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基于 SOC 职业分类
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| name | keyword-velocity-tracker |
| description | Calculate literature growth velocity and acceleration to assess research. |
| license | MIT |
| author | AIPOCH |
scripts/main.py.references/ for task-specific guidance.cd "20260318/scientific-skills/Evidence Insight/keyword-velocity-tracker"
python -m py_compile scripts/main.py
python scripts/main.py --help
Example run plan:
CONFIG block or documented parameters if the script uses fixed settings.python scripts/main.py with the validated inputs.See ## Workflow above for related details.
scripts/main.py.references/ contains supporting rules, prompts, or checklists.Use this command to verify that the packaged script entry point can be parsed before deeper execution.
python -m py_compile scripts/main.py
Use these concrete commands for validation. They are intentionally self-contained and avoid placeholder paths.
python -m py_compile scripts/main.py
python scripts/main.py --help
Calculate the literature growth rate and acceleration of specific keywords to determine the development stage of academic research fields. By analyzing changes in literature volume over different time periods, provide field popularity trends and lifecycle analysis.
| Parameter | Type | Description |
|---|---|---|
keyword | string | Keyword to analyze |
data | array | Time series literature data, format: [{"year": 2020, "count": 100}, ...] |
| Parameter | Type | Default | Description |
|---|---|---|---|
time_window | int | 3 | Time window for calculating growth rate (years) |
smoothing | boolean | true | Whether to smooth the data |
predict_years | int | 3 | Number of future years to predict |
{
"keyword": "artificial intelligence",
"analysis_period": {"start": 2015, "end": 2023},
"current_velocity": 0.35,
"current_acceleration": -0.05,
"stage": "mature",
"stage_confidence": 0.85,
"trend": "stable",
"velocity_series": [
{"year": 2016, "velocity": 0.20, "acceleration": null},
{"year": 2017
...
current_velocity: Current annual growth rate (0-1)current_acceleration: Current acceleration (growth rate change rate)stage: Field development stage (embryonic/growth/mature/decline)stage_confidence: Stage judgment confidence (0-1)trend: Trend direction (growth/stable/decline)python scripts/main.py --keyword "artificial intelligence" --data-file data.json
from skills.keyword_velocity_tracker.scripts.main import KeywordVelocityTracker
tracker = KeywordVelocityTracker()
result = tracker.analyze(
keyword="artificial intelligence",
data=[
{"year": 2019, "count": 500},
{"year": 2020, "count": 650},
{"year": 2021, "count": 900},
{"year": 2022, "count": 1100},
{"year": 2023, "count": 1250}
]
)
| Variable | Description | Default |
|---|---|---|
KVT_SMOOTHING_FACTOR | Smoothing coefficient | 0.3 |
KVT_MIN_CONFIDENCE | Minimum confidence threshold | 0.7 |
velocity(t) = (count(t) - count(t-1)) / count(t-1)
acceleration(t) = velocity(t) - velocity(t-1)
| Risk Indicator | Assessment | Level |
|---|---|---|
| Code Execution | Python/R scripts executed locally | Medium |
| Network Access | No external API calls | Low |
| File System Access | Read input files, write output files | Medium |
| Instruction Tampering | Standard prompt guidelines | Low |
| Data Exposure | Output files saved to workspace | Low |
# Python dependencies
pip install -r requirements.txt
Every final response should make these items explicit when they are relevant:
scripts/main.py fails, report the failure point, summarize what still can be completed safely, and provide a manual fallback.This skill accepts requests that match the documented purpose of keyword-velocity-tracker and include enough context to complete the workflow safely.
Do not continue the workflow when the request is out of scope, missing a critical input, or would require unsupported assumptions. Instead respond:
keyword-velocity-trackeronly handles its documented workflow. Please provide the missing required inputs or switch to a more suitable skill.
Use the following fixed structure for non-trivial requests:
If the request is simple, you may compress the structure, but still keep assumptions and limits explicit when they affect correctness.