AgentServices.xml
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<?xml version="1.0" encoding="UTF-8"?>
<services xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
xsi:noNamespaceSchemaLocation="http://moqui.org/xsd/service-definition-3.xsd">
<!-- ========================================================= -->
<!-- Agent Tool Bridge (The Secure Gateway) -->
<!-- ========================================================= -->
<service verb="call" noun="McpToolWithDelegation" authenticate="false">
<description>
Securely executes an MCP tool by impersonating target user (runAsUserId).
The calling agent must have permission to use this service, but
tool execution itself is subject to target user's permissions.
</description>
<in-parameters>
<parameter name="toolName" required="true"/>
<parameter name="arguments" type="Map"/>
<parameter name="runAsUserId" required="true">
<description>The UserAccount ID to impersonate.</description>
</parameter>
</in-parameters>
<out-parameters>
<parameter name="result" type="Map"/>
</out-parameters>
<actions>
<script><![CDATA[
import org.moqui.mcp.adapter.McpToolAdapter
import org.moqui.context.ArtifactAuthorizationException
// 1. Capture current agent identity
String agentUsername = ec.user.username
try {
// 2. Switch identity to target user
boolean loggedIn = ec.user.internalLoginUser(runAsUserId, false)
if (!loggedIn) throw new Exception("Could not switch to user ${runAsUserId}")
ec.logger.info("Agent ${agentUsername} executing ${toolName} AS ${ec.user.username} (${runAsUserId})")
// 3. Execute Tool
McpToolAdapter adapter = new McpToolAdapter()
result = adapter.callTool(ec, toolName, arguments)
} finally {
// 4. Restore Agent Identity
if (agentUsername) {
ec.user.internalLoginUser(agentUsername, false)
}
}
]]></script>
</actions>
</service>
<!-- ========================================================= -->
<!-- Agent Client (OpenAI-Compatible API Wrapper) -->
<!-- ========================================================= -->
<service verb="call" noun="OpenAiChatCompletion" authenticate="false">
<description>Generic wrapper for OpenAI-compatible chat completions (VLLM, OpenAI, etc.)</description>
<in-parameters>
<parameter name="endpointUrl" required="true"/>
<parameter name="apiKey"/>
<parameter name="model" required="true"/>
<parameter name="messages" type="List" required="true"/>
<parameter name="tools" type="List"/>
<parameter name="temperature" type="BigDecimal" default="0.7"/>
<parameter name="maxTokens" type="Integer"/>
</in-parameters>
<out-parameters>
<parameter name="response" type="Map"/>
<parameter name="httpStatus" type="Integer"/>
<parameter name="error" type="String"/>
</out-parameters>
<actions>
<script><![CDATA[
import groovy.json.JsonBuilder
import groovy.json.JsonSlurper
def payloadMap = [
model: model,
messages: messages,
temperature: temperature,
stream: false
]
if (maxTokens) payloadMap.max_tokens = maxTokens
if (tools) payloadMap.tools = tools
String jsonPayload = new JsonBuilder(payloadMap).toString()
URL url = new URL(endpointUrl + "/chat/completions")
HttpURLConnection conn = (HttpURLConnection) url.openConnection()
conn.setRequestMethod("POST")
conn.setRequestProperty("Content-Type", "application/json")
if (apiKey) conn.setRequestProperty("Authorization", "Bearer " + apiKey)
conn.setDoOutput(true)
conn.setConnectTimeout(10000)
conn.setReadTimeout(60000)
try {
conn.outputStream.write(jsonPayload.getBytes("UTF-8"))
httpStatus = conn.responseCode
InputStream is = (httpStatus >= 200 && httpStatus < 300) ? conn.inputStream : conn.errorStream
String responseText = is?.text
if (responseText) response = new JsonSlurper().parseText(responseText)
if (httpStatus >= 300) error = "HTTP ${httpStatus}: ${responseText}"
} catch (Exception e) {
error = e.message
httpStatus = 500
ec.logger.error("OpenAI Client Exception", e)
}
]]></script>
</actions>
</service>
<service verb="test" noun="Log" authenticate="false">
<in-parameters><parameter name="message"/></in-parameters>
<actions><script>ec.logger.info("TEST LOG SERVICE: ${message}")</script></actions>
</service>
<!-- ========================================================= -->
<!-- LLM Request Service (General Purpose Async) -->
<!-- ========================================================= -->
<service verb="process" noun="LLMRequest" authenticate="false">
<description>
Creates a general-purpose LLM request as SystemMessage.
Any trigger (SECA, UI, Order, etc.) can call this service.
Processing happens asynchronously via AgentQueuePoller.
When LLM responds, callback service is invoked with result.
Agent can use MCP tools to access any Moqui screen.
</description>
<in-parameters>
<parameter name="prompt" required="true" type="String">
<description>Prompt or question to send to LLM.</description>
</parameter>
<parameter name="modelName" type="String">
<description>Override default model name from ProductStoreAiConfig.</description>
</parameter>
<parameter name="tools" type="List">
<description>List of tools/definitions to provide to LLM (default: MCP tools).</description>
</parameter>
<parameter name="productStoreId" type="id" default-value="POPC_DEFAULT"/>
<parameter name="aiConfigId" type="id" default-value="DEFAULT"/>
<parameter name="requestedByPartyId" type="id" required="true">
<description>Party ID of user making the request (for RBAC context).</description>
</parameter>
<parameter name="effectiveUserId" type="id">
<description>UserAccount ID to impersonate during execution.</description>
</parameter>
<parameter name="callbackServiceName" type="String" required="true">
<description>Service to call when LLM response is ready.</description>
</parameter>
<parameter name="callbackParameters" type="Map">
<description>Parameters to pass to callback service (merged with LLM response).</description>
</parameter>
<parameter name="sourceTypeEnumId" type="id">
<description>Type of triggering entity (e.g., Order, CommunicationEvent).</description>
</parameter>
<parameter name="sourceId" type="id">
<description>ID of triggering entity (orderId, communicationEventId, etc.).</description>
</parameter>
</in-parameters>
<out-parameters>
<parameter name="systemMessageId" type="id">
<description>ID of created SystemMessage (SmtyLlmRequest).</description>
</parameter>
</out-parameters>
<actions>
<script><![CDATA[
ec.logger.info("PROCESS LLM REQUEST: Creating LLM request SystemMessage")
ec.logger.info("PROCESS LLM REQUEST: Prompt: ${prompt?.take(100)}...")
ec.logger.info("PROCESS LLM REQUEST: Callback: ${callbackServiceName}")
// Validate callback service exists
def callbackExists = ec.service.isServiceExists(callbackServiceName)
if (!callbackExists) {
throw new Exception("Callback service '${callbackServiceName}' does not exist")
}
// Create SystemMessage for LLM Request
def result = ec.service.sync().name("create#moqui.service.message.SystemMessage").parameters([
systemMessageTypeId: "SmtyLlmRequest",
statusId: "SmsgReceived",
messageText: prompt,
requestedByPartyId: requestedByPartyId,
effectiveUserId: effectiveUserId ?: ec.user.userId,
productStoreId: productStoreId,
aiConfigId: aiConfigId,
callbackServiceName: callbackServiceName,
callbackParameters: callbackParameters ? new groovy.json.JsonBuilder(callbackParameters).toString() : null,
sourceTypeEnumId: sourceTypeEnumId,
sourceId: sourceId
]).call()
ec.logger.info("PROCESS LLM REQUEST: Created SystemMessage ${result.systemMessageId}")
return result
]]></script>
</actions>
</service>
<!-- ========================================================= -->
<!-- Agent Runner (Single Turn State Machine) -->
<!-- ========================================================= -->
<service verb="run" noun="AgentTaskTurn" authenticate="false">
<description>
Processes ONE turn of an Agent Task.
Supports two patterns:
1. SmtyAgentTask: CommEvent-based conversation with history
2. SmtyLlmRequest: Generic async request with callback
Agent ALWAYS has MCP tools available to browse screens and perform actions.
</description>
<in-parameters>
<parameter name="systemMessageId" required="true"/>
</in-parameters>
<actions>
<script><![CDATA[
import groovy.json.JsonOutput
import groovy.json.JsonSlurper
import org.moqui.mcp.adapter.McpToolAdapter
ec.logger.info("AGENT TASK TURN: Starting turn for SystemMessage ${systemMessageId}")
// 1. Load SystemMessage Task
def taskMsg = ec.entity.find("moqui.service.message.SystemMessage")
.condition("systemMessageId", systemMessageId).one()
if (!taskMsg) {
ec.logger.warn("AGENT TASK TURN: SystemMessage ${systemMessageId} not found.")
return
}
if (taskMsg.statusId != "SmsgReceived" && taskMsg.statusId != "SmsgError") {
ec.logger.warn("AGENT TASK TURN: SystemMessage ${systemMessageId} has status ${taskMsg.statusId}, expected SmsgReceived or SmsgError.")
return
}
// Get AI Config
def aiConfig = ec.entity.find("moqui.mcp.agent.ProductStoreAiConfig")
.condition("productStoreId", taskMsg.productStoreId)
.condition("aiConfigId", taskMsg.aiConfigId).one()
if (!aiConfig?.endpointUrl || !aiConfig?.modelName) {
ec.logger.error("AGENT TASK TURN: Missing AI config for task ${systemMessageId}")
taskMsg.statusId = "SmsgError"; taskMsg.update()
return
}
ec.logger.info("AGENT TASK TURN: Using AI Config ${aiConfig.aiConfigId} for ProductStore ${taskMsg.productStoreId}")
ec.logger.info("AGENT TASK TURN: Message Type: ${taskMsg.systemMessageTypeId}")
// Temporary fix: Correct model name
if (aiConfig.modelName == "bf-ai") {
ec.logger.warn("AGENT TASK TURN: Fixing incorrect model name 'bf-ai' to 'devstral'")
aiConfig.modelName = "devstral"
aiConfig.update()
}
// 2. Build Messages for LLM
def messages = []
messages.add([role: "system", content: "You are a helpful Moqui ERP assistant. You act as user ${taskMsg.effectiveUserId}."])
if (taskMsg.systemMessageTypeId == "SmtyAgentTask") {
// OLD PATTERN: Load conversation history from CommEvents
if (taskMsg.rootCommEventId) {
ec.logger.info("AGENT TASK TURN: Loading thread history for RootCommEvent ${taskMsg.rootCommEventId}")
def threadEvents = ec.entity.find("mantle.party.communication.CommunicationEvent")
.condition("rootCommEventId", taskMsg.rootCommEventId)
.orderBy("entryDate").list()
ec.logger.info("AGENT TASK TURN: Found ${threadEvents.size()} history events.")
threadEvents.each { ev ->
String role = (ev.fromPartyId == "AGENT_CLAUDE_PARTY") ? "assistant" : "user"
if (ev.contentType == "application/json") {
def json = new JsonSlurper().parseText(ev.body)
if (json.tool_call_id) {
messages.add([role: "tool", tool_call_id: json.tool_call_id, content: json.content])
} else if (json.tool_calls) {
messages.add([role: "assistant", tool_calls: json.tool_calls])
}
} else {
messages.add([role: role, content: ev.body])
}
}
} else {
ec.logger.info("AGENT TASK TURN: No rootCommEventId, using messageText from task.")
messages.add([role: "user", content: taskMsg.messageText])
}
} else {
// NEW PATTERN: Just use the prompt
ec.logger.info("AGENT TASK TURN: Using LLM request message: ${taskMsg.messageText?.take(100)}...")
messages.add([role: "user", content: taskMsg.messageText])
}
// 3. ALWAYS Prepare MCP Tools (available for BOTH patterns)
ec.logger.info("AGENT TASK TURN: Preparing MCP tools...")
def mcpToolAdapter = new org.moqui.mcp.adapter.McpToolAdapter()
def moquiTools = mcpToolAdapter.listTools()
def openAiTools = moquiTools.collect { tool ->
[type: "function", function: [
name: tool.name, description: tool.description,
parameters: [type: "object", properties: [
path: [type: "string"], action: [type: "string"], parameters: [type: "object"]
]]
]]
}
ec.logger.info("AGENT TASK TURN: Available tools: ${moquiTools.size()}")
// 4. Call LLM
ec.logger.info("AGENT TASK TURN: Calling VLLM at ${aiConfig.endpointUrl} with model ${aiConfig.modelName}...")
def llmResult = ec.service.sync().name("AgentServices.call#OpenAiChatCompletion").parameters([
endpointUrl: aiConfig.endpointUrl, apiKey: aiConfig.apiKey,
model: aiConfig.modelName, messages: messages, tools: openAiTools,
temperature: aiConfig.temperature
]).call()
if (llmResult.error) {
ec.logger.error("AGENT TASK TURN: LLM Error: ${llmResult.error}")
taskMsg.statusId = "SmsgError"; taskMsg.update()
return
}
def responseMsg = llmResult.response.choices[0].message
ec.logger.info("AGENT TASK TURN: LLM Response received. Tool calls: ${responseMsg.tool_calls?.size() ?: 0}")
// 5. Handle Response based on pattern
if (taskMsg.systemMessageTypeId == "SmtyAgentTask") {
// OLD PATTERN: Tool calls or CommEvent response
if (responseMsg.tool_calls) {
// SAVE Assistant "Thought" (Tool Calls)
def assistantComm = ec.service.sync().name("create#mantle.party.communication.CommunicationEvent").parameters([
fromPartyId: "AGENT_CLAUDE_PARTY", toPartyId: taskMsg.requestedByPartyId,
rootCommEventId: taskMsg.rootCommEventId, parentCommEventId: taskMsg.rootCommEventId,
communicationEventTypeId: "Message", contentType: "application/json",
body: JsonOutput.toJson([tool_calls: responseMsg.tool_calls]),
entryDate: ec.user.nowTimestamp, statusId: "CeReceived"
]).call()
// EXECUTE Tools and Save Results
responseMsg.tool_calls.each { toolCall ->
def result = [:]
try {
ec.logger.info("AGENT TASK TURN: Executing tool ${toolCall.function.name} with args ${toolCall.function.arguments}")
def runResult = ec.service.sync().name("AgentServices.call#McpToolWithDelegation").parameters([
toolName: toolCall.function.name, arguments: new JsonSlurper().parseText(toolCall.function.arguments),
runAsUserId: taskMsg.effectiveUserId
]).call()
result = runResult.result
} catch (Exception e) {
ec.logger.error("AGENT TASK TURN: Tool execution error", e)
result = [error: e.message]
}
// Save Tool Result as CommEvent
ec.service.sync().name("create#mantle.party.communication.CommunicationEvent").parameters([
fromPartyId: taskMsg.requestedByPartyId, toPartyId: "AGENT_CLAUDE_PARTY",
rootCommEventId: taskMsg.rootCommEventId, parentCommEventId: assistantComm.communicationEventId,
communicationEventTypeId: "Message", contentType: "application/json",
body: JsonOutput.toJson([tool_call_id: toolCall.id, content: JsonOutput.toJson(result)]),
entryDate: ec.user.nowTimestamp, statusId: "CeReceived"
]).call()
}
// RE-QUEUE: Create next turn message
ec.logger.info("AGENT TASK TURN: Re-queuing for next turn...")
ec.service.sync().name("create#moqui.service.message.SystemMessage").parameters([
systemMessageTypeId: "SmtyAgentTask", statusId: "SmsgReceived",
productStoreId: taskMsg.productStoreId, aiConfigId: taskMsg.aiConfigId,
requestedByPartyId: taskMsg.requestedByPartyId, effectiveUserId: taskMsg.effectiveUserId,
rootCommEventId: taskMsg.rootCommEventId, isOutgoing: "N"
]).call()
taskMsg.statusId = "SmsgConsumed"; taskMsg.update()
} else {
// FINAL Response
ec.logger.info("AGENT TASK TURN: Final response from LLM: ${responseMsg.content}")
ec.service.sync().name("create#mantle.party.communication.CommunicationEvent").parameters([
fromPartyId: "AGENT_CLAUDE_PARTY", toPartyId: taskMsg.requestedByPartyId,
rootCommEventId: taskMsg.rootCommEventId, parentCommEventId: taskMsg.rootCommEventId,
communicationEventTypeId: "Message", contentType: "text/plain",
body: responseMsg.content, entryDate: ec.user.nowTimestamp, statusId: "CeReceived"
]).call()
taskMsg.statusId = "SmsgConfirmed"; taskMsg.update()
}
} else {
// NEW PATTERN: Create LlmResponse SystemMessage and call callback
ec.logger.info("AGENT TASK TURN: Creating LLM Response SystemMessage...")
def responseMsgContent = responseMsg.content ?: ""
// Save response as SystemMessage
def responseSystemMsg = ec.service.sync().name("create#moqui.service.message.SystemMessage").parameters([
systemMessageTypeId: "SmtyLlmResponse",
statusId: "SmsgConfirmed",
messageText: responseMsgContent,
parentSystemMessageId: taskMsg.systemMessageId,
llmResponse: responseMsgContent,
productStoreId: taskMsg.productStoreId,
aiConfigId: taskMsg.aiConfigId
]).call()
ec.logger.info("AGENT TASK TURN: Created response SystemMessage ${responseSystemMsg.systemMessageId}")
// Mark request as consumed
taskMsg.statusId = "SmsgConsumed"
taskMsg.update()
// Call callback service if provided
if (taskMsg.callbackServiceName) {
ec.logger.info("AGENT TASK TURN: Calling callback service: ${taskMsg.callbackServiceName}")
def callbackParams = taskMsg.callbackParameters ?
new JsonSlurper().parseText(taskMsg.callbackParameters) : [:]
// Add response to callback parameters
callbackParams.llmResponse = responseMsgContent
callbackParams.llmResponseSystemMessageId = responseSystemMsg.systemMessageId
callbackParams.llmRequestSystemMessageId = taskMsg.systemMessageId
ec.service.sync().name(taskMsg.callbackServiceName).parameters(callbackParams).call()
ec.logger.info("AGENT TASK TURN: Callback service completed")
}
}
]]></script>
</actions>
</service>
<!-- ========================================================= -->
<!-- Callback Services for Different Trigger Types -->
<!-- ========================================================= -->
<service verb="callback" noun="CommunicationEvent" authenticate="false">
<description>
Callback for CommunicationEvent-triggered LLM requests.
Saves LLM response as a new CommunicationEvent in conversation thread.
</description>
<in-parameters>
<parameter name="llmResponse" type="String"/>
<parameter name="llmResponseSystemMessageId" type="id"/>
<parameter name="llmRequestSystemMessageId" type="id"/>
<parameter name="rootCommEventId" type="id"/>
<parameter name="communicationEventId" type="id"/>
</in-parameters>
<actions>
<script><![CDATA[
ec.logger.info("CALLBACK CommEvent: Saving LLM response to CommunicationEvent")
ec.logger.info("CALLBACK CommEvent: Response: ${llmResponse?.take(100)}...")
// Get original CommunicationEvent to get context
def originalCommEvent = ec.entity.find("mantle.party.communication.CommunicationEvent")
.condition("communicationEventId", communicationEventId).one()
if (!originalCommEvent) {
ec.logger.error("CALLBACK CommEvent: Original CommunicationEvent ${communicationEventId} not found")
return
}
// Save LLM response as new CommunicationEvent
ec.service.sync().name("create#mantle.party.communication.CommunicationEvent").parameters([
fromPartyId: "AGENT_CLAUDE_PARTY",
toPartyId: originalCommEvent.fromPartyId,
rootCommEventId: rootCommEventId ?: communicationEventId,
parentCommEventId: rootCommEventId ?: communicationEventId,
communicationEventTypeId: "Message",
contentType: "text/plain",
body: llmResponse,
entryDate: ec.user.nowTimestamp,
statusId: "CeReceived"
]).call()
ec.logger.info("CALLBACK CommEvent: Created CommunicationEvent with LLM response")
]]></script>
</actions>
</service>
<!-- ========================================================= -->
<!-- Task Scheduler (Polls Queue) -->
<!-- ========================================================= -->
<service verb="poll" noun="AgentQueue" authenticate="false">
<description>Scheduled service to pick up pending LLM requests and process them.</description>
<actions>
<script><![CDATA[
ec.logger.info("POLL AGENT QUEUE: Checking for LLM request messages...")
// Find pending LLM requests (both patterns)
def pendingTasks = ec.entity.find("moqui.service.message.SystemMessage")
.condition("statusId", "in", ["SmsgReceived", "SmsgError"])
.condition("systemMessageTypeId", "in", ["SmtyAgentTask", "SmtyLlmRequest"])
.limit(5)
.disableAuthz()
.list()
ec.logger.info("POLL AGENT QUEUE: Found ${pendingTasks.size()} tasks to process.")
pendingTasks.each { task ->
ec.logger.info("POLL AGENT QUEUE: Processing task ${task.systemMessageId}")
ec.service.sync().name("AgentServices.run#AgentTaskTurn")
.parameters([systemMessageId: task.systemMessageId])
.call()
}
]]></script>
</actions>
</service>
</services>