Files
tidb/ast/misc.go
Ewan Chou e6f86e35d2 plan: build prepared statement plan in Optimize phase. (#4914)
When we build the `Execute` plan, the underlying plan is not built, so we don't know what the plan is before we execute it.
This PR move the plan building for prepared statement to optimizer, so we know what plan we are going to execute before we execute it.
2017-10-28 23:04:07 +08:00

778 lines
19 KiB
Go

// Copyright 2015 PingCAP, Inc.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// See the License for the specific language governing permissions and
// limitations under the License.
package ast
import (
"bytes"
"fmt"
"strings"
"github.com/pingcap/tidb/context"
"github.com/pingcap/tidb/model"
"github.com/pingcap/tidb/mysql"
"github.com/pingcap/tidb/util/auth"
)
var (
_ StmtNode = &AdminStmt{}
_ StmtNode = &AlterUserStmt{}
_ StmtNode = &BeginStmt{}
_ StmtNode = &BinlogStmt{}
_ StmtNode = &CommitStmt{}
_ StmtNode = &CreateUserStmt{}
_ StmtNode = &DeallocateStmt{}
_ StmtNode = &DoStmt{}
_ StmtNode = &ExecuteStmt{}
_ StmtNode = &ExplainStmt{}
_ StmtNode = &GrantStmt{}
_ StmtNode = &PrepareStmt{}
_ StmtNode = &RollbackStmt{}
_ StmtNode = &SetPwdStmt{}
_ StmtNode = &SetStmt{}
_ StmtNode = &UseStmt{}
_ StmtNode = &FlushStmt{}
_ StmtNode = &KillStmt{}
_ Node = &PrivElem{}
_ Node = &VariableAssignment{}
)
// Isolation level constants.
const (
ReadCommitted = "READ-COMMITTED"
ReadUncommitted = "READ-UNCOMMITTED"
Serializable = "SERIALIZABLE"
RepeatableRead = "REPEATABLE-READ"
// Valid formats for explain statement.
ExplainFormatROW = "row"
ExplainFormatDOT = "dot"
)
var (
// ExplainFormats stores the valid formats for explain statement, used by validator.
ExplainFormats = []string{
ExplainFormatROW,
ExplainFormatDOT,
}
)
// TypeOpt is used for parsing data type option from SQL.
type TypeOpt struct {
IsUnsigned bool
IsZerofill bool
}
// FloatOpt is used for parsing floating-point type option from SQL.
// See http://dev.mysql.com/doc/refman/5.7/en/floating-point-types.html
type FloatOpt struct {
Flen int
Decimal int
}
// AuthOption is used for parsing create use statement.
type AuthOption struct {
// ByAuthString set as true, if AuthString is used for authorization. Otherwise, authorization is done by HashString.
ByAuthString bool
AuthString string
HashString string
// TODO: support auth_plugin
}
// ExplainStmt is a statement to provide information about how is SQL statement executed
// or get columns information in a table.
// See https://dev.mysql.com/doc/refman/5.7/en/explain.html
type ExplainStmt struct {
stmtNode
Stmt StmtNode
Format string
}
// Accept implements Node Accept interface.
func (n *ExplainStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*ExplainStmt)
node, ok := n.Stmt.Accept(v)
if !ok {
return n, false
}
n.Stmt = node.(DMLNode)
return v.Leave(n)
}
// PrepareStmt is a statement to prepares a SQL statement which contains placeholders,
// and it is executed with ExecuteStmt and released with DeallocateStmt.
// See https://dev.mysql.com/doc/refman/5.7/en/prepare.html
type PrepareStmt struct {
stmtNode
Name string
SQLText string
SQLVar *VariableExpr
}
// Accept implements Node Accept interface.
func (n *PrepareStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*PrepareStmt)
if n.SQLVar != nil {
node, ok := n.SQLVar.Accept(v)
if !ok {
return n, false
}
n.SQLVar = node.(*VariableExpr)
}
return v.Leave(n)
}
// DeallocateStmt is a statement to release PreparedStmt.
// See https://dev.mysql.com/doc/refman/5.7/en/deallocate-prepare.html
type DeallocateStmt struct {
stmtNode
Name string
}
// Accept implements Node Accept interface.
func (n *DeallocateStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*DeallocateStmt)
return v.Leave(n)
}
// ExecuteStmt is a statement to execute PreparedStmt.
// See https://dev.mysql.com/doc/refman/5.7/en/execute.html
type ExecuteStmt struct {
stmtNode
Name string
UsingVars []ExprNode
ExecID uint32
}
// Accept implements Node Accept interface.
func (n *ExecuteStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*ExecuteStmt)
for i, val := range n.UsingVars {
node, ok := val.Accept(v)
if !ok {
return n, false
}
n.UsingVars[i] = node.(ExprNode)
}
return v.Leave(n)
}
// BeginStmt is a statement to start a new transaction.
// See https://dev.mysql.com/doc/refman/5.7/en/commit.html
type BeginStmt struct {
stmtNode
}
// Accept implements Node Accept interface.
func (n *BeginStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*BeginStmt)
return v.Leave(n)
}
// BinlogStmt is an internal-use statement.
// We just parse and ignore it.
// See http://dev.mysql.com/doc/refman/5.7/en/binlog.html
type BinlogStmt struct {
stmtNode
Str string
}
// Accept implements Node Accept interface.
func (n *BinlogStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*BinlogStmt)
return v.Leave(n)
}
// CommitStmt is a statement to commit the current transaction.
// See https://dev.mysql.com/doc/refman/5.7/en/commit.html
type CommitStmt struct {
stmtNode
}
// Accept implements Node Accept interface.
func (n *CommitStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*CommitStmt)
return v.Leave(n)
}
// RollbackStmt is a statement to roll back the current transaction.
// See https://dev.mysql.com/doc/refman/5.7/en/commit.html
type RollbackStmt struct {
stmtNode
}
// Accept implements Node Accept interface.
func (n *RollbackStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*RollbackStmt)
return v.Leave(n)
}
// UseStmt is a statement to use the DBName database as the current database.
// See https://dev.mysql.com/doc/refman/5.7/en/use.html
type UseStmt struct {
stmtNode
DBName string
}
// Accept implements Node Accept interface.
func (n *UseStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*UseStmt)
return v.Leave(n)
}
const (
// SetNames is the const for set names/charset stmt.
// If VariableAssignment.Name == Names, it should be set names/charset stmt.
SetNames = "SetNAMES"
)
// VariableAssignment is a variable assignment struct.
type VariableAssignment struct {
node
Name string
Value ExprNode
IsGlobal bool
IsSystem bool
// ExtendValue is a way to store extended info.
// VariableAssignment should be able to store information for SetCharset/SetPWD Stmt.
// For SetCharsetStmt, Value is charset, ExtendValue is collation.
// TODO: Use SetStmt to implement set password statement.
ExtendValue *ValueExpr
}
// Accept implements Node interface.
func (n *VariableAssignment) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*VariableAssignment)
node, ok := n.Value.Accept(v)
if !ok {
return n, false
}
n.Value = node.(ExprNode)
return v.Leave(n)
}
// FlushStmtType is the type for FLUSH statement.
type FlushStmtType int
// Flush statement types.
const (
FlushNone FlushStmtType = iota
FlushTables
FlushPrivileges
)
// FlushStmt is a statement to flush tables/privileges/optimizer costs and so on.
type FlushStmt struct {
stmtNode
Tp FlushStmtType // Privileges/Tables/...
NoWriteToBinLog bool
Tables []*TableName // For FlushTableStmt, if Tables is empty, it means flush all tables.
ReadLock bool
}
// Accept implements Node Accept interface.
func (n *FlushStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*FlushStmt)
return v.Leave(n)
}
// KillStmt is a statement to kill a query or connection.
type KillStmt struct {
stmtNode
// Query indicates whether terminate a single query on this connection or the whole connection.
// If Query is true, terminates the statement the connection is currently executing, but leaves the connection itself intact.
// If Query is false, terminates the connection associated with the given ConnectionID, after terminating any statement the connection is executing.
Query bool
ConnectionID uint64
// TiDBExtension is used to indicate whether the user knows he is sending kill statement to the right tidb-server.
// When the SQL grammar is "KILL TIDB [CONNECTION | QUERY] connectionID", TiDBExtension will be set.
// It's a special grammar extension in TiDB. This extension exists because, when the connection is:
// client -> LVS proxy -> TiDB, and type Ctrl+C in client, the following action will be executed:
// new a connection; kill xxx;
// kill command may send to the wrong TiDB, because the exists of LVS proxy, and kill the wrong session.
// So, "KILL TIDB" grammar is introduced, and it REQUIRES DIRECT client -> TiDB TOPOLOGY.
// TODO: The standard KILL grammar will be supported once we have global connectionID.
TiDBExtension bool
}
// Accept implements Node Accept interface.
func (n *KillStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*KillStmt)
return v.Leave(n)
}
// SetStmt is the statement to set variables.
type SetStmt struct {
stmtNode
// Variables is the list of variable assignment.
Variables []*VariableAssignment
}
// Accept implements Node Accept interface.
func (n *SetStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*SetStmt)
for i, val := range n.Variables {
node, ok := val.Accept(v)
if !ok {
return n, false
}
n.Variables[i] = node.(*VariableAssignment)
}
return v.Leave(n)
}
/*
// SetCharsetStmt is a statement to assign values to character and collation variables.
// See https://dev.mysql.com/doc/refman/5.7/en/set-statement.html
type SetCharsetStmt struct {
stmtNode
Charset string
Collate string
}
// Accept implements Node Accept interface.
func (n *SetCharsetStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*SetCharsetStmt)
return v.Leave(n)
}
*/
// SetPwdStmt is a statement to assign a password to user account.
// See https://dev.mysql.com/doc/refman/5.7/en/set-password.html
type SetPwdStmt struct {
stmtNode
User *auth.UserIdentity
Password string
}
// SecureText implements SensitiveStatement interface.
func (n *SetPwdStmt) SecureText() string {
return fmt.Sprintf("set password for user %s", n.User)
}
// Accept implements Node Accept interface.
func (n *SetPwdStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*SetPwdStmt)
return v.Leave(n)
}
// UserSpec is used for parsing create user statement.
type UserSpec struct {
User *auth.UserIdentity
AuthOpt *AuthOption
}
// SecurityString formats the UserSpec without password information.
func (u *UserSpec) SecurityString() string {
withPassword := false
if opt := u.AuthOpt; opt != nil {
if len(opt.AuthString) > 0 || len(opt.HashString) > 0 {
withPassword = true
}
}
if withPassword {
return fmt.Sprintf("{%s password = ***}", u.User)
}
return u.User.String()
}
// CreateUserStmt creates user account.
// See https://dev.mysql.com/doc/refman/5.7/en/create-user.html
type CreateUserStmt struct {
stmtNode
IfNotExists bool
Specs []*UserSpec
}
// Accept implements Node Accept interface.
func (n *CreateUserStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*CreateUserStmt)
return v.Leave(n)
}
// SecureText implements SensitiveStatement interface.
func (n *CreateUserStmt) SecureText() string {
var buf bytes.Buffer
buf.WriteString("create user")
for _, user := range n.Specs {
buf.WriteString(" ")
buf.WriteString(user.SecurityString())
}
return buf.String()
}
// AlterUserStmt modifies user account.
// See https://dev.mysql.com/doc/refman/5.7/en/alter-user.html
type AlterUserStmt struct {
stmtNode
IfExists bool
CurrentAuth *AuthOption
Specs []*UserSpec
}
// SecureText implements SensitiveStatement interface.
func (n *AlterUserStmt) SecureText() string {
var buf bytes.Buffer
buf.WriteString("alter user")
for _, user := range n.Specs {
buf.WriteString(" ")
buf.WriteString(user.SecurityString())
}
return buf.String()
}
// Accept implements Node Accept interface.
func (n *AlterUserStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*AlterUserStmt)
return v.Leave(n)
}
// DropUserStmt creates user account.
// See http://dev.mysql.com/doc/refman/5.7/en/drop-user.html
type DropUserStmt struct {
stmtNode
IfExists bool
UserList []*auth.UserIdentity
}
// Accept implements Node Accept interface.
func (n *DropUserStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*DropUserStmt)
return v.Leave(n)
}
// DoStmt is the struct for DO statement.
type DoStmt struct {
stmtNode
Exprs []ExprNode
}
// Accept implements Node Accept interface.
func (n *DoStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*DoStmt)
for i, val := range n.Exprs {
node, ok := val.Accept(v)
if !ok {
return n, false
}
n.Exprs[i] = node.(ExprNode)
}
return v.Leave(n)
}
// AdminStmtType is the type for admin statement.
type AdminStmtType int
// Admin statement types.
const (
AdminShowDDL = iota + 1
AdminCheckTable
AdminShowDDLJobs
AdminCancelDDLJobs
)
// AdminStmt is the struct for Admin statement.
type AdminStmt struct {
stmtNode
Tp AdminStmtType
Tables []*TableName
JobIDs []int64
}
// Accept implements Node Accpet interface.
func (n *AdminStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*AdminStmt)
for i, val := range n.Tables {
node, ok := val.Accept(v)
if !ok {
return n, false
}
n.Tables[i] = node.(*TableName)
}
return v.Leave(n)
}
// PrivElem is the privilege type and optional column list.
type PrivElem struct {
node
Priv mysql.PrivilegeType
Cols []*ColumnName
}
// Accept implements Node Accept interface.
func (n *PrivElem) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*PrivElem)
for i, val := range n.Cols {
node, ok := val.Accept(v)
if !ok {
return n, false
}
n.Cols[i] = node.(*ColumnName)
}
return v.Leave(n)
}
// ObjectTypeType is the type for object type.
type ObjectTypeType int
const (
// ObjectTypeNone is for empty object type.
ObjectTypeNone ObjectTypeType = iota + 1
// ObjectTypeTable means the following object is a table.
ObjectTypeTable
)
// GrantLevelType is the type for grant level.
type GrantLevelType int
const (
// GrantLevelNone is the dummy const for default value.
GrantLevelNone GrantLevelType = iota + 1
// GrantLevelGlobal means the privileges are administrative or apply to all databases on a given server.
GrantLevelGlobal
// GrantLevelDB means the privileges apply to all objects in a given database.
GrantLevelDB
// GrantLevelTable means the privileges apply to all columns in a given table.
GrantLevelTable
)
// GrantLevel is used for store the privilege scope.
type GrantLevel struct {
Level GrantLevelType
DBName string
TableName string
}
// RevokeStmt is the struct for REVOKE statement.
type RevokeStmt struct {
stmtNode
Privs []*PrivElem
ObjectType ObjectTypeType
Level *GrantLevel
Users []*UserSpec
}
// Accept implements Node Accept interface.
func (n *RevokeStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*RevokeStmt)
for i, val := range n.Privs {
node, ok := val.Accept(v)
if !ok {
return n, false
}
n.Privs[i] = node.(*PrivElem)
}
return v.Leave(n)
}
// GrantStmt is the struct for GRANT statement.
type GrantStmt struct {
stmtNode
Privs []*PrivElem
ObjectType ObjectTypeType
Level *GrantLevel
Users []*UserSpec
WithGrant bool
}
// SecureText implements SensitiveStatement interface.
func (n *GrantStmt) SecureText() string {
text := n.text
// Filter "identified by xxx" because it would expose password information.
idx := strings.Index(strings.ToLower(text), "identified")
if idx > 0 {
text = text[:idx]
}
return text
}
// Accept implements Node Accept interface.
func (n *GrantStmt) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*GrantStmt)
for i, val := range n.Privs {
node, ok := val.Accept(v)
if !ok {
return n, false
}
n.Privs[i] = node.(*PrivElem)
}
return v.Leave(n)
}
// Ident is the table identifier composed of schema name and table name.
type Ident struct {
Schema model.CIStr
Name model.CIStr
}
// Full returns an Ident which set schema to the current schema if it is empty.
func (i Ident) Full(ctx context.Context) (full Ident) {
full.Name = i.Name
if i.Schema.O != "" {
full.Schema = i.Schema
} else {
full.Schema = model.NewCIStr(ctx.GetSessionVars().CurrentDB)
}
return
}
// String implements fmt.Stringer interface.
func (i Ident) String() string {
if i.Schema.O == "" {
return i.Name.O
}
return fmt.Sprintf("%s.%s", i.Schema, i.Name)
}
// SelectStmtOpts wrap around select hints and switches
type SelectStmtOpts struct {
Distinct bool
SQLCache bool
CalcFoundRows bool
Priority mysql.PriorityEnum
TableHints []*TableOptimizerHint
}
// TableOptimizerHint is Table level optimizer hint
type TableOptimizerHint struct {
node
// HintName is the name or alias of the table(s) which the hint will affect.
// Table hints has no schema info
// It allows only table name or alias (if table has an alias)
HintName model.CIStr
Tables []model.CIStr
}
// Accept implements Node Accept interface.
func (n *TableOptimizerHint) Accept(v Visitor) (Node, bool) {
newNode, skipChildren := v.Enter(n)
if skipChildren {
return v.Leave(newNode)
}
n = newNode.(*TableOptimizerHint)
return v.Leave(n)
}