Menu
Home Explore People Places Arts History Plants & Animals Science Life & Culture Technology
On this page
Global surface temperature
In situ measurements that provides the temperature of Earth's climate system

Global surface temperature (GST) is the average temperature of Earth's surface. More precisely, it is the weighted average of the temperatures over the ocean and land. The former is also called sea surface temperature and the latter is called surface air temperature. Temperature data comes mainly from weather stations and satellites. To estimate data in the distant past, proxy data can be used for example from tree rings, corals, and ice cores. Observing the rising GST over time is one of the many lines of evidence supporting the scientific consensus on climate change, which is that human activities are causing climate change. Alternative terms for the same thing are global mean surface temperature (GMST) or global average surface temperature.

Series of reliable temperature measurements in some regions began in the 1850—1880 time frame (this is called the instrumental temperature record). The longest-running temperature record is the Central England temperature data series, which starts in 1659. The longest-running quasi-global records start in 1850. For temperature measurements in the upper atmosphere a variety of methods can be used. This includes radiosondes launched using weather balloons, a variety of satellites, and aircraft. Satellites can monitor temperatures in the upper atmosphere but are not commonly used to measure temperature change at the surface. Ocean temperatures at different depths are measured to add to global surface temperature datasets. This data is also used to calculate the ocean heat content.

Through 1940, the average annual temperature increased, but was relatively stable between 1940 and 1975. Since 1975, it has increased by roughly 0.15 °C to 0.20 °C per decade, to at least 1.1 °C (1.9 °F) above 1880 levels. The current annual GMST is about 15 °C (59 °F), though monthly temperatures can vary almost 2 °C (4 °F) above or below this figure.

The global average and combined land and ocean surface temperature show a warming of 1.09 °C (range: 0.95 to 1.20 °C) from 1850–1900 to 2011–2020, based on multiple independently produced datasets.: 5  The trend is faster since the 1970s than in any other 50-year period over at least the last 2000 years.: 8  Within that upward trend, some variability in temperatures happens because of natural internal variability (for example due to El Niño–Southern Oscillation).

The global temperature record shows the changes of the temperature of the atmosphere and the oceans through various spans of time. There are numerous estimates of temperatures since the end of the Pleistocene glaciation, particularly during the current Holocene epoch. Some temperature information is available through geologic evidence, going back millions of years. More recently, information from ice cores covers the period from 800,000 years ago until now. Tree rings and measurements from ice cores can give evidence about the global temperature from 1,000-2,000 years before the present until now.

Related Image Collections Add Image
We don't have any YouTube videos related to Global surface temperature yet.
We don't have any PDF documents related to Global surface temperature yet.
We don't have any Books related to Global surface temperature yet.

Definition

The IPCC Sixth Assessment Report defines global mean surface temperature (GMST) as the "estimated global average of near-surface air temperatures over land and sea ice, and sea surface temperature (SST) over ice-free ocean regions, with changes normally expressed as departures from a value over a specified reference period".10: 2231 

Put simply, the global surface temperature (GST) is calculated by averaging the temperature at the surface layer of the ocean (sea surface temperature) and over land (surface air temperature).

In comparison, the global mean surface air temperature (GSAT) is the "global average of near-surface air temperatures over land, oceans and sea ice. Changes in GSAT are often used as a measure of global temperature change in climate models."11: 2231 

Global temperature can have different definitions. There is a small difference between air and surface temperatures.12: 12 

Temperature data from 1850 to the present time

Total warming and trends

See also: Climate change § Global temperature rise

Changes in global temperatures over the past century provide evidence for the effects of increasing greenhouse gases. When the climate system reacts to such changes, climate change follows. Measurement of the GST is one of the many lines of evidence supporting the scientific consensus on climate change, which is that humans are causing warming of Earth's climate system.

The global average and combined land and ocean surface temperature, show a warming of 1.09 °C (range: 0.95 to 1.20 °C) from 1850–1900 to 2011–2020, based on multiple independently produced datasets.13: 5  The trend is faster since the 1970s than in any other 50-year period over at least the last 2000 years.14: 8 

Most of the observed warming occurred in two periods: around 1900 to around 1940 and around 1970 onwards;15 the cooling/plateau from 1940 to 1970 has been mostly attributed to sulfate aerosol.1617: 207  Some of the temperature variations over this time period may also be due to ocean circulation patterns.18

Land air temperatures are rising faster than sea surface temperatures. Land temperatures have warmed by 1.59 °C (range: 1.34 to 1.83 °C) from 1850–1900 to 2011–2020, while sea surface temperatures have warmed by 0.88 °C (range: 0.68 to 1.01 °C) over the same period.19: 5 

For 1980 to 2020, the linear warming trend for combined land and sea temperatures has been 0.18 °C to 0.20 °C per decade, depending on the data set used.20: Table 2.4 

It is unlikely that any uncorrected effects from urbanisation, or changes in land use or land cover, have raised global land temperature changes by more than 10%.21: 189  However, larger urbanisation signals have been found locally in some rapidly urbanising regions, such as eastern China.22: Section 2.3.1.1.3 

This section is an excerpt from Effects of climate change § Changes in temperature.[edit]

Global warming affects all parts of Earth's climate system.23 Global surface temperatures have risen by 1.1 °C (2.0 °F). Scientists say they will rise further in the future.2425 The changes in climate are not uniform across the Earth. In particular, most land areas have warmed faster than most ocean areas. The Arctic is warming faster than most other regions.26 Night-time temperatures have increased faster than daytime temperatures.27 The impact on nature and people depends on how much more the Earth warms.28: 787 

Scientists use several methods to predict the effects of human-caused climate change. One is to investigate past natural changes in climate.29 To assess changes in Earth's past climate scientists have studied tree rings, ice cores, corals, and ocean and lake sediments.30 These show that recent temperatures have surpassed anything in the last 2,000 years.31 By the end of the 21st century, temperatures may increase to a level last seen in the mid-Pliocene. This was around 3 million years ago.32: 322  At that time, mean global temperatures were about 2–4 °C (3.6–7.2 °F) warmer than pre-industrial temperatures. The global mean sea level was up to 25 metres (82 ft) higher than it is today.33: 323  The modern observed rise in temperature and CO2 concentrations has been rapid. Even abrupt geophysical events in Earth's history do not approach current rates.34: 54 

Methods

The instrumental temperature record is a record of temperatures within Earth's climate based on direct measurement of air temperature and ocean temperature. Instrumental temperature records do not use indirect reconstructions using climate proxy data such as from tree rings and marine sediments.35

Global record from 1850 onwards

The period for which reasonably reliable instrumental records of near-surface land temperature exist with quasi-global coverage is generally considered to begin around 1850.36 Earlier records exist, but with sparser coverage, largely confined to the Northern Hemisphere, and less standardized instrumentation. (The longest-running temperature record is the Central England temperature data series, which starts in 1659).

The temperature data for the record come from measurements from land stations and ships. On land, temperatures are measured either using electronic sensors, or mercury or alcohol thermometers which are read manually, with the instruments being sheltered from direct sunlight using a shelter such as a Stevenson screen. The sea record consists of ships taking sea temperature measurements, mostly from hull-mounted sensors, engine inlets or buckets, and more recently includes measurements from moored and drifting buoys. The land and marine records can be compared.

Data is collected from thousands of meteorological stations, buoys and ships around the globe. Areas that are densely populated tend to have a high density of measurement points. In contrast, temperature observations are more spread out in sparsely populated areas such as polar regions and deserts, as well as in many regions of Africa and South America.37 In the past, thermometers were read manually to record temperatures. Nowadays, measurements are usually connected with electronic sensors which transmit data automatically. Surface temperature data is usually presented as anomalies rather than as absolute values.

Land and sea measurement and instrument calibration is the responsibility of national meteorological services. Standardization of methods is organized through the World Meteorological Organization (and formerly through its predecessor, the International Meteorological Organization).38

Most meteorological observations are taken for use in weather forecasts. Centers such as European Centre for Medium-Range Weather Forecasts show instantaneous map of their coverage; or the Hadley Centre show the coverage for the average of the year 2000. Coverage for earlier in the 20th and 19th centuries would be significantly less. While temperature changes vary both in size and direction from one location to another, the numbers from different locations are combined to produce an estimate of a global average change.

Satellite and balloon temperature records (1950s–present)

Main article: Satellite temperature measurement

Weather balloon radiosonde measurements of atmospheric temperature at various altitudes begin to show an approximation of global coverage in the 1950s. Since December 1978, microwave sounding units on satellites have produced data which can be used to infer temperatures in the troposphere.

Several groups have analyzed the satellite data to calculate temperature trends in the troposphere. Both the University of Alabama in Huntsville (UAH) and the private, NASA funded, corporation Remote Sensing Systems (RSS) find an upward trend. For the lower troposphere, UAH found a global average trend between 1978 and 2019 of 0.130 degrees Celsius per decade.39 RSS found a trend of 0.148 degrees Celsius per decade, to January 2011.40

In 2004 scientists found trends of +0.19  degrees Celsius per decade when applied to the RSS dataset.41 Others found 0.20  degrees Celsius per decade up between 1978 and 2005, since which the dataset has not been updated.42

The most recent climate model simulations give a range of results for changes in global-average temperature. Some models show more warming in the troposphere than at the surface, while a slightly smaller number of simulations show the opposite behaviour. There is no fundamental inconsistency among these model results and observations at the global scale.43

The satellite records used to show much smaller warming trends for the troposphere which were considered to disagree with model prediction; however, following revisions to the satellite records, the trends are now similar.

Global surface and ocean datasets

See also: Temperature measurement

The methods used to derive the principal estimates of global surface temperature trends are largely independent from each other and include:

These datasets are updated frequently, and are generally in close agreement with each other.

Absolute temperatures v. anomalies

Main article: Temperature anomaly

Records of global average surface temperature are usually presented as anomalies rather than as absolute temperatures. A temperature anomaly is measured against a reference value (also called baseline period or long-term average).47 Usually it is a period of 30 years. For example, a commonly used baseline period is 1951-1980. Therefore, if the average temperature for that time period was 15 °C, and the currently measured temperature is 17 °C, then the temperature anomaly is +2 °C.

Temperature anomalies are useful for deriving average surface temperatures because they tend to be highly correlated over large distances (of the order of 1000 km).48 In other words, anomalies are representative of temperature changes over large areas and distances. By comparison, absolute temperatures vary markedly over even short distances. A dataset based on anomalies will also be less sensitive to changes in the observing network (such as a new station opening in a particularly hot or cold location) than one based on absolute values will be.

The Earth's average surface absolute temperature for the 1961–1990 period has been derived by spatial interpolation of average observed near-surface air temperatures from over the land, oceans and sea ice regions, with a best estimate of 14 °C (57.2 °F).49 The estimate is uncertain, but probably lies within 0.5 °C of the true value.50 Given the difference in uncertainties between this absolute value and any annual anomaly, it's not valid to add them together to imply a precise absolute value for a specific year.51

Siting of temperature measurement stations

The U.S. National Weather Service Cooperative Observer Program has established minimum standards regarding the instrumentation, siting, and reporting of surface temperature stations.52 The observing systems available are able to detect year-to-year temperature variations such as those caused by El Niño or volcanic eruptions.53

Another study concluded in 2006, that existing empirical techniques for validating the local and regional consistency of temperature data are adequate to identify and remove biases from station records, and that such corrections allow information about long-term trends to be preserved.54 A study in 2013 also found that urban bias can be accounted for, and when all available station data is divided into rural and urban, that both temperature sets are broadly consistent.55

Warmest periods

Warmest years

The warmest years in the instrumental temperature record have occurred in the last decade (i.e. 2012-2021). The World Meteorological Organization reported in 2021 that 2016 and 2020 were the two warmest years in the period since 1850.56

Each individual year from 2015 onwards has been warmer than any prior year going back to at least 1850.57 In other words: each of the seven years in 2015-2021 was clearly warmer than any pre-2014 year.

The year 2023 was 1.48 °C hotter than the average in the years 1850-1900 according to the Copernicus Climate Change Service. It was declared as the warmest on record almost immediately after it ended and broke many climate records.5859

There is a long-term warming trend, and there is variability about this trend because of natural sources of variability (e.g. ENSO such as 2014–2016 El Niño event, volcanic eruption).60 Not every year will set a record but record highs are occurring regularly.

While record-breaking years can attract considerable public interest,61 individual years are less significant than the overall trend.6263 Some climatologists have criticized the attention that the popular press gives to warmest year statistics.6465

Based on the NOAA dataset (note that other datasets produce different rankings66), the following table lists the global combined land and ocean annually averaged temperature rank and anomaly for each of the 10 warmest years on record.67 For comparison: IPCC uses the mean of four different datasets and expresses the data relative to 1850–1900. Although global instrumental temperature records begin only in 1850, reconstructions of earlier temperatures based on climate proxies, suggest these recent years may be the warmest for several centuries to millennia, or longer.68: 2–6 

Top 10 warmest years (data from NOAA)(1880–2024)
RankYearAnomaly °CAnomaly °F
120241.292.23
220231.172.11
320161.001.80
420200.981.76
520190.951.71
620150.931.67
720170.911.64
820220.861.55
920210.841.51
1020180.821.48

Warmest decades

Numerous drivers have been found to influence annual global mean temperatures. An examination of the average global temperature changes by decades reveals continuing climate change: each of the last four decades has been successively warmer at the Earth's surface than any preceding decade since 1850. The most recent decade (2011-2020) was warmer than any multi-centennial period in the past 11,700 years.69: 2–6 

The following chart is from NASA data of combined land-surface air and sea-surface water temperature anomalies.70

Combined land-surface air and sea-surface water temperature anomalies (data from NASA)
YearsTemperature anomaly, °C (°F) from 1951 to 1980 meanChange from previous decade, °C (°F)
1880–1889−0.274 °C (−0.493 °F)N/A
1890–1899−0.254 °C (−0.457 °F)+0.020 °C (0.036 °F)
1900–1909−0.259 °C (−0.466 °F)−0.005 °C (−0.009 °F)
1910–1919−0.276 °C (−0.497 °F)−0.017 °C (−0.031 °F)
1920–1929−0.175 °C (−0.315 °F)+0.101 °C (0.182 °F)
1930–1939−0.043 °C (−0.077 °F)+0.132 °C (0.238 °F)
1940–19490.035 °C (0.063 °F)+0.078 °C (0.140 °F)
1950–1959−0.02 °C (−0.036 °F)−0.055 °C (−0.099 °F)
1960–1969−0.014 °C (−0.025 °F)+0.006 °C (0.011 °F)
1970–1979−0.001 °C (−0.002 °F)+0.013 °C (0.023 °F)
1980–19890.176 °C (0.317 °F)+0.177 °C (0.319 °F)
1990–19990.313 °C (0.563 °F)+0.137 °C (0.247 °F)
2000–20090.513 °C (0.923 °F)+0.200 °C (0.360 °F)
2010–20190.753 °C (1.355 °F)+0.240 °C (0.432 °F)
2020–2029 (incomplete)1.028 °C (1.85 °F)+0.275 °C (0.50 °F)

Factors influencing global temperature

Further information: Causes of climate change and Climate variability and change

Factors that influence global temperature include:

  • Greenhouse gases trap outgoing radiation warming the atmosphere which in turn warms the land (greenhouse effect).
  • El Niño–Southern Oscillation (ENSO): El Niño generally tends to increase global temperatures. La Niña, on the other hand, usually causes years which are cooler than the short-term average.71 El Niño is the warm phase of the El Niño–Southern Oscillation (ENSO) and La Niña the cold phase. In the absence of other short-term influences such as volcanic eruptions, strong El Niño years are typically 0.1 °C to 0.2 °C warmer than the years immediately preceding and following them, and strong La Niña years 0.1 °C to 0.2 °C cooler. The signal is most prominent in the year in which the El Niño/La Niña ends.
  • Aerosols and volcanic eruptions: Aerosols diffuse incoming radiation generally cooling the planet. On a long-term basis, aerosols are primarily of anthropogenic origin, but major volcanic eruptions can produce quantities of aerosols which exceed those from anthropogenic sources over periods of time up to a few years. Volcanic eruptions which are sufficiently large to inject significant quantities of sulfur dioxide into the stratosphere can have a significant global cooling effect for one to three years after the eruption. This effect is most prominent for tropical volcanoes as the resultant aerosols can spread over both hemispheres. The largest eruptions of the last 100 years, such as the Mount Pinatubo eruption in 1991 and Mount Agung eruption in 1963-1964, have been followed by years with global mean temperatures 0.1 °C to 0.2 °C below long-term trends at the time.
  • Land use change like deforestation can increase greenhouse gases through burning biomass. Albedo can also be changed.
  • Incoming solar radiation varies very slightly, with the main variation controlled by the approximately 11-year solar magnetic activity cycle.

Robustness of evidence

There is a scientific consensus that climate is changing and that greenhouse gases emitted by human activities are the primary driver.72 The scientific consensus is reflected, for example, by the Intergovernmental Panel on Climate Change (IPCC), an international body which summarizes existing science, and the U.S. Global Change Research Program.73

Other reports and assessments

The U.S. National Academy of Sciences, both in its 2002 report to President George W. Bush, and in later publications, has strongly endorsed evidence of an average global temperature increase in the 20th century.74

The preliminary results of an assessment carried out by the Berkeley Earth Surface Temperature group and made public in October 2011, found that over the past 50 years the land surface warmed by 0.911 °C, and their results mirrors those obtained from earlier studies carried out by the NOAA, the Hadley Centre and NASA's GISS. The study addressed concerns raised by skeptics (more often: climate change deniers).7576 Those concerns included urban heat island effects and apparently poor station quality,77 and the "issue of data selection bias"78 and found that these effects did not bias the results obtained from these earlier studies.79808182

Internal climate variability and global warming

Further information: Causes of climate change and Climate variability and change

One of the issues that has been raised in the media is the view that global warming "stopped in 1998".8384 This view ignores the presence of internal climate variability.8586 Internal climate variability is a result of complex interactions between components of the climate system, such as the coupling between the atmosphere and ocean.87 An example of internal climate variability is the El Niño–Southern Oscillation (ENSO).8889 The El Niño in 1998 was particularly strong, possibly one of the strongest of the 20th century, and 1998 was at the time the world's warmest year on record by a substantial margin.

Cooling over the 2007 to 2012 period, for instance, was likely driven by internal modes of climate variability such as La Niña.90 The area of cooler-than-average sea surface temperatures that defines La Niña conditions can push global temperatures downward, if the phenomenon is strong enough.91 The slowdown in global warming rates over the 1998 to 2012 period is also less pronounced in current generations of observational datasets than in those available at the time in 2012. The temporary slowing of warming rates ended after 2012, with every year from 2015 onwards warmer than any year prior to 2015, but it is expected that warming rates will continue to fluctuate on decadal timescales through the 21st century.92: Box 3.1 

Trends and predictions

Further information: Climate change § Future warming and the carbon budget, and Climate change scenario

Each of the seven years in 2015-2021 was clearly warmer than any pre-2014 year, and this trend is expected to be true for some time to come (that is, the 2016 record will be broken before 2026 etc.). A decadal forecast by the World Meteorological Organisation issued in 2021 stated a probability of 40% of having a year above 1.5 C in the 2021-2025 period.93

Global warming is very likely to reach 1.0 °C to 1.8 °C by the late 21st century under the very low GHG emissions scenario. In an intermediate scenario global warming would reach 2.1 °C to 3.5 °C, and 3.3 °C to 5.7 °C under the very high GHG emissions scenario.94: SPM-17  These projections are based on climate models in combination with observations.95: TS-30 

Regional temperature changes

See also: Effects of climate change and Climate variability and change § Variability between regions

The changes in climate are not expected to be uniform across the Earth. In particular, land areas change more quickly than oceans, and northern high latitudes change more quickly than the tropics. There are three major ways in which global warming will make changes to regional climate: melting ice, changing the hydrological cycle (of evaporation and precipitation) and changing currents in the oceans.

Temperature estimates from prior to 1850

The global temperature record shows the fluctuations of the temperature of the atmosphere and the oceans through various spans of time. There are numerous estimates of temperatures since the end of the Pleistocene glaciation, particularly during the current Holocene epoch. Some temperature information is available through geologic evidence, going back millions of years. More recently, information from ice cores covers the period from 800,000 years ago until now. A study of the paleoclimate covers the time period from 12,000 years ago. Tree rings and measurements from ice cores can give evidence about the global temperature from 1,000-2,000 years ago. The most detailed information exists since 1850, when methodical thermometer-based records began. Modifications on the Stevenson-type screen were made for uniform instrument measurements around 1880.96

Tree rings and ice cores (from 1,000–2,000 years before present)

Further information: Temperature record of the last 2,000 years

Proxy measurements can be used to reconstruct the temperature record before the historical period. Quantities such as tree ring widths, coral growth, isotope variations in ice cores, ocean and lake sediments, cave deposits, fossils, ice cores, borehole temperatures, and glacier length records are correlated with climatic fluctuations. From these, proxy temperature reconstructions of the last 2000 years have been performed for the northern hemisphere, and over shorter time scales for the southern hemisphere and tropics.979899

Geographic coverage by these proxies is necessarily sparse, and various proxies are more sensitive to faster fluctuations. For example, tree rings, ice cores, and corals generally show variation on an annual time scale, but borehole reconstructions rely on rates of thermal diffusion, and small scale fluctuations are washed out. Even the best proxy records contain far fewer observations than the worst periods of the observational record, and the spatial and temporal resolution of the resulting reconstructions is correspondingly coarse. Connecting the measured proxies to the variable of interest, such as temperature or rainfall, is highly non-trivial. Data sets from multiple complementary proxies covering overlapping time periods and areas are reconciled to produce the final reconstructions.100101

Proxy reconstructions extending back 2,000 years have been performed, but reconstructions for the last 1,000 years are supported by more and higher quality independent data sets. These reconstructions indicate:102

  • global mean surface temperatures over the last 25 years have been higher than any comparable period since AD 1600, and probably since AD 900
  • there was a Little Ice Age centered on AD 1700
  • there was a Medieval Warm Period centered on AD 1000, but this was not a global phenomenon.103

Indirect historical proxies

As well as natural, numerical proxies (tree-ring widths, for example) there exist records from the human historical period that can be used to infer climate variations, including: reports of frost fairs on the Thames; records of good and bad harvests; dates of spring blossom or lambing; extraordinary falls of rain and snow; and unusual floods or droughts.104 Such records can be used to infer historical temperatures, but generally in a more qualitative manner than natural proxies.

Recent evidence suggests that a sudden and short-lived climatic shift between 2200 and 2100 BCE occurred in the region between Tibet and Iceland, with some evidence suggesting a global change. The result was a cooling and reduction in precipitation. This is believed to be a primary cause of the collapse of the Old Kingdom of Egypt.105

Paleoclimate (from 12,000 years before present)

Main article: Paleoclimatology

Many estimates of past temperatures have been made over Earth's history. The field of paleoclimatology includes ancient temperature records. As the present article is oriented toward recent temperatures, there is a focus here on events since the retreat of the Pleistocene glaciers. The 10,000 years of the Holocene epoch covers most of this period, since the end of the Northern Hemisphere's Younger Dryas millennium-long cooling. The Holocene Climatic Optimum was generally warmer than the 20th century, but numerous regional variations have been noted since the start of the Younger Dryas.

Ice cores (from 800,000 years before present)

Even longer term records exist for few sites: the recent Antarctic EPICA core reaches 800 kyr; many others reach more than 100,000 years. The EPICA core covers eight glacial/interglacial cycles. The NGRIP core from Greenland stretches back more than 100 kyr, with 5 kyr in the Eemian interglacial. Whilst the large-scale signals from the cores are clear, there are problems interpreting the detail, and connecting the isotopic variation to the temperature signal. 106

Ice core locations

The World Paleoclimatology Data Center (WDC) maintains the ice core data files of glaciers and ice caps in polar and low latitude mountains all over the world.

Ice core records from Greenland

As a paleothermometry, the ice core in central Greenland showed consistent records on the surface-temperature changes.107 According to the records, changes in global climate are rapid and widespread. Warming phase only needs simple steps, however, the cooling process requires more prerequisites and bases.108 Also, Greenland has the clearest record of abrupt climate changes in the ice core, and there are no other records that can show the same time interval with equally high time resolution.109

When scientists explored the trapped gas in the ice core bubbles, they found that the methane concentration in Greenland ice core is significantly higher than that in Antarctic samples of similar age, the records of changes of concentration difference between Greenland and Antarctic reveal variation of latitudinal distribution of methane sources.110 Increase in methane concentration shown by Greenland ice core records implies that the global wetland area has changed greatly over past years.111 As a component of greenhouse gases, methane plays an important role in global warming. The variation of methane from Greenland records makes a unique contribution for global temperature records undoubtedly.

Ice core records from Antarctica

The Antarctic ice sheet originated in the late Eocene, the drilling has restored a record of 800,000 years in Dome Concordia, and it is the longest available ice core in Antarctica. In recent years, more and more new studies have provided older but discrete records.112 Due to the uniqueness of the Antarctic ice sheet, the Antarctic ice core not only records the global temperature changes, but also contains huge quantities of information about the global biogeochemical cycles, climate dynamics and abrupt changes in global climate.113

By comparing with current climate records, the ice core records in Antarctica further confirm that polar amplification.114 Although Antarctica is covered by the ice core records, the density is rather low considering the area of Antarctica. Exploring more drilling stations is the primary goal for current research institutions.

Ice core records from low-latitude regions

The ice core records from low-latitude regions are not as common as records from polar regions, however, these records still provide much useful information for scientists. Ice cores in low-latitude regions are usually from high altitude areas. The Guliya record is the longest record from low-latitude, high altitude regions, which spans over 700,000 years.115 According to these records, scientists found the evidence which can prove the Last Glacial Maximum (LGM) was colder in the tropics and subtropics than previously believed.116 Also, the records from low-latitude regions helped scientists confirm that the 20th century was the warmest period in the last 1000 years.117

Geologic evidence (millions of years)

Main article: Geologic temperature record

On longer time scales, sediment cores show that the cycles of glacials and interglacials are part of a deepening phase within a prolonged ice age that began with the glaciation of Antarctica approximately 40 million years ago. This deepening phase, and the accompanying cycles, largely began approximately 3 million years ago with the growth of continental ice sheets in the Northern Hemisphere. Gradual changes in Earth's climate of this kind have been frequent during the existence of planet Earth. Some of them are attributed to changes in the configuration of continents and oceans due to continental drift.

See also

  • Climate change portal
  • Environment portal
  • Ecology portal
  • World portal

References

  1. PAGES 2k Consortium (2019). "Consistent multidecadal variability in global temperature reconstructions and simulations over the Common Era". Nature Geoscience. 12 (8): 643–649. Bibcode:2019NatGe..12..643P. doi:10.1038/s41561-019-0400-0. ISSN 1752-0894. PMC 6675609. PMID 31372180. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6675609

  2. Brohan, P.; Kennedy, J. J.; Harris, I.; Tett, S. F. B.; Jones, P. D. (2006). "Uncertainty estimates in regional and global observed temperature changes: a new dataset from 1850". J. Geophys. Res. 111 (D12): D12106. Bibcode:2006JGRD..11112106B. CiteSeerX 10.1.1.184.4382. doi:10.1029/2005JD006548. S2CID 250615. /wiki/Journal_of_Geophysical_Research

  3. "Remote Sensing Systems". www.remss.com. Retrieved 19 May 2022. https://www.remss.com/measurements/upper-air-temperature/validation/#:~:text=The%20most%20widespread%20instruments%20for,results%20back%20to%20the%20surface.

  4. World of change: Global Temperatures Archived 2019-09-03 at the Wayback Machine The global mean surface air temperature for the period 1951-1980 was estimated to be 14 °C (57 °F), with an uncertainty of several tenths of a degree. https://earthobservatory.nasa.gov/world-of-change/decadaltemp.php

  5. "Solar System Temperatures". National Aeronautics and Space Administration (NASA). 4 September 2023. Archived from the original on 1 October 2023. (link to NASA graphic) https://science.nasa.gov/resource/solar-system-temperatures/

  6. "Tracking breaches of the 1.5 °C global warming threshold". Copernicus Programme. 15 June 2023. Archived from the original on 14 September 2023. https://climate.copernicus.eu/sites/default/files/custom-uploads/Page%20Uploads/daily%20GAT.png

  7. IPCC (2021). "Summary for Policymakers" (PDF). The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. ISBN 978-92-9169-158-6. 978-92-9169-158-6

  8. IPCC (2021). "Summary for Policymakers" (PDF). The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. ISBN 978-92-9169-158-6. 978-92-9169-158-6

  9. NOAA National Centers for Environmental Information, Monthly Global Climate Report for Annual 2022, published online January 2023, Retrieved on July 25, 2023 from https://www.ncei.noaa.gov/access/monitoring/monthly-report/global/202213. https://www.ncei.noaa.gov/access/monitoring/monthly-report/global/202213

  10. IPCC, 2021: Annex VII: Glossary [Matthews, J.B.R., V. Möller, R. van Diemen, J.S. Fuglestvedt, V. Masson-Delmotte, C. Méndez, S. Semenov, A. Reisinger (eds.)]. In Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Masson-Delmotte, V., P. Zhai, A. Pirani, S.L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M.I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J.B.R. Matthews, T.K. Maycock, T. Waterfield, O. Yelekçi, R. Yu, and B. Zhou (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, pp. 2215–2256, doi:10.1017/9781009157896.022. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_AnnexVII.pdf

  11. IPCC, 2021: Annex VII: Glossary [Matthews, J.B.R., V. Möller, R. van Diemen, J.S. Fuglestvedt, V. Masson-Delmotte, C. Méndez, S. Semenov, A. Reisinger (eds.)]. In Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Masson-Delmotte, V., P. Zhai, A. Pirani, S.L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M.I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J.B.R. Matthews, T.K. Maycock, T. Waterfield, O. Yelekçi, R. Yu, and B. Zhou (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, pp. 2215–2256, doi:10.1017/9781009157896.022. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_AnnexVII.pdf

  12. IPCC (2018). "Summary for Policymakers" (PDF). Global Warming of 1.5 °C. An IPCC Special Report on the impacts of global warming of 1.5 °C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty. pp. 3–24. /wiki/IPCC

  13. IPCC (2021). "Summary for Policymakers" (PDF). The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. ISBN 978-92-9169-158-6. 978-92-9169-158-6

  14. IPCC (2021). "Summary for Policymakers" (PDF). The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. ISBN 978-92-9169-158-6. 978-92-9169-158-6

  15. "IPCC AR5 Chapter 2 page 193" (PDF). Archived (PDF) from the original on 21 November 2016. Retrieved 28 January 2016. https://www.ipcc.ch/pdf/assessment-report/ar5/wg1/WG1AR5_Chapter02_FINAL.pdf

  16. Houghton, ed. (2001). "Climate Change 2001: Working Group I: The Scientific Basis – Chapter 12: Detection of Climate Change and Attribution of Causes". IPCC. Archived from the original on 11 July 2007. Retrieved 13 July 2007. https://web.archive.org/web/20070711023544/http://www.grida.no/climate/ipcc_tar/wg1/462.htm

  17. "Ch 6. Changes in the Climate System". Advancing the Science of Climate Change. 2010. doi:10.17226/12782. ISBN 978-0-309-14588-6. 978-0-309-14588-6

  18. Swanson, K.L.; Sugihara, G.; Tsonis, A.A. (22 September 2009). "Long-term natural variability and 20th century climate change". Proc. Natl. Acad. Sci. U.S.A. 106 (38): 16120–3. Bibcode:2009PNAS..10616120S. doi:10.1073/pnas.0908699106. PMC 2752544. PMID 19805268. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2752544

  19. IPCC (2021). "Summary for Policymakers" (PDF). The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. ISBN 978-92-9169-158-6. 978-92-9169-158-6

  20. Gulev, S. K., P. W. Thorne, J. Ahn, F. J. Dentener, C. M. Domingues, S. Gerland, D. Gong, D. S. Kaufman, H. C. Nnamchi, J. Quaas, J. A. Rivera, S. Sathyendranath, S. L. Smith, B. Trewin, K. von Shuckmann, R. S. Vose, 2021, Changing State of the Climate System (Chapter 2) Archived 2 March 2022 at the Wayback Machine. In: Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Masson-Delmotte, V., P. Zhai, A. Pirani, S. L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M. I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J. B. R. Matthews, T. K. Maycock, T. Waterfield, O. Yelekçi, R. Yu and B. Zhou (eds.)]. Cambridge University Press. In Press. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_Chapter_02.pdf

  21. IPCC, 2013: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change Archived 2 March 2019 at the Wayback Machine [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1535 pp. https://www.ipcc.ch/site/assets/uploads/2018/02/WG1AR5_all_final.pdf

  22. Gulev, S. K., P. W. Thorne, J. Ahn, F. J. Dentener, C. M. Domingues, S. Gerland, D. Gong, D. S. Kaufman, H. C. Nnamchi, J. Quaas, J. A. Rivera, S. Sathyendranath, S. L. Smith, B. Trewin, K. von Shuckmann, R. S. Vose, 2021, Changing State of the Climate System (Chapter 2) Archived 2 March 2022 at the Wayback Machine. In: Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Masson-Delmotte, V., P. Zhai, A. Pirani, S. L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M. I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J. B. R. Matthews, T. K. Maycock, T. Waterfield, O. Yelekçi, R. Yu and B. Zhou (eds.)]. Cambridge University Press. In Press. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_Chapter_02.pdf

  23. Kennedy, John; Ramasamy, Selvaraju; Andrew, Robbie; Arico, Salvatore; Bishop, Erin; Braathen, Geir (2019). WMO statement on the State of the Global Climate in 2018. Geneva: Chairperson, Publications Board, World Meteorological Organization. p. 6. ISBN 978-92-63-11233-0. Archived from the original on 12 November 2019. Retrieved 24 November 2019. 978-92-63-11233-0

  24. "Summary for Policymakers". Synthesis report of the IPCC Sixth Assessment Report (PDF). 2023. A1, A4. https://www.ipcc.ch/report/ar6/syr/downloads/report/IPCC_AR6_SYR_SPM.pdf

  25. State of the Global Climate 2021 (Report). World Meteorological Organization. 2022. p. 2. Archived from the original on 18 May 2022. Retrieved 23 April 2023. https://web.archive.org/web/20220518083042/https://library.wmo.int/doc_num.php?explnum_id=11178

  26. Lindsey, Rebecca; Dahlman, Luann (28 June 2022). "Climate Change: Global Temperature". climate.gov. National Oceanic and Atmospheric Administration. Archived from the original on 17 September 2022. http://www.climate.gov/news-features/understanding-climate/climate-change-global-temperature

  27. Davy, Richard; Esau, Igor; Chernokulsky, Alexander; Outten, Stephen; Zilitinkevich, Sergej (January 2017). "Diurnal asymmetry to the observed global warming". International Journal of Climatology. 37 (1): 79–93. Bibcode:2017IJCli..37...79D. doi:10.1002/joc.4688. https://doi.org/10.1002%2Fjoc.4688

  28. Schneider, S.H., S. Semenov, A. Patwardhan, I. Burton, C.H.D. Magadza, M. Oppenheimer, A.B. Pittock, A. Rahman, J.B. Smith, A. Suarez and F. Yamin, 2007: Chapter 19: Assessing key vulnerabilities and the risk from climate change. Climate Change 2007: Impacts, Adaptation and Vulnerability. Contribution of Working Group II to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change, M.L. Parry, O.F. Canziani, J.P. Palutikof, P.J. van der Linden and C.E. Hanson, Eds., Cambridge University Press, Cambridge, UK, 779-810. https://www.ipcc.ch/site/assets/uploads/2018/02/ar4-wg2-chapter19-1.pdf

  29. Joyce, Christopher (30 August 2018). "To Predict Effects Of Global Warming, Scientists Looked Back 20,000 Years". NPR. Archived from the original on 29 December 2019. Retrieved 29 December 2019. https://www.npr.org/2018/08/30/643342003/to-predict-effects-of-global-warming-scientists-looked-back-20-000-years

  30. Overpeck, J.T. (20 August 2008), NOAA Paleoclimatology Global Warming – The Story: Proxy Data, NOAA Paleoclimatology Program – NCDC Paleoclimatology Branch, archived from the original on 3 February 2017, retrieved 20 November 2012 http://www.ncdc.noaa.gov/paleo/globalwarming/proxydata.html

  31. The 20th century was the hottest in nearly 2,000 years, studies show Archived 25 July 2019 at the Wayback Machine, 25 July 2019 https://phys.org/news/2019-07-20th-century-hottest-years.html

  32. Nicholls, R.J., P.P. Wong, V.R. Burkett, J.O. Codignotto, J.E. Hay, R.F. McLean, S. Ragoonaden and C.D. Woodroffe, 2007: Chapter 6: Coastal systems and low-lying areas. Climate Change 2007: Impacts, Adaptation and Vulnerability. Contribution of Working Group II to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change, M.L. Parry, O.F. Canziani, J.P. Palutikof, P.J. van der Linden and C.E. Hanson, Eds., Cambridge University Press, Cambridge, UK, 315-356. https://www.ipcc.ch/site/assets/uploads/2018/02/ar4-wg2-chapter6-1.pdf

  33. Oppenheimer, M., B.C. Glavovic , J. Hinkel, R. van de Wal, A.K. Magnan, A. Abd-Elgawad, R. Cai, M. Cifuentes-Jara, R.M. DeConto, T. Ghosh, J. Hay, F. Isla, B. Marzeion, B. Meyssignac, and Z. Sebesvari, 2019: Chapter 4: Sea Level Rise and Implications for Low-Lying Islands, Coasts and Communities. In: IPCC Special Report on the Ocean and Cryosphere in a Changing Climate [H.-O. Pörtner, D.C. Roberts, V. Masson-Delmotte, P. Zhai, M. Tignor, E. Poloczanska, K. Mintenbeck, A. Alegría, M. Nicolai, A. Okem, J. Petzold, B. Rama, N.M. Weyer (eds.)]. Cambridge University Press, Cambridge, UK and New York, NY, USA, pp. 321–445. doi:10.1017/9781009157964.006. https://www.ipcc.ch/site/assets/uploads/sites/3/2022/03/06_SROCC_Ch04_FINAL.pdf

  34. Allen, M.R., O.P. Dube, W. Solecki, F. Aragón-Durand, W. Cramer, S. Humphreys, M. Kainuma, J. Kala, N. Mahowald, Y. Mulugetta, R. Perez, M.Wairiu, and K. Zickfeld, 2018: Chapter 1: Framing and Context. In: Global Warming of 1.5 °C. An IPCC Special Report on the impacts of global warming of 1.5 °C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.-O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor, and T. Waterfield (eds.)]. Cambridge University Press, Cambridge, UK and New York, NY, USA, pp. 49-92. doi:10.1017/9781009157940.003. https://www.ipcc.ch/site/assets/uploads/sites/2/2022/06/SR15_Chapter_1_HR.pdf

  35. "What Are "Proxy" Data?". NCDC.NOAA.gov. National Climatic Data Center, later called the National Centers for Environmental Information, part of the National Oceanic and Atmospheric Administration. 2014. Archived from the original on 10 October 2014. https://www.ncdc.noaa.gov/news/what-are-proxy-data

  36. Brohan, P.; Kennedy, J. J.; Harris, I.; Tett, S. F. B.; Jones, P. D. (2006). "Uncertainty estimates in regional and global observed temperature changes: a new dataset from 1850". J. Geophys. Res. 111 (D12): D12106. Bibcode:2006JGRD..11112106B. CiteSeerX 10.1.1.184.4382. doi:10.1029/2005JD006548. S2CID 250615. /wiki/Journal_of_Geophysical_Research

  37. "GCOS - Deutscher Wetterdienst - CLIMAT Availability". gcos.dwd.de. Retrieved 12 May 2022. https://gcos.dwd.de/DWD-GCOS/EN/nationalcontributions/servicesforgcos/centresforqualityassurance/gsmnc/gsnmc_monitoring_produkte/gsnmc/climat_avail_new/climat_avail_node.html

  38. Guide to the Global Observing System (PDF). WMO. 2007. ISBN 978-9263134882. 978-9263134882

  39. "Global Temperature Report: January 2019" (PDF). UAH. https://www.nsstc.uah.edu/climate/2019/GTR_201901Jan_1.pdf

  40. "RSS / MSU and AMSU Data / Description". Archived from the original on 23 November 2012. Retrieved 26 February 2011. https://web.archive.org/web/20121123040542/http://www.ssmi.com/msu/msu_data_description.html

  41. "Archived copy" (PDF). Archived from the original (PDF) on 14 March 2011. Retrieved 4 March 2011.{{cite web}}: CS1 maint: archived copy as title (link) https://web.archive.org/web/20110314175253/http://www.ncdc.noaa.gov/temp-and-precip/msu/nature02524-UW-MSU.pdf

  42. "Index of CCSP". http://www.atmos.umd.edu/~kostya/CCSP/

  43. "Temperature Trends in the Lower Atmosphere – Understanding and Reconciling Differences" (PDF). Archived (PDF) from the original on 4 March 2016. Retrieved 29 January 2016. http://www.gfdl.noaa.gov/bibliography/related_files/tmlw0602.pdf

  44. "GHCN-Monthly Version 2". NOAA. Retrieved 13 July 2007. https://www.ncdc.noaa.gov/data-access/land-based-station-data/land-based-datasets/global-historical-climatology-network-ghcn

  45. "NCDC State of the Climate Global Analysis, April 2010". Archived from the original on 16 June 2010. Retrieved 15 June 2010. http://www.ncdc.noaa.gov/sotc/?report=global&year=2010&month=4

  46. "Global Surface Temperature Anomalies". National Climatic Data Center. Retrieved 16 June 2010. http://www.ncdc.noaa.gov/cmb-faq/anomalies.html

  47. CMB and Crouch, J. (17 September 2012). "Global Surface Temperature Anomalies: Background Information – FAQ 1". NOAA NCDC. http://www.ncdc.noaa.gov/cmb-faq/anomalies.php

  48. Hansen, J.E. (20 November 2012). "Data.GISS: GISS Surface Temperature Analysis (GISTEMP)". New York, NY, USA: NASA GISS.. Website curator: Schmunk, R.B. https://data.giss.nasa.gov/gistemp/

  49. Jones PD, New M, Parker DE, Martin S, Rigor IG (1999). "Surface air temperature and its changes over the past 150 years". Reviews of Geophysics. 37 (2): 173–199. Bibcode:1999RvGeo..37..173J. doi:10.1029/1999RG900002. https://doi.org/10.1029%2F1999RG900002

  50. Jones PD, New M, Parker DE, Martin S, Rigor IG (1999). "Surface air temperature and its changes over the past 150 years". Reviews of Geophysics. 37 (2): 173–199. Bibcode:1999RvGeo..37..173J. doi:10.1029/1999RG900002. https://doi.org/10.1029%2F1999RG900002

  51. "Data.GISS: GISTEMP — the Elusive Absolute Surface Air Temperature". https://data.giss.nasa.gov/gistemp/abs_temp.html

  52. "NOAA National Weather Service Cooperative Observer Program: Proper Siting". Archived from the original on 5 July 2007. Retrieved 12 July 2007. http://www.nws.noaa.gov/om/coop/standard.htm

  53. Trends in the Lower Atmosphere: Steps for Understanding and Reconciling Differences. Archived 3 February 2007 at the Wayback Machine Thomas R. Karl, Susan J. Hassol, Christopher D. Miller, and William L. Murray, editors, 2006. A Report by the Climate Change Science Program and the Subcommittee on Global Change Research, Washington, DC. http://templatelab.com/climatescience-sap1-final-report/

  54. Peterson, Thomas C. (August 2006). "Examination of potential biases in air temperature caused by poor station locations". Bull. Amer. Meteor. Soc. 87 (8): 1073–89. Bibcode:2006BAMS...87.1073P. doi:10.1175/BAMS-87-8-1073 (inactive 2 December 2024). S2CID 122809790.{{cite journal}}: CS1 maint: DOI inactive as of December 2024 (link) /wiki/Bibcode_(identifier)

  55. Hausfather, Zeke; Menne, Matthew J.; Williams, Claude N.; Masters, Troy; Broberg, Ronald; Jones, David (30 January 2013). "Quantifying the effect of urbanization on U.S. Historical Climatology Network temperature records". Journal of Geophysical Research. 118 (2): 481–494. Bibcode:2013JGRD..118..481H. doi:10.1029/2012JD018509. https://doi.org/10.1029%2F2012JD018509

  56. World Meteorological Organization (2021). "The State of the Global Climate 2020". library.wmo.int. Retrieved 17 January 2024. /wiki/World_Meteorological_Organization

  57. World Meteorological Organization (2021). "The State of the Global Climate 2020". library.wmo.int. Retrieved 17 January 2024. /wiki/World_Meteorological_Organization

  58. Poynting, Mark; Rivault, Erwan (9 January 2023). "2023 confirmed as world's hottest year on record". BBC. Retrieved 17 January 2024. https://www.bbc.com/news/science-environment-67861954

  59. "Scientists confirm 2023 was hottest year on record, 1.48 °C warmer than pre-industrial level". Asia News Network. 10 January 2024. Retrieved 17 January 2024. https://asianews.network/scientists-confirm-2023-was-hottest-year-on-record-1-48-c-warmer-than-pre-industrial-level/

  60. "2016: one of the warmest two years on record" (Press release). Met Office of the United Kingodom. 18 January 2017. Retrieved 20 January 2017. http://www.metoffice.gov.uk/news/releases/2017/2016-record-breaking-year-for-global-temperature

  61. "Climate change: Data shows 2016 likely to be warmest year yet". BBC News Online. 18 January 2017. Retrieved 19 January 2017. https://www.bbc.com/news/science-environment-38652746

  62. Potter, Sean; Cabbage, Michael; McCarthy, Leslie (19 January 2017). "NASA, NOAA Data Show 2016 Warmest Year on Record Globally" (Press release). NASA. Retrieved 20 January 2017. https://www.nasa.gov/press-release/nasa-noaa-data-show-2016-warmest-year-on-record-globally

  63. Brumfiel, Geoff (18 January 2017). "U.S. Report Confirms 2016 Was The Hottest Year On Record". NPR. Retrieved 20 January 2017. https://www.npr.org/2017/01/18/510472493/u-s-report-confirms-2016-was-the-hottest-year-on-record

  64. Schmidt, Gavin (22 January 2015). "Thoughts on 2014 and ongoing temperature trends". RealClimate. Retrieved 4 September 2015. /wiki/Gavin_Schmidt

  65. Potter, Sean; Cabbage, Michael; McCarthy, Leslie (19 January 2017). "NASA, NOAA Data Show 2016 Warmest Year on Record Globally" (Press release). NASA. Retrieved 20 January 2017. https://www.nasa.gov/press-release/nasa-noaa-data-show-2016-warmest-year-on-record-globally

  66. "2017 was second hottest year on record, after sizzling 2016 - report". Reuters. 4 January 2018. Archived from the original on 4 January 2018. https://web.archive.org/web/20180104171150/https://uk.reuters.com/article/uk-climatechange-temperatures/2017-was-second-hottest-year-on-record-after-sizzling-2016-report-idUKKBN1ET1L3

  67. "Global Climate Report – Annual 2020". NOAA. Retrieved 14 January 2021. https://www.ncdc.noaa.gov/sotc/global/202013

  68. Gulev, S. K., P. W. Thorne, J. Ahn, F. J. Dentener, C. M. Domingues, S. Gerland, D. Gong, D. S. Kaufman, H. C. Nnamchi, J. Quaas, J. A. Rivera, S. Sathyendranath, S. L. Smith, B. Trewin, K. von Shuckmann, R. S. Vose, 2021, Changing State of the Climate System (Chapter 2) Archived 2 March 2022 at the Wayback Machine. In: Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Masson-Delmotte, V., P. Zhai, A. Pirani, S. L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M. I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J. B. R. Matthews, T. K. Maycock, T. Waterfield, O. Yelekçi, R. Yu and B. Zhou (eds.)]. Cambridge University Press. In Press. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_Chapter_02.pdf

  69. Gulev, S. K., P. W. Thorne, J. Ahn, F. J. Dentener, C. M. Domingues, S. Gerland, D. Gong, D. S. Kaufman, H. C. Nnamchi, J. Quaas, J. A. Rivera, S. Sathyendranath, S. L. Smith, B. Trewin, K. von Shuckmann, R. S. Vose, 2021, Changing State of the Climate System (Chapter 2) Archived 2 March 2022 at the Wayback Machine. In: Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Masson-Delmotte, V., P. Zhai, A. Pirani, S. L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M. I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J. B. R. Matthews, T. K. Maycock, T. Waterfield, O. Yelekçi, R. Yu and B. Zhou (eds.)]. Cambridge University Press. In Press. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_Chapter_02.pdf

  70. "Data.GISS: GISS Surface Temperature Analysis (GISTEMP v4)". data.giss.nasa.gov. Retrieved 17 March 2022. https://data.giss.nasa.gov/gistemp/

  71. "NOAA National Climatic Data Center, State of the Climate: Global Analysis for Annual 2014". NOAA. Retrieved 21 January 2015. http://www.ncdc.noaa.gov/sotc/global/2014/13

  72. "Joint-statement on climate change by leaders of 18 scientific organizations" (PDF). Washington DC, USA: American Association for the Advancement of Science. 21 October 2009. Archived from the original (PDF) on 6 August 2013. Joint-statement by leaders of 18 scientific organizations: American Association for the Advancement of Science, American Chemical Society, American Geophysical Union, American Institute of Biological Sciences, American Meteorological Society, American Society of Agronomy, American Society of Plant Biologists, American Statistical Association, Association of Ecosystem Research Centers, Botanical Society of America, Crop Science Society of America, Ecological Society of America, Natural Science Collections, Alliance Organization of Biological Field Stations, Society for Industrial and Applied Mathematics, Society of Systematic Biologists, Soil Science Society of America, University Corporation for Atmospheric Research https://web.archive.org/web/20130806073923/http://www.ucsusa.org/assets/documents/ssi/climate-change-statement-from.pdf

  73. "Joint-statement on climate change by leaders of 18 scientific organizations" (PDF). Washington DC, USA: American Association for the Advancement of Science. 21 October 2009. Archived from the original (PDF) on 6 August 2013. Joint-statement by leaders of 18 scientific organizations: American Association for the Advancement of Science, American Chemical Society, American Geophysical Union, American Institute of Biological Sciences, American Meteorological Society, American Society of Agronomy, American Society of Plant Biologists, American Statistical Association, Association of Ecosystem Research Centers, Botanical Society of America, Crop Science Society of America, Ecological Society of America, Natural Science Collections, Alliance Organization of Biological Field Stations, Society for Industrial and Applied Mathematics, Society of Systematic Biologists, Soil Science Society of America, University Corporation for Atmospheric Research https://web.archive.org/web/20130806073923/http://www.ucsusa.org/assets/documents/ssi/climate-change-statement-from.pdf

  74. "Understanding and Responding to Climate Change – Highlights of National Academies Reports" (PDF). United States National Academies. 2005. Archived from the original (PDF) on 11 June 2007. Retrieved 13 July 2007. https://web.archive.org/web/20070611231645/http://dels.nas.edu/dels/rpt_briefs/climate-change-final.pdf

  75. "Cooling the Warming Debate: Major New Analysis Confirms That Global Warming Is Real". Science Daily. 21 October 2011. Retrieved 22 October 2011. https://www.sciencedaily.com/releases/2011/10/111021144716.htm

  76. see also: PBS (10 January 2007). "Interviews – James Hansen: Hot Politics: FRONTLINE: PBS". PBS.. "(...) The 1990s is the real appearance of the science skeptics. How much did they come after you? I actually don't like the word "skeptics" for them; I think it's better to call them "contrarians", because skepticism is part of science; all scientists are skeptics (...)" https://www.pbs.org/wgbh/pages/frontline/hotpolitics/interviews/hansen.html

  77. "Cooling the Warming Debate: Major New Analysis Confirms That Global Warming Is Real". Science Daily. 21 October 2011. Retrieved 22 October 2011. https://www.sciencedaily.com/releases/2011/10/111021144716.htm

  78. "Cooling the Warming Debate: Major New Analysis Confirms That Global Warming Is Real". Science Daily. 21 October 2011. Retrieved 22 October 2011. https://www.sciencedaily.com/releases/2011/10/111021144716.htm

  79. "Cooling the Warming Debate: Major New Analysis Confirms That Global Warming Is Real". Science Daily. 21 October 2011. Retrieved 22 October 2011. https://www.sciencedaily.com/releases/2011/10/111021144716.htm

  80. Ian Sample (20 October 2011). "Global warming study finds no grounds for climate sceptics' concerns". The Guardian. Retrieved 22 October 2011. https://www.theguardian.com/environment/2011/oct/20/global-warming-study-climate-sceptics

  81. Richard Black (21 October 2011). "Global warming 'confirmed' by independent study". BBC News. Retrieved 21 October 2011. https://www.bbc.co.uk/news/science-environment-15373071

  82. "Climate change: The heat is on". The Economist. 22 October 2011. Retrieved 22 October 2011. http://www.economist.com/node/21533360

  83. e.g., see Carter, B. (9 April 2006). "There IS a problem with global warming... it stopped in 1998". The Daily Telegraph. https://www.telegraph.co.uk/comment/personal-view/3624242/There-IS-a-problem-with-global-warming...-it-stopped-in-1998.html

  84. Edited quote from public-domain source: Scott, M. (31 December 2009). "Short-term Cooling on a Warming Planet, p.1". ClimateWatch Magazine. NOAA. Introduction. Archived from the original on 19 February 2013. Retrieved 22 September 2012. https://web.archive.org/web/20130219015155/http://www.climatewatch.noaa.gov/article/2009/short-term-cooling-on-a-warming-planet

  85. Edited quote from public-domain source: Scott, M. (31 December 2009). "Short-term Cooling on a Warming Planet, p.1". ClimateWatch Magazine. NOAA. Introduction. Archived from the original on 19 February 2013. Retrieved 22 September 2012. https://web.archive.org/web/20130219015155/http://www.climatewatch.noaa.gov/article/2009/short-term-cooling-on-a-warming-planet

  86. Met Office, Fitzroy Road (14 September 2009). "Global warming set to continue". UK Met Office. Archived from the original on 27 October 2012. https://web.archive.org/web/20121027110118/http://www.metoffice.gov.uk/news/releases/archive/2009/global-warming

  87. Albritton, D.L.; et al. (2001). Houghton, J.T.; et al. (eds.). Box 1: What drives changes in climate? in: Technical Summary, in: Climate Change 2001: The Scientific Basis. Contribution of Working Group I to the Third Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press. http://www.grida.no/climate/ipcc_tar/wg1/011.htm#box1

  88. Edited quote from public-domain source: Scott, M. (31 December 2009). "Short-term Cooling on a Warming Planet, p.1". ClimateWatch Magazine. NOAA. Introduction. Archived from the original on 19 February 2013. Retrieved 22 September 2012. https://web.archive.org/web/20130219015155/http://www.climatewatch.noaa.gov/article/2009/short-term-cooling-on-a-warming-planet

  89. Met Office, Fitzroy Road (14 September 2009). "Global warming set to continue". UK Met Office. Archived from the original on 27 October 2012. https://web.archive.org/web/20121027110118/http://www.metoffice.gov.uk/news/releases/archive/2009/global-warming

  90. Edited quote from public-domain source: Scott, M. (31 December 2009). "Short-term Cooling on a Warming Planet, p.3". ClimateWatch Magazine. NOAA. Deciphering Natural Variability. http://www.climatewatch.noaa.gov/article/2009/short-term-cooling-on-a-warming-planet/3

  91. Edited quote from public-domain source: Scott, M. (31 December 2009). "Short-term Cooling on a Warming Planet, p.3". ClimateWatch Magazine. NOAA. Deciphering Natural Variability. http://www.climatewatch.noaa.gov/article/2009/short-term-cooling-on-a-warming-planet/3

  92. Eyring, V., N. P. Gillett, K. M. Achuta Rao, R. Barimalala, M. Barreiro Parrillo, N. Bellouin, C. Cassou, P. J. Durack, Y. Kosaka, S. McGregor, S. Min, O. Morgenstern, Y. Sun, 2021, Human Influence on the Climate System (chapter 3). In: Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change Archived 10 April 2022 at the Wayback Machine [Masson-Delmotte, V., P. Zhai, A. Pirani, S. L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M. I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J. B. R. Matthews, T. K. Maycock, T. Waterfield, O. Yelekçi, R. Yu and B. Zhou (eds.)]. Cambridge University Press. In Press. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_Chapter_03.pdf

  93. World Meteorological Organization. "WMO Global Annual to Decadal Climate Update Target years: 2021 and 2021-2025". World Meteorological Organization e-Library. World Meteorological Organization. Retrieved 18 February 2025. https://library.wmo.int/records/item/56312-wmo-global-annual-to-decadal-climate-update

  94. IPCC (2021). "Summary for Policymakers" (PDF). The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. ISBN 978-92-9169-158-6. 978-92-9169-158-6

  95. Arias, P.A., N. Bellouin, E. Coppola, R.G. Jones, G. Krinner, J. Marotzke, V. Naik, M.D. Palmer, G.-K. Plattner, J. Rogelj, M. Rojas, J. Sillmann, T. Storelvmo, P.W. Thorne, B. Trewin, K. Achuta Rao, B. Adhikary, R.P. Allan, K. Armour, G. Bala, R. Barimalala, S. Berger, J.G. Canadell, C. Cassou, A. Cherchi, W. Collins, W.D. Collins, S.L. Connors, S. Corti, F. Cruz, F.J. Dentener, C. Dereczynski, A. Di Luca, A. Diongue Niang, F.J. Doblas-Reyes, A. Dosio, H. Douville, F. Engelbrecht, et al., 2021: Technical Summary. In Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change Archived 21 July 2022 at the Wayback Machine [Masson-Delmotte, V., P. Zhai, A. Pirani, S.L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M.I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J.B.R. Matthews, T.K. Maycock, T. Waterfield, O. Yelekçi, R. Yu, and B. Zhou (eds.)]. Cambridge University Press. In Press. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_TS.pdf

  96. NOAA National Centers for Environmental Information, Monthly Global Climate Report for Annual 2022, published online January 2023, Retrieved on July 25, 2023 from https://www.ncei.noaa.gov/access/monitoring/monthly-report/global/202213. https://www.ncei.noaa.gov/access/monitoring/monthly-report/global/202213

  97. J.T. Houghton; et al., eds. (2001). "Figure 1: Variations of the Earth's surface temperature over the last 140 years and the last millennium.". Summary for policy makers. IPCC Third Assessment Report - Climate Change 2001 Contribution of Working Group I. Intergovernmental Panel on Climate Change. Archived from the original on 13 November 2016. Retrieved 12 May 2011. https://web.archive.org/web/20161113140602/http://www.grida.no/publications/other/ipcc_tar/?src=%2Fclimate%2Fipcc_tar%2Fwg1%2Ffigspm-1.htm

  98. J.T. Houghton; et al., eds. (2001). Chapter 2. Observed climate variability and change. Climate Change 2001: Working Group I The Scientific Basis. Intergovernmental Panel on Climate Change. Archived from the original on 9 March 2016. Retrieved 12 May 2011. https://web.archive.org/web/20160309180529/http://www.grida.no/publications/other/ipcc_tar/?src=%2Fclimate%2Fipcc_tar%2Fwg1%2F069.htm#fig220

  99. National Research Council (U.S.). Committee on Surface Temperature Reconstructions for the Last 2,000 Years Surface temperature reconstructions for the last 2,000 years (2006), National Academies Press ISBN 978-0-309-10225-4 /wiki/ISBN_(identifier)

  100. National Research Council (U.S.). Committee on Surface Temperature Reconstructions for the Last 2,000 Years Surface temperature reconstructions for the last 2,000 years (2006), National Academies Press ISBN 978-0-309-10225-4 /wiki/ISBN_(identifier)

  101. Mann, Michael E.; Zhang, Zhihua; Hughes, Malcolm K.; Bradley, Raymond S.; Miller, Sonya K.; Rutherford, Scott; Ni, Fenbiao (2008). "Proxy-based reconstructions of hemispheric and global surface temperature variations over the past two millennia". Proceedings of the National Academy of Sciences. 105 (36): 13252–13257. Bibcode:2008PNAS..10513252M. doi:10.1073/pnas.0805721105. PMC 2527990. PMID 18765811. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2527990

  102. National Research Council (U.S.). Committee on Surface Temperature Reconstructions for the Last 2,000 Years Surface temperature reconstructions for the last 2,000 years (2006), National Academies Press ISBN 978-0-309-10225-4 /wiki/ISBN_(identifier)

  103. "The Climate Epochs That Weren't". State of the Planet. 24 July 2019. Retrieved 27 November 2021. https://news.climate.columbia.edu/2019/07/24/climate-epochs-that-werent/

  104. O.Muszkat, The outline of the problems and methods used for research of the history of the climate in the Middle Ages, (in polish), Przemyśl 2014, ISSN 1232-7263 /wiki/ISSN_(identifier)

  105. The Fall of the Egyptian Old Kingdom Hassan, Fekri BBC June 2001 https://www.bbc.co.uk/history/ancient/egyptians/apocalypse_egypt_04.shtml

  106. http://www.climatedata.info/proxies/ice-cores/ http://www.climatedata.info/proxies/ice-cores/

  107. Alley, R. B. (15 February 2000). "Ice-core evidence of abrupt climate changes". Proceedings of the National Academy of Sciences. 97 (4): 1331–1334. Bibcode:2000PNAS...97.1331A. doi:10.1073/pnas.97.4.1331. ISSN 0027-8424. PMC 34297. PMID 10677460. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC34297

  108. Severinghaus, Jeffrey P.; Sowers, Todd; Brook, Edward J.; Alley, Richard B.; Bender, Michael L. (January 1998). "Timing of abrupt climate change at the end of the Younger Dryas interval from thermally fractionated gases in polar ice". Nature. 391 (6663): 141–146. Bibcode:1998Natur.391..141S. doi:10.1038/34346. ISSN 0028-0836. S2CID 4426618. https://dx.doi.org/10.1038/34346

  109. Alley, R. B. (15 February 2000). "Ice-core evidence of abrupt climate changes". Proceedings of the National Academy of Sciences. 97 (4): 1331–1334. Bibcode:2000PNAS...97.1331A. doi:10.1073/pnas.97.4.1331. ISSN 0027-8424. PMC 34297. PMID 10677460. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC34297

  110. Webb, Robert S.; Clark, Peter U.; Keigwin, Lloyd D. (1999), "Preface", Mechanisms of Global Climate Change at Millennial Time Scales, vol. 112, Washington, D. C.: American Geophysical Union, pp. vii–viii, Bibcode:1999GMS...112D...7W, doi:10.1029/gm112p0vii (inactive 11 November 2024), ISBN 0-87590-095-X, retrieved 18 April 2021{{citation}}: CS1 maint: DOI inactive as of November 2024 (link) 0-87590-095-X

  111. Chappellaz, Jérôme; Brook, Ed; Blunier, Thomas; Malaizé, Bruno (30 November 1997). "CH4and δ18O of O2records from Antarctic and Greenland ice: A clue for stratigraphic disturbance in the bottom part of the Greenland Ice Core Project and the Greenland Ice Sheet Project 2 ice cores". Journal of Geophysical Research: Oceans. 102 (C12): 26547–26557. Bibcode:1997JGR...10226547C. doi:10.1029/97jc00164. ISSN 0148-0227. https://doi.org/10.1029%2F97jc00164

  112. Higgins, John A.; Kurbatov, Andrei V.; Spaulding, Nicole E.; Brook, Ed; Introne, Douglas S.; Chimiak, Laura M.; Yan, Yuzhen; Mayewski, Paul A.; Bender, Michael L. (11 May 2015). "Atmospheric composition 1 million years ago from blue ice in the Allan Hills, Antarctica". Proceedings of the National Academy of Sciences. 112 (22): 6887–6891. Bibcode:2015PNAS..112.6887H. doi:10.1073/pnas.1420232112. ISSN 0027-8424. PMC 4460481. PMID 25964367. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4460481

  113. Brook, Edward J.; Buizert, Christo (June 2018). "Antarctic and global climate history viewed from ice cores". Nature. 558 (7709): 200–208. Bibcode:2018Natur.558..200B. doi:10.1038/s41586-018-0172-5. ISSN 0028-0836. PMID 29899479. S2CID 49191229. https://dx.doi.org/10.1038/s41586-018-0172-5

  114. Cuffey, Kurt M.; Clow, Gary D.; Steig, Eric J.; Buizert, Christo; Fudge, T. J.; Koutnik, Michelle; Waddington, Edwin D.; Alley, Richard B.; Severinghaus, Jeffrey P. (28 November 2016). "Deglacial temperature history of West Antarctica". Proceedings of the National Academy of Sciences. 113 (50): 14249–14254. Bibcode:2016PNAS..11314249C. doi:10.1073/pnas.1609132113. ISSN 0027-8424. PMC 5167188. PMID 27911783. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5167188

  115. Thompson, L. G. (2004), "High Altitude, Mid- and Low-Latitude Ice Core Records: Implications for Our Future", Earth Paleoenvironments: Records Preserved in Mid- and Low-Latitude Glaciers, Developments in Paleoenvironmental Research, vol. 9, Dordrecht: Kluwer Academic Publishers, pp. 3–15, doi:10.1007/1-4020-2146-1_1, ISBN 1-4020-2145-3 1-4020-2145-3

  116. Thompson, L. G.; Mosley-Thompson, E.; Davis, M. E.; Lin, P. -N.; Henderson, K. A.; Cole-Dai, J.; Bolzan, J. F.; Liu, K. -b. (7 July 1995). "Late Glacial Stage and Holocene Tropical Ice Core Records from Huascaran, Peru". Science. 269 (5220): 46–50. Bibcode:1995Sci...269...46T. doi:10.1126/science.269.5220.46. ISSN 0036-8075. PMID 17787701. S2CID 25940751. https://dx.doi.org/10.1126/science.269.5220.46

  117. Thompson, L. G. (2004), "High Altitude, Mid- and Low-Latitude Ice Core Records: Implications for Our Future", Earth Paleoenvironments: Records Preserved in Mid- and Low-Latitude Glaciers, Developments in Paleoenvironmental Research, vol. 9, Dordrecht: Kluwer Academic Publishers, pp. 3–15, doi:10.1007/1-4020-2146-1_1, ISBN 1-4020-2145-3 1-4020-2145-3