Southern hemisphere monitoring history
Australian climate is influenced by sea surface temperature and atmospheric patterns in regions including Pacific, Indian and Southern oceans. Specific regions are monitored, as they can indicate the presence, or potential development, of El Niño–Southern Oscillation (ENSO), Indian Ocean Dipole (IOD) phases and different states of the Southern Annular Mode (SAM).
About these maps
Sea surface temperature (SST) data
The weekly and monthly datasets are formed from weekly or monthly averages of daily SST values, and are updated either weekly or monthly in near real-time. The daily values are obtained from interpolated (gap-free) analyses on a 0.25° degree latitude by 0.25° degree longitude grid of the temperature of the uppermost 10 metres of the ocean under well-mixed conditions, based on observations from both in-water instruments and satellites. As observations are not always available within the specified time interval for all areas covered, the daily analysis systems uses 'statistical interpolation' to fill in the gaps using a weighted combination of the previous daily SST analysis and previous weekly SST analysis.
The temperature estimate is generally considered to be at approximately 0.2 metres depth (the depth of drifting buoys). However, as the observations used for the analysis have been selected for only well-mixed conditions, these temperatures are similar to temperatures down to approximately 10 metres. The maps provide SST analysis values for each 0.25° degree of latitude and longitude (approximately 28 km).
The observations used to derive the global daily SST analyses are obtained from drifting buoys, moored buoys, ships, and infrared radiometers aboard Polar-Orbiting Environmental Satellites operated by the National Oceanographic and Atmospheric Administration (NOAA) and the European Space Agency (ESA). In order to fill in some of the data gaps due to satellite infrared sensors that cannot penetrate cloud, they also incorporate SST observations from microwave sensors on polar-orbiting satellites operated by the Japan Aerospace Exploration Agency (JAXA).
- BoM GAMSSA SST analysis: Beggs et al. (2020)
- Climatology: 1991–2020 European Space Agency (ESA) SST Climate Change Initiative (CCI) Climatology product version 3.0
Pacific Ocean
The Pacific Ocean is monitored closely for the current state of the El Niño–Southern Oscillation (ENSO). ENSO refers to the oscillation between warmer (El Niño) and cooler (La Niña) states of the central and eastern tropical Pacific region. ENSO is considered one of the dominant modes of climate variability in Australia. El Niño has historically brought drier conditions during winter and spring, and La Niña wetter conditions, with the influence from La Niña also often extending into summer. The influence of each individual event varies, particularly in conjunction with other climate indicators such as the Indian Ocean Dipole (IOD).
The ENSO signal is characterised by sea surface temperature (SST) patterns in the central and eastern tropical Pacific. Cooler than average SSTs are associated with La Niña, while warmer SSTs are associated with El Niño.
Weekly and monthly sea surface temperature
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- Animation of recent SST changes
Cooler than average waters beneath the surface of the central and eastern tropical Pacific can be a sign of La Niña development, while warmer than average waters can be a sign of El Niño development.
5-day and monthly sub-surface temperatures
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- Sub-surface temperature graphs, history
During La Niña events, there is typically a sustained strengthening of trade winds, while during El Niño, there is a sustained weakening, or even reversal, of trade winds across much of the tropical Pacific.
Trade winds
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- TAO/TRITON data
Outgoing longwave radiation (OLR), the amount of longwave radiation being emitted to space, can be used as an indicator of cloudiness. Equatorial cloudiness near the International Date Line typically increases during El Niño (as indicated by below average OLR) and decreases during La Niña (as indicated by above average OLR).
Cloudiness near the Date Line
The Indian Ocean Dipole (IOD) is defined by the difference in sea surface temperatures between the eastern and western tropical Indian Ocean. The influence of the IOD varies in conjunction with other climate indicators such as the El Niño–Southern Oscillation (ENSO).
During a negative IOD, waters are typically warmer than average in the eastern parts of the tropical Indian Ocean and cooler than average in the west. During a positive event, the reverse occurs, with cooler than average waters in the eastern parts of the tropical Indian Ocean and warmer in the west. Specific regions are monitored in the eastern and western Indian Ocean to identify IOD event development.
Weekly and monthly sea surface temperature
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- SST timeseries graphs
- Sea surface temperature maps
- Map of NINO and IOD regions
The Southern Annular Mode (SAM) refers to the north-south movement of rain-bearing westerly winds and weather systems in the Southern Ocean, compared to the usual seasonal position. A positive SAM refers to a southward shift while a negative SAM refers to an northward shift. The typical impact on Australian rainfall from positive and negative phases of SAM depends on the time of year and interaction with other climate indicators such as El Niño or La Niña.
Sustained values of the SAM index above +1 indicate a positive SAM event, while sustained values below -1 indicate a negative SAM event.
SAM history is available in the monitoring graphs
History
El Niño continues to strengthen while IOD values ease back into the neutral range
- El Niño is firmly established. Both oceanic and atmospheric indices reflect values consistent with a strong El Niño, with further intensification likely during spring. The latest relative Niño3.4 index value for the week ending 30 August 2026 is +2.45 °C, well above the El Niño threshold (+0.80 °C).
- All models, including the bureau's, forecast the tropical Pacific to continue warming through the southern hemisphere spring, likely peaking in late spring or summer. Relative-Niño3.4 values are forecast to reach levels above the warmest observed since reliable records began in 1950.
- Given its current strength, in addition to the typical life cycle of an El Niño, this event is expected to persist into autumn 2027.
- The Southern Oscillation Index (SOI), a measure of the atmospheric component of the El Niño–Southern Oscillation (ENSO), has risen over the past fortnight, but remains strongly negative, with the latest 30-day SOI to 30 August at −14.6, well below the El Niño threshold of −7.
- A strong El Niño is also indicated in the atmosphere by weakened or reversed trade winds in the western to central tropical Pacific, enhanced cloudiness across the central to eastern tropical Pacific and reduced cloud cover over the Maritime Continent.
- A strong El Niño signal in the Niño3.4 region does not necessarily mean strong impacts on Australian rainfall and temperature; ENSO is only one of many factors that can influence Australia’s seasonal weather and climate.
- The Indian Ocean Dipole (IOD) is currently neutral. The latest IOD index value for the week ending 30 August is +0.22 °C. After 3 weeks above the positive IOD threshold (+0.4 °C), the index has eased back into the neutral range over the past 3 weeks. Models continue to suggest a positive IOD could develop during the southern hemisphere spring, although the forecast magnitude of the event has decreased in recent model runs.
- The sea surface temperature (SST) analysis for the week ending 30 August 2026 shows warmer than average waters around most of Australia and mostly near average temperatures to the north. Waters are especially warm along the southern New South Wales and eastern and southern Tasmania coasts, peaking at around 2–3 °C above average.
- SSTs across most of the Australian region are forecast to warm over the coming months, particularly to Australia's west. Warmer waters can enhance atmospheric moisture and energy that can fuel storms and rain systems, increasing potential for high intensity rainfall.
- More broadly, global (60°S to 60°N) daily SSTs have been at record warm levels during August, exceeding previous daily records from 2024.
- The Southern Annular Mode (SAM) index has been mostly negative in the last fortnight, and as of 30 August is currently negative. It is forecast to remain in a negative phase until at least mid-September.
- The long-range forecast provides the best guidance on likely rainfall and temperature patterns in the coming months, allowing for all influences from the oceans and atmosphere.
In the tropical Pacific Ocean, October sea surface temperatures (SSTs) were:
- up to 1.2 °C warmer than average in the far western tropical and far eastern equatorial Pacific Ocean
- up to 1.2 °C cooler than average in the central and eastern equatorial Pacific, east of 170°W
In Australian coastal waters, October SSTs were:
- up to 2 °C warmer than average in waters surrounding most of Australia, reaching up to 3 °C warmer than average off the north-west and south-east coasts.
Around the Maritime Continent, October SSTs were:
- up to 2 °C warmer than average
The Bureau's long-range forecast for December 2024 to February 2025 indicates SSTs are likely to be:
- up to 1.2 °C warmer than average in the far western Pacific (west of 170°E)
- close to average across most of the equatorial Pacific, east of 170°E with the exception of a small region of the equatorial Pacific between 120°E and 130°E, where it is forecast to be up to 0.8 °C cooler than average
- up to 1.2 °C warmer than average across most of Australia's coastal waters, and reaching up to 2 °C warmer in the north-west and up to 3 °C warmer in the south-east
- up to 1.2 °C warmer than average across the Maritime Continent.
ENSO and the IOD are only broad indicators of the expected climate. The long-range forecast provides better guidance on local rainfall and temperature patterns.
The equatorial Pacific sub-surface temperature anomalies for the 26 days ending 19 November 2024 show:
- cooler than average waters in the eastern half of the equatorial Pacific down to about 175 m depth; cooler waters peak around 25 to 100 m depth in the eastern Pacific where they are more than 3 °C cooler than average
- warmer than average waters in the western half of the equatorial Pacific down to about 300 m depth in the far western Pacific. Waters are 2 to 4 °C warmer than average in the far western Pacific between 75 m and 150 m depth
- generally only small changes over recent weeks with some weak warming across the basin.
Product code: IDCKGEWW00
Unless otherwise noted, all maps, graphs and diagrams in this page are licensed under the Creative Commons Attribution 4.0 International Licence
