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When coordination is avoidable: A monotonicity analysis of organizational tasks
1Carey Business School, Johns Hopkins University, Baltimore, MD 21202.
Coordination is often unnecessary for task correctness in multiagent AI systems. Applying a new decision rule based on task monotonicity reveals that significant coordination spending may be reducible, improving efficiency.
Area of Science:
- Artificial Intelligence
- Distributed Systems Theory
- Workflow Optimization
Background:
- Organizations invest heavily in coordination, but its necessity for task correctness is often undetermined.
- In multiagent AI systems, coordination costs can be substantial and measurable, sometimes exceeding task costs.
- Distributed systems theory offers a criterion: nonmonotonic task specifications necessitate coordination.
Purpose of the Study:
- To develop a decision rule for determining when coordination is essential for task correctness.
- To map Thompson's interdependence taxonomy to the nonmonotonicity criterion.
- To quantify unnecessary coordination spending in real-world workflows and tasks.
Main Methods:
- Formalized a correspondence between interdependence types and the nonmonotonicity criterion using a bridge theorem.
- Applied the derived decision rule to 65 American Productivity & Quality Center (APQC) workflows.
- Analyzed 13,417 Occupational Information Network (O*NET) tasks using a calibrated large language model (LLM).
- Illustrated the findings in multiagent AI simulations.
Main Results:
- 74% of analyzed workflows were found to be monotonic, not requiring coordination for correctness.
- 42% of O*NET tasks were identified as monotonic.
- This suggests that 24% to 57% of current coordination expenditures may be unnecessary for ensuring correctness.
Conclusions:
- A precise, theory-based rule can identify tasks requiring coordination, moving beyond general practice.
- Significant potential exists for reducing coordination costs in multiagent AI and organizational workflows.
- Optimizing coordination based on task monotonicity can lead to substantial efficiency gains.
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