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| 730115b418 |
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---
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name: code-review-agent
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version: 1.0.0
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description: Automate code review process using a multi-step workflow with human-in-the-loop
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approval.
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inputs:
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- Repository diff or code changeset (string)
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- User ID (string)
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steps:
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- 'Step 1: Build the code review graph using `build_graph()` from `agentkit.workflow.code_review.graph`'
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- 'Step 2: Invoke the graph with initial parameters including the repository diff
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and user ID, and set thread_id as a configurable parameter'
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- 'Step 3: The graph processes the input through various steps until completion or
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human approval is needed'
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outputs:
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- Review result (dictionary containing messages, issues, etc.)
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tags: []
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metadata:
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source_repo: https://github.com/itszhaoziyan-n/AgentKit.git
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extracted_at: ''
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confidence: 0.95
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---
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# code-review-agent
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Automate code review process using a multi-step workflow with human-in-the-loop approval.
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## Setup
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**Dependencies:**
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```text
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pip install langgraph>=0.3 langchain-core>=0.3 langchain-anthropic>=0.3 langfuse>=2.0 mcp[server]>=1.24,<2.0 langchain-mcp-adapters>=0.1 tenacity>=9.0
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```
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**Setup steps:**
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1. cp .env.example .env
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1. docker compose up -d
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1. pip install -e '.[dev]'
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## Key Files
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- `agentkit/workflow/code_review/graph.py - Defines the code review graph and its invocation method.`
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## Steps
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1. Step 1: Build the code review graph using `build_graph()` from `agentkit.workflow.code_review.graph`
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2. Step 2: Invoke the graph with initial parameters including the repository diff and user ID, and set thread_id as a configurable parameter
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3. Step 3: The graph processes the input through various steps until completion or human approval is needed
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## Implementation Details
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```python
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graph = build_graph()
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thread_id = str(uuid.uuid4())
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result = graph.invoke(...)
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```
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## Inputs
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- Repository diff or code changeset (string)
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- User ID (string)
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## Outputs
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- Review result (dictionary containing messages, issues, etc.)
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## Failure Modes
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- Specific failure scenario with mitigation: If the graph invocation fails due to an unexpected state, it will halt and require manual intervention.
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## Source
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Extracted from: [https://github.com/itszhaoziyan-n/AgentKit.git](https://github.com/itszhaoziyan-n/AgentKit.git)
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Confidence: 0.95
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# Commands: code-review-agent
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## Available Commands
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- `/skill code-review-agent` — Load this skill
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- `/run code-review-agent` — Execute workflow
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# Examples: code-review-agent
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## Usage Example
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```python
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# How to use this skill
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# Inputs: Repository diff or code changeset (string), User ID (string)
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# Process: Step 1: Build the code review graph using `build_graph()` from `agentkit.workflow.code_review.graph` → Step 2: Invoke the graph with initial parameters including the repository diff and user ID, and set thread_id as a configurable parameter → Step 3: The graph processes the input through various steps until completion or human approval is needed
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# Outputs: Review result (dictionary containing messages, issues, etc.)
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```
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{
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"name": "code-review-agent",
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"version": "1.0.0",
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"goal": "Automate code review process using a multi-step workflow with human-in-the-loop approval.",
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"inputs": [
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"Repository diff or code changeset (string)",
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"User ID (string)"
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],
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"steps": [
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"Step 1: Build the code review graph using `build_graph()` from `agentkit.workflow.code_review.graph`",
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"Step 2: Invoke the graph with initial parameters including the repository diff and user ID, and set thread_id as a configurable parameter",
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"Step 3: The graph processes the input through various steps until completion or human approval is needed"
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],
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"outputs": [
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"Review result (dictionary containing messages, issues, etc.)"
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],
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"failure_modes": [
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"Specific failure scenario with mitigation: If the graph invocation fails due to an unexpected state, it will halt and require manual intervention."
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],
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"confidence": 0.95,
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"explanation": "This workflow is reusable for any code review process that requires a multi-step analysis with human-in-the-loop approval.",
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"source_repo": "https://github.com/itszhaoziyan-n/AgentKit.git",
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"score": 1.0
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}
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# Tests: code-review-agent
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## Test Checklist
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- [ ] Workflow has at least 3 steps
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- [ ] All inputs are defined
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- [ ] All outputs are defined
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- [ ] Failure modes are documented
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- [ ] Skill can be loaded without errors
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---
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---
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name: unifai-workflow-execution
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name: unifai-workflow-execution
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version: 1.0.0
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version: 1.0.0
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description: Execute a multi-agent AI workflow defined in YAML or through the UI's
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description: Execute a multi-agent workflow on the UnifAI platform using a specified
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drag-and-drop editor.
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blueprint and user prompt.
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inputs:
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inputs:
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- name: blueprint_path
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- blueprint_id or blueprint_name
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description: Path to the blueprint file (YAML) defining the multi-agent workflow.
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- user_shortcut
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- name: execution_mode
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- user_question
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description: 'Execution mode: ''local'' or ''distributed''.'
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steps:
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steps:
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- step_name: Load Blueprint
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- 'Step 1: Resolve the blueprint ID from either direct ID or name lookup (resolve_blueprint_id
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description: Parse and validate the blueprint file to ensure it conforms to expected
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method)'
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structure.
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- 'Step 2: Create a new session from the blueprint (create_session method)'
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- step_name: Initialize Execution Engine
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- 'Step 3: Submit the session for background execution with the user prompt (submit_session
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description: Set up the execution engine based on the selected mode ('local' or
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method)'
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'distributed').
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- 'Step 4: Poll session status until execution completes (poll_session_status method)'
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- step_name: Execute Workflow
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description: Run the multi-agent workflow, streaming node-by-node output as NDJSON
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over HTTP.
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- step_name: Stream Results
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description: Render and stream results in real time to clients subscribing to the
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event stream.
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outputs:
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outputs:
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- name: execution_results
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- session_id
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description: The output of the executed workflow, streamed as NDJSON over HTTP.
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- workflow_id
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tags: []
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tags: []
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metadata:
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metadata:
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source_repo: https://github.com/redhat-community-ai-tools/UnifAI.git
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source_repo: https://github.com/redhat-community-ai-tools/UnifAI.git
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extracted_at: ''
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extracted_at: ''
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confidence: 0.9
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confidence: 0.95
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---
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---
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# unifai-workflow-execution
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# unifai-workflow-execution
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Execute a multi-agent AI workflow defined in YAML or through the UI's drag-and-drop editor.
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Execute a multi-agent workflow on the UnifAI platform using a specified blueprint and user prompt.
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## Setup
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**Dependencies:**
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```text
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pip install requests urllib3
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```
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**Setup steps:**
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1. Install required dependencies using pip install requests urllib3
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1. Ensure the environment variables are set correctly (BLUEPRINT_ID, BLUEPRINT_NAME, USER_SHORTCUT, POLLING_INTERVAL, UNIFAI_BASE_URL)
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## Key Files
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- `scripts/execution_workflow.py - Main script for workflow execution`
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## Steps
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## Steps
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1. {'step_name': 'Load Blueprint', 'description': 'Parse and validate the blueprint file to ensure it conforms to expected structure.'}
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1. Step 1: Resolve the blueprint ID from either direct ID or name lookup (resolve_blueprint_id method)
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2. {'step_name': 'Initialize Execution Engine', 'description': "Set up the execution engine based on the selected mode ('local' or 'distributed')."}
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2. Step 2: Create a new session from the blueprint (create_session method)
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3. {'step_name': 'Execute Workflow', 'description': 'Run the multi-agent workflow, streaming node-by-node output as NDJSON over HTTP.'}
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3. Step 3: Submit the session for background execution with the user prompt (submit_session method)
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4. {'step_name': 'Stream Results', 'description': 'Render and stream results in real time to clients subscribing to the event stream.'}
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4. Step 4: Poll session status until execution completes (poll_session_status method)
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## Implementation Details
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```python
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resolve_blueprint_id(client: UnifAIClient) -> str
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{...}
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# Resolve the blueprint ID from either direct ID or name lookup.
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```
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```python
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create_session(client: UnifAIClient, blueprint_id: str) -> str
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{...}
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# Create a new session from the blueprint.
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```
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```python
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submit_session(client: UnifAIClient, session_id: str) -> dict
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{...}
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# Submit the session for background execution with the user prompt.
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```
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## Inputs
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## Inputs
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- {'name': 'blueprint_path', 'description': 'Path to the blueprint file (YAML) defining the multi-agent workflow.'}
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- blueprint_id or blueprint_name
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- {'name': 'execution_mode', 'description': "Execution mode: 'local' or 'distributed'."}
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- user_shortcut
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- user_question
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## Outputs
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## Outputs
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- {'name': 'execution_results', 'description': 'The output of the executed workflow, streamed as NDJSON over HTTP.'}
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- session_id
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- workflow_id
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## Failure Modes
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## Failure Modes
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- {'mode_name': 'Invalid Blueprint', 'description': 'Blueprint file is not valid YAML or does not conform to expected structure.'}
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- Blueprint name not found or not unique - error during blueprint resolution
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- {'mode_name': 'Execution Engine Initialization Failure', 'description': 'Failed to initialize the execution engine due to configuration issues or missing dependencies.'}
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- Session creation fails - error from API response
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- Session submission fails - error from API response
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- Polling session status fails - error from API response
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## Source
|
## Source
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Extracted from: [https://github.com/redhat-community-ai-tools/UnifAI.git](https://github.com/redhat-community-ai-tools/UnifAI.git)
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Extracted from: [https://github.com/redhat-community-ai-tools/UnifAI.git](https://github.com/redhat-community-ai-tools/UnifAI.git)
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Confidence: 0.9
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Confidence: 0.95
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@@ -4,7 +4,7 @@
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```python
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```python
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# How to use this skill
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# How to use this skill
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# Inputs: {'name': 'blueprint_path', 'description': 'Path to the blueprint file (YAML) defining the multi-agent workflow.'}, {'name': 'execution_mode', 'description': "Execution mode: 'local' or 'distributed'."}
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# Inputs: blueprint_id or blueprint_name, user_shortcut, user_question
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# Process: {'step_name': 'Load Blueprint', 'description': 'Parse and validate the blueprint file to ensure it conforms to expected structure.'} → {'step_name': 'Initialize Execution Engine', 'description': "Set up the execution engine based on the selected mode ('local' or 'distributed')."} → {'step_name': 'Execute Workflow', 'description': 'Run the multi-agent workflow, streaming node-by-node output as NDJSON over HTTP.'}
|
# Process: Step 1: Resolve the blueprint ID from either direct ID or name lookup (resolve_blueprint_id method) → Step 2: Create a new session from the blueprint (create_session method) → Step 3: Submit the session for background execution with the user prompt (submit_session method)
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# Outputs: {'name': 'execution_results', 'description': 'The output of the executed workflow, streamed as NDJSON over HTTP.'}
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# Outputs: session_id, workflow_id
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```
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```
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@@ -1,53 +1,30 @@
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{
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{
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"name": "unifai-workflow-execution",
|
"name": "unifai-workflow-execution",
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"version": "1.0.0",
|
"version": "1.0.0",
|
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"goal": "Execute a multi-agent AI workflow defined in YAML or through the UI's drag-and-drop editor.",
|
"goal": "Execute a multi-agent workflow on the UnifAI platform using a specified blueprint and user prompt.",
|
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"inputs": [
|
"inputs": [
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{
|
"blueprint_id or blueprint_name",
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"name": "blueprint_path",
|
"user_shortcut",
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"description": "Path to the blueprint file (YAML) defining the multi-agent workflow."
|
"user_question"
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},
|
|
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{
|
|
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"name": "execution_mode",
|
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"description": "Execution mode: 'local' or 'distributed'."
|
|
||||||
}
|
|
||||||
],
|
],
|
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"steps": [
|
"steps": [
|
||||||
{
|
"Step 1: Resolve the blueprint ID from either direct ID or name lookup (resolve_blueprint_id method)",
|
||||||
"step_name": "Load Blueprint",
|
"Step 2: Create a new session from the blueprint (create_session method)",
|
||||||
"description": "Parse and validate the blueprint file to ensure it conforms to expected structure."
|
"Step 3: Submit the session for background execution with the user prompt (submit_session method)",
|
||||||
},
|
"Step 4: Poll session status until execution completes (poll_session_status method)"
|
||||||
{
|
|
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"step_name": "Initialize Execution Engine",
|
|
||||||
"description": "Set up the execution engine based on the selected mode ('local' or 'distributed')."
|
|
||||||
},
|
|
||||||
{
|
|
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"step_name": "Execute Workflow",
|
|
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"description": "Run the multi-agent workflow, streaming node-by-node output as NDJSON over HTTP."
|
|
||||||
},
|
|
||||||
{
|
|
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"step_name": "Stream Results",
|
|
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"description": "Render and stream results in real time to clients subscribing to the event stream."
|
|
||||||
}
|
|
||||||
],
|
],
|
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"outputs": [
|
"outputs": [
|
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{
|
"session_id",
|
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"name": "execution_results",
|
"workflow_id"
|
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"description": "The output of the executed workflow, streamed as NDJSON over HTTP."
|
|
||||||
}
|
|
||||||
],
|
],
|
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"failure_modes": [
|
"failure_modes": [
|
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{
|
"Blueprint name not found or not unique - error during blueprint resolution",
|
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"mode_name": "Invalid Blueprint",
|
"Session creation fails - error from API response",
|
||||||
"description": "Blueprint file is not valid YAML or does not conform to expected structure."
|
"Session submission fails - error from API response",
|
||||||
},
|
"Polling session status fails - error from API response"
|
||||||
{
|
|
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"mode_name": "Execution Engine Initialization Failure",
|
|
||||||
"description": "Failed to initialize the execution engine due to configuration issues or missing dependencies."
|
|
||||||
}
|
|
||||||
],
|
],
|
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"confidence": 0.9,
|
"confidence": 0.95,
|
||||||
"explanation": "This workflow is designed to execute multi-agent AI workflows defined in YAML blueprints or through the UI's drag-and-drop editor, providing real-time streaming of results.",
|
"explanation": "This workflow is specific to the UnifAI platform and its multi-agent system, but can be adapted for similar systems with a similar architecture.",
|
||||||
"source_repo": "https://github.com/redhat-community-ai-tools/UnifAI.git",
|
"source_repo": "https://github.com/redhat-community-ai-tools/UnifAI.git",
|
||||||
"score": 1.0
|
"score": 1.0
|
||||||
}
|
}
|
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Reference in New Issue
Block a user