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---
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name: branching-agent-pattern
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version: 1.0.0
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description: Define and execute AI agent workflows using CSV-based declarative definitions
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with configurable branching logic
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inputs:
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- 'CSV workflow files defining agent graphs with columns: graph_name, node_name, agent_type,
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next_node, on_failure, prompt, input_fields, output_field'
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- LLM provider configuration (OpenAI, Anthropic, Google) in agentmap_config.yaml
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- Storage backend configuration in agentmap_config_storage.yaml
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steps:
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- Define workflow graph in CSV with nodes representing agent steps and their connections
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(next_node, on_failure)
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- Configure BranchingAgent with customizable success/failure values and fallback fields
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in the context dictionary
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- Initialize the agent runtime with ensure_initialized() and configure execution tracking
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and state adapter services
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- Execute the workflow using agentmap run with appropriate inputs and monitor the
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execution trace
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outputs:
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- Executed workflow with results stored in the specified output_field
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- Detailed execution trace showing success/failure decisions at each branching point
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- Updated workflow state persisted in the configured storage backend
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tags: []
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metadata:
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source_repo: https://github.com/jwwelbor/AgentMap.git
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extracted_at: ''
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confidence: 0.95
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---
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# branching-agent-pattern
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Define and execute AI agent workflows using CSV-based declarative definitions with configurable branching logic
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## Setup
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**Dependencies:**
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```text
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pip install langgraph>=1.0.0 langchain-core>=0.3.0 pyyaml>=6.0.0 fastapi>=0.111.0 uvicorn>=0.34.3
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```
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**Setup steps:**
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1. Install AgentMap: pip install agentmap[all]
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1. Configure llm providers in agentmap_config.yaml (OpenAI, Anthropic, Google models)
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1. Create CSV workflow files with graph definitions
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1. Initialize runtime with ensure_initialized()
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1. Run workflow with agentmap run <csv_file> --pretty
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## Key Files
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- `agentmap_config.yaml - Main configuration with LLM and storage settings`
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- `agentmap_config_storage.yaml - Storage backend configuration`
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- `hello_world.csv - Sample workflow demonstrating basic agent chain`
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- `examples/host_integration/custom_agents.py - Custom agent implementations with host service integration`
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## Steps
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1. Define workflow graph in CSV with nodes representing agent steps and their connections (next_node, on_failure)
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2. Configure BranchingAgent with customizable success/failure values and fallback fields in the context dictionary
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3. Initialize the agent runtime with ensure_initialized() and configure execution tracking and state adapter services
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4. Execute the workflow using agentmap run with appropriate inputs and monitor the execution trace
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## Implementation Details
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```python
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CSV format: graph_name,node_name,agent_type,next_node,on_failure,prompt,input_fields,output_field
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```
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```python
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BranchingAgent context example: {'input_fields': ['success'], 'output_field': 'result', 'success_values': ['PASSED', 'COMPLETED']}
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```
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```python
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Execution command: agentmap run hello_world.csv --pretty
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```
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## Inputs
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- CSV workflow files defining agent graphs with columns: graph_name, node_name, agent_type, next_node, on_failure, prompt, input_fields, output_field
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- LLM provider configuration (OpenAI, Anthropic, Google) in agentmap_config.yaml
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- Storage backend configuration in agentmap_config_storage.yaml
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## Outputs
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- Executed workflow with results stored in the specified output_field
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- Detailed execution trace showing success/failure decisions at each branching point
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- Updated workflow state persisted in the configured storage backend
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## Failure Modes
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- Invalid CSV format causing parsing errors during workflow loading
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- Missing or misconfigured LLM provider settings leading to execution failures
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- Storage backend unavailable or misconfigured preventing workflow persistence
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- Agent execution timeout due to long-running operations or infinite loops
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## Source
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Extracted from: [https://github.com/jwwelbor/AgentMap.git](https://github.com/jwwelbor/AgentMap.git)
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Confidence: 0.95
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# Commands: branching-agent-pattern
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## Available Commands
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- `/skill branching-agent-pattern` — Load this skill
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- `/run branching-agent-pattern` — Execute workflow
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# Examples: branching-agent-pattern
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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: CSV workflow files defining agent graphs with columns: graph_name, node_name, agent_type, next_node, on_failure, prompt, input_fields, output_field, LLM provider configuration (OpenAI, Anthropic, Google) in agentmap_config.yaml, Storage backend configuration in agentmap_config_storage.yaml
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# Process: Define workflow graph in CSV with nodes representing agent steps and their connections (next_node, on_failure) → Configure BranchingAgent with customizable success/failure values and fallback fields in the context dictionary → Initialize the agent runtime with ensure_initialized() and configure execution tracking and state adapter services
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# Outputs: Executed workflow with results stored in the specified output_field, Detailed execution trace showing success/failure decisions at each branching point, Updated workflow state persisted in the configured storage backend
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```
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@@ -1,31 +0,0 @@
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{
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"name": "branching-agent-pattern",
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"version": "1.0.0",
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"goal": "Define and execute AI agent workflows using CSV-based declarative definitions with configurable branching logic",
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"inputs": [
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"CSV workflow files defining agent graphs with columns: graph_name, node_name, agent_type, next_node, on_failure, prompt, input_fields, output_field",
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"LLM provider configuration (OpenAI, Anthropic, Google) in agentmap_config.yaml",
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"Storage backend configuration in agentmap_config_storage.yaml"
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],
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"steps": [
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"Define workflow graph in CSV with nodes representing agent steps and their connections (next_node, on_failure)",
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"Configure BranchingAgent with customizable success/failure values and fallback fields in the context dictionary",
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"Initialize the agent runtime with ensure_initialized() and configure execution tracking and state adapter services",
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"Execute the workflow using agentmap run with appropriate inputs and monitor the execution trace"
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],
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"outputs": [
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"Executed workflow with results stored in the specified output_field",
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"Detailed execution trace showing success/failure decisions at each branching point",
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"Updated workflow state persisted in the configured storage backend"
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],
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"failure_modes": [
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"Invalid CSV format causing parsing errors during workflow loading",
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"Missing or misconfigured LLM provider settings leading to execution failures",
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"Storage backend unavailable or misconfigured preventing workflow persistence",
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"Agent execution timeout due to long-running operations or infinite loops"
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],
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"confidence": 0.95,
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"explanation": "The BranchingAgent pattern provides a reusable framework for creating conditional AI workflows. The CSV-based workflow definition allows defining complex agent graphs declaratively, while the BranchingAgent handles dynamic branching based on success/failure conditions with customizable value sets. This pattern can be adapted to various use cases including task routing, error handling, and conditional execution paths across different domains.",
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"source_repo": "https://github.com/jwwelbor/AgentMap.git",
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"score": 1.0
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}
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---
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name: conditional-request-routing
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version: 1.0.0
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description: Classify an input request and route it to either an approval or rejection
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path, producing a corresponding result
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inputs:
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- 'request: the input request or content to be reviewed and routed'
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steps:
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- 'Collect input: Use an input agent to capture the user''s request into state field
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''request'''
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- 'Branch: Use a branching agent to evaluate ''request'' and route to ''Approve''
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node on success or ''Reject'' node on failure'
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- 'Approve path: Use a default agent to format and output an approval message with
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the request'
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- 'Reject path: Use a default agent to format and output a rejection message with
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the request'
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outputs:
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- 'result: the approval or rejection message containing the original request'
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tags: []
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metadata:
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source_repo: https://github.com/jwwelbor/AgentMap.git
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extracted_at: ''
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confidence: 0.85
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---
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# conditional-request-routing
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Classify an input request and route it to either an approval or rejection path, producing a corresponding result
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## Steps
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1. Collect input: Use an input agent to capture the user's request into state field 'request'
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2. Branch: Use a branching agent to evaluate 'request' and route to 'Approve' node on success or 'Reject' node on failure
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3. Approve path: Use a default agent to format and output an approval message with the request
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4. Reject path: Use a default agent to format and output a rejection message with the request
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## Inputs
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- request: the input request or content to be reviewed and routed
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## Outputs
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- result: the approval or rejection message containing the original request
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## Failure Modes
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- Branching agent cannot evaluate request and neither path is taken
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- Missing or empty input request
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- Prompt misconfiguration causing incorrect routing
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## Source
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Extracted from: [https://github.com/jwwelbor/AgentMap.git](https://github.com/jwwelbor/AgentMap.git)
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Confidence: 0.85
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# Commands: conditional-request-routing
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## Available Commands
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- `/skill conditional-request-routing` — Load this skill
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- `/run conditional-request-routing` — Execute workflow
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# Examples: conditional-request-routing
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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: request: the input request or content to be reviewed and routed
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# Process: Collect input: Use an input agent to capture the user's request into state field 'request' → Branch: Use a branching agent to evaluate 'request' and route to 'Approve' node on success or 'Reject' node on failure → Approve path: Use a default agent to format and output an approval message with the request
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# Outputs: result: the approval or rejection message containing the original request
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```
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{
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"name": "conditional-request-routing",
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"version": "1.0.0",
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"goal": "Classify an input request and route it to either an approval or rejection path, producing a corresponding result",
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"inputs": [
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"request: the input request or content to be reviewed and routed"
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],
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"steps": [
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"Collect input: Use an input agent to capture the user's request into state field 'request'",
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"Branch: Use a branching agent to evaluate 'request' and route to 'Approve' node on success or 'Reject' node on failure",
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"Approve path: Use a default agent to format and output an approval message with the request",
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"Reject path: Use a default agent to format and output a rejection message with the request"
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],
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"outputs": [
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"result: the approval or rejection message containing the original request"
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],
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"failure_modes": [
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"Branching agent cannot evaluate request and neither path is taken",
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"Missing or empty input request",
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"Prompt misconfiguration causing incorrect routing"
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],
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"confidence": 0.85,
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"explanation": "Extracted from AgentMap's README example 'ReviewFlow' CSV workflow. This is a declarative LangGraph pattern using AgentMap's CSV format that implements conditional branching - a universally reusable pattern for request triage, content moderation, approval gates, or any two-path decision flow. It can be adapted by changing agent types (e.g., using LLM agents instead of default) and prompts.",
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"source_repo": "https://github.com/jwwelbor/AgentMap.git",
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"score": 1.0
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}
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+1
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# Tests: branching-agent-pattern
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# Tests: conditional-request-routing
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## Test Checklist
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## Test Checklist
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Reference in New Issue
Block a user