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    "results": [
        {
            "id": 3877,
            "url": "https://svs.gsfc.nasa.gov/3877/",
            "result_type": "Visualization",
            "release_date": "2013-10-01T00:00:00-04:00",
            "title": "Dynamic Earth Dome Show - Biosphere",
            "description": "This visualization was a prototype affiliated with the 'Dynamic Earth', an Earth science planetarium show. The visualization shows the global biosphere and NDVI from the SeaWiFS instrument with MODIS ice and snow overlayed.The images were rendered using a fish eye technique so that they would project properly onto a planetarium dome.Earth scientists are able to measure many of the Earth's 'vital signs', and just like a doctor measures our vital signs to see how healthy we are. Scientists will use these measurements of the Earth to better understand how the Earth functions, how the different systems on Earth interact and how those interactions have set the stage upon which life flourishes. The visualization shows a timeseries of images of SeaWiFS Global Biosphere - the ocean's long-term average phytoplankton chlorophyll concentration acquired between September 1997 and September 2007 combined with the SeaWiFS-derived Normalized Difference Vegetation Index over land. On land, the dark greens show where there is abundant vegetation and tans show relatively sparse plant cover. In the oceans, red, yellow, and green pixels show dense phytoplankton blooms, those regions of the ocean that are the most productive over time, while blues and purples show where there is very little of the microscopic marine plants called phytoplankton. Remote sensing, especially using satellite-mounted colour scanners (SeaWiFS and similar platforms), is advocated for broad-based monitoring of chlorophyll once appropriate algorithms have been developed and proved. The concentration of the photosynthetic pigment chlorophyll a (referred to as chlorophyll) in marine waters is a proven indicator of the biomass of phytoplankton, the organisms that constitute the base of the marine food web. Fluorometry provides an estimate of chlorophyll levels in sea water and thus an estimate of primary productivity in the upper part of the water column.For more information on monitoring the Earth from Space with SeaWIFS see http://oceancolor.gsfc.nasa.gov/SeaWiFS/TEACHERS/. || ",
            "hits": 72
        },
        {
            "id": 3813,
            "url": "https://svs.gsfc.nasa.gov/3813/",
            "result_type": "Visualization",
            "release_date": "2013-03-01T00:00:00-05:00",
            "title": "Arctic and Antarctic Sea Ice for the Dynamic Earth Dome Show",
            "description": "Sea ice is frozen seawater floating on the surface of the ocean. Some sea ice is semi-permanent, persisting from year to year, and some is seasonal, melting and refreezing from season to season. The sea ice cover reaches its minimum extent at the end of each summer and the remaining ice is called the perennial ice cover. This animation first shows the advance and retreat of the Arctic sea ice followed by same for the Antarctic sea ice. The sea ice changes from day to day showing a running 3-day average sea ice concentration in the region where the concentration is greater than 15%. The blueish white color of the sea ice is derived from a 3-day running miniimum of the AMSR-E 89 GHz brightness temperature. The animation ends by flying over the Antarctic Peninsula.This was created for a planetarium dome show called Dynamic Earth and is produced in 'domemaster format'. The domemaster format was created by rendering 7 separate 2048x2048 camera tiles. The tiles were then stitched together to form final domemaster at 4096x4096 resolution. Both the tiles and the domemaster were rendered with 16 bits per channel with no gamma correction. Two domemaster layers were generated for this animation: the Earth showing sea ice advancing or retreating rendered with transparency and the star background without transparency.This visualization was shown in the \"VR Village\" at SIGGRAPH 2015. || ",
            "hits": 71
        },
        {
            "id": 11125,
            "url": "https://svs.gsfc.nasa.gov/11125/",
            "result_type": "Produced Video",
            "release_date": "2012-11-13T00:00:00-05:00",
            "title": "Surrounded",
            "description": "The massive apron of sea ice that encircles Antarctica at the end of each winter has been steadily expanding. From 1978 to 2010, Antarctic sea ice has grown on average each year by an area about equal to the size of Connecticut. In October 2012 Antarctic sea ice covered a record 7.5 million square miles, more than twice the land area of the contiguous U.S. The sea ice around Antarctica melts almost completely each summer and then grows rapidly each winter. Scientists think a change in atmospheric circulation could be contributing to the ice growth. The continent's unsheltered coastline allows harsh winds to push the ice out into the ocean, and as these winds have strengthened in recent years sea ice has expanded. The visualization uses NASA satellite data to show how winter sea ice completely engulfs Antarctica. || ",
            "hits": 89
        },
        {
            "id": 10827,
            "url": "https://svs.gsfc.nasa.gov/10827/",
            "result_type": "Produced Video",
            "release_date": "2011-11-08T00:00:00-05:00",
            "title": "West Antarctica's Weak Spot",
            "description": "Pine Island Glacier was first called the \"weak underbelly\" of the West Antarctic Ice Sheet almost 30 years ago. The nickname stuck in glaciology circles because scientists still fear it is true. Pine Island, or PIG, as it's often called, drains about 10 percent of the entire West Antarctic Ice Sheet. In 2006, the glacier began losing ice mass at an even faster rate than it had before. For scientists concerned with how much PIG could contribute to sea level rise if it lives up to its moniker, there are two key questions. First, why is it changing? Scientists are investigating, among other causes, how the circulation of warming waters under the ice shelf could lead to thinning. Second, how much is it changing? Following the end of the laser altimetry mission ICESat in 2009, NASA launched an airborne campaign called Operation IceBridge to measure critical polar regions. A laser altimeter onboard NASA's DC-8 research airplane has observed PIG continuing the rapid ice loss—measured as a change in elevation—that began to accelerate in 2006. Watch in the visualization below, an analysis partly based on satellite and aircraft data, how NASA has charted PIG's increasing changes. || ",
            "hits": 54
        },
        {
            "id": 3875,
            "url": "https://svs.gsfc.nasa.gov/3875/",
            "result_type": "Visualization",
            "release_date": "2011-11-02T00:00:00-04:00",
            "title": "West Antarctic Glacier Ice Flows and Elevation Change",
            "description": "This animation shows glacier changes detected by ATM, ICESat and ice bridge data in the highly dynamic Amundsen Embayment of West Antarctica. We know that ice speeds in this area have increased dramatically from the late 1990s to the present as the ice shelves in this area have thinned and the bottom of the ice has lost contact with the bed beneath. As the ice has accelerated, ice upstream of the coast must be stretched more vigorously, causing it to thin. NASA-sponsored aircraft missions first measured the ice surface height in this region in 2002, followed by ICESat data between 2002 and 2009. Ice Bridge aircraft have measured further surface heights in 2009 and 2010, and these measurements continue today. Integrating these altimetry sources allows us to estimate surface height changes throughout the drainage regions of the most important glaciers in the region. We see large elevation changes at the coast on Thwaites glacier, at the center of the images, and large and accelerating elevation changes extending inland from the coast on Pine Island and Smith glaciers, to the left and right of the images, respectively. The changes on Pine Island and Smith glaciers mark these as potential continuing sources of ice to the sea, and they have been surveyed in 2011 by Ice Bridge aircraft and targeted for repeat measurements in coming years. || ",
            "hits": 41
        },
        {
            "id": 3853,
            "url": "https://svs.gsfc.nasa.gov/3853/",
            "result_type": "Visualization",
            "release_date": "2011-10-24T00:00:00-04:00",
            "title": "AMSR-E Arctic Sea Ice",
            "description": "Sea ice is frozen seawater floating on the surface of the ocean. Some sea ice is semi-permanent, persisting from year to year, and some is seasonal, melting and refreezing from season to season. The sea ice cover reaches its minimum extent at the end of each summer and the remaining ice is called the perennial ice cover.In this animation, the Arctic sea ice and seasonal land cover change progress through time, from September 4, 2009 through January 30, 2011. Over the water, Arctic sea ice changes from day to day showing a running 3-day average sea ice concentration in the region where the concentration is greater than 15%. The blueish white color of the sea ice is derived from a 3-day running miniimum of the AMSR-E 89 GHz brightness temperature. Over the terrain, monthly data from the seasonal Blue Marble Next Generation fades slowly from month to month. || ",
            "hits": 46
        },
        {
            "id": 3854,
            "url": "https://svs.gsfc.nasa.gov/3854/",
            "result_type": "Visualization",
            "release_date": "2011-10-24T00:00:00-04:00",
            "title": "AMSR-E Antarctic Sea Ice",
            "description": "Sea ice is frozen seawater floating on the surface of the ocean. Some sea ice is semi-permanent, persisting from year to year, and some is seasonal, melting and refreezing from season to season. The sea ice cover reaches its minimum extent at the end of each summer and the remaining ice is called the perennial ice cover.In this animation, the Antarctic sea ice progresses through time from May 26, 2009 through July 31, 2010. Over the water, Arctic sea ice changes from day to day showing a running 3-day average sea ice concentration in the region where the concentration is greater than 15%. The blueish white color of the sea ice is derived from a 3-day running minimum of the AMSR-E 89 GHz brightness temperature. Over the Antarctic continent, the LIMA data shown here uses the pan-chromatic band and has a resolution of 240 meters per pixel. The Landsat Image Mosaic of Antarctica (LIMA) is a data product funded by the National Science Foundation (NSF) and jointly produced by the U.S. Geological Survey (USGS), the British Antarctic Survey (BAS), and the National Aeronautics and Space Administration (NASA). || ",
            "hits": 46
        },
        {
            "id": 10771,
            "url": "https://svs.gsfc.nasa.gov/10771/",
            "result_type": "Produced Video",
            "release_date": "2011-08-23T00:00:00-04:00",
            "title": "A Pinch Of Salt From Space",
            "description": "NASA gave the command last week to power on its newest Earth-observing satellite, Aquarius. It may seem a somewhat peculiar measurement to make, but Aquarius, which launched in June 2011, will measure salinity across all the oceans every week. The data will undoubtedly help answer some of our most pressing questions about climate change. Why measure ocean salinity? The density of ocean water is determined by salinity and water temperature. Density drives the pattern of deep ocean currents, and ocean currents drive global climate. In recent decades, scientists have seen ocean salinity shift in ways that only climate change seems able to explain. Until now, salinity data came from slow-moving ships and a network of floating sensors that could only provide a limited global picture. Satellite technology changes that: From 400 miles (644 km) above Earth Aquarius' hypersensitive microwave radiometer can detect differences in ocean salinity to within a pinch of salt in a gallon of water. Let the science begin. || ",
            "hits": 66
        },
        {
            "id": 3837,
            "url": "https://svs.gsfc.nasa.gov/3837/",
            "result_type": "Visualization",
            "release_date": "2011-06-13T00:00:00-04:00",
            "title": "Components of the Water Cycle on a Flat Map for Science On a Sphere",
            "description": "Water regulates climate, predominately storing heat during the day and releasing it at night. Water in the ocean and atmosphere carry heat from the tropics to the poles. The process by which water moves around the earth, from the ocean, to the atmosphere, to the land and back to the ocean is called the water cycle. The animations below each portray a component of the water cycle. These animations of the components of the water cycle were created for the Science On a Sphere production \"Loop\" using data from the GEOS-5 atmospheric model on the cubed-sphere, run at 14-km global resolution for 25-days. Variables animated here include hourly clouds, precipitation, evaporation and water vapor. For more information on GEOS-5 see https://gmao.gsfc.nasa.gov/systems/geos5. Some of these visualizations are an orthographic view of the data used in Components of the Water Cycle. || ",
            "hits": 132
        },
        {
            "id": 3830,
            "url": "https://svs.gsfc.nasa.gov/3830/",
            "result_type": "Visualization",
            "release_date": "2011-05-05T00:00:00-04:00",
            "title": "Aquarius Satellite & Data Pre-launch Beauty Shot",
            "description": "Aquarius is a focused satellite mission to measure global Sea Surface Salinity. After its planned 09-Jun-11 launch, it will provide the global view of salinity variability needed for climate studies. The Aquarius / SAC-D mission is being developed by NASA and the Space Agency of Argentina (Comision Nacional de Actividades Espaciales, CONAE). The satellite model depicted in this animation is an artist rendition and intentionally exaggerated so as to remain visible as it flies around the globe. Had the satellite model been rendered true-to-scale, it would not be visible when we pull out to see the full earth. || ",
            "hits": 33
        },
        {
            "id": 3824,
            "url": "https://svs.gsfc.nasa.gov/3824/",
            "result_type": "Visualization",
            "release_date": "2011-03-29T00:00:00-04:00",
            "title": "AMSR-E Arctic Sea Ice: September 2010 to March 2011",
            "description": "Sea ice is frozen seawater floating on the surface of the ocean. Some sea ice is semi-permanent, persisting from year to year, and some is seasonal, melting and refreezing from season to season. The sea ice cover reaches its minimum extent at the end of each summer and the remaining ice is called the perennial ice cover.In this animation, the Arctic sea ice and seasonal land cover change progress through time, from the 2010 minimum which occurred on September 17 through March 16, 2011. Over the water, Arctic sea ice changes from day to day showing a running 3-day maximum sea ice concentration in the region where the concentration is greater than 15%. The blueish white color of the sea ice is derived from a 3-day running maximum of the AMSR-E 89 GHz brightness temperature. Over the terrain, monthly data from the seasonal Blue Marble Next Generation fades slowly from month to month. || ",
            "hits": 44
        },
        {
            "id": 3806,
            "url": "https://svs.gsfc.nasa.gov/3806/",
            "result_type": "Visualization",
            "release_date": "2010-12-09T00:00:00-05:00",
            "title": "Orthographic View of Jakobshavn Calving Front: 1851 to 2010",
            "description": "The Jakobshavn Isbrae glacier, also known as Sermeq Kujalleq, is located on the west coast of Greenland at Latitude 69 degrees N. The ice front, where the glacier calves into the sea, receded more than 40 km between 1850 and 2010. Between 1850 and 1964 the ice front retreated at a steady rate of about 0.3 km/yr, after which it occupied approximately the same location until 2001, receding 10km in three years. After 2005 the single icefront had retreated enough to split into distinct fronts for the smaller, northern tributary and the main southern trunk. The icestream flows in a deep trough which ends near the current glacier terminus. The bedrock topography is expected to stabilize the location of the icefront for the near future as the glacier continues to drawn ice from Greenland's interior. The movement of ice from glaciers on land into the ocean contributes to a rise in sea level. Jakobshavn Isbrae is Greenland's largest outlet glacier, draining 6.5 percent of Greenland's ice sheet area. This image is generated with an orthographic camera set to view the range from 51.372 W longitude to 49.212 W and from 68.94 N latitude to 69.39 N. The Landsat image shown in the background is a false color image of data collected on July 29, 2009. || ",
            "hits": 55
        },
        {
            "id": 3784,
            "url": "https://svs.gsfc.nasa.gov/3784/",
            "result_type": "Visualization",
            "release_date": "2010-10-12T00:00:00-04:00",
            "title": "2009 El Niño & 2010 La Niña (3D-Stereoscopic Version)",
            "description": "Sea Surface Height Anomalies (SSHA) are differences above and below normally observed sea surface heights. Large sustained above average areas (shown in orange and red) off the western coast of South America are an indicator of an El Niño event. In contrast, large sustained below average areas (shown in blue and violet) off the western South American coast are indicators of a La Niña event. This visualization shows the formation of an El Niño event towards the end of 2009 followed by a 2010 La Niña event. || ",
            "hits": 62
        },
        {
            "id": 3780,
            "url": "https://svs.gsfc.nasa.gov/3780/",
            "result_type": "Visualization",
            "release_date": "2010-10-06T00:00:00-04:00",
            "title": "2009 El Niño & 2010 La Niña (Science On a Sphere Version)",
            "description": "Sea Surface Height Anomalies (SSHA) are differences above and below normally observed sea surface heights. Large sustained above average areas (shown in orange and red) off the western coast of South America are an indicator of an El Niño event. In contrast, large sustained below average areas (shown in blue and violet) off the western South American coast are indicators of a La Niña event. This visualization shows the formation of an El Niño event towards the end of 2009 followed by a 2010 La Niña event. || ",
            "hits": 44
        },
        {
            "id": 3767,
            "url": "https://svs.gsfc.nasa.gov/3767/",
            "result_type": "Visualization",
            "release_date": "2010-09-29T00:00:00-04:00",
            "title": "Arctic Sea Ice Minimum Extent for 2010",
            "description": "Sea ice is frozen seawater floating on the surface of the ocean. Some sea ice is semi-permanent, persisting from year to year, and some is seasonal, melting and refreezing from season to season. The sea ice cover reaches its minimum extent at the end of each summer and the remaining ice is called the perennial ice cover.In this animation, the Arctic sea ice and seasonal land cover change progress through time, from March 31, 2010 when sea ice in the Arctic was at its maximum extent, through September 19, 2010, when it was at its minimum. The blueish white color of the sea ice is derived from a 3-day running maximum of the AMSR-E 89 GHz brightness temperature. Over the terrain, monthly data from the seasonal Blue Marble Next Generation fades slowly from month to month. || ",
            "hits": 54
        },
        {
            "id": 3745,
            "url": "https://svs.gsfc.nasa.gov/3745/",
            "result_type": "Visualization",
            "release_date": "2010-07-01T00:00:00-04:00",
            "title": "Hurricane Katrina 3D Stereoscopic Viewfinder Image",
            "description": "NASA's TRMM spacecraft observed this view of Hurricane Katrina on August 28, 2005. At the time the data was collected, Katrina was a Category 5 hurricane, the most destructive and deadly. The cloud cover data was taken by TRMM's Visible and Infrared Scanner (VIRS), with additional data from the GOES spacecraft. The rain structure data was taken by TRMM's Tropical Microwave Imager (TMI). This view looks underneath the storm's clouds to reveal the underlying rain structure. This stereoscopic still image was created from a previous visualization and is intended for viewing through a special NASA Earth Science Viewfinder available through NASA Headquarters. Below, we include an anaglyph version, a printable viewfinder version, and the individual left eye and right eye views. || ",
            "hits": 68
        },
        {
            "id": 3736,
            "url": "https://svs.gsfc.nasa.gov/3736/",
            "result_type": "Visualization",
            "release_date": "2010-06-24T00:00:00-04:00",
            "title": "Aura/OMI 3D Stereoscopic Viewfinder Image",
            "description": "The Aura satellite launched on July 15, 2004 from Vandenberg Air Force Base, California and is still operating successfully today. One of several instruments onboard is the Ozone Monitoring Instrument (OMI). OMI is a contribution of the Netherland's Agency for Aerospace Programs (NIVR) along with the Finnish Meteorlogical Institute (FMI). OMI monitors the Earth's atmosphere for total ozone and other atmospheric parameters related to ozone chemistry and climate. This stereoscopic artistic rendition was created from a  previous animation and is intended for viewing through a special NASA Earth Science Viewfinder available through NASA Headquarters. We include an anaglyph version here in addition to a printable viewfinder version, as well as the individual left eye and right eye views. || ",
            "hits": 37
        },
        {
            "id": 3698,
            "url": "https://svs.gsfc.nasa.gov/3698/",
            "result_type": "Visualization",
            "release_date": "2010-03-29T00:00:00-04:00",
            "title": "AMSR-E Arctic Sea Ice: September 2009 to March 2010",
            "description": "Sea ice is frozen seawater floating on the surface of the ocean. Some sea ice is semi-permanent, persisting from year to year, and some is seasonal, melting and refreezing from season to season. The sea ice cover reaches its minimum extent at the end of each summer and the remaining ice is called the perennial ice cover.In this animation, the Arctic sea ice and seasonal land cover change progress through time, from September 1, 2009 when sea ice in the Arctic was near its minimum extent, through March 30, 2010. The animation plays at a rate of six frames per day or ten days per second. Over the water, Arctic sea ice changes from day to day showing a running 3-day maximum sea ice concentration in the region where the concentration is greater than 15%. The blueish white color of the sea ice is derived from a 3-day running maximum of the AMSR-E 89 GHz brightness temperature. Over the terrain, monthly data from the seasonal Blue Marble Next Generation fades slowly from month to month. || ",
            "hits": 42
        },
        {
            "id": 3687,
            "url": "https://svs.gsfc.nasa.gov/3687/",
            "result_type": "Visualization",
            "release_date": "2010-03-24T00:00:00-04:00",
            "title": "Greenland Ice Sheet Mass Changes from NASA GSFC GRACE Mascon Solutions with Banded Color Scale",
            "description": "Luthcke, S.B., D.D. Rowlands, J.J. McCarthy, A. Arendt, T. Sabaka, J.P. Boy, F.G. Lemoine, \"Recent Changes of the Earth's Land Ice from GRACE, \" presented at 2009 Fall AGU, H13G-02 (693337), Dec. 14, 2009.The mass changes of the Greenland Ice Sheet (GIS) are computed from the Gravity Recovery and Climate Experiment (GRACE) inter-satellite range-rate observations for the period April 5, 2003 - July 25, 2009. The mass of the GIS has been computed at 10-day intervals and 200km spatial resolution from a regional high-resolution mascon solution (Luthcke and others, 2008 and 2006). The animation shows the change in mass referenced from April 5, 2003. The spatial variation in surface mass is shown in centimeters equivalent height of water. The time variation of the GIS mass is shown in the x-y plot insert with units of Gigatons.Corresponding author:Scott B. LuthckeNASA GSFCPlanetary Geodynamics Laboratory, Code 698Scott.B.Luthcke@nasa.gov || ",
            "hits": 46
        },
        {
            "id": 3686,
            "url": "https://svs.gsfc.nasa.gov/3686/",
            "result_type": "Visualization",
            "release_date": "2010-03-15T00:00:00-04:00",
            "title": "LRO/LOLA Lunar South Pole Flyover",
            "description": "The Lunar Reconnaissance Oribiter (LRO) was launched on June 18, 2009. Its mission is to map the moon's surface, find safe landing sites, locate potential resources, characterize the radiation environment, and demonstrate new technology. One of the instruments on board is the  Lunar Orbiter Laser Altimeter (LOLA) which measures landing site slopes, lunar surface roughness, and has begun generation of a high resolution 3D map of the Moon.This visualization uses Clementine data for the global view of the moon, but then transitions to using only LRO/LOLA DEM with a neutral gray texture when flying around the lunar south pole. The DEM by itself creates an amazingly realistic view of the lunar southpole. As better maps are created from the other instruments aboard LRO, an even clearer picture of the moon will emerge.Please note that this visualization is match-frame rendered to The Moon's South Pole in 3D via LRO/LOLA First Light Data (#3633). || ",
            "hits": 234
        },
        {
            "id": 3681,
            "url": "https://svs.gsfc.nasa.gov/3681/",
            "result_type": "Visualization",
            "release_date": "2010-02-11T00:00:00-05:00",
            "title": "2009 El Niño & 2010 La Niña",
            "description": "Sea Surface Height Anomalies (SSHA) are differences above and below normally observed sea surface heights. Large sustained above average areas (shown in orange and red) off the western coast of South America are an indicator of an El Niño event. In contrast, large sustained below average areas (shown in blue and violet) off the western South American coast are indicators of a La Niña event. This visualization shows the formation of an El Niño event towards the end of 2009 followed by a 2010 La Niña event. || ",
            "hits": 93
        }
    ]
}