mirror of
https://github.com/valitydev/osquery-1.git
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464 lines
15 KiB
C++
464 lines
15 KiB
C++
/**
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* Copyright (c) 2014-present, Facebook, Inc.
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* All rights reserved.
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*
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* This source code is licensed under both the Apache 2.0 license (found in the
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* LICENSE file in the root directory of this source tree) and the GPLv2 (found
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* in the COPYING file in the root directory of this source tree).
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* You may select, at your option, one of the above-listed licenses.
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*/
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#include <osquery/database.h>
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#include <osquery/flags.h>
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#include <osquery/logger.h>
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#include <osquery/tables.h>
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#include "osquery/core/json.h"
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namespace osquery {
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FLAG(bool, disable_caching, false, "Disable scheduled query caching");
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CREATE_LAZY_REGISTRY(TablePlugin, "table");
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size_t TablePlugin::kCacheInterval = 0;
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size_t TablePlugin::kCacheStep = 0;
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const std::map<ColumnType, std::string> kColumnTypeNames = {
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{UNKNOWN_TYPE, "UNKNOWN"},
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{TEXT_TYPE, "TEXT"},
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{INTEGER_TYPE, "INTEGER"},
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{BIGINT_TYPE, "BIGINT"},
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{UNSIGNED_BIGINT_TYPE, "UNSIGNED BIGINT"},
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{DOUBLE_TYPE, "DOUBLE"},
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{BLOB_TYPE, "BLOB"},
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};
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Status TablePlugin::addExternal(const std::string& name,
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const PluginResponse& response) {
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// Attach the table.
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if (response.size() == 0) {
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// Invalid table route info.
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// Tables must broadcast their column information, this is used while the
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// core is deciding if the extension's route is valid.
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return Status(1, "Invalid route info");
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}
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// Use the SQL registry to attach the name/definition.
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return Registry::call("sql", "sql", {{"action", "attach"}, {"table", name}});
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}
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void TablePlugin::removeExternal(const std::string& name) {
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// Detach the table name.
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Registry::call("sql", "sql", {{"action", "detach"}, {"table", name}});
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}
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void TablePlugin::setRequestFromContext(const QueryContext& context,
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PluginRequest& request) {
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auto doc = JSON::newObject();
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auto constraints = doc.getArray();
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// The QueryContext contains a constraint map from column to type information
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// and the list of operand/expression constraints applied to that column from
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// the query given.
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for (const auto& constraint : context.constraints) {
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auto child = doc.getObject();
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doc.addRef("name", constraint.first, child);
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constraint.second.serialize(doc, child);
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doc.push(child, constraints);
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}
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doc.add("constraints", constraints);
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doc.toString(request["context"]);
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}
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void TablePlugin::setContextFromRequest(const PluginRequest& request,
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QueryContext& context) {
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auto doc = JSON::newObject();
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doc.fromString(request.at("context"));
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if (!doc.doc().HasMember("constraints") ||
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!doc.doc()["constraints"].IsArray()) {
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return;
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}
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// Set the context limit and deserialize each column constraint list.
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for (const auto& constraint : doc.doc()["constraints"].GetArray()) {
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auto column_name = constraint["name"].GetString();
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context.constraints[column_name].deserialize(constraint);
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}
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}
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Status TablePlugin::call(const PluginRequest& request,
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PluginResponse& response) {
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response.clear();
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// TablePlugin API calling requires an action.
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if (request.count("action") == 0) {
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return Status(1, "Table plugins must include a request action");
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}
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if (request.at("action") == "generate") {
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// The "generate" action runs the table implementation using a PluginRequest
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// with optional serialized QueryContext and returns the QueryData results
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// as the PluginRequest data.
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// Create a fake table implementation for caching.
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QueryContext context;
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if (request.count("context") > 0) {
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setContextFromRequest(request, context);
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}
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response = generate(context);
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} else if (request.at("action") == "columns") {
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// The "columns" action returns a PluginRequest filled with column
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// information such as name and type.
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response = routeInfo();
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} else {
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return Status(1, "Unknown table plugin action: " + request.at("action"));
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}
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return Status(0, "OK");
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}
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std::string TablePlugin::columnDefinition() const {
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return osquery::columnDefinition(columns());
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}
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PluginResponse TablePlugin::routeInfo() const {
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// Route info consists of the serialized column information.
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PluginResponse response;
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for (const auto& column : columns()) {
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response.push_back(
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{{"id", "column"},
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{"name", std::get<0>(column)},
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{"type", columnTypeName(std::get<1>(column))},
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{"op", INTEGER(static_cast<size_t>(std::get<2>(column)))}});
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}
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// Each table name alias is provided such that the core may add the views.
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// These views need to be removed when the backing table is detached.
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for (const auto& alias : aliases()) {
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response.push_back({{"id", "alias"}, {"alias", alias}});
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}
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// Each column alias must be provided, additionally to the column's option.
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// This sets up the value-replacement move within the SQL implementation.
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for (const auto& target : columnAliases()) {
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for (const auto& alias : target.second) {
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response.push_back(
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{{"id", "columnAlias"}, {"name", alias}, {"target", target.first}});
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}
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}
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response.push_back(
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{{"id", "attributes"},
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{"attributes", INTEGER(static_cast<size_t>(attributes()))}});
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return response;
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}
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static bool cacheAllowed(const TableColumns& cols, const QueryContext& ctx) {
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if (!ctx.useCache()) {
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// The query execution did not request use of the warm cache.
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return false;
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}
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auto uncachable = ColumnOptions::INDEX | ColumnOptions::REQUIRED |
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ColumnOptions::ADDITIONAL | ColumnOptions::OPTIMIZED;
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for (const auto& column : cols) {
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auto opts = std::get<2>(column) & uncachable;
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if (opts && ctx.constraints.at(std::get<0>(column)).exists()) {
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return false;
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}
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}
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return true;
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}
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bool TablePlugin::isCached(size_t step, const QueryContext& ctx) const {
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if (FLAGS_disable_caching) {
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return false;
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}
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// Perform the step comparison first, because it's easy.
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return (step < last_cached_ + last_interval_ && cacheAllowed(columns(), ctx));
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}
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QueryData TablePlugin::getCache() const {
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VLOG(1) << "Retrieving results from cache for table: " << getName();
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// Lookup results from database and deserialize.
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std::string content;
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getDatabaseValue(kQueries, "cache." + getName(), content);
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QueryData results;
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deserializeQueryDataJSON(content, results);
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return results;
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}
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void TablePlugin::setCache(size_t step,
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size_t interval,
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const QueryContext& ctx,
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const QueryData& results) {
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if (FLAGS_disable_caching || !cacheAllowed(columns(), ctx)) {
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return;
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}
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// Serialize QueryData and save to database.
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std::string content;
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if (serializeQueryDataJSON(results, content)) {
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last_cached_ = step;
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last_interval_ = interval;
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setDatabaseValue(kQueries, "cache." + getName(), content);
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}
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}
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std::string columnDefinition(const TableColumns& columns) {
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std::map<std::string, bool> epilog;
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bool indexed = false;
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std::vector<std::string> pkeys;
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std::string statement = "(";
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for (size_t i = 0; i < columns.size(); ++i) {
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const auto& column = columns.at(i);
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statement +=
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'`' + std::get<0>(column) + "` " + columnTypeName(std::get<1>(column));
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auto& options = std::get<2>(column);
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if (options & (ColumnOptions::INDEX | ColumnOptions::ADDITIONAL)) {
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if (options & ColumnOptions::INDEX) {
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indexed = true;
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}
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pkeys.push_back(std::get<0>(column));
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epilog["WITHOUT ROWID"] = true;
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}
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if (options & ColumnOptions::HIDDEN) {
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statement += " HIDDEN";
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}
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if (i < columns.size() - 1) {
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statement += ", ";
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}
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}
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// If there are only 'additional' columns (rare), do not attempt a pkey.
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if (!indexed) {
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epilog["WITHOUT ROWID"] = false;
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pkeys.clear();
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}
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// Append the primary keys, if any were defined.
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if (!pkeys.empty()) {
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statement += ", PRIMARY KEY (";
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for (auto pkey = pkeys.begin(); pkey != pkeys.end();) {
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statement += '`' + std::move(*pkey) + '`';
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if (++pkey != pkeys.end()) {
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statement += ", ";
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}
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}
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statement += ')';
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}
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statement += ')';
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for (auto& ei : epilog) {
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if (ei.second) {
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statement += ' ' + std::move(ei.first);
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}
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}
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return statement;
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}
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std::string columnDefinition(const PluginResponse& response, bool aliases) {
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TableColumns columns;
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// Maintain a map of column to the type, for alias type lookups.
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std::map<std::string, ColumnType> column_types;
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for (const auto& column : response) {
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if (column.count("id") == 0) {
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continue;
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}
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if (column.at("id") == "column" && column.count("name") &&
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column.count("type")) {
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auto options =
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(column.count("op"))
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? (ColumnOptions)AS_LITERAL(INTEGER_LITERAL, column.at("op"))
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: ColumnOptions::DEFAULT;
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auto column_type = columnTypeName(column.at("type"));
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columns.push_back(make_tuple(column.at("name"), column_type, options));
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if (aliases) {
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column_types[column.at("name")] = column_type;
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}
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} else if (column.at("id") == "columnAlias" && column.count("name") &&
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column.count("target") && aliases) {
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const auto& target = column.at("target");
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if (column_types.count(target) == 0) {
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// No type was defined for the alias target.
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continue;
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}
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columns.push_back(make_tuple(
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column.at("name"), column_types.at(target), ColumnOptions::HIDDEN));
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}
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}
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return columnDefinition(columns);
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}
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ColumnType columnTypeName(const std::string& type) {
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for (const auto& col : kColumnTypeNames) {
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if (col.second == type) {
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return col.first;
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}
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}
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return UNKNOWN_TYPE;
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}
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bool ConstraintList::exists(const ConstraintOperatorFlag ops) const {
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if (ops == ANY_OP) {
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return (constraints_.size() > 0);
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} else {
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for (const struct Constraint& c : constraints_) {
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if (c.op & ops) {
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return true;
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}
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}
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return false;
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}
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}
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bool ConstraintList::matches(const std::string& expr) const {
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// Support each SQL affinity type casting.
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try {
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if (affinity == TEXT_TYPE) {
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return literal_matches<TEXT_LITERAL>(expr);
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} else if (affinity == INTEGER_TYPE) {
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INTEGER_LITERAL lexpr = AS_LITERAL(INTEGER_LITERAL, expr);
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return literal_matches<INTEGER_LITERAL>(lexpr);
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} else if (affinity == BIGINT_TYPE) {
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BIGINT_LITERAL lexpr = AS_LITERAL(BIGINT_LITERAL, expr);
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return literal_matches<BIGINT_LITERAL>(lexpr);
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} else if (affinity == UNSIGNED_BIGINT_TYPE) {
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UNSIGNED_BIGINT_LITERAL lexpr = AS_LITERAL(UNSIGNED_BIGINT_LITERAL, expr);
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return literal_matches<UNSIGNED_BIGINT_LITERAL>(lexpr);
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}
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} catch (const boost::bad_lexical_cast& /* e */) {
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// Unsupported affinity type or unable to cast content type.
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}
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return false;
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}
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template <typename T>
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bool ConstraintList::literal_matches(const T& base_expr) const {
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bool aggregate = true;
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for (size_t i = 0; i < constraints_.size(); ++i) {
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T constraint_expr = AS_LITERAL(T, constraints_[i].expr);
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if (constraints_[i].op == EQUALS) {
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aggregate = aggregate && (base_expr == constraint_expr);
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} else if (constraints_[i].op == GREATER_THAN) {
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aggregate = aggregate && (base_expr > constraint_expr);
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} else if (constraints_[i].op == LESS_THAN) {
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aggregate = aggregate && (base_expr < constraint_expr);
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} else if (constraints_[i].op == GREATER_THAN_OR_EQUALS) {
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aggregate = aggregate && (base_expr >= constraint_expr);
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} else if (constraints_[i].op == LESS_THAN_OR_EQUALS) {
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aggregate = aggregate && (base_expr <= constraint_expr);
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} else {
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// Unsupported constraint. Should match every thing.
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return true;
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}
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if (!aggregate) {
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// Speed up comparison.
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return false;
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}
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}
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return true;
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}
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std::set<std::string> ConstraintList::getAll(ConstraintOperator op) const {
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std::set<std::string> set;
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for (size_t i = 0; i < constraints_.size(); ++i) {
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if (constraints_[i].op == op) {
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// TODO: this does not apply a distinct.
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set.insert(constraints_[i].expr);
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}
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}
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return set;
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}
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void ConstraintList::serialize(JSON& doc, rapidjson::Value& obj) const {
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auto expressions = doc.getArray();
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for (const auto& constraint : constraints_) {
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auto child = doc.getObject();
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doc.add("op", static_cast<size_t>(constraint.op), child);
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doc.addRef("expr", constraint.expr, child);
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doc.push(child, expressions);
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}
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doc.add("list", expressions, obj);
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doc.addCopy("affinity", columnTypeName(affinity), obj);
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}
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void ConstraintList::deserialize(const rapidjson::Value& obj) {
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// Iterate through the list of operand/expressions, then set the constraint
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// type affinity.
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if (!obj.IsObject() || !obj.HasMember("list") || !obj["list"].IsArray()) {
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return;
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}
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for (const auto& list : obj["list"].GetArray()) {
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auto op = static_cast<unsigned char>(JSON::valueToSize(list["op"]));
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Constraint constraint(op);
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constraint.expr = list["expr"].GetString();
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constraints_.push_back(constraint);
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}
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auto affinity_name = (obj.HasMember("affinity") && obj["affinity"].IsString())
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? obj["affinity"].GetString()
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: "UNKNOWN";
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affinity = columnTypeName(affinity_name);
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}
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void QueryContext::useCache(bool use_cache) {
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use_cache_ = use_cache;
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}
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bool QueryContext::useCache() const {
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return use_cache_;
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}
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void QueryContext::setCache(const std::string& index, Row _cache) {
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table_->cache[index] = std::move(_cache);
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}
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void QueryContext::setCache(const std::string& index,
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const std::string& key,
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std::string _item) {
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table_->cache[index][key] = std::move(_item);
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}
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bool QueryContext::isCached(const std::string& index) const {
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return (table_->cache.count(index) != 0);
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}
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const Row& QueryContext::getCache(const std::string& index) {
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return table_->cache[index];
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}
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const std::string& QueryContext::getCache(const std::string& index,
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const std::string& key) {
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return table_->cache[index][key];
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}
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bool QueryContext::hasConstraint(const std::string& column,
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ConstraintOperator op) const {
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if (constraints.count(column) == 0) {
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return false;
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}
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return constraints.at(column).exists(op);
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}
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Status QueryContext::expandConstraints(
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const std::string& column,
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ConstraintOperator op,
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std::set<std::string>& output,
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std::function<Status(const std::string& constraint,
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std::set<std::string>& output)> predicate) {
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for (const auto& constraint : constraints[column].getAll(op)) {
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auto status = predicate(constraint, output);
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if (!status) {
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return status;
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}
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}
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return Status(0);
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}
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}
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