModel
are not named result contracts. A one-field named row is still a row object;
use a scalar select, not a named projection, for a scalar subquery.
Known logical domains and nullability are checked during construction. Source
codecs decode UUIDs, JSON, dates, and other logical values before the result
model validates them strictly. Value constraints, opaque expression domains,
and complex annotation compatibility are checked against actual rows.
validate=False can skip source-column validators, but never named result
validation. Invalid result rows raise ModelValidationError without including
Pydantic input values or validator messages.
Native integer literals
Use sqlite.literal(0) or mariadb.literal(0) in a named projection to bind a
signed-64 integer without borrowing a table column's type. Constants have no
FROM owner; begin with select(Model) and use .project(...). Their labels
retain nonnullable integer types across CTE boundaries. See
native integer literals for validation and SQL-width rules.
Typed CTEs
Completed named SELECTs can become query-only CTEs with .cte(Role, name=...).
Bind expression labels and use .column(token) for typed readonly references.
CTEs preserve source codecs and support aliases, INNER/LEFT joins, named rows and
streaming. See typed CTEs for the tested recipe and limits.
Named UNION results
Completed named projections support .union() and .union_all() with the same
backend and exact result-model class. Fields align by name; the left output
contract must accommodate every right output, including nullability. Final
ordering uses combined.column(left_label); pagination applies to the whole
result. Convert the combined query to a CTE for filtering or joins.
See named UNION for compatibility rules and examples.
Named RETURNING results
Use .returning_as(Result, **bindings) on supported writes:
query = insert(User(name="Ada")).returning_as(
UserSummary,
id=User.id,
name=User.name,
)
async with database.transaction() as transaction:
created = await transaction.execute(query) # UserSummary
Bindings must be columns of the written model. Named RETURNING has the same
validation and arity rules as named SELECT. A single insert returns one result
object. Bulk inserts and SQLite UPDATE/DELETE return lists. Empty bulk inserts
remain no-ops returning []. Existing DoUpdate conflict actions work;
DoNothing still cannot be combined with RETURNING.
SQLite supports named INSERT, UPDATE, and DELETE RETURNING. MariaDB supports
named INSERT RETURNING; this library still rejects MariaDB UPDATE/DELETE
RETURNING before IO. On UPDATE/DELETE, a later .returning(...) replaces the
named contract with the usual scalar, tuple, or whole-model result.
Joins
join(..., on=...) and model-select left_join(..., on=...) accept ordinary
predicates as well as FK-column .references(...) conditions. No foreign-key
declaration is required for a predicate join:
select(User).left_join(
Order,
on=(
Order.user_id.eq_col(User.id)
& Order.tenant_id.eq_col(User.tenant_id)
& Order.status.ne("cancelled")
),
).all()
# fetch_all returns list[tuple[User[Row], Order[Row] | None]]
ON supports column comparisons, literal filters, &, |, ~, and subqueries.
Bindings use the column's normal codec. Conditions may filter only one side;
they do not assert that a foreign-key relationship exists. An ON filter on a
left join keeps unmatched left rows, unlike the same filter in WHERE.
Each ON clause can reference the FROM anchor, preceding joins, and its newly joined table, but not later joins. Nested subqueries inherit that scope. Right-hand column references and correlations are checked during compilation. Aggregates cannot filter ON directly; use an aggregate subquery instead.
Joins preserve readiness, so choose .all() or .where(...) before execution.
Projection inner joins keep their selected result types. Projection left joins
remain unsupported because their nullable result slots cannot yet be typed.
Table aliases and self-joins
Use a role marker class to distinguish aliases statically, and name= to choose
an SQL identifier. Both backend namespaces export alias:
from snekql.sqlite import alias
class ManagerRole:
pass
manager = alias(User, ManagerRole, name="manager")
query = (
select(User)
.left_join(
manager,
on=User.manager_id.eq_col(manager.column(User.id)),
)
.all()
)
# fetch_all returns list[tuple[User[Row], User[Row] | None]]
manager.column(User.email) retains the column's value type and codec while
referencing manager in SQL. Pass an original column of the aliased model;
columns from another model or alias are rejected. select(manager) returns
original User[Row] instances. Alias columns also support projections,
ordering, comparisons, and aggregates.
Give every repeated role a distinct marker class and SQL name. Aliases can be reused in separate queries, but the same model/role pair cannot appear twice in one visible scope. Names must be ASCII SQL identifiers and must not collide case-insensitively with another visible source, including enclosing queries. Compilation rejects collisions rather than silently shadowing a correlated reference.
Aliases are immutable, query-only values. They do not declare tables or change
model metadata. Mutation and schema operations reject aliases, and assignments
from alias columns cannot target the underlying model. Scope checks distinguish
an alias from its original table and from other roles of that table. As with
ordinary columns, right-hand *_col references are checked during compilation.
Subqueries
A select can be nested inside another query as a subquery:
from snekql.sqlite import exists, not_exists, scalar, select
# IN / NOT IN against a single-column subquery
select(User).where(
User.id.in_subquery(select(Order.user_id).where(Order.amount.gt(100))),
)
# EXISTS / NOT EXISTS, correlated to the outer row via a column comparison
select(User).where(
exists(select(Order.id).where(Order.user_id.eq_col(User.id))),
)
select(User).where(
not_exists(select(Order.id).where(Order.user_id.eq_col(User.id))),
)
# A scalar subquery used in a projection (or as a comparison operand)
select(
User.id,
scalar(select(Order.amount.sum()).where(Order.user_id.eq_col(User.id))),
).all()
in_subquery/not_in_subquery and scalar(...) require a single-column
select; exists/not_exists accept any select. The *_col comparisons
(.eq_col, .ne_col, .gt_col, .gte_col, .lt_col, .lte_col) compare a
column against another column or a scalar subquery, which is how a correlated
subquery references the outer query. A reference to a table in neither the
subquery nor an enclosing query is rejected when the query compiles.
Inspecting the generated SQL
Use query.compile() for structured inspection without a Database or
transaction:
from snekql.sqlite import CompiledQuery
compiled: CompiledQuery = select(User.email).where(User.status.eq("active")).compile()
compiled.sql # 'SELECT "email" FROM "user" WHERE ("status" = ?)'
compiled.params # ('active',)
compiled.backend # 'sqlite'
Both backend namespaces export CompiledQuery. Its fields are frozen, and
params is an ordered tuple of dialect-encoded bindings. SQLite uses ?
placeholders; MariaDB uses %s and backtick-quoted identifiers. The query's
models determine the backend; compilation cannot retarget a query.
Compiled output is inspection-only. Pass the original query to a Transaction,
not CompiledQuery. Compilation neither executes SQL nor includes private
execution plans, row decoders, or result-cardinality policy. It does not verify
that tables exist on a server. Incomplete queries raise QueryCompilationError.
Empty bulk inserts also raise because they have no SQL to compile,
even though executing an empty bulk insert is a no-op.
repr(compiled) and str(compiled) redact bound values as <redacted:N>.
Accessing .params explicitly reveals them. SQL text remains visible, including
identifiers and any literals supplied by custom dialect expressions.
Debug text
Query repr() and str() show parameterized SQL and redact bindings as
<redacted:N>. query.inspect() uses the same redacted multiline format as
str(query). These operations need no Database or transaction.
query = select(User).where(User.status.eq("active"))
query = query.where(User.email.like("%@example.com"))
repr(query)
# <SelectModelQuery: SELECT ... FROM "user"
# WHERE ("status" = ?) AND ("email" LIKE ?) | params=<redacted:2>>
print(query)
# -- parameterized (executes):
# SELECT ... WHERE ("status" = ?) AND ("email" LIKE ?)
# -- params: <redacted:2>
# Trusted local debugging only. This does not change later repr/str calls.
print(query.inspect(parameter_visibility="values"))
# -- parameterized (executes):
# SELECT ... WHERE ("status" = ?) AND ("email" LIKE ?)
# -- params: ('active', '%@example.com')
#
# -- inlined literals (approximate, not executed):
# SELECT ... WHERE ("status" = 'active') AND ("email" LIKE '%@example.com')
The inlined form is approximate and must not be executed. Explicit value
inspection can raise compilation or formatting errors. Runtime Config
parameter_visibility does not change query formatting; disclosure here requires
this separate per-call choice.
Incomplete queries and ordinary compilation failures render a fixed
<ClassName inspection unavailable> marker through default formatting. Exception
messages can contain sensitive inputs, so they are not included. Use .compile()
for deliberate validation and structured parameter access; it still raises
compilation and codec errors. Process-control exceptions are not suppressed.
Compatibility change: query text no longer includes bindings, inlined SQL,
or incomplete-query error details by default. Code parsing the old display text
should use .compile().sql and .compile().params; code using repr to validate
bounds should call .compile() instead. Use the explicit value-inspection method
only for local diagnostics. Query execution and encoding policies are unchanged.
Redaction covers bound values in default text, not arbitrary object inspection.
SQL identifiers and literals in custom SQL expressions remain visible. Raw
statement repr/str remain opaque; .sql deliberately exposes their SQL.
Traceback locals, exception chains from explicit compilation or execution,
model representations, state inspection, and serializers that traverse object
attributes can expose values. Custom validators and serializers run during
compilation and can have their own side effects. Configure error reporters and
structured loggers accordingly; query formatting is not a sandbox or a secret
scanner. Ordinary logging with %s or %r uses the redacted defaults.
Explaining query plans
await transaction.explain(query) asks the active backend for a query plan.
It does not apply the query's writes. The query must be a complete builder
from the Transaction's backend, not raw(...) or a CompiledQuery.
from snekql.sqlite import ExplainResult
async with db.transaction() as transaction:
plan: ExplainResult = await transaction.explain(
select(User.email).where(User.status.eq("active"))
)
plan.backend # 'sqlite'
plan.columns # ('id', 'parent', 'notused', 'detail')
for row in plan.rows:
print(dict(zip(plan.columns, row, strict=True))) # Deliberate inspection
Both namespaces export frozen ExplainResult with .backend, .columns,
and .rows. Columns are a tuple of native column names. Rows are a tuple of
row tuples in column order, with native driver values and no model decoding.
SQLite returns EXPLAIN QUERY PLAN output, which can be empty for writes.
MariaDB returns native optimizer columns such as select_type, key, rows,
and Extra. Column sets, row order, estimates, and detail text depend on the
query and server version. There is no portable optimizer schema.
| Backend | explain(query) |
explain_analyze(query) |
|---|---|---|
| SQLite | EXPLAIN QUERY PLAN for SELECT, INSERT, UPDATE, DELETE |
Rejected |
| MariaDB | EXPLAIN for SELECT, UPDATE, DELETE without RETURNING |
ANALYZE for the same supported queries |
explain_analyze executes the query, including UPDATE and DELETE. It returns
execution statistics instead of application rows. MariaDB calls this statement
ANALYZE, not EXPLAIN ANALYZE; its output includes observed statistics such
as r_rows and r_filtered. SQLite's unrelated ANALYZE command is never used
as a substitute. MariaDB INSERT plans are outside this interface's supported
statement set.
# MariaDB only. This DELETE really runs and commits on normal transaction exit.
async with db.transaction() as transaction:
plan = await transaction.explain_analyze(
delete(User).where(User.status.eq("disabled"))
)
There is no automatic rollback or savepoint around ANALYZE. It uses the active
Transaction's normal commit, rollback, locking, and operation-deadline rules.
Even plain EXPLAIN performs database IO and can acquire metadata locks.
For MariaDB FOR UPDATE queries, its optimizer can also acquire row locks;
EXPLAIN and ANALYZE of these queries require a read-write Transaction. Use
.compile() when inspection must perform no IO or acquire no locks.
Incomplete queries, empty bulk inserts, and unsupported statement combinations
raise QueryCompilationError before query IO. Backend mismatches raise
DatabaseRuntimeError. Transaction lifecycle errors remain unchanged.
Plan cells can contain sensitive values. Result repr and str show only the
backend and column/row counts; accessing .rows or .columns reveals the
native output. EXPLAIN execution logs and driver-error text omit SQL and bound
values even with parameter_visibility="values". This does not redact a
caller's own logging or server-side instrumentation.
Runtime
Database.initialize(...) is the only public construction path and is
connect-only: it opens connectivity and a connection pool and does no schema
work. Select the backend with its namespace config. The legacy SQLite keyword
form remains supported for compatibility, but new code should use sqlite.Config.
from pathlib import Path
from snekql import sqlite
from snekql.sqlite import Database
db = await Database.initialize(
sqlite.Config(database=Path("app.db"), pool_size=5),
)
# MIGRATIONS is the committed literal chain from the quick start above.
await db.migrate(MIGRATIONS)
await db.verify_migrations(MIGRATIONS)
await db.verify([User])
memory_db = await Database.initialize(
sqlite.Config(database=":memory:"),
)
A Database is an async context manager, so the runtime is closed for you on
block exit (including when the body raises) — async with await Database.initialize(...) as db:. Call await db.close() directly only when you
manage the lifecycle by hand.
snekql logs through the standard library logging module. Every snekql logger
is a child of the snekql logger (snekql.runtime, snekql.sqlite.runtime,
…), so an application controls all snekql output from one place:
import logging
# Route snekql logs wherever the app sends its own logs.
logging.basicConfig(level=logging.INFO)
# Or silence snekql while keeping the rest of the app verbose.
logging.getLogger("snekql").setLevel(logging.WARNING)
snekql attaches a NullHandler to the snekql logger, so it emits nothing
until the application configures logging. To capture snekql's structured fields,
point a JSON/structured formatter (e.g. structlog's ProcessorFormatter) at
the handler that receives snekql records — snekql itself stays pure stdlib.
MariaDB models should use the MariaDB namespace so backend-specific columns and runtime checks agree:
from typing import ClassVar
from snekql import mariadb
from snekql.mariadb import Database, Pending, insert, select
class Account[S = Pending](mariadb.Model[S]):
__row_type__: ClassVar[mariadb.ReadType[Account[mariadb.Row]]]
id: mariadb.GenCol[int] = mariadb.Integer(
primary_key=True,
auto_increment=True,
default=mariadb.PENDING_GENERATION,
)
email: mariadb.Col[str] = mariadb.Text(unique=True)
config = mariadb.Config(
database="app",
host="127.0.0.1",
port=3306,
user="snekql",
password="secret",
)
async with await Database.initialize(config) as db:
migrations = {
"0001_create_account": (
"CREATE TABLE `account` ("
"`id` BIGINT NOT NULL AUTO_INCREMENT PRIMARY KEY, "
"`email` VARCHAR(255) CHARACTER SET utf8mb4 "
"COLLATE utf8mb4_bin NOT NULL"
") ENGINE=InnoDB"
),
"0002_account_email_unique": (
"CREATE UNIQUE INDEX `ux_account_email` ON `account` (`email`)"
),
}
await db.migrate(migrations)
await db.verify_migrations(migrations)
await db.verify([Account])
async with db.transaction() as tx:
await tx.execute(insert(Account(email="alice@example.com")))
account = await tx.fetch_one(
select(Account).where(Account.email.eq("alice@example.com")),
)
For production TCP, set tls=mariadb.TLSConfig(...); certificate verification,
hostname checks, and TLS 1.2+ are mandatory on that path. See
engine settings.
MariaDB also supports optional max_connection_lifetime, max_connection_idle,
and health_check="checkout" policies. See
connection lifecycle for recycling, credential
rotation through a replacement Database, and graceful shutdown.
Use transactions for all work:
async with db.transaction() as tx:
rows = await tx.fetch_all(select(User).all())
first_email = await tx.fetch_one(
select(User.email).all().order_by(User.id.asc()).limit(1)
)
await tx.execute(update(User).set(User.status.to("inactive")).all())
Pass isolation="serializable" and/or read_only=True to db.transaction()
for explicit transaction policy. Omitted options preserve defaults; MariaDB also
supports read-uncommitted, read-committed, and repeatable-read isolation. See
transaction isolation and access mode
for capability checks, pooled-setting restoration, and recovery limits.
MariaDB SELECTs support .for_update() with wait="block", "nowait", or
"skip_locked". Keep the locking read and its update in the same Transaction.
SQLite and unsupported query shapes fail compilation; read-only transactions
reject locking queries before IO. See
locking SELECTs for a queue-claim example
and lock-lifetime limits.
Transaction errors expose optional error.failure metadata with a portable
category and available native error details. See
classified transaction failures.
Classification does not make a failed connection reusable or retry a statement.
After context exit, transaction.commit_outcome reports "not_attempted",
"rejected", "committed", or "unknown". See
commit outcomes and retry guidance
before retrying failed work.
Runtime methods:
-
begin_nested()returns an explicit savepoint context on the existing Transaction:async with tx.begin_nested(): .... Success releases it without committing; exceptional exit rolls back nested work. Recognized immediate constraint failures can recover, but unsafe connections remain unusable. Nested contexts reserve the Transaction for their entering task and require streams to close before savepoint entry/exit. See nested transactions and recovery limits. Nesteddb.transaction()calls still acquire independent connections. -
fetch_all(select(...))returns all result rows. It is for bounded result sets: the whole result is loaded into memory and every row is validated synchronously on the event loop. The materialization loop yields a cooperative checkpoint periodically so a large read does not monopolize the loop, but it still holds the connection for its full duration. For large result sets stream withfetch_chunksinstead, which fetches incrementally and keeps per-batch materialization small. -
fetch_chunks(select(...), size=N)streams rows in batches of up toNfrom a server-side cursor, so an arbitrarily large result never has to fit in memory. It returns aChunkStream— an async context manager and async iterator — that must be consumed insideasync withso the cursor is closed and the connection released deterministically:async with tx.fetch_chunks(select(User).all(), size=500) as stream: async for batch in stream: # batch: list[User[Row]] for user in batch: ...
The stream holds the transaction's single connection for its whole lifetime: no other query may run on the transaction until the stream is closed, and it must be opened and consumed within one task. On MariaDB this uses an unbuffered
SSCursor; a default cursor would buffer the full result client-side and defeat streaming. -
fetch_one(select(...))returns the single matching row (exactly-one contract); it raisesNoResultErrorfor no row andMultipleResultsErrorfor more than one. ANonefrom a single-valuefetch_onemeans SQLNULL. -
fetch_one_or_none(select(...))returns the row orNonefor the zero-or-one case (model, tuple, and join selects), still raising on more than one row. -
execute(insert(...))returnsNone, including conflict-handled inserts without.returning(...);execute(update/delete)returns the affected-row count. SQLite counts matched rows; MariaDB counts only rows anUPDATEactually changed. On SQLite UPDATE/DELETE,.returning()returns Row models, one explicit returning column yields scalars, and multiple columns yield tuples. Each.returning(...)call replaces the previous projection; a final.returning()restores whole-model results. The MariaDB adapter currently rejects UPDATE/DELETE RETURNING. -
close()is async and idempotent after a successful close.
Backend Configs separate pool waiting (acquire_timeout) from driver I/O
(operation_timeout), both defaulting to 30 seconds. Passing
db.transaction(timeout=N) overrides both for that transaction. Each driver
operation gets a fresh budget; application code between calls is not timed.
Timed-out operations discard the uncertain physical connection. A timeout before
COMMIT acknowledgement leaves an unknown outcome requiring reconciliation.
Acknowledged commits remain committed even if subsequent cleanup times out.
For file-backed SQLite, sqlite.Config(database=Path("app.db"), durability="full")
selects WAL with synchronous=FULL on every physical connection. The default
"normal" policy is unchanged; FULL is rejected for in-memory targets. See
durability policy and storage limits.
Migrations and verification
Initialization does no schema work. A live Database applies the complete
migration chain, verifies its recorded head, then checks the schema against the
models:
db = await Database.initialize(database=Path("app.db"))
# MIGRATIONS is the complete committed chain shown in the quick start.
result = await db.migrate(MIGRATIONS)
await db.verify_migrations(MIGRATIONS)
await db.verify([User], policy="strict")
db.migration_status(migrations)returns immutable applied/pending names and whether history exists, without applying changes.snekql migrations statusandsnekql migrations planexpose this inspection through trusted application factories. See status and pending plans.db.migrate(migrations)accepts the complete ordereddict[str, str]chain. It verifies each recorded position and exact-body SHA-256 before applying the pending suffix, then returns an immutableMigrationResult. Migrations are the sole schema-creation authority. Runscaffold(...)during development, review its output, and commit the SQL as literals rather than recomputing old bodies from current model metadata.db.verify_migrations(migrations)performs a read-only exact-head check by default. For rolling deployments,policy="compatible"with an explicitapproved_laterdictionary permits only that reviewed later prefix. See rolling deployments. It neither applies pending SQL nor upgrades legacy history.db.verify(models, *, policy=...)is a partial, structural check that returns an immutableSchemaVerificationResultwith checked tables and table-scoped drift issues. Every model is inspected before policy is applied:policy="strict"raisesSchemaVerificationErrorwith the result attached;policy="warn"logs and returns it. Verification compares supported column, index, foreign-key, and storage facts by semantics, but cannot represent literal defaults, partial-index predicates,CHECKconstraints, triggers, or data.
A deploy step runs initialize -> migrate -> verify_migrations -> verify; app
replicas run initialize -> verify_migrations -> verify. See
docs/migrations.md and
docs/schema-drift.md.
Error model
Every intentional package-originated exception is a SnekqlError subclass.
Use SnekqlError to catch all snekql failures, or catch narrower subclasses:
ModelDeclarationError,ModelValidationError,FrozenModelErrorQueryConstructionError,QueryCompilationErrorDatabaseClosedError,PoolTimeoutError,DatabaseOperationTimeoutError,TransactionClosedError,ExecutionErrorSchemaVerificationError(strict Schema Drift; inspect.result)MigrationDeclarationError,MigrationHistoryError,MigrationError,MigrationLockError
ExecutionError preserves parameterized sql and raw .params for explicit
inspection. Its string form and normal query logs render
params=<redacted:N> by default. Set a Backend Config's
parameter_visibility="values" only for controlled local diagnostics.
Further reading
- Adoption and release confidence
- Searchable API reference
- Backend capability matrix
- Service deployment and incremental adoption
- Compatibility and the 1.0 release contract
- Why snekql is not an ORM
- Typing guide
- Type-checker versions and editor compatibility
- Schema startup and drift
- Temporary MariaDB Test Server
- Raw SQL
- Reporting recipes
- Query composition design
- Error handling guide
- Runtime telemetry
- MariaDB integration PRD
Runnable examples live in examples/:
uv run python -m examples.basic_app
uv run ty check examples/typed_queries.py
Local validation uses PYTHON_CONTEXT_AWARE_WARNINGS=1 uv run snektest tests.
The explicit directory excludes bundled dependency tests inside .venv.
Validated raw SQL requires this Python startup setting for context-local warning
isolation. MariaDB integration tests start a
Temporary MariaDB Test Server through snekql.testing.mariadb, so mariadbd,
mariadb-install-db, and mariadb must be available on the test machine.
Public API
The backend namespaces are the public import surface. Pick snekql.sqlite or
snekql.mariadb and import the whole surface from it -- the dialect-neutral
verbs and builders as well as that backend's Model and column constructors.
There is no flat snekql.<symbol> surface; the package root only exposes the
sqlite and mariadb namespace handles. This keeps SQLite-only and
MariaDB-only symbols from colliding and stops auto-imports from landing on the
wrong backend. Static backend-family witnesses also reject mixing models,
queries, configurations, Transactions, joins, foreign keys, or Scaffold inputs
across those namespaces; runtime checks remain for dynamically typed callers.
The supported import surface is snekql.sqlite, snekql.mariadb, and
snekql.testing.mariadb, each curated in its own __all__. Underscored modules
(snekql._*) and backend submodules (snekql.sqlite.config,
snekql.sqlite.verbs, …) are implementation detail and not supported import
paths — their public symbols are re-exported through the namespace top level.
Use ReadQuery[Scope, Result] and Write[Result] for executable query helpers.
Preserve Scope in generic read helpers. To return a read with a result-only
annotation, finish composing it and return ready(query) as ClosedRead[Result].
Use OptionalRead or ClosedOptional when a helper needs fetch_one_or_none.
These annotations avoid dependencies on state-specific builder classes. Query Readiness is
tracked privately: selects and deletes need .all() or .where(...); updates
need both .set(...) and row scope. ty rejects guaranteed-incomplete queries
at stored-query and Transaction seams, while Query Compilation keeps equivalent
checks for dynamic callers. Predicate, Aggregate,
Scalar, JoinOn, OrderBy, and Assignment are likewise annotation-only:
obtain their values from model/column methods and Query Builder factories,
never constructors. Use
ColumnRef[Owner, T] for a read-only column parameter that a helper compares or
projects; assignment methods intentionally remain on model columns. Queries are
built through select, insert, insert_many, update, and delete. The
catchable error contract is the SnekqlError hierarchy re-exported from each namespace. See
docs/typing.md for the full contract.
Agent navigation map:
snekql/model.py: model metaclass, table metadata, Pending/Row materialization.snekql/storage.py: column descriptors, SQLite storage metadata, value codecs.snekql/expressions.py: predicates, ordering, update assignments.snekql/query.py: query builders and SQL compilation.snekql/runtime.py:Database,Transaction, execution methods.snekql/sqlite/pool.py: internal async SQLite connection pool.snekql/sqlite/schema.py: scaffold DDL generation and schema verification (dialect-blind pipeline insnekql/_schema_*.py).snekql/errors.py: public exception hierarchy.tests/test_public_typing.py: type-checker prototypes for the public API.CONTEXT.md: project language and terminology.
Supported CI environments and fault coverage are listed in the failure matrix, including optional resource-soak commands.
Release files for snekql 0.8.0
For a detailed explanation of source distributions (sdists) and built distributions (wheels), please see the package formats documentation.
Source distribution (sdist)
| File | Size | Uploaded | |
|---|---|---|---|
| snekql-0.8.0.tar.gz | 297.7 kB | Details |
Built distribution (wheel)
| File | Interpreter | ABI | Platform | Reset |
|---|---|---|---|---|
| snekql-0.8.0-py3-none-any.whl | Python 3 | none | any | Details |
Total release size: 603.9 kB
Release files / snekql-0.8.0.tar.gz
| Download URL | snekql-0.8.0.tar.gz |
|---|---|
| Size | 297.7 kB |
| Tags | Source |
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