Courtesy of National Geographic, an interesting article on the use of satellite and airborne sensors to assess the environment:
The view out the window was bad enough. As his research plane flew over groves of California’s giant sequoias, some of the world’s tallest trees, Greg Asner could see the toll the state’s four-year drought had taken. “It looked wicked dry down there,” he said. But when he turned from the window to the video display in his flying lab, the view was even more alarming. In places, the forest was bright red. “It was showing shocking levels of stress,” he said.
The digital images were coming from a new 3-D scanning system that Asner, an ecologist with the Carnegie Institution for Science, had just installed in his turboprop aircraft. The scanner’s twin lasers pinged the trees, picking out individual branches from 7,000 feet up. Its twin imaging spectrometers, one built by NASA’s Jet Propulsion Laboratory (JPL), recorded hundreds of wavelengths of reflected sunlight, from the visible to the infrared, revealing detailed chemical signatures that identified each tree by species and even showed how much water it had absorbed—a key indicator of health. “It was like getting a blood test of the whole forest,” Asner said. The way he had chosen the display colors that day, trees starved of water were bright red.
Disturbing as the images were, they represented a powerful new way of looking at the planet. “The system produces maps that tell us more about an ecosystem in a single airborne overpass,” Asner wrote later, “than what might be achieved in a lifetime of work on the ground.” And his Carnegie Airborne Observatory is just the leading edge of a broader trend.
A half century after the first weather satellite sent back fuzzy pictures of clouds swirling over the North Atlantic, advanced sensors are doing for scientists what medical scanners have done for doctors—giving them ever improving tools to track Earth’s vital signs. In 2014 and early 2015 NASA launched five major Earth-observing missions (including two new instruments on the space station), bringing its total to 19. Space agencies from Brazil, China, Europe, and elsewhere have joined in. “There’s no question we’re in a golden age for remote sensing,” said Michael Freilich, NASA’s earth science director.Four years of drought have taken a harsh toll on California’s farms and forests. Last spring Greg Asner and his team flew over the Sierra Nevada, home to sequoias and other giant trees. With the new instruments on their airplane, the researchers completed in days a damage survey that would have taken a lifetime from the ground.
The news from all these eyes in the sky, it has to be said, is mostly not good. They bear witness to a world in the midst of rapid changes, from melting glaciers and shrinking rain forests to rising seas and more. But at a time when human impacts on Earth are unprecedented, the latest sensors offer an unprecedented possibility to monitor and understand the impacts—not a cure for what ails the planet, but at least a better diagnosis. That in itself is a hopeful thing.In California the water crisis has turned the state into something of a laboratory for remote-sensing projects. For the past three years a NASA team led by Tom Painter has been flying an instrument-packed aircraft over Yosemite National Park to measure the snowpack that feeds the Hetch Hetchy Reservoir, the primary source of water for San Francisco.Until now, reservoir managers have estimated the amount of snow on surrounding peaks the old-fashioned way, using a few gauges and taking surveys on foot. They fed these data into a statistical model that forecast spring runoff based on historical experience. But lately, so little snow had fallen in the Sierra Nevada that history could offer no analogues. So Chris Graham, a water operations analyst at Hetch Hetchy, accepted the NASA scientists’ offer to measure the snowpack from the sky.Painter’s Twin Otter aircraft, called the Airborne Snow Observatory, was equipped with a package of sensors similar to those in Greg Asner’s plane: a scanning lidar to measure the snow’s depth and an imaging spectrometer to analyze its properties. Lidar works like radar but with laser light, determining the plane’s distance to the snow from the time it takes the light to bounce back. By comparing snow-covered terrain with the same topography scanned on a snow-free summer day, Painter and his team could repeatedly measure exactly how much snow there was in the entire 460-square-mile watershed. Meanwhile the imaging spectrometer was revealing how big the snow grains were and how much dust was on the surface—both of which affect how quickly the snow will melt in the spring sun and produce runoff. “That’s data we’ve never had before,” Graham said.Painter also has been tracking shrinking snowpacks in the Rocky Mountains, which supply water to millions of people across the Southwest. Soon he plans to bring his technology to other mountainous regions around the world where snow-fed water supplies are at risk, such as the Himalayan watersheds of the Indus and Ganges Rivers. “By the end of the decade, nearly two billion people will be affected by changes in snowpacks,” he said. “It’s one of the biggest stories of climate change.”With less water flowing into California’s rivers and reservoirs, officials have cut back on the amount of water supplied to the state’s farmers, who typically produce about half the fruits, nuts, and vegetables grown in the U.S. In response, growers have been pumping more water from wells to irrigate fields, causing water tables to fall. State officials normally monitor underground water supplies by lowering sensors into wells. But a team of scientists led by Jay Famiglietti, a hydrologist at the University of California, Irvine, and at JPL, has been working with a pair of satellites called GRACE (for Gravity Recovery and Climate Experiment) to “weigh” California’s groundwater from space.
The satellites do this by detecting how changes in the pull of Earth’s gravity alter the height of the satellites and the distance between them. “Say we’re flying over the Central Valley,” Famiglietti said, holding a cell phone in each hand and moving them overhead like one satellite trailing the other. “There’s a certain amount of water down there, which is heavy, and it pulls the first satellite away from the other.”
The GRACE satellites can measure that to within 1/25,000 of an inch. And a year later, after farmers have pumped more water out of the ground, and the pull on the first satellite has been ever so slightly diminished, the GRACE satellites will be able to detect that change too.
Depletion of the world’s aquifers, which supply at least one-third of humanity’s water, has become a serious danger, Famiglietti said. GRACE data show that more than half the world’s largest aquifers are being drained faster than they can refill, especially in the Arabian Peninsula, India, Pakistan, and North Africa.
Since California’s drought began in 2011, the state has been losing about four trillion gallons a year (more than three and a half cubic miles) from the Sacramento and San Joaquin River Basins, Famiglietti said. That’s more than the annual consumption of the state’s cities and towns. About two-thirds of the lost water has come from aquifers in the Central Valley, where pumping has caused another problem: Parts of the valley are sinking.
Tom Farr, a geologist at JPL, has been mapping this subsidence with radar data from a Canadian satellite orbiting some 500 miles up. The technique he used, originally developed to study earthquakes, can detect land deformations as small as an inch or two. Farr’s maps have shown that in places, the Central Valley has been sinking by around a foot a year.
One of those places was a small dam near the city of Los Banos that diverts water to farms in the area. “We knew there was a problem with the dam, because water was starting to flow up over its sides,” said Cannon Michael, president of Bowles Farming Company. “It wasn’t until we got the satellite data that we saw how huge the problem was.” Two sunken bowls had formed across a total of 3,600 square miles of farmland, threatening dams, bridges, canals, pipelines, and floodways—millions of dollars’ worth of infrastructure. In late 2014 California governor Jerry Brown signed the state’s first law phasing in restrictions on groundwater removal.
As evidence has mounted about Earth’s maladies—from rising temperatures and ocean acidification to deforestation and extreme weather—NASA has given priority to missions aimed at coping with the impacts. One of its newest satellites, a $916 million observatory called SMAP (for Soil Moisture Active Passive), was launched in January. It was designed to measure soil moisture both by bouncing a radar beam off the surface and by recording radiation emitted by the soil itself. In July the active radar stopped transmitting, but the passive radiometer is still doing its job. Its maps will help scientists forecast droughts, floods, crop yields, and famines.
“If we’d had SMAP data in 2012, we easily could have forecast the big Midwest drought that took so many people by surprise,” said Narendra N. Das, a research scientist at JPL. Few people expected the region to lose about $30 billion worth of crops that summer from a “flash drought”—a sudden heat wave combined with unusually low humidity. “SMAP data could have shown early on that the region’s soil moisture was already depleted and that if rains didn’t come, then crops were going to fail,” Das said. Farmers might not have bet so heavily on a bumper crop.
Climate change also is increasing the incidence of extreme rains—and SMAP helps with that risk too. It can tell officials when the ground has become so saturated that a landslide or a downstream flood is imminent. But too little water is a more pervasive and lasting threat. Without moisture in the soil, a healthy environment breaks down, as it has in California, leading to heat waves, drought, and wildfires. “Soil moisture is like human sweat,” Das said. “When it evaporates, it has a cooling effect. But when the soil is devoid of moisture, Earth’s surface heats up, like us getting heatstroke.”
Despite all the challenges to Earth’s well-being, the planet so far has proved remarkably resilient. Of the 37 billion metric tons or so of carbon dioxide dumped into the atmosphere each year by human activities, oceans, forests, and grasslands continue to soak up about half. No one knows yet, however, at what point such sinks might become saturated. Until recently, researchers didn’t have a good way to measure the flow of carbon in and out of them.
That changed in July 2014, when NASA launched a spacecraft called the Orbiting Carbon Observatory-2. Designed to “watch the Earth breathe,” as managers put it, OCO-2 can measure with precision—down to one molecule per million—the amount of CO? being released or absorbed by any region of the world. The first global maps using OCO-2 data showed plumes of CO? coming from northern Australia, southern Africa, and eastern Brazil, where forests were being burned for agriculture. Future maps will seek to identify regions doing the opposite—removing CO? from the atmosphere.
Greg Asner and his team also have tackled the mystery of where all the carbon goes. Prior to flying over California’s woodlands, they spent years scanning 278,000 square miles of tropical forests in Peru to calculate the forests’ carbon content.
At the time, Peru was in discussions with international partners about ways to protect its rain forests. Asner was able to show that forest areas under the most pressure from logging, farming, or oil and gas development also were holding the most carbon—roughly seven billion tons. Preserving those areas would keep that carbon locked up, Asner said, and protect countless species. In late 2014 the government of Norway pledged up to $300 million to prevent deforestation in Peru.
Within the next few years NASA plans to launch five new missions to study the water cycle, hurricanes, and climate change, including a follow-up to GRACE. Smaller Earth-observing instruments, called CubeSats—some tiny enough to fit into the palm of a hand—will hitch rides into space on other missions. For scientists like Asner, the urgency is clear. “The world is in a state of rapid change,” he said. “Things are shifting in ways we don’t yet have the science for.”
Within the next decade or so the first imaging spectrometer, similar to the ones used by Asner and Painter, could be put into Earth orbit. It would be like “Star Trek technology” compared with what’s up there now, Painter said. “We’ve orbited Jupiter, Saturn, and Mars with imaging spectrometers, but we haven’t had a committed program yet for our own planet,” he said. The view from such a device would be amazing: We’d be able to see and name individual trees from space. And we’d be reminded of the larger forest: We humans and our technology are the only hope for curing what we’ve caused.

WHAT THIS TELLS US Forests and oceans have slowed global warming by soaking up some of the CO? we emit. OCO-2 will shed light on where exactly it’s going—and on how fast the planet could warm in the future.
WHAT THIS IS The Carnegie Airborne Observatory made this image of rain forest in Panama with its scanning lidar, which probes the trees’ size and shape, and a spectrometer that charts their chemical composition.
WHAT THIS TELLS US The technique allows Asner’s team, flying at 7,000 feet, to identify individual trees from their chemical signatures—and even to say how healthy they are. The reddish trees here (the colors are arbitrary) are growing the fastest and absorbing the most CO?.
WHAT THIS IS It’s an image of the Tambopata River in eastern Peru made by the scanning lidar aboard the Carnegie observatory.
WHAT THIS TELLS US The area in this image is actually covered with rain forest. Some lidar pulses penetrate the forest and reflect off the ground, revealing the subtle topography—red is a few feet higher than blue—and faint, abandoned river channels that have shaped the forest and helped create its rich biodiversity.
WHAT THIS IS NASA’s Aqua satellite captured these visible-light images of California and Nevada on March 27, 2010 (left), the most recent year with normal snowfall, and on March 29, 2015 (right).
WHAT THIS TELLS US After four years of drought, the snowpack in the Sierra Nevada—a crucial water reservoir for California—is just 5 percent of the historical average. Snow has virtually vanished from Nevada. And west of the Sierra, in the Central Valley, much of the fertile farmland is fallow and brown.
No one gets a better look at how we’ve transformed Earth—and conquered night—than astronauts on the space station. The view here is to the north over Portugal and Spain. The green band is the aurora.
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Read More »Via the Wall Street Journal, an interesting report on how habitat exchanges are bringing the ‘sharing economy’ to conservation:
For too long, the Endangered Species Act has served as an emergency room for at-risk wildlife. By the time a species arrives on the endangered list, it’s too far along in its decline to be saved without intensive and expensive treatment that could have been avoided with preventative care.
That’s what is so remarkable about the Interior Department’s recent decision not to list the greater sage grouse. Thanks to foresight, planning and collaboration across multiple industries and 11 Western states, the bird dodged a trip to the ER and the region’s two biggest economic engines—energy and agriculture—avoided the strict land-use restrictions that typically accompany endangered-species listings.
The species will be on the mend for years to come, and industry and landowners will have to live up to agreements to conserve sage-grouse habitat to facilitate the population’s recovery. But the pre-emptive effort signaled an overdue shift in the way we think about conservation.
The Endangered Species Act is necessary, but it is also a last resort. To ensure healthy wildlife populations and a healthy economy, we must initiate care much sooner and the prescription must be collaborative.
Human development and climate change are taking their toll on America’s wildlife. More than 250 species await listing decisions under the Endangered Species Act, and there simply aren’t enough national parks and wildlife refuges in the U.S. to house them. Though there is a lively debate about how best to protect species on public lands administered by the Bureau of Land Management, most wildlife is on privately owned land. Buying that land or taking it out of production is neither feasible nor advisable.
So how do we tap those private lands—which account for 70% of the lower 48—for wildlife stewardship? We crowdsource it, pooling funds to help landowners across the country sustain wildlife habitat, and reward those who step up voluntarily.
In collaboration with ranchers, developers, academics and state resource agencies, the Environmental Defense Fund (the organization I head) is pioneering a new solution to tackle the species crisis—habitat exchanges, which bring the “sharing economy” to conservation.
Think of it as an Airbnb for wildlife. Just as the online company Airbnb allows homeowners to get paid for opening a spare bedroom to travelers, habitat exchanges allow landowners to get paid for providing quality habitat for vulnerable wildlife. The revenue is supplied by infrastructure, energy and other developers, which need to mitigate the environmental impact of their projects. But concerned individuals, nongovernmental organizations or corporations can also share in the cost, donating funds to an exchange.
Habitat exchanges unlock the potential of farmers, ranchers and forest owners to become conservation heroes without taking their land out of production or signing it over to the government. Developers benefit from a predictable value for the mitigation credits they buy and a standard set of rules that ensure projects move forward.
We’re in the early stages, but habitat exchanges are gaining momentum. In Colorado, Gov. John Hickenlooper’s administration helped to develop an exchange for sage grouse that is expected to launch by the end of this year. Nevada is beta testing its version of a sage-grouse exchange, and a citizen group, the Wyoming Conservation Exchange, has developed a proposal for sage grouse and mule deer. This group has already hired an administrator to manage the market as soon as it is approved by federal and state regulators.
In 2006, an earlier version of the habitat-exchange idea worked to recover golden-cheeked warblers in Texas and allow the U.S. Army to continue military exercises. In California, a consortium of state agencies and NGOs is hoping to launch an exchange in 2016 that will allow water and transportation developers to purchase credits from farmers who maintain habitat for Swainson’s hawk, Chinook salmon and riparian songbirds. And the Environmental Defense Fund is developing a habitat exchange for the monarch butterfly.
Though it would be ideal to set aside enough habitat to ensure the survival of the nation’s critters, practically speaking we can’t. The best alternative is to share resources so everyone wins.
The early adoption of habitat exchanges is a positive sign that crowdsourced conservation is no longer in the concept stage. It’s ready for prime time.
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Read More »Via Red Bulletin, an interesting look at Orbital Insight, a geospatial Big Data company leveraging the rapidly growing availability of satellite, UAV, and other geospatial data sources, to understand and characterize socio-economic trends at global, regional, and hyper-local scales:

La forêt de Mariba, Ouganda : le 27 novembre 2001 (à gauche), le 25 janvier 2006 (à droite).
What?
Technology that monitors deforestation.
Why?
To protect the world’s forests.
When?
Now. California startup Orbital Insight has partnered with Global Forest Watch to create a system that monitors and flags suspicious changes around forested areas, such as unexpected new roads. As the system’s neural network recognizes more and increasingly detailed patterns, it will become more accurate at detecting changes and helping to prevent illegal deforestation.
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Read More »Via Eco-Business, an interesting report on a new Chinese initiative to use technology to monitor their environment:
China will build a comprehensive network to detect pollution of the land, sea and air by 2020, employing satellites, drones and remote sensors to monitor the environment.
The national leadership approved the network plan in July, saying the government will lead the monitoring, share information among departments and regions, and be held accountable if violations are found, the Ministry of Environmental Protection said on Tuesday.
Satellites, a major tool for monitoring air pollution, will receive a boost this year. The ministry said it will accelerate research on two atmospheric environmental monitoring satellites and two satellites with higher resolution than those currently available.
The ministry will improve a remote sensor network, guided by the goals of the 13th Five-Year Plan (2016-20), which is scheduled to be released at the end of this year, according to the ministry’s Environmental Supervision Department.
Remote monitoring has played a bigger role in locating pollution sources. Drones helped authorities locate polluted areas in the Tengger Desert in northern China and identify scattered summer straw burnings.
Hebei province, which has a serious air pollution problem, has cooperated with the ministry’s Satellite Environment Center to conduct monitoring from satellites and monitoring stations since January last year.
“We used the data from the center’s satellites to forecast the movement of smog during the Asia-Pacific Economic Cooperation meetings in November,” Zhang Feng, an engineer in the Environmental Supervision Department of the provincial environmental watchdog, said on Tuesday.
Data collected from monitoring stations helped authorities provide accurate forecasts on hazy days during that period, he said.
Currently, the environmental satellites are used as support tools, as there are not enough of them, Zhang said. After the province builds a system to analyze and process data by the end of this year, the satellites will become more important.
The ministry will also strengthen the supervision of data collected through multiple channels, which is “important to keep the environmental management policies and measures effective and scientific”, Chen Jining, the environmental minister, said in July.
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Read More »Via the World Resources Institute (WRI), a report on the use of satellite data to better manage groundwater use:
Imagine you’re a wheat farmer in Rajasthan, a state in northwestern India. Wheat needs more water than rains provide, especially during the dry season. So you drill a well.
You don’t have to pay for the water you use or the electricity that powers your pump, so you let the pump run. While you know the water comes from an aquifer somewhere beneath your feet, it’s invisible, diffused throughout layers of soil and rock. Draining an aquifer is therefore very different from draining a reservoir, where you can see the water level drop.
You and your neighbors, and other farms, companies and cities around the world, keep withdrawing water from these underground sources with little regard for how much water they use and how much is left. People have an incentive – and no disincentive – to tap as much groundwater as they can. The result is a race to the bottom of the aquifer.
The results of this very local phenomenon were captured on a global scale by research released last week by NASA and the University of California, Irvine. The Gravity Recovery and Climate Experiment (GRACE) satellites showed that many of the world’s biggest aquifers are being depleted at a much faster rate than they can be replenished, from the Middle East, India, North Africa and Central Asia to California’s Central Valley.
These data and analyses are critically important, raising awareness about an underreported issue and looming crisis, and allowing governments, development organizations, companies and researchers around the world to concentrate their groundwater work on the worst-suffering areas.
However, there’s far more work to be done. That motivates WRI’s Water Team to focus on other key contextual elements: the combined effect of competition for surface water, groundwater depletion, and sharpening our comprehensive understanding of groundwater resources themselves, from current water table levels to sustainable withdrawal rates and more.
Dry Surface? Look Out Below
Both supply and demand must be a part of any discussion about dwindling water resources. All the critical regions identified by GRACE face high to extremely high water stress in surface rivers and streams. In highly water-stressed areas, 40 to 100 percent of the local water supply is withdrawn by businesses, farmers, residents and other consumers every year. WRI’s Aqueduct Water Risk Atlas maps water stress around the world. The Middle East appears in the Atlas as a quilt of dark red and grey, indicating arid and extremely high water stressed areas where users withdraw 80 percent or more of the available, annually renewable surface water every year.
Farther east, India’s water stress shows a similar pattern to GRACE’s groundwater-level decline map. A large swath of extremely high surface water stress covers northwestern India. With limited surface water, it’s no surprise that the region’s farmers are withdrawing groundwater more quickly than anywhere else on Earth, making the water situation even more precarious. Across the country, 54 percent of 4,000 measured groundwater wells are declining.
California’s Central Valley is another exceptionally productive agricultural region that raised red flags for groundwater depletion in the GRACE analysis. WRI mapped the competition for naturally occurring surface water in California over its irrigated agricultural land, and once again, surface water stress mirrors areas of high groundwater stress very closely. About 66 percent of the state’s irrigated agriculture faces extremely high levels of baseline water stress. It’s long been known that Central Valley groundwater is being pumped at unsustainable rates. In the midst of California’s current epic drought, with no natural replenishment of aquifers and over-pumping, groundwater tables are declining alarmingly.
Improving Global Groundwater Estimates
As valuable as GRACE’s groundwater data is, it has a crucial gap: it cannot show the total volume of groundwater available in the aquifers it tracks, only the rate of decline. Without knowing when the aquifers will go dry, or when water tables will sink so low that they are effectively inaccessible, users and water managers are blind to the scope and severity of their problems.
A global dataset for volumes of water stored in aquifers would be invaluable, but is still many years away. At WRI, we are planning a new global groundwater data layer for the Aqueduct Water Risk Atlas as a first step. In collaboration with Utrecht University in the Netherlands and Deltares, a Dutch water research organization, we are preparing more detailed models of groundwater. We will create a comprehensive, high-resolution groundwater risk map for groundwater levels and extraction rates around the world. We are also planning a groundwater stress map to illustrate the ratio of recharge to depletion in a given aquifer every year.
Groundwater is a valuable resource the world over. Managed sustainably, it can support food production and growing cities and businesses. But truly understanding the nature of this critical resource, how much groundwater there is, how long it may last in different places at current rates of extraction, and what sustainable recharge rates are, is essential for many countries’ future economic development.
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Read More »Via Future Directions International, a look at how satellites are tracking the growing scarcity of groundwater around the globe: ,
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