Abstract
Time In Bed was generally 0% higher than average after an average of 45 index of Fine Particulate Matter Pollution Air Quality Index over the previous 24 hours.
Aggregated data from 1 study participants suggests with a HIGH degree of confidence (p=0.399, 95% CI -11.4 to 11.426) that Fine Particulate Matter Pollution Air Quality Index has a very weakly positive predictive relationship (R=0.0133) with Time In Bed.
The highest quartile of Time In Bed measurements were observed following an average 44.8 index Fine Particulate Matter Pollution Air Quality Index.
The lowest quartile of Time In Bed measurements were observed following an average 45.7 index of Fine Particulate Matter Pollution Air Quality Index.
After an onset delay of 0 seconds, Time In Bed is typically 0% lower than average over the 24 hours following around 45.7 index of Fine Particulate Matter Pollution Air Quality Index Fine Particulate Matter Pollution Air Quality Index.
Keywords: Fine Particulate Matter Pollution Air Quality Index, Time In Bed, N-of-1 trials, real-world evidence, causal inference, observational study
Preliminary: Based on 1 participants. Results may change as more data is collected.
Results
Primary Findings
Analysis of 711 paired observations from 1 participants revealed a minimal reduction in Time In Bed following above-average Fine Particulate Matter Pollution Air Quality Index exposure.
Supporting Statistics
What This Means
When participants had above-average Fine Particulate Matter Pollution Air Quality Index:
- Time In Bed decreased by 0.0% on average
- Temporal analysis supports Fine Particulate Matter Pollution Air Quality Index as the predictor (not the outcome)
Interpreting the Predictor Impact Score
The Predictor Impact Score (PIS) integrates multiple Bradford Hill causal criteria into a single metric. Use this guide to interpret the score:
| PIS Range | Interpretation | Recommended Action |
|---|---|---|
| ≥ 0.5 | Strong evidence | High priority for RCT validation |
| 0.3 - 0.5 | Moderate evidence | Consider for experimental investigation |
| 0.1 - 0.3 | Weak evidence | Monitor for additional data |
| < 0.1 | Insufficient evidence | Low priority; may be noise |
Note: PIS is a prioritization heuristic, not proof of causation. High scores indicate relationships worth investigating, not confirmed causal effects. With only 1 participants, these scores are preliminary and will become more reliable as additional data is collected.
Optimal Daily Values
No clear dose-response relationship detected. The Fine Particulate Matter Pollution Air Quality Index values associated with high and low Time In Bed are too similar to provide meaningful dosing guidance. This may indicate a threshold effect (any amount works equally well), no effect, or insufficient data variance. With more participants, a clearer pattern may emerge.
Population Correlation
Trait Correlation Between Fine Particulate Matter Pollution Air Quality Index and Time in Bed
Fine Particulate Matter Pollution Air Quality Index Distribution
Daily Distribution
Average by Day of Week
Average by Month
Average by Year
Time In Bed Distribution
Daily Distribution
Average by Day of Week
Average by Month
Average by Year
Relationship Analysis
Time in Bed Following Fine Particulate Matter Pollution Air Quality Index
Correlation Between Fine Particulate Matter Pollution Air Quality Index and Time in Bed by Duration of Action
Correlation Between Fine Particulate Matter Pollution Air Quality Index and Time in Bed by Onset Delay
Average Fine Particulate Matter Pollution Air Quality Index Preceding Time in Bed
Average Time in Bed by Previous Fine Particulate Matter Pollution Air Quality Index
Statistical Summary
Relationship Statistics
| Property | Value |
|---|---|
| Cause Variable Name | Fine Particulate Matter Pollution Air Quality Index |
| Effect Variable Name | Time In Bed |
| Sinn Predictive Coefficient | 0.0006328311585748 |
| Confidence Level | HIGH |
| Confidence Interval | 11.412977869907 |
| Forward Pearson Predictive Coefficient | 0.0133 |
| Critical T Value | 1.646 |
| Average Fine Particulate Matter Pollution Air Quality Index Over Previous 24 hours Before ABOVE Average Time In Bed | 44.8 index |
| Average Fine Particulate Matter Pollution Air Quality Index Over Previous 24 hours Before BELOW Average Time In Bed | 45.7 index |
| Duration of Action | 24 hours |
| Effect Size | very weakly positive |
| Number of Paired Measurements | 711 |
| Optimal Pearson Product | -0.00082694282130667 |
| P Value | 0.39879339243547 |
| Statistical Significance | 1 |
| Strength of Relationship | 11.412977869907 |
| Study Type | population |
| Analysis Performed At | 2026-01-04 |
| Number of Participants | 1 |
Fine Particulate Matter Pollution Air Quality Index Info
| Property | Value |
|---|---|
| Variable Name | Fine Particulate Matter Pollution Air Quality Index |
| Aggregation Method | MEAN |
| Analysis Performed At | 2022-08-22 |
| Duration of Action | 24 hours |
| Kurtosis | 2.4531830716477 |
| Mean | 34.244654074074 index |
| Median | 33.314814814815 index |
| Minimum Allowed Value | 0 index |
| Number of Aggregate Predictors | 0 |
| Number of Aggregate Outcomes | 354 |
| Number of Measurements | 2241 |
| Number of Measurements (including those generated by tagged, joined, or child variables) | 2241 |
| Public | true |
| Onset Delay | 0 seconds |
| Standard Deviation | 9.3585991957943 |
| Unit | Index |
| User Variables | 272 |
| Variable Category | Environment |
| Variable ID | 6059498 |
| Variance | 144.51029792465 |
Time in Bed Info
| Property | Value |
|---|---|
| Variable Name | Time In Bed |
| Aggregation Method | MEAN |
| Analysis Performed At | 2020-09-15 |
| Duration of Action | 7 days |
| Kurtosis | 37.830671319805 |
| Maximum Allowed Value | 7 days |
| Mean | 5 hours |
| Median | 5 hours |
| Minimum Allowed Value | 60 seconds |
| Number of Aggregate Predictors | 859 |
| Number of Aggregate Outcomes | 121 |
| Number of Measurements | 44465 |
| Number of Measurements (including those generated by tagged, joined, or child variables) | 19526 |
| Public | true |
| Onset Delay | 0 seconds |
| Standard Deviation | 113.64167274949 |
| Unit | Minutes |
| User Variables | 84 |
| UPC | 0 |
| Variable Category | Sleep |
| Variable ID | 5872231 |
| Variance | 18901.026652412 |
Introduction
Background
Fine Particulate Matter Pollution Air Quality Index (Environment) and Time In Bed (Sleep) are both important factors in understanding human health and well-being. This study investigates the relationship between these two variables using real-world observational data.
Traditional randomized controlled trials (RCTs), while the gold standard for causal inference, are often impractical, expensive, or unethical for studying many health relationships. Aggregated N-of-1 observational studies offer a complementary approach that leverages within-subject comparisons across large populations to identify meaningful patterns.
Research Question
Does Fine Particulate Matter Pollution Air Quality Index affect Time In Bed?
Additionally, we seek to determine:
- What is the direction and magnitude of any effect?
- How confident can we be in this relationship based on the available data?
- What are the optimal levels of Fine Particulate Matter Pollution Air Quality Index for maximizing Time In Bed?
Study Objective
The objective of this study is to determine the nature of the relationship (if any) between Fine Particulate Matter Pollution Air Quality Index and Time In Bed. Additionally, we attempt to determine the Fine Particulate Matter Pollution Air Quality Index values most likely to produce optimal Time In Bed values.
Study Overview
This is a population-level observational study using aggregated N-of-1 methodology. By aggregating individual N-of-1 experiments, we can identify population-level patterns while accounting for the substantial individual variation that exists in most health relationships. Effect sizes are reported as percent change from baseline, enabling intuitive interpretation and comparison across different measures.
Full Methodology: Framework for Real-World Evidence-Based Pharmacovigilance: Aggregated N-of-1 Trials for Quantifying Treatment Effects
Discussion
Interpretation of Findings
Participants experienced a 0.0% reduction in Time In Bed following above-average Fine Particulate Matter Pollution Air Quality Index exposure. The Predictor Impact Score (PIS) of 0.00 indicates insufficient evidence for a causal relationship.
Statistical Significance
Using a two-tailed t-test with alpha = 0.05, it was determined that the change in Time In Bed is not statistically significant at a 95% confidence interval. This suggests that the Fine Particulate Matter Pollution Air Quality Index value may not have a significant influence on the Time In Bed value, or that more data is needed to detect an effect.
After treatment, a 0.1% decrease (negative 10 seconds) from the mean baseline 8 hours was observed. The relative standard deviation at baseline was 18.7%.
A common rule of thumb considers a change greater than twice the baseline standard deviation on two separate pre-post experiments may be considered significant. This occurrence would have only a 5% likelihood of resulting from random fluctuation (a p-value < 0.05).
T-Test Details
Since t = 0.03 < 1.65, we cannot reject the null hypothesis.
Biological Plausibility
A plausible bio-chemical mechanism between predictor and outcome is critical for interpreting observational findings. This is where human judgment excels beyond statistical analysis.
Community feedback on the biological plausibility of this relationship is still being collected. Consider the known mechanisms by which Fine Particulate Matter Pollution Air Quality Index might influence Time In Bed.
Bradford Hill Criteria Assessment
The Bradford Hill criteria provide a framework for assessing causality in observational studies. Our methodology operationalizes six of the nine criteria through the Predictor Impact Score (PIS):
| Criterion | How Addressed | Metric |
|---|---|---|
| Strength | Effect size magnitude | Percent change from baseline (Δ%), z-score |
| Consistency | Cross-participant replication | Number of users (N), number of pairs (n) |
| Temporality | Predictor precedes outcome | Temporality factor (φ), onset delay (δ > 0) |
| Biological Gradient | Dose-response relationship | Gradient coefficient (φgradient) |
| Plausibility | Biological mechanism assessment | Community votes on mechanism plausibility |
| Specificity | Category appropriateness | Interest factor (finterest) |
Predictor Impact Score (PIS)
The PIS integrates multiple Bradford Hill criteria into a composite metric quantifying how reliably a predictor affects an outcome. Higher scores indicate stronger evidence:
Population-Level PIS:
Where φ-factors are saturation functions approaching 1 as evidence accumulates:
- φusers = 1 - e-N/10 (user saturation)
- φpairs = 1 - e-n/nsig (pair saturation)
- φchange = 1 - e-Δspread/Δsig (effect spread saturation)
- w = weighted average of plausibility votes
Temporality Assessment
We assess evidence for correct causal direction using the temporality factor:
Values approaching 1 indicate the predictor precedes the outcome (supporting causation); values near 0.5 suggest ambiguous directionality; values near 0 suggest reverse causation or confounding by indication.
Limitations
As with any observational study, correlation does not prove causation. Key limitations include:
- Unmeasured confounders: Variables not tracked may influence results
- Self-selection bias: Health trackers may differ from the general population
- Measurement error: Self-reported data may contain recall bias
- Confounding by indication: Sicker individuals may use more treatments
However, within-subject comparison and temporal precedence analysis partially mitigate these limitations. If the relationship is merely coincidental, as participants independently modify their Fine Particulate Matter Pollution Air Quality Index values, the observed strength will decline over time. Spurious correlations naturally dissipate as more data is collected.
Future Directions
Future research should examine:
- Subgroup analyses to identify individual differences in response
- Potential confounders and mediators of the observed relationship
- Optimal dosing and timing for Fine Particulate Matter Pollution Air Quality Index
- Confirmation through prospective or randomized designs
- Biological mechanisms underlying the observed effects
Conclusion
📊 Preliminary Findings: With 1 participants, these results are based on limited data. Effect sizes and confidence will improve as more participants contribute data. Consider these findings directional rather than definitive.
Above-average Fine Particulate Matter Pollution Air Quality Index was associated with a 0.0% reduction in Time In Bed—a minimal effect. The Predictor Impact Score of 0.00 indicates this relationship is requiring additional data before conclusions.
Bottom Line: Based on a PIS of 0.00 and a 0.0% effect size, this relationship currently lacks sufficient evidence. Continue monitoring as more data becomes available. Note: These conclusions may strengthen or change direction as more data is collected.
These findings contribute to our understanding of how Fine Particulate Matter Pollution Air Quality Index may influence Time In Bed in real-world conditions. While preliminary, these results may inform future research directions. As more participants contribute data, the reliability and precision of these findings will improve substantially.
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Methods
Study Design
This study is based on data donated by 1 participants. Thus, the study design is equivalent to the aggregation of 1 separate n=1 observational natural experiments.
This within-subject design is powerful because it controls for all stable individual characteristics (genetics, baseline health status, socioeconomic factors) that might otherwise confound the relationship between variables.
Data Analysis
Temporal Assumptions
The analysis incorporates temporal assumptions about the relationship between variables:
- Onset Delay: It was assumed that 0 seconds would pass before a change in Fine Particulate Matter Pollution Air Quality Index would produce an observable change in Time In Bed.
- Duration of Action: It was assumed that Fine Particulate Matter Pollution Air Quality Index could produce an observable change in Time In Bed for as much as 24 hours after the stimulus event.
Statistical Methods
For each participant, we calculated the Pearson correlation coefficient between Fine Particulate Matter Pollution Air Quality Index values and subsequent Time In Bed values. Individual correlations were then aggregated using Fisher's z-transformation to produce a population-level estimate:
Individual Correlation:
Fisher's Z-Transformation:
Aggregated Correlation:
Effect Size Calculation
Effect sizes are reported as percent change from baseline. For each participant, we compare the outcome following above-average predictor values to the overall baseline outcome:
Effect Magnitude (Z-Score)
To assess effect magnitude relative to natural variability, we calculate the z-score:
where RSDbaseline is the relative standard deviation of outcome during baseline period
A z-score > 2 indicates statistical significance (p < 0.05), meaning the observed change exceeds typical baseline fluctuation and is unlikely due to random variation.
Statistical Significance
Correlation significance is assessed using a two-tailed t-test:
We reject the null hypothesis (ρ = 0) at α = 0.05 when |t| exceeds the critical value, providing statistical evidence that the observed relationship is not due to chance.
Data Sources
Fine Particulate Matter Pollution Air Quality Index data was primarily collected using Air Quality. Automatically import particulate pollution, ozone pollution and air quality.
Time In Bed data was primarily collected using Fitbit. Fitbit makes activity tracking easy and automatic.
Data Quality
Data quality measures were applied to ensure reliable results:
- Minimum Data Requirement: Only participants with sufficient paired observations were included in the analysis.
- Outlier Handling: Extreme values were winsorized to reduce the influence of measurement errors.
- Missing Data: Days with missing values were handled using appropriate filling strategies based on the variable type.
- Test User Exclusion: Test accounts and invalid users were excluded from all analyses.
Principal Investigator
Program & Methods
Cite This Study
@misc{sinn_cause_6059498_effect_5872231_population_study_2026,
author = {Sinn, Mike P.},
title = {Causal Analysis: Does Fine Particulate Matter Pollution Air Quality Index Affect Time In Bed?},
year = {2026},
publisher = {The Journal of Citizen Science},
url = {https://studies.crowdsourcingcures.org/study/cause-6059498-effect-5872231-population-study},
note = {Accessed: January 6, 2026}
}
Study Type: Aggregated N-of-1 Observational Mega-Study
Evidence Level: Level II (Real-World Evidence)
Methodology: Bradford Hill Criteria with Predictor Impact Score (PIS)
References
This framework was originally developed in 2013 based on the Bradford Hill criteria. Subsequent literature has independently validated similar approaches to causal inference from observational data:
- Hill, A.B. (1965). The environment and disease: association or causation? Proceedings of the Royal Society of Medicine, 58(5), 295-300. [Bradford Hill criteria]
- Lillie, E.O., et al. (2011). The n-of-1 clinical trial: the ultimate strategy for individualizing medicine? Personalized Medicine, 8(2), 161-173. [N-of-1 methodology]
- Pearl, J. (2009). Causality: Models, Reasoning, and Inference . Cambridge University Press. [Causal inference]
- Hernán, M.A., & Robins, J.M. (2020). Causal Inference: What If . Chapman & Hall/CRC. [Free textbook]
- FDA (2018). Framework for FDA's Real-World Evidence Program . U.S. Food and Drug Administration. [Regulatory context]
- Duan, N., et al. (2013). Single-patient (n-of-1) trials: a pragmatic clinical decision methodology . Journal of Clinical Epidemiology, 66(8), S21-S28.
- Platt, R., et al. (2018). The FDA Sentinel Initiative—an evolving national resource . New England Journal of Medicine, 379(22), 2091-2093.
This information is for research and educational purposes only, not medical advice. Consult a healthcare provider before making health decisions. Terms of Service