Die Wissenschaft hinter der Prognose
Was die Forschung sagt
Hier steht jeder Faktor der heutigen Prognose mit den größten Metaanalysen, die wir finden konnten: Studien, die die Ergebnisse vieler anderer Studien zusammenfassen. Wo es keine gibt, sagen wir das und zeigen stattdessen die größten Einzelstudien.
Wir haben in PubMed und bei Verlagen gesucht und nennen nur Arbeiten, deren Titel, Autoren, Zeitschrift und DOI wir geprüft haben. Die Zahlen stammen aus den veröffentlichten Zusammenfassungen. Die Beweislage zeigt, wie belastbar der Zusammenhang zwischen Faktor und Schlaf ist.
Studientitel und Ergebnisse stehen auf Englisch, wie veröffentlicht.
Warme Nächte
Eine Metaanalyse gibt es noch nicht, aber eine systematische Übersicht über 36 Studien und Wearable-Daten von Hunderttausenden Menschen stimmen überein: In wärmeren Nächten ist der Schlaf kürzer und schlechter, in sehr heißen Nächten um etwa 15–17 Minuten. Die meisten Wohnungen lassen sich heizen, aber nicht kühlen, deshalb zählen in der Prognose nur warme Nächte.
Keine Metaanalyse gefunden.
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Systematische Übersicht36 articles (no pooling: designs too varied)
Chevance G, Minor K, Vielma C, et al. (2024). A systematic review of ambient heat and sleep in a warming climate. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2024.101915
Higher outdoor or indoor temperatures are generally linked to worse sleep quality and quantity, more so in the hottest months, regions and vulnerable groups.
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Große Studie, keine Metaanalyse317,758 users, about 165 million nights
Lechat B, Toson B, Scott H, et al. (2026). How do we sleep while our beds are burning? High ambient temperatures are associated with substantial sleep loss. Sleep. doi.org/10.1093/sleep/zsaf323
At the 99th vs 50th temperature percentile (27.3 °C vs 12.2 °C), sleep was 15.2–16.9 min shorter; risk of sleeping under 6 h rose by 40–43%.
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Große Studie, keine Metaanalyse214,445 participants, about 23 million days
Li A, Luo H, Zhu Y, et al. (2025). Climate warming may undermine sleep duration and quality in repeated-measure study of 23 million records. Nature Communications. doi.org/10.1038/s41467-025-57781-y
Each 10 °C rise in daily mean temperature: 20.1% higher odds of insufficient sleep and 9.67 min less total sleep.
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Große Studie, keine Metaanalyse47,628 adults, more than 7 million sleep records, 68 countries
Minor K, Bjerre-Nielsen A, Jonasdottir SS, et al. (2022). Rising temperatures erode human sleep globally. One Earth. doi.org/10.1016/j.oneear.2022.04.008
Higher temperatures erode sleep; suboptimal temperatures are projected to cost 50–58 hours of sleep per person per year by 2099.
Wochentag
Am Wochenende schlafen Menschen später und länger: ältere Jugendliche bis zu eine Stunde, Erwachsene 20–35 Minuten mehr, in gepoolten Daten und 73 Millionen gemessenen Nächten. Für einen eigenen „Sonntagnacht-Effekt“ gibt es keine Studie, daher belohnt die Prognose nur Nächte vor freien Tagen.
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Metaanalyse79 studies in the meta-analysis (18 on weekday vs weekend)
Galland BC, Short MA, Terrill P, et al. (2018). Establishing normal values for pediatric nighttime sleep measured by actigraphy: a systematic review and meta-analysis. Sleep. doi.org/10.1093/sleep/zsy017
At ages 15–18, total sleep on weekends or non-school days was 56 min longer; sleep onset about 1 h and wake-up about 2 h later.
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Metaanalyse41 surveys
Gradisar M, Gardner G, Dohnt H (2011). Recent worldwide sleep patterns and problems during adolescence: a review and meta-analysis of age, region, and sleep. Sleep Medicine. doi.org/10.1016/j.sleep.2010.11.008
Weekend bedtimes were 2+ hours later worldwide, with more total sleep.
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Metaanalyse37 studies
Rodríguez Ferrante G, Lee F, Leone MJ (2024). Effects of school start time and its interaction with the solar clock on adolescents' chronotype and sleep: a systematic review and meta-analysis. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2024.101988
Later school start times were linked to longer weekday sleep, later sleep timing and less social jetlag.
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Metaanalyse30 studies, 92,977 data points
Olds T, Blunden S, Petkov J, Forchino F (2010). The relationships between sex, age, geography and time in bed in adolescents: a meta-analysis of data from 23 countries. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2009.12.002
Time in bed fell by 14 min per year of age on school days and 7 min on non-school days.
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Große Studie, keine Metaanalyse116,879 adults, about 73 million nights
Scott H, Lechat B, Sansom K, et al. (2025). Variations in sleep duration and timing: weekday and seasonal variations in sleep are common in an analysis of 73 million nights from an objective sleep tracker. Sleep. doi.org/10.1093/sleep/zsaf099
Sleep was 20–35 min longer on weekends; bedtime 30–40 min and wake-up 60–80 min later.
Zeitumstellung
Noch keine Metaanalyse hat Schlafdaten rund um die Zeitumstellung zusammengefasst. Große Tracker-Studien stimmen für die Nacht selbst überein: etwa eine Stunde weniger Schlaf bei der Umstellung im Frühjahr und etwa eine halbe Stunde mehr im Herbst, mit etwas Nachholschlaf in den Tagen danach.
Keine Metaanalyse gefunden.
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Große Studie, keine Metaanalyse11,780 adults
de Lange MA, Richmond RC, Birnie K, et al. (2025). The effects of daylight saving time clock changes on accelerometer-measured sleep duration in the UK Biobank. Journal of Sleep Research. doi.org/10.1111/jsr.14335
Spring: sleep on the clock-change night 65 min shorter (95% CI −72 to −58). Autumn: 33 min longer (27–39).
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Große Studie, keine Metaanalyse24,250 wearable users, 10,350,760 sleep episodes
Heacock RM, Capodilupo ER, Czeisler MÉ, et al. (2022). Sleep and Alcohol Use Patterns During Federal Holidays and Daylight Saving Time Transitions in the United States. Frontiers in Physiology. doi.org/10.3389/fphys.2022.884154
Significant differences in sleep compared with baseline on most clock-change transitions.
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Systematische Übersicht157 studies, 36 countries (no pooling: data too varied)
Steponenaite A, Wallraff JP, Wild U, et al. (2026). A systematic review of epidemiological studies into daylight-saving time & health identifying beneficial & adverse effects. European Journal of Epidemiology. doi.org/10.1007/s10654-026-01372-8
Standard time may be linked to shorter winter sleep; limited studies prevent clear conclusions on other sleep measures.
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Systematische Übersicht27 studies (no pooling)
Romigi A, Franco V, Scoditti E, et al. (2025). The effects of daylight saving time and clock time transitions on sleep and sleepiness: a systematic review. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2025.102161
The switch to DST was linked to worse sleep duration and quality and more sleepiness, especially in evening types; findings were heterogeneous.
Große nächtliche Ereignisse
Eine Metaanalyse gibt es nicht, aber große Tracker-Datensätze zeigen klare Effekte für eine Nacht: 13–16 Minuten weniger Schlaf nach dem Brexit-Votum und der US-Wahl 2016 und etwa anderthalb Stunden späteres Zubettgehen an Silvester. Die Prognose nutzt einen von Hand gepflegten Kalender solcher Nächte.
Keine Metaanalyse gefunden.
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Große Studie, keine Metaanalyse10.5 million sleep records from more than 69,000 app users
Anýž J, Bakštein E, Dudysová D, et al. (2019). No wink of sleep: Population sleep characteristics in response to the brexit poll and the 2016 U.S. presidential election. Social Science & Medicine. doi.org/10.1016/j.socscimed.2018.12.024
Mean sleep fell by 16 min 21 s in the UK after the Brexit vote and by 12 min 49 s in the US after the 2016 election.
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Große Studie, keine Metaanalyse24,250 wearable users, 10,350,760 sleep episodes
Heacock RM, Capodilupo ER, Czeisler MÉ, et al. (2022). Sleep and Alcohol Use Patterns During Federal Holidays and Daylight Saving Time Transitions in the United States. Frontiers in Physiology. doi.org/10.3389/fphys.2022.884154
On New Year’s Eve sleep onset was 88.9 min later, wake time 78.1 min later, and alcohol use 138% more common.
Ramadan
Im Ramadan ist der Nachtschlaf durchweg kürzer (in der größten Metaanalyse um etwa 0,8 Stunden) und später, mit mehr Nickerchen am Tag. Die Metaanalysen sind klein und betreffen vor allem junge Männer und Sportler, daher ist der Effekt auf ganze Bevölkerungen weniger sicher. Die Prognose berücksichtigt ihn in mehrheitlich muslimischen Ländern.
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Metaanalyse24 studies; 646 participants; 12 countries
Faris MAE, Jahrami HA, Alhayki FA, et al. (2020). Effect of diurnal fasting on sleep during Ramadan: a systematic review and meta-analysis. Sleep and Breathing. doi.org/10.1007/s11325-019-01986-1
Total sleep time fell from 7.2 h to 6.4 h (Hedges’ g −0.43); daytime sleepiness changed negligibly.
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Metaanalyse18 papers; 298 participants
Trabelsi K, Ammar A, Glenn JM, et al. (2022). Does observance of Ramadan affect sleep in athletes and physically active individuals? A systematic review and meta-analysis. Journal of Sleep Research. doi.org/10.1111/jsr.13503
Sleep duration decreased (g −0.766); sleep quality score worsened from 4.05 to 5.35; daytime naps got longer.
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Metaanalyse13 articles
Trabelsi K, Bragazzi N, Zlitni S, et al. (2020). Observing Ramadan and sleep-wake patterns in athletes: a systematic review, meta-analysis and meta-regression. British Journal of Sports Medicine. doi.org/10.1136/bjsports-2018-099898
Total sleep time decreased (effect size −0.97); daytime sleepiness unchanged.
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Metaanalyse14 studies
El-Jaziz A, Lotfi S (2025). Sleep Patterns Among Athletes and Non-Athletes During Ramadan intermittent fasting: Systematic Review, Meta-Analysis and Meta-Regression. Annali di Igiene. doi.org/10.7416/ai.2025.2675
Sleep duration and efficiency were negatively affected; latency and disturbance were not.
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Große Studie, keine Metaanalyse24,541 adults in 27 countries
Khan MAB, BaHammam AS, Amanatullah A, et al. (2023). Examination of sleep in relation to dietary and lifestyle behaviors during Ramadan: A multi-national study using structural equation modeling among 24,500 adults amid COVID-19. Frontiers in Nutrition. doi.org/10.3389/fnut.2023.1040355
Sleeping 7–9 h during Ramadan was associated with physical activity and plant protein intake; smoking with worse sleep.
Luftverschmutzung
Metaanalysen mit über vier Millionen Menschen zeigen: mehr Feinstaub (PM2,5) und NO2 gehen mit etwa 6–30 % höherer Wahrscheinlichkeit für schlechten Schlaf pro 10 µg/m³ einher, und mit schwererer Schlafapnoe. Fast alles betrifft Langzeitbelastung, daher gewichtet die Prognose belastete Nächte nur gering.
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Metaanalyse11 studies; 3,328,183 participants
Cao Z, Shi X, Sun L, et al. (2025). Association between exposure to air pollution and risk of Dyssomnia: a systematic review and meta-analysis. International Archives of Occupational and Environmental Health. doi.org/10.1007/s00420-025-02137-8
Odds of sleep problems per 10 µg/m³: PM2.5 1.29, PM10 1.13, NO2 1.06, O3 1.16; SO2 not significant.
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Metaanalyse25 studies; at least 1,262,210 adults
Wang M, Cho Y, Li J (2025). Air pollution and sleep health in middle-aged and older adults: A systematic review and meta-analysis. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2025.102136
Long-term exposure, per 10 µg/m³: PM2.5 OR 1.27, PM1 1.37, PM10 1.10; NO2 (per 5 µg/m³) 1.07; ozone not significant.
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Metaanalyse20 studies (13 pooled)
He Y, Wang S, Zhang T, et al. (2026). Does short- and long-term exposure to air pollution affect the risk of obstructive sleep apnea? A systematic review and meta-analysis. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2025.102225
Per 10 µg/m³ PM2.5, the apnea-hypopnea index rose 2.25% short-term and 13.33% long-term (high certainty).
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Metaanalyse10 studies
Zhao Y, Zhang S, Guo L, et al. (2024). Association between Air Pollutants and the Risk of Sleep Disorders: A Systematic Review and Meta-analysis. Aerosol and Air Quality Research. doi.org/10.4209/aaqr.230197
Per 10 µg/m³: PM2.5 OR 2.50 (an outlier compared with other meta-analyses), PM10 1.15, NO2 1.36.
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Metaanalyse12 studies (4 pooled)
Alrahbeni T, Gupta JK, Alkhouri A, et al. (2024). Association of air pollution with risk and severity of obstructive sleep apnea: A systematic review and meta-analysis. Neurotoxicology. doi.org/10.1016/j.neuro.2024.04.005
No significant link with sleep apnea risk (PM2.5 OR 0.987, NO2 1.095), though several studies linked pollution to greater severity.
Pollen und Heuschnupfen
Menschen mit Heuschnupfen berichten in Daten über Millionen Menschen durchweg von schlechterem Schlaf, mehr Schlaflosigkeit, Schnarchen und Tagesmüdigkeit; eine Behandlung der Nase verbessert in Studien den Schlaf. Die Studien betreffen Heuschnupfen an sich, nicht tägliche Pollenwerte, daher markiert die Prognose nur Tage mit hohem Pollenflug.
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Metaanalyse27 articles; 240,706,026 patients (19,444,043 with allergic rhinitis)
Liu J, Zhang X, Zhao Y, et al. (2020). The association between allergic rhinitis and sleep: A systematic review and meta-analysis of observational studies. PLoS One. doi.org/10.1371/journal.pone.0228533
Worse sleep quality, more sleep medication and lower sleep efficiency; associated with insomnia, snoring, sleep apnea and daytime sleepiness. Sleep duration did not differ. Certainty low to very low.
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Metaanalyse49 studies; 18,269,265 individuals
Safia A, Elhadi UA, Karam M, et al. (2024). A meta-analysis of the prevalence and risk of mental health problems in allergic rhinitis patients. Journal of Psychosomatic Research. doi.org/10.1016/j.jpsychores.2024.111813
Among patients: poor sleep quality 48%, insomnia 36%, sleep under 7 h 59%; higher risk of insomnia and sleep impairment than controls.
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Metaanalyse17 studies; 32,907 children
Li Q, Zhong Q, Kong X, et al. (2026). Allergic rhinitis in children in relation to sleep breathing disorders: a meta-analysis. International Journal of Pediatric Otorhinolaryngology. doi.org/10.1016/j.ijporl.2026.112902
Allergic rhinitis OR 2.24 in habitual snorers, 1.49 in sleep-disordered breathing, 1.23 in sleep apnea.
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Metaanalyse12 studies; 19,203 participants
Ferreira NB, Ponte A, Grande AC, et al. (2025). Frequency of obstructive sleep apnea in patients with asthma or allergic rhinitis: a systematic review and meta-analysis. Sleep Medicine. doi.org/10.1016/j.sleep.2025.106705
Sleep apnea more frequent with allergic rhinitis (OR 2.4; 95% CI 1.1–5.3).
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Metaanalyse44 studies; 6,086 participants
Cao Y, Wu S, Zhang L, et al. (2018). Association of allergic rhinitis with obstructive sleep apnea: A meta-analysis. Medicine (Baltimore). doi.org/10.1097/MD.0000000000013783
Children with sleep-disordered breathing had 2.12 times higher odds of allergic rhinitis.
Lärm in der Nacht
Nächtlicher Verkehrslärm ist einer der am besten untersuchten Schlaffaktoren: Die Wahrscheinlichkeit starker Störung verdoppelt sich etwa pro 10 dB mehr, und Schlaflabormessungen bestätigen mehr Aufwachreaktionen. Für Gewitter, Sturm und Feuerwerk gibt es keine eigene Studie, daher gewichtet die Prognose sie gering.
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Metaanalyse74 studies
Basner M, McGuire S (2018). WHO Environmental Noise Guidelines for the European Region: A Systematic Review on Environmental Noise and Effects on Sleep. International Journal of Environmental Research and Public Health. doi.org/10.3390/ijerph15030519
Self-reported sleep disturbance per 10 dB night noise (when the question named noise): OR 1.94 aircraft, 2.13 road, 3.06 rail; awakenings per 10 dBA indoor peak: OR 1.35–1.36.
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Metaanalyse68 observational studies, 152 effect sizes
Li Z (2026). Environmental Noise Exposure and the Risk of Sleep Disturbance: A Systematic Review and Meta-Analysis. Noise & Health. doi.org/10.4103/nah.nah_222_25
Correlation with sleep disturbance: aircraft r = 0.26, railway r = 0.21, road r = 0.15 (high certainty; very high heterogeneity).
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Metaanalyse36 studies, about 173,000 responses
Smith MG, Cordoza M, Basner M (2022). Environmental Noise and Effects on Sleep: An Update to the WHO Systematic Review and Meta-Analysis. Environmental Health Perspectives. doi.org/10.1289/EHP10197
Odds of being highly sleep disturbed per 10 dB night noise: aircraft 2.18, road 2.52, railway 2.97.
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Metaanalyse15 articles
Godono A, Ciocan C, Clari M, et al. (2023). Association between exposure to wind turbines and sleep disorders: A systematic review and meta-analysis. International Journal of Hygiene and Environmental Health. doi.org/10.1016/j.ijheh.2023.114273
Sleep disorders in 34% of people living near wind turbines, falling with distance; evidence quality poor.
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Metaanalyse9 studies reviewed, 5 meta-analysed
Liebich T, Lack L, Hansen K, et al. (2021). A systematic review and meta-analysis of wind turbine noise effects on sleep using validated objective and subjective sleep assessments. Journal of Sleep Research. doi.org/10.1111/jsr.13228
No significant effect on objectively measured sleep (e.g. sleep efficiency g = −0.25, not significant).
Luftfeuchtigkeit
Zur Luftfeuchtigkeit gibt es keine gepoolten Belege. Große Datensätze deuten an, dass sehr trockene und sehr feuchte Luft mit kürzerem oder unruhigerem Schlaf einhergehen, und feuchte Luft verstärkt Hitze, weil Schweiß schlechter kühlt. Daher zählt die Prognose Schwüle nur in warmen Nächten und gering.
Keine Metaanalyse gefunden.
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Große Studie, keine Metaanalyse47,628 adults, 68 countries
Minor K, Bjerre-Nielsen A, Jonasdottir SS, et al. (2022). Rising temperatures erode human sleep globally. One Earth. doi.org/10.1016/j.oneear.2022.04.008
Humidity results are not stated in the abstract; a later review describes both low and high humidity as reducing sleep duration in this dataset.
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Große Studie, keine Metaanalyse8,611 sleep-clinic patients (mostly with sleep apnea)
Tung NT, Lee YL, Liu WT, et al. (2025). Impact of PM2.5, relative humidity, and temperature on sleep quality: a cross-sectional study in Taipei. Annals of Medicine. doi.org/10.1080/07853890.2024.2448733
Higher relative humidity was associated with changes in non-REM sleep stages and more arousals in all seasons.
Vollmond
Zu Mond und Schlaf gibt es keine Metaanalyse. Einige kleine Laborstudien fanden etwas leichteren oder kürzeren Schlaf um Vollmond, die größten Datensätze aber keinen Effekt oder etwa 5 Minuten, und Forschende haben einen Publikationsbias belegt. Die Prognose zeigt den Mond, gewichtet ihn aber kaum.
Keine Metaanalyse gefunden.
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Große Studie, keine Metaanalyse5,812 children, 12 countries, 33,710 accelerometer days
Chaput JP, Weippert M, LeBlanc AG, et al. (2016). Are Children Like Werewolves? Full Moon and Its Association with Sleep and Activity Behaviors in an International Sample of Children. Frontiers in Pediatrics. doi.org/10.3389/fped.2016.00024
Sleep was about 5 min shorter at full moon than at new moon; no other differences.
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Große Studie, keine Metaanalyse2,125 adults with home polysomnography
Haba-Rubio J, Marques-Vidal P, Tobback N, et al. (2015). Bad sleep? Don't blame the moon! A population-based study. Sleep Medicine. doi.org/10.1016/j.sleep.2015.08.002
No significant differences between lunar phases in subjective or objective sleep.
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Große Studie, keine MetaanalysePooled reanalysis of sleep-lab datasets (no abstract)
Cordi M, Ackermann S, Bes FW, et al. (2014). Lunar cycle effects on sleep and the file drawer problem. Current Biology. doi.org/10.1016/j.cub.2014.05.017
No statistically relevant link between sleep and lunar phase; publication bias may explain earlier positive findings.
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Große Studie, keine MetaanalyseSmall laboratory sample (not stated in abstract)
Cajochen C, Altanay-Ekici S, Münch M, et al. (2013). Evidence that the lunar cycle influences human sleep. Current Biology. doi.org/10.1016/j.cub.2013.06.029
Around full moon, deep-sleep EEG activity was 30% lower and total sleep 20 min shorter. The most-cited positive study.
Kollektiver Stress
Während der COVID-19-Pandemie hatten in Metaanalysen mit bis zu einer halben Million Menschen etwa ein Fünftel bis zwei Fünftel der Bevölkerung Schlafprobleme, Lockdowns verstärkten das. Nach Erdbeben und Krieg zeigen große Einzelstudien deutliche, meist vorübergehende Anstiege der Schlaflosigkeit. Ein verlässliches tägliches Signal für Nachrichtenstress haben wir noch nicht, daher steht dies hier, wird aber in der Prognose nicht verwendet.
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Metaanalyse250 studies; 493,475 participants; 49 countries
Jahrami HA, Alhaj OA, Humood AM, et al. (2022). Sleep disturbances during the COVID-19 pandemic: A systematic review, meta-analysis, and meta-regression. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2022.101591
Global prevalence of sleep disturbances 40.49%; general population 36.73%; higher during lockdown (42.49% vs 37.97%).
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Metaanalyse177 papers; 345,270 participants; 39 countries
Alimoradi Z, Broström A, Tsang HWH, et al. (2021). Sleep problems during COVID-19 pandemic and its' association to psychological distress: A systematic review and meta-analysis. EClinicalMedicine. doi.org/10.1016/j.eclinm.2021.100916
Sleep problems in 18% of the general population, 31% of healthcare workers and 57% of COVID-19 patients.
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Metaanalyse154 studies
Ceolin C, Limongi F, Siviero P, et al. (2024). Changes in Sleep Duration and Sleep Timing in the General Population from before to during the First COVID-19 Lockdown: A Systematic Review and Meta-Analysis. International Journal of Environmental Research and Public Health. doi.org/10.3390/ijerph21050583
Sleep duration rose slightly during lockdown (SMD 0.25); sleep timing was moderately delayed and napping increased.
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Metaanalyse139 studies
Scarpelli S, Zagaria A, Ratti PL, et al. (2022). Subjective sleep alterations in healthy subjects worldwide during COVID-19 pandemic: A systematic review, meta-analysis and meta-regression. Sleep Medicine. doi.org/10.1016/j.sleep.2022.07.012
Pooled PSQI 6.73 (in the poor-sleep range); pooled insomnia severity 8.44 (subthreshold).
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Metaanalyse66 studies; 42,956 participants
Carpinelli LP, Gauer LE, Soares VHD, et al. (2026). Insomnia and poor sleep quality in refugee and asylum-seeking populations: A systematic review and meta-analysis. PLoS ONE. doi.org/10.1371/journal.pone.0352964
Sleep problems in 43.2% of adults and 36.4% of children; pooled insomnia severity 13.76.
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Große Studie, keine MetaanalyseNationwide random samples of about 1,250 people per wave
Itoh Y, Takeshima M, Kaneita Y, et al. (2022). Associations Between the 2011 Great East Japan Earthquake and Tsunami and the Sleep and Mental Health of Japanese People: A 3-Wave Repeated Survey. Nature and Science of Sleep. doi.org/10.2147/nss.s338095
Insomnia rose from 11.7% to 21.2% four months after the disaster and returned to 10.6% at 18 months.
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Große Studie, keine MetaanalyseNational survey N = 6,474 plus three further samples
Zak U, Choshen-Hillel S, Hochner H, et al. (2025). Tired of war: Changes in the sleep of the Israeli civilian population in the wake of the Israel-Hamas war. International Journal of Clinical and Health Psychology. doi.org/10.1016/j.ijchp.2025.100596
Short sleep (under 6 h) up 19–22%, clinical insomnia up 16–19%; most effects persisted at 6 months.
Tageslicht und Jahreszeit
In den dunkleren Monaten schlafen Menschen etwas länger, bei langen Tagen weniger, und mehr Abendlicht (etwa am Westrand einer Zeitzone) geht mit kürzerem Schlaf einher. Die Effekte sind klein, etwa 10–20 Minuten, und die wenigen Metaanalysen widersprechen sich, daher nutzt die Prognose dies noch nicht.
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Metaanalyse18 studies, 986 participants
Shao Y, Li Y, Wang N, et al. (2024). Effect of daily light exposure on sleep in polar regions: A meta-analysis. Journal of Sleep Research. doi.org/10.1111/jsr.14144
Intense summer light reduced sleep time and efficiency; moderate spring/autumn light delayed sleep.
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Metaanalyse17 studies (11 on season), 1,951 adults
Ferguson T, Curtis R, Fraysse F, et al. (2021). Annual, seasonal, cultural and vacation patterns in sleep, sedentary behaviour and physical activity: a systematic review and meta-analysis. BMC Public Health. doi.org/10.1186/s12889-021-11298-3
Sleep was highest in autumn (+12 min above the yearly mean), but not statistically significant.
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MetaanalyseNot stated in abstract
Weaver RG, Hensing C, Armstrong B, Adams EL, Beets M (2022). Seasonal Shifts in Children's Sedentary Behaviors, Physical Activity, and Sleep: A Systematic Review and Meta-Analysis. Pediatric Clinics of North America. doi.org/10.1016/j.pcl.2022.04.005
The authors note a paucity of data on seasonal variation in sleep.
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Metaanalyse53 studies, 1,154 participants
van Maanen A, Meijer AM, van der Heijden KB, Oort FJ (2016). The effects of light therapy on sleep problems: A systematic review and meta-analysis. Sleep Medicine Reviews. doi.org/10.1016/j.smrv.2015.08.009
Light therapy improved sleep problems overall (g = 0.39) and insomnia (g = 0.47). Indirect evidence: light as treatment.
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Große Studie, keine Metaanalyse416,731 adults
DelRosso LM, Vodapally M (2026). Seasonal and geographic variation in sleep duration among U.S. adults: Evidence from the 2022 BRFSS. Chronobiology International. doi.org/10.1080/07420528.2025.2611866
Monthly variation was modest (7.82 h in April to 8.13 h in January); latitude and time-zone differences were small.
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Große Studie, keine MetaanalyseUS time zone border comparison
Giuntella O, Mazzonna F (2019). Sunset time and the economic effects of social jetlag: evidence from US time zone borders. Journal of Health Economics. doi.org/10.1016/j.jhealeco.2019.03.007
One extra hour of evening natural light reduced sleep by 19 min on average.
Wetterfronten und Luftdruck
Viele Menschen sagen, Wetterfronten stören ihren Schlaf, aber keine Metaanalyse hat Luftdruck und Schlaf untersucht, und die wenigen direkten Studien sind klein und widersprüchlich. Luftdruck hängt leicht mit Migräne zusammen, mit Schmerzen aber nicht durchgängig. Die Prognose zeigt große Druckschwankungen, damit eure Stimmen die Idee prüfen können, sie fließen aber nicht in den Wert ein.
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Metaanalyse31 studies (about migraine, not sleep)
Li S, Liu Q, Ma M, et al. (2025). Association between weather conditions and migraine: a systematic review and meta-analysis. Journal of Neurology. doi.org/10.1007/s00415-025-13078-0
Ambient pressure was significantly associated with migraine attacks (OR 1.07, 95% CI 1.01–1.15).
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Metaanalyse11 studies, 15,315 participants (about pain, not sleep)
Ferreira ML, Hunter DJ, Fu A, et al. (2024). Come rain or shine: Is weather a risk factor for musculoskeletal pain? A systematic review with meta-analysis of case-crossover studies. Seminars in Arthritis and Rheumatism. doi.org/10.1016/j.semarthrit.2024.152392
No association between air pressure and rheumatoid arthritis, knee or low back pain.
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Große Studie, keine Metaanalyse7,523 sleep-lab patients
Cassol CM, Martinez D, da Silva FABS, et al. (2012). Is sleep apnea a winter disease?: meteorologic and sleep laboratory evidence collected over 1 decade. Chest. doi.org/10.1378/chest.11-0493
Sleep apnea severity correlated inversely with temperature and directly with atmospheric pressure.
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Große Studie, keine Metaanalyse537 sleep-lab patients
Doherty MJ, Youn CE, Haltiner AM, et al. (2010). Do weather-related ambient atmospheric-pressure changes influence sleep disordered breathing?. Journal of Clinical Sleep Medicine. doi.org/10.5664/jcsm.27764
Obstructive apnea rose with lower pressure, the opposite direction to the study above.
Weltraumwetter (geomagnetische Stürme)
Wir haben keine Studie gefunden, die menschlichen Schlaf in Abhängigkeit von geomagnetischer Aktivität gemessen hat, nur kleine, ältere Studien mit niedrigerem Melatonin (einem Schlafhormon) bei geomagnetischen Störungen. Die Prognose zeigt den Kp-Index zur Information, er beeinflusst den Wert aber nicht.
Keine Metaanalyse gefunden.
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Große Studie, keine Metaanalyse153 utility workers (melatonin measured, not sleep)
Burch JB, Reif JS, Yost MG (2008). Geomagnetic activity and human melatonin metabolite excretion. Neuroscience Letters. doi.org/10.1016/j.neulet.2008.04.031
Higher geomagnetic activity was associated with lower nocturnal melatonin-metabolite levels.
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Große Studie, keine Metaanalyse132 utility workers (melatonin measured, not sleep)
Burch JB, Reif JS, Yost MG (1999). Geomagnetic disturbances are associated with reduced nocturnal excretion of a melatonin metabolite in humans. Neuroscience Letters. doi.org/10.1016/s0304-3940(99)00308-0
Overnight melatonin-metabolite excretion was lower on geomagnetically disturbed days.
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Große Studie, keine Metaanalyse25 healthy subjects (melatonin measured, not sleep)
Weydahl A, Sothern RB, Cornélissen G, et al. (2001). Geomagnetic activity influences the melatonin secretion at latitude 70 degrees N. Biomedicine & Pharmacotherapy. doi.org/10.1016/s0753-3322(01)90006-x
Large geomagnetic changes significantly decreased salivary melatonin.
Quellen geprüft am 9. Oktober 2026. Fehler oder neuere Studie gefunden? Schreib uns über das Formular auf der Startseite.